Inline virtual qualification from 3D X-ray imaging for high-value manufacturing
Lead Research Organisation:
Swansea University
Department Name: College of Engineering
Abstract
This fellowship programme will apply state-of-the-art 3D image processing and machine learning methods, developing them further where necessary, to deliver a new software tool that performs industrial production line 'virtual qualification' using part-specific simulations from 3D X-ray imaging in high-value manufacturing (HVM).
Qualification is when manufactured parts are verified fit for purpose, often achieved by performing experimental tests representative of in-service conditions. Virtual qualification will verify by modelling micro-accurate digital replicas of the final part (flaws included) replacing costly and time-consuming experimental methods. Additionally, this will assess defects for performance impact (rather than expensive but unspecific pass/fail testing). The challenge is that image-based modelling currently requires significant human interaction over a timescale of weeks. Applying this to many parts takes significant time to complete unless methodology can be changed. The novelty of this proposal is to use machine learning with foreknowledge, due to production line parts being similar, to automate conversion of microresolution 3D images into part-specific models that simulate in-service conditions. This automation is required for the technique to scale for deployment in industrial manufacturing. Additionally, because much of the decision making entailed is subjective, and therefore prone to human error, a consequential benefit of automation is consistent outputs by removing this variability.
This proposal focuses on image-based finite element methods (IBFEM), which merge real and virtual worlds to account for deviations caused by manufacturing processes not considered by design-based finite element methods (FEM), e.g. due to tolerancing or micro-defects. This implementation of part-specific modelling has applications in advanced manufacturing wherever there is variability from one component to another e.g. additive manufacturing or composites. A case study will be undertaken with the UK Atomic Energy Authority (UKAEA) for a heat exchange component. This will showcase the capabilities of the technique to automatically produce a report that estimates the impact of deviations from design on performance.
Unlike FEM, which have undergone extensive certification and are industry-wide trusted methods, there has not been a systematic approach which can be used to benchmark image-based modelling workflows against verified experimental data. This work will produce benchmarks based on standards for experimental measurements of thermomechanical material properties to give confidence in the technique for industrial adoption. The database of benchmarks will be useful for those wishing to use image-based modelling to validate workflows and could contribute towards establishing new standards in the field.
Central to this proposal is the use of FEM, the de-facto tool for predicting thermomechanical performance in engineering. Prof Zienkiewicz's research at Swansea University established it as a birthplace for FEM, and is now recognised as a leading research centre in the field. The team undertaking this fellowship, led by Dr Llion Evans, will be based at the Zienkiewicz Centre for Computational Engineering, Swansea University and will work in collaboration with the centre's head, Prof Nithiarasu, an expert in image-based modelling for biomechanics. Access to the equipment required for all aspects of this highly multidisciplinary work i.e. thermomechanical characterisation, 3D imaging and computing is available through complementary centres at the College of Engineering, Swansea University. To support this extremely multidisciplinary work, key industrial organisations will be collaborating on this project. Nikon Metrology Ltd. (X-ray imaging systems), Synopsys Inc. (image processing software), TWI (non-destructive testing and industrial standards), UKAEA (energy generation end-user) and Airbus (aerospace end-user).
Qualification is when manufactured parts are verified fit for purpose, often achieved by performing experimental tests representative of in-service conditions. Virtual qualification will verify by modelling micro-accurate digital replicas of the final part (flaws included) replacing costly and time-consuming experimental methods. Additionally, this will assess defects for performance impact (rather than expensive but unspecific pass/fail testing). The challenge is that image-based modelling currently requires significant human interaction over a timescale of weeks. Applying this to many parts takes significant time to complete unless methodology can be changed. The novelty of this proposal is to use machine learning with foreknowledge, due to production line parts being similar, to automate conversion of microresolution 3D images into part-specific models that simulate in-service conditions. This automation is required for the technique to scale for deployment in industrial manufacturing. Additionally, because much of the decision making entailed is subjective, and therefore prone to human error, a consequential benefit of automation is consistent outputs by removing this variability.
This proposal focuses on image-based finite element methods (IBFEM), which merge real and virtual worlds to account for deviations caused by manufacturing processes not considered by design-based finite element methods (FEM), e.g. due to tolerancing or micro-defects. This implementation of part-specific modelling has applications in advanced manufacturing wherever there is variability from one component to another e.g. additive manufacturing or composites. A case study will be undertaken with the UK Atomic Energy Authority (UKAEA) for a heat exchange component. This will showcase the capabilities of the technique to automatically produce a report that estimates the impact of deviations from design on performance.
Unlike FEM, which have undergone extensive certification and are industry-wide trusted methods, there has not been a systematic approach which can be used to benchmark image-based modelling workflows against verified experimental data. This work will produce benchmarks based on standards for experimental measurements of thermomechanical material properties to give confidence in the technique for industrial adoption. The database of benchmarks will be useful for those wishing to use image-based modelling to validate workflows and could contribute towards establishing new standards in the field.
Central to this proposal is the use of FEM, the de-facto tool for predicting thermomechanical performance in engineering. Prof Zienkiewicz's research at Swansea University established it as a birthplace for FEM, and is now recognised as a leading research centre in the field. The team undertaking this fellowship, led by Dr Llion Evans, will be based at the Zienkiewicz Centre for Computational Engineering, Swansea University and will work in collaboration with the centre's head, Prof Nithiarasu, an expert in image-based modelling for biomechanics. Access to the equipment required for all aspects of this highly multidisciplinary work i.e. thermomechanical characterisation, 3D imaging and computing is available through complementary centres at the College of Engineering, Swansea University. To support this extremely multidisciplinary work, key industrial organisations will be collaborating on this project. Nikon Metrology Ltd. (X-ray imaging systems), Synopsys Inc. (image processing software), TWI (non-destructive testing and industrial standards), UKAEA (energy generation end-user) and Airbus (aerospace end-user).
Planned Impact
This fellowship programme aims to change practices in HVM by developing a new software tool that performs production line virtual qualification with 3D X-ray imaging. By creating micro-accurate part-specific simulations of components, each part can be tested virtually, replacing costly and time-consuming experimental methods.
Variation in part manufacture and in-service loading mean that not all parts will perform equally but will be retired from service concurrently before the 'weakest link' is deemed to have reached its life-critical stage. This work will make significant savings by considering each part individually from initiation and its unique performance predicted to estimate when it should be removed. This technique is particularly applicable to advanced materials, where component variability is an issue and macroscopic performance is dominated by microstructure, such as fibre composites or additive manufacturing. Consequently, this work will benefit aerospace and energy industries in particular. Within the timeframe of this fellowship, main industrial beneficiaries will be the end-user stakeholders, namely UKAEA and Airbus representing energy generation and aerospace. A specific work package has been included to deliver a virtual qualification solution customised for application with an energy generation heat exchange component. Additionally, Airbus are providing 3D imaging data of aerospace components which the workflow will be tested against to ensure that developed tools can be used in their sector. This will be undertaken in close collaboration with engineers at these institutions for knowledge transfer on the methodology to bring about a change in practices. In the longer term, other interested parties will be sought to pursue growth in other sectors and attract further investment or exploit commercialisation opportunities.
This multidisciplinary research entails aspects of materials science, mechanical engineering, X-ray imaging, artificial intelligence and high performance computing. In addition to the end-users, this programme will include industrial collaborators who each work on different aspects of the methodology that make up virtual qualification; TWI (non-destructive testing & industrial standards), Nikon Metrology (X-ray imaging systems), Synopsys (image processing software). As such, successful realisation of virtual qualification will bring benefit to these stakeholders through added value to their products, providing more applications to offer current customers or to reach new markets. The impact on collaborators through involvement in this programme will be maximised by fostering multi-party collaborations in addition to the bilateral relationships between the research team and each stakeholder.
For the general public, one of the UK's societal challenges is how it addresses climate change. This application of part-specific modelling reduces manufacturing cost, energy consumption and CO2 emissions through reduced wastage, benefiting manufacturers, consumers and environment. Wastage is reduced at manufacturing and in-service stages:
- For low-volume manufacturing, each part has high-value therefore virtual qualification avoids prohibitively expensive or logistically impractical testing. For high-volume manufacturing, components can be rated by performance rather than pass/fail. This reduces waste and lowers costs when components that would otherwise be scrapped are sold in 'maximum allowable limit' bands, similar to material purity
- Selling components with part-specific 'digital twins' allows bespoke prediction of in-service degradation when coupled with real-time usage data. For off-normal events, viability of continued use could be simulated part-by-part. Where possible, re-scanning the component will update the model's state to recalculate performance with greater accuracy. This additional data for fitness-for-service assessments is invaluable for safety and extending lifecycle lengths.
Variation in part manufacture and in-service loading mean that not all parts will perform equally but will be retired from service concurrently before the 'weakest link' is deemed to have reached its life-critical stage. This work will make significant savings by considering each part individually from initiation and its unique performance predicted to estimate when it should be removed. This technique is particularly applicable to advanced materials, where component variability is an issue and macroscopic performance is dominated by microstructure, such as fibre composites or additive manufacturing. Consequently, this work will benefit aerospace and energy industries in particular. Within the timeframe of this fellowship, main industrial beneficiaries will be the end-user stakeholders, namely UKAEA and Airbus representing energy generation and aerospace. A specific work package has been included to deliver a virtual qualification solution customised for application with an energy generation heat exchange component. Additionally, Airbus are providing 3D imaging data of aerospace components which the workflow will be tested against to ensure that developed tools can be used in their sector. This will be undertaken in close collaboration with engineers at these institutions for knowledge transfer on the methodology to bring about a change in practices. In the longer term, other interested parties will be sought to pursue growth in other sectors and attract further investment or exploit commercialisation opportunities.
This multidisciplinary research entails aspects of materials science, mechanical engineering, X-ray imaging, artificial intelligence and high performance computing. In addition to the end-users, this programme will include industrial collaborators who each work on different aspects of the methodology that make up virtual qualification; TWI (non-destructive testing & industrial standards), Nikon Metrology (X-ray imaging systems), Synopsys (image processing software). As such, successful realisation of virtual qualification will bring benefit to these stakeholders through added value to their products, providing more applications to offer current customers or to reach new markets. The impact on collaborators through involvement in this programme will be maximised by fostering multi-party collaborations in addition to the bilateral relationships between the research team and each stakeholder.
For the general public, one of the UK's societal challenges is how it addresses climate change. This application of part-specific modelling reduces manufacturing cost, energy consumption and CO2 emissions through reduced wastage, benefiting manufacturers, consumers and environment. Wastage is reduced at manufacturing and in-service stages:
- For low-volume manufacturing, each part has high-value therefore virtual qualification avoids prohibitively expensive or logistically impractical testing. For high-volume manufacturing, components can be rated by performance rather than pass/fail. This reduces waste and lowers costs when components that would otherwise be scrapped are sold in 'maximum allowable limit' bands, similar to material purity
- Selling components with part-specific 'digital twins' allows bespoke prediction of in-service degradation when coupled with real-time usage data. For off-normal events, viability of continued use could be simulated part-by-part. Where possible, re-scanning the component will update the model's state to recalculate performance with greater accuracy. This additional data for fitness-for-service assessments is invaluable for safety and extending lifecycle lengths.
Organisations
- Swansea University (Lead Research Organisation)
- Volume Graphics GmbH (Collaboration)
- Natural Computing Applications Forum (Collaboration)
- Culham Centre for Fusion Energy (Collaboration)
- Manufacturing Technology Centre (MTC) (Collaboration)
- Synopsys Inc. (Collaboration)
- Airbus Group (Collaboration)
- Institute of Physics (IOP) (Collaboration)
- Object Research Systems (Collaboration)
- BANGOR UNIVERSITY (Collaboration)
- Math2Market GmbH (Collaboration)
- UK Atomic Energy Authority (Collaboration)
- UK ATOMIC ENERGY AUTHORITY (Project Partner)
- The University of Manchester (Project Partner)
- Nikon (International) (Project Partner)
- Airbus Defence and Space (Project Partner)
- Synopsys (International) (Project Partner)
- TWI Technology Centre Wales (Project Partner)
Publications

Barrett T
(2019)
Virtual Engineering of a Fusion Reactor: Application to Divertor Design, Manufacture, and Testing
in IEEE Transactions on Plasma Science

Evans L
(2019)
Image based in silico characterisation of the effective thermal properties of a graphite foam
in Carbon

Evans L
(2018)
Comparison of X-ray and neutron tomographic imaging to qualify manufacturing of a fusion divertor tungsten monoblock
in Fusion Engineering and Design


Evans LM
(2023)
A Review of Image-Based Simulation Applications in High-Value Manufacturing.
in Archives of computational methods in engineering : state of the art reviews

Karakoç A
(2022)
Microstructural evaluation and recommendations for face masks in community use to reduce the transmission of respiratory infectious diseases
in Computer Methods and Programs in Biomedicine



Micieli D
(2019)
Accelerating Neutron Tomography experiments through Artificial Neural Network based reconstruction.
in Scientific reports

Minniti T
(2022)
Are tungsten-based nuclear fusion components truly invisible to x-ray inspection?
in Nuclear Fusion
Description | An image-based simulation workflow was developed with a partner from the Aerospace sector. It was found that successful realisation of the developed methodology could lead to savings of 95%. |
First Year Of Impact | 2019 |
Sector | Aerospace, Defence and Marine |
Impact Types | Economic |
Description | Advanced Data-Driven Engineering Design |
Geographic Reach | Local/Municipal/Regional |
Policy Influence Type | Influenced training of practitioners or researchers |
Impact | Having identified an opportunity to provide a structured training environment in the field of 'Data-Driven Engineering Design' Dr Evans contributed to proposing a multidisciplinary 'centre of excellence' that would include a 'mini CDT' style initiative. The goal is to establish a platform, which leads to systems and processes that are designed for data, and designed by data. Research in this centre of excellence will pursue an approach that focuses on data-based outcomes to project backwards how systems and processes should be utilised in order to inform optimal design. This initiative was subsequently supported by Swansea University and Dr Evans was made the centre's first Director. This launched in 2020 with its first cohort of PhD students following courses selected to provide the necessary skills to combine data-science and engineering design. |
URL | https://added.ac.uk/ |
Description | Pembrokeshire Council Cabinet Meeting |
Geographic Reach | Local/Municipal/Regional |
Policy Influence Type | Contribution to a national consultation/review |
Description | AccelerateAI - Accelerating AI research with General Purpose Graphics Processing Units |
Amount | £581,400 (GBP) |
Funding ID | SU233 |
Organisation | Government of Wales |
Department | Welsh European Funding Office |
Sector | Public |
Country | United Kingdom |
Start | 08/2020 |
End | 03/2023 |
Description | EUROfusion Engineering Grants Programme 2020 |
Amount | € 262,500 (EUR) |
Funding ID | EEG 2020-29 |
Organisation | EUROfusion |
Sector | Public |
Country | European Union (EU) |
Start | 03/2020 |
End | 12/2022 |
Description | Swansea University - Capital Award for Core Equipment |
Amount | £125,000 (GBP) |
Funding ID | EP/T024348/1 |
Organisation | Engineering and Physical Sciences Research Council (EPSRC) |
Sector | Public |
Country | United Kingdom |
Start | 02/2020 |
End | 08/2021 |
Description | Tomographic Imaging: UK Collaborative Computational Projects |
Amount | £296,692 (GBP) |
Funding ID | EP/T026677/1 |
Organisation | Engineering and Physical Sciences Research Council (EPSRC) |
Sector | Public |
Country | United Kingdom |
Start | 11/2020 |
End | 03/2025 |
Description | UKAEA Spherical Tokamak for Energy Production (STEP) |
Amount | £200,000 (GBP) |
Organisation | Culham Centre for Fusion Energy |
Sector | Academic/University |
Country | United Kingdom |
Start | 09/2020 |
End | 12/2023 |
Title | Finite element analysis results from simulation of fusion energy heat exchange component: hybrid CAD/IBSim model including a graphite foam interlayer |
Description | Temperature profile data from a finite element analysis of a conceptual design for a fusion energy heat exchange component (monoblock). The mesh is a hybrid from a computer aided design (CAD) drawing for the pipe and armour and IBSim for the interlayer. The IBSim interlayer is generated directly from a 3D volumetric image of a graphite foam block (KFoam). The 3D image was generated with an X-ray tomography scan performed by Dr Llion Evans with Manchester X-ray Imaging Facility equipment, which was funded in part by the EPSRC (grants EP/F007906/1, EP/F001452/1 and EP/I02249X/1). Conversion of the data to FE mesh was achieved using ScanIP, part of the Simpleware suite of programmes, version 7 (Synopsys Inc., Mountain View, CA, USA). The mesh used for the analysis is available as a separate dataset: https://doi.org/10.5281/zenodo.3522319 This data was used originally for the following publications (please cite if re-using the data): Ll.M. Evans, L. Margetts, P.D. Lee, C.A.M. Butler, E. Surrey, "Image based in silico characterisation of the effective thermal properties of a graphite foam", Carbon, Vol. 143, pp. 542-558, 2018. https://doi.org/10.1016/j.carbon.2018.10.031 Ll.M. Evans, L. Margetts, P.D. Lee, C.A.M. Butler, E. Surrey, "Improving modelling of complex geometries in novel materials using 3D imaging", Proceedings of NEA International Workshop on Structural Materials for Innovative Nuclear Systems, Manchester, UK, July 2016. https://www.oecd-nea.org/science/smins4/documents/P1-18_LlME_SMINS4_paper_reviewed.pdf |
Type Of Material | Database/Collection of data |
Year Produced | 2019 |
Provided To Others? | Yes |
Title | Finite element analysis results from simulation of fusion energy heat exchange component: hybrid CAD/IBSim model including a graphite foam interlayer |
Description | Temperature profile data from a finite element analysis of a conceptual design for a fusion energy heat exchange component (monoblock). The mesh is a hybrid from a computer aided design (CAD) drawing for the pipe and armour and IBSim for the interlayer. The IBSim interlayer is generated directly from a 3D volumetric image of a graphite foam block (KFoam). The 3D image was generated with an X-ray tomography scan performed by Dr Llion Evans with Manchester X-ray Imaging Facility equipment, which was funded in part by the EPSRC (grants EP/F007906/1, EP/F001452/1 and EP/I02249X/1). Conversion of the data to FE mesh was achieved using ScanIP, part of the Simpleware suite of programmes, version 7 (Synopsys Inc., Mountain View, CA, USA). The mesh used for the analysis is available as a separate dataset: https://doi.org/10.5281/zenodo.3522319 This data was used originally for the following publications (please cite if re-using the data): Ll.M. Evans, L. Margetts, P.D. Lee, C.A.M. Butler, E. Surrey, "Image based in silico characterisation of the effective thermal properties of a graphite foam", Carbon, Vol. 143, pp. 542-558, 2018. https://doi.org/10.1016/j.carbon.2018.10.031 Ll.M. Evans, L. Margetts, P.D. Lee, C.A.M. Butler, E. Surrey, "Improving modelling of complex geometries in novel materials using 3D imaging", Proceedings of NEA International Workshop on Structural Materials for Innovative Nuclear Systems, Manchester, UK, July 2016. https://www.oecd-nea.org/science/smins4/documents/P1-18_LlME_SMINS4_paper_reviewed.pdf |
Type Of Material | Database/Collection of data |
Year Produced | 2019 |
Provided To Others? | Yes |
Title | Finite element mesh of fusion energy heat exchange component: hybrid CAD/IBSim model including a graphite foam interlayer |
Description | Image-Based Simulation (IBSim) mesh:
A finite element mesh of a conceptual design for a fusion energy heat exchange component (monoblock). The mesh is a hybrid from a computer aided design (CAD) drawing for the pipe and armour and IBSim for the interlayer. The IBSim interlayer is generated directly from a 3D volumetric image of a graphite foam block (KFoam). The 3D image was generated with an X-ray tomography scan performed by Dr Llion Evans with Manchester X-ray Imaging Facility equipment, which was funded in part by the EPSRC (grants EP/F007906/1, EP/F001452/1 and EP/I02249X/1). Conversion of the data to FE mesh was achieved using ScanIP, part of the Simpleware suite of programmes, version 7 (Synopsys Inc., Mountain View, CA, USA). The FE mesh data uses the EnSight Gold file format and may be visualised using Paraview (https://www. paraview.org). The CT data used for the mesh is available as a separate dataset: This data was used originally for the following publications (please cite if re-using the data): Ll.M. Evans, L. Margetts, P.D. Lee, C.A.M. Butler, E. Surrey, "Image based in silico characterisation of the effective thermal properties of a graphite foam", Carbon, Vol. 143, pp. 542-558, 2018. https://doi.org/10.1016/j.carbon.2018.10.031 Ll.M. Evans, L. Margetts, P.D. Lee, C.A.M. Butler, E. Surrey, "Improving modelling of complex geometries in novel materials using 3D imaging", Proceedings of NEA International Workshop on Structural Materials for Innovative Nuclear Systems, Manchester, UK, July 2016. https://www.oecd-nea.org/science/smins4/documents/P1-18_LlME_SMINS4_paper_reviewed.pdf |
Type Of Material | Database/Collection of data |
Year Produced | 2019 |
Provided To Others? | Yes |
Title | Finite element mesh of fusion energy heat exchange component: hybrid CAD/IBSim model including a graphite foam interlayer |
Description | Image-Based Simulation (IBSim) mesh:
A finite element mesh of a conceptual design for a fusion energy heat exchange component (monoblock). The mesh is a hybrid from a computer aided design (CAD) drawing for the pipe and armour and IBSim for the interlayer. The IBSim interlayer is generated directly from a 3D volumetric image of a graphite foam block (KFoam). The 3D image was generated with an X-ray tomography scan performed by Dr Llion Evans with Manchester X-ray Imaging Facility equipment, which was funded in part by the EPSRC (grants EP/F007906/1, EP/F001452/1 and EP/I02249X/1). Conversion of the data to FE mesh was achieved using ScanIP, part of the Simpleware suite of programmes, version 7 (Synopsys Inc., Mountain View, CA, USA). The FE mesh data uses the EnSight Gold file format and may be visualised using Paraview (https://www. paraview.org). The CT data used for the mesh is available as a separate dataset: This data was used originally for the following publications (please cite if re-using the data): Ll.M. Evans, L. Margetts, P.D. Lee, C.A.M. Butler, E. Surrey, "Image based in silico characterisation of the effective thermal properties of a graphite foam", Carbon, Vol. 143, pp. 542-558, 2018. https://doi.org/10.1016/j.carbon.2018.10.031 Ll.M. Evans, L. Margetts, P.D. Lee, C.A.M. Butler, E. Surrey, "Improving modelling of complex geometries in novel materials using 3D imaging", Proceedings of NEA International Workshop on Structural Materials for Innovative Nuclear Systems, Manchester, UK, July 2016. https://www.oecd-nea.org/science/smins4/documents/P1-18_LlME_SMINS4_paper_reviewed.pdf |
Type Of Material | Database/Collection of data |
Year Produced | 2019 |
Provided To Others? | Yes |
Title | Finite element meshes of conceptual designs for a fusion energy heat exchange component (monoblock) for Image-Based Simulation (IBSim) of in-service conditions |
Description | Image-Based Simulation (IBSim) mesh and temperature analysis results:
Finite element meshes of conceptual designs for a fusion energy heat exchange component (monoblock). The dataset includes three meshes: - CCFE_ThBr_CAD (mesh created by with a computer aided design (CAD) package) - CCFE_ThBr_IBFEM (hybrid CAD and IBSim mesh, manufactured version of CCFE_ThBr_CAD) - IPP_WfCu_IBFEM_3MB (hybrid CAD and IBSim mesh, tungsten fibre-copper matrix composite pipe with tungsten armour) For the the hybrid meshes, the IBSim part is generated directly from a 3D volumetric images of the real manufactured parts and as such includes microscale features introduced during the manufacturing stage. The 3D images were generated with X-ray and neutron tomography, the datasets are available at the links below. Conversion of the data to FE mesh was achieved using ScanIP, part of the Simpleware suite of programmes, version 7 (Synopsys Inc., Mountain View, CA, USA). X-ray CT data: https://doi.org/10.5281/zenodo.3533420 Neutron CT data: https://doi.org/10.5281/zenodo.3533418 The FE mesh data uses the EnSight Gold file format and may be visualised using Paraview (https://www.paraview.org). Results for a thermal analysis performed with ParaFEM (https://github.com/leemargetts/parafem) are included. This data was used originally for the following publication (please cite if re-using the data): Ll.M. Evans, T. Minniti, T. Barrett, A. v. Müller, L. Margetts, "Virtual qualification of novel heat exchanger components with the image-based finite element method", e-Journal of Nondestructive Testing (NDT) ISSN 1435-4934, Issue: 2019-03, No. 23660. https://www.ndt.net/search/docs.php3?id=23660 |
Type Of Material | Database/Collection of data |
Year Produced | 2019 |
Provided To Others? | Yes |
Title | Finite element meshes of conceptual designs for a fusion energy heat exchange component (monoblock) for Image-Based Simulation (IBSim) of in-service conditions |
Description | Image-Based Simulation (IBSim) mesh and temperature analysis results:
Finite element meshes of conceptual designs for a fusion energy heat exchange component (monoblock). The dataset includes three meshes: - CCFE_ThBr_CAD (mesh created by with a computer aided design (CAD) package) - CCFE_ThBr_IBFEM (hybrid CAD and IBSim mesh, manufactured version of CCFE_ThBr_CAD) - IPP_WfCu_IBFEM_3MB (hybrid CAD and IBSim mesh, tungsten fibre-copper matrix composite pipe with tungsten armour) For the the hybrid meshes, the IBSim part is generated directly from a 3D volumetric images of the real manufactured parts and as such includes microscale features introduced during the manufacturing stage. The 3D images were generated with X-ray and neutron tomography, the datasets are available at the links below. Conversion of the data to FE mesh was achieved using ScanIP, part of the Simpleware suite of programmes, version 7 (Synopsys Inc., Mountain View, CA, USA). X-ray CT data: https://doi.org/10.5281/zenodo.3533420 Neutron CT data: https://doi.org/10.5281/zenodo.3533418 The FE mesh data uses the EnSight Gold file format and may be visualised using Paraview (https://www.paraview.org). Results for a thermal analysis performed with ParaFEM (https://github.com/leemargetts/parafem) are included. This data was used originally for the following publication (please cite if re-using the data): Ll.M. Evans, T. Minniti, T. Barrett, A. v. Müller, L. Margetts, "Virtual qualification of novel heat exchanger components with the image-based finite element method", e-Journal of Nondestructive Testing (NDT) ISSN 1435-4934, Issue: 2019-03, No. 23660. https://www.ndt.net/search/docs.php3?id=23660 |
Type Of Material | Database/Collection of data |
Year Produced | 2019 |
Provided To Others? | Yes |
Title | Finite element meshes of graphite foam samples for Image-Based Simulation (IBSim) of experimental laser flash analysis |
Description | Image-Based Simulation (IBSim) meshes:
Finite element mesh of laser flash analysis (LFA) disc samples made of a graphite foam material (KFoam). The IBSim meshes are generated directly from a 3D volumetric image of a graphite foam block. The 3D image was generated with an X-ray tomography scan performed by Dr Llion Evans with Manchester X-ray Imaging Facility equipment, which was funded in part by the EPSRC (grants EP/F007906/1, EP/F001452/1 and EP/I02249X/1). Segmentation of the data into a binarized image was achieved with ImageJ. Conversion of the segmented data to FE mesh was achieved using ScanIP, part of the Simpleware suite of programmes, version 7 (Synopsys Inc., Mountain View, CA, USA). The graphite foam has anisotropic properties partly due to its microstructure. This dataset contains three meshes, one for each alignment along cartesian axes. The FE meshes use the EnSight Gold file format and may be visualised using Paraview (https://www.paraview.org). The CT data used for the mesh is available as a separate dataset: This data was used originally for the following publications (please cite if re-using the data): Ll.M. Evans, L. Margetts, P.D. Lee, C.A.M. Butler, E. Surrey, "Image based in silico characterisation of the effective thermal properties of a graphite foam", Carbon, Vol. 143, pp. 542-558, 2018. https://doi.org/10.1016/j.carbon.2018.10.031 |
Type Of Material | Database/Collection of data |
Year Produced | 2019 |
Provided To Others? | Yes |
Title | Finite element meshes of graphite foam samples for Image-Based Simulation (IBSim) of experimental laser flash analysis |
Description | Image-Based Simulation (IBSim) meshes:
Finite element mesh of laser flash analysis (LFA) disc samples made of a graphite foam material (KFoam). The IBSim meshes are generated directly from a 3D volumetric image of a graphite foam block. The 3D image was generated with an X-ray tomography scan performed by Dr Llion Evans with Manchester X-ray Imaging Facility equipment, which was funded in part by the EPSRC (grants EP/F007906/1, EP/F001452/1 and EP/I02249X/1). Segmentation of the data into a binarized image was achieved with ImageJ. Conversion of the segmented data to FE mesh was achieved using ScanIP, part of the Simpleware suite of programmes, version 7 (Synopsys Inc., Mountain View, CA, USA). The graphite foam has anisotropic properties partly due to its microstructure. This dataset contains three meshes, one for each alignment along cartesian axes. The FE meshes use the EnSight Gold file format and may be visualised using Paraview (https://www.paraview.org). The CT data used for the mesh is available as a separate dataset: This data was used originally for the following publications (please cite if re-using the data): Ll.M. Evans, L. Margetts, P.D. Lee, C.A.M. Butler, E. Surrey, "Image based in silico characterisation of the effective thermal properties of a graphite foam", Carbon, Vol. 143, pp. 542-558, 2018. https://doi.org/10.1016/j.carbon.2018.10.031 |
Type Of Material | Database/Collection of data |
Year Produced | 2019 |
Provided To Others? | Yes |
Title | IBSim Virtual Test Benchmark Data - Experiment Type: Thermal (LFA), SampleID: LFA_RNA_A01, Data: XCT |
Description | Sample ID: LFA_RNA_A01 X-ray tomography (CT) image data of a Ti6Al4V disc. The 3D image was generated with an X-ray tomography scan performed by Dr Llion Evans with Swansea University, Advanced Imaging of Materials (AIM) equipment. The dataset includes: raw radiographs; scan & reconstruction parameter settings file; reconstructed 3D volume. To visualise the 3D volume use software such as ImageJ (https://imagej.net/Fiji/Downloads). The volume image data (.raw file) is in binary format and has the following characteristics: 1920 x 1920 x 1536; 16-bit; little-endian byte order. This data is part of a 'virtual testing' benchmark study, where samples are tested physically in the lab and their microscale accurate digital equivalent are tested virtually through simulation. The technique of converting 3D volumetric images directly into finite element method (FEM) meshes is part of the Image-Based Simulation (IBSim) approach. This data is part of a batch of samples for thermal testing via laser flash analysis (LFA), following the standards ASTM E1461 / ASTM E2585. As part of the study, controlled defects were introduced into the samples. This was achieved by machining a disc shaped recess (of defined diameter and depth) into one disc which is bonded onto another disc, so that the defect is located internally within the final sample. The samples in the batch are named as follows. Sample ID Diameter Thickness Recess d Recess t
LFA_RNA_### 12.6 2.5 N/A N/A LFA_Rd0t00_### 12.6 1.25 x 2 N/A N/A LFA_Rd8t02_### 12.6 1.25 x 2 8.0 0.2 LFA_Rd8t08_### 12.6 1.25 x 2 8.0 0.8 LFA_Rd6t02_### 12.6 1.25 x 2 6.0 0.2 LFA_Rd6t08_### 12.6 1.25 x 2 6.0 0.8 LFA_Rd4t02_### 12.6 1.25 x 2 4.0 0.2 LFA_Rd4t08_### 12.6 1.25 x 2 4.0 0.8 Where ### denotes the furnace bonding batch (A-C and N for no bonding cycle) and sample number (01-30). Values in mm. |
Type Of Material | Database/Collection of data |
Year Produced | 2019 |
Provided To Others? | Yes |
URL | https://zenodo.org/record/3583368 |
Title | IBSim Virtual Test Benchmark Data - Experiment Type: Thermal (LFA), SampleID: LFA_RNA_A01, Data: XCT |
Description | Sample ID: LFA_RNA_A01 X-ray tomography (CT) image data of a Ti6Al4V disc. The 3D image was generated with an X-ray tomography scan performed by Dr Llion Evans with Swansea University, Advanced Imaging of Materials (AIM) equipment. The dataset includes: raw radiographs; scan & reconstruction parameter settings file; reconstructed 3D volume. To visualise the 3D volume use software such as ImageJ (https://imagej.net/Fiji/Downloads). The volume image data (.raw file) is in binary format and has the following characteristics: 1920 x 1920 x 1536; 16-bit; little-endian byte order. This data is part of a 'virtual testing' benchmark study, where samples are tested physically in the lab and their microscale accurate digital equivalent are tested virtually through simulation. The technique of converting 3D volumetric images directly into finite element method (FEM) meshes is part of the Image-Based Simulation (IBSim) approach. This data is part of a batch of samples for thermal testing via laser flash analysis (LFA), following the standards ASTM E1461 / ASTM E2585. As part of the study, controlled defects were introduced into the samples. This was achieved by machining a disc shaped recess (of defined diameter and depth) into one disc which is bonded onto another disc, so that the defect is located internally within the final sample. The samples in the batch are named as follows. Sample ID Diameter Thickness Recess d Recess t
LFA_RNA_### 12.6 2.5 N/A N/A LFA_Rd0t00_### 12.6 1.25 x 2 N/A N/A LFA_Rd8t02_### 12.6 1.25 x 2 8.0 0.2 LFA_Rd8t08_### 12.6 1.25 x 2 8.0 0.8 LFA_Rd6t02_### 12.6 1.25 x 2 6.0 0.2 LFA_Rd6t08_### 12.6 1.25 x 2 6.0 0.8 LFA_Rd4t02_### 12.6 1.25 x 2 4.0 0.2 LFA_Rd4t08_### 12.6 1.25 x 2 4.0 0.8 Where ### denotes the furnace bonding batch (A-C and N for no bonding cycle) and sample number (01-30). Values in mm. |
Type Of Material | Database/Collection of data |
Year Produced | 2019 |
Provided To Others? | Yes |
URL | https://zenodo.org/record/3583367 |
Title | IBSim Virtual Test Benchmark Data - Experiment Type: Thermal (LFA), SampleID: LFA_Rd0t00_A03, Data: XCT |
Description | Sample ID: LFA_Rd0t00_A03 X-ray tomography (CT) image data of a Ti6Al4V disc. The 3D image was generated with an X-ray tomography scan performed by Dr Llion Evans with Swansea University, Advanced Imaging of Materials (AIM) equipment. The dataset includes: raw radiographs; scan & reconstruction parameter settings file; reconstructed 3D volume. To visualise the 3D volume use software such as ImageJ (https://imagej.net/Fiji/Downloads). The volume image data (.raw file) is in binary format and has the following characteristics: 1920 x 1920 x 1536; 16-bit; little-endian byte order. This data is part of a 'virtual testing' benchmark study, where samples are tested physically in the lab and their microscale accurate digital equivalent are tested virtually through simulation. The technique of converting 3D volumetric images directly into finite element method (FEM) meshes is part of the Image-Based Simulation (IBSim) approach. This data is part of a batch of samples for thermal testing via laser flash analysis (LFA), following the standards ASTM E1461 / ASTM E2585. As part of the study, controlled defects were introduced into the samples. This was achieved by machining a disc shaped recess (of defined diameter and depth) into one disc which is bonded onto another disc, so that the defect is located internally within the final sample. The samples in the batch are named as follows. Sample ID Diameter Thickness Recess d Recess t
LFA_RNA_### 12.6 2.5 N/A N/A LFA_Rd0t00_### 12.6 1.25 x 2 N/A N/A LFA_Rd8t02_### 12.6 1.25 x 2 8.0 0.2 LFA_Rd8t08_### 12.6 1.25 x 2 8.0 0.8 LFA_Rd6t02_### 12.6 1.25 x 2 6.0 0.2 LFA_Rd6t08_### 12.6 1.25 x 2 6.0 0.8 LFA_Rd4t02_### 12.6 1.25 x 2 4.0 0.2 LFA_Rd4t08_### 12.6 1.25 x 2 4.0 0.8 Where ### denotes the furnace bonding batch (A-C and N for no bonding cycle) and sample number (01-30). Values in mm. |
Type Of Material | Database/Collection of data |
Year Produced | 2020 |
Provided To Others? | Yes |
URL | https://zenodo.org/record/3624985 |
Title | IBSim Virtual Test Benchmark Data - Experiment Type: Thermal (LFA), SampleID: LFA_Rd0t00_A03, Data: XCT |
Description | Sample ID: LFA_Rd0t00_A03 X-ray tomography (CT) image data of a Ti6Al4V disc. The 3D image was generated with an X-ray tomography scan performed by Dr Llion Evans with Swansea University, Advanced Imaging of Materials (AIM) equipment. The dataset includes: raw radiographs; scan & reconstruction parameter settings file; reconstructed 3D volume. To visualise the 3D volume use software such as ImageJ (https://imagej.net/Fiji/Downloads). The volume image data (.raw file) is in binary format and has the following characteristics: 1920 x 1920 x 1536; 16-bit; little-endian byte order. This data is part of a 'virtual testing' benchmark study, where samples are tested physically in the lab and their microscale accurate digital equivalent are tested virtually through simulation. The technique of converting 3D volumetric images directly into finite element method (FEM) meshes is part of the Image-Based Simulation (IBSim) approach. This data is part of a batch of samples for thermal testing via laser flash analysis (LFA), following the standards ASTM E1461 / ASTM E2585. As part of the study, controlled defects were introduced into the samples. This was achieved by machining a disc shaped recess (of defined diameter and depth) into one disc which is bonded onto another disc, so that the defect is located internally within the final sample. The samples in the batch are named as follows. Sample ID Diameter Thickness Recess d Recess t
LFA_RNA_### 12.6 2.5 N/A N/A LFA_Rd0t00_### 12.6 1.25 x 2 N/A N/A LFA_Rd8t02_### 12.6 1.25 x 2 8.0 0.2 LFA_Rd8t08_### 12.6 1.25 x 2 8.0 0.8 LFA_Rd6t02_### 12.6 1.25 x 2 6.0 0.2 LFA_Rd6t08_### 12.6 1.25 x 2 6.0 0.8 LFA_Rd4t02_### 12.6 1.25 x 2 4.0 0.2 LFA_Rd4t08_### 12.6 1.25 x 2 4.0 0.8 Where ### denotes the furnace bonding batch (A-C and N for no bonding cycle) and sample number (01-30). Values in mm. |
Type Of Material | Database/Collection of data |
Year Produced | 2020 |
Provided To Others? | Yes |
URL | https://zenodo.org/record/3624986 |
Title | IBSim Virtual Test Benchmark Data - Experiment Type: Thermal (LFA), SampleID: LFA_Rd0t00_A20, Data: XCT |
Description | Sample ID: LFA_Rd0t00_A20 X-ray tomography (CT) image data of a Ti6Al4V disc. The 3D image was generated with an X-ray tomography scan performed by Dr Llion Evans with Swansea University, Advanced Imaging of Materials (AIM) equipment. The dataset includes: raw radiographs; scan & reconstruction parameter settings file; reconstructed 3D volume. To visualise the 3D volume use software such as ImageJ (https://imagej.net/Fiji/Downloads). The volume image data (.raw file) is in binary format and has the following characteristics: 1920 x 1920 x 1536; 16-bit; little-endian byte order. This data is part of a 'virtual testing' benchmark study, where samples are tested physically in the lab and their microscale accurate digital equivalent are tested virtually through simulation. The technique of converting 3D volumetric images directly into finite element method (FEM) meshes is part of the Image-Based Simulation (IBSim) approach. This data is part of a batch of samples for thermal testing via laser flash analysis (LFA), following the standards ASTM E1461 / ASTM E2585. As part of the study, controlled defects were introduced into the samples. This was achieved by machining a disc shaped recess (of defined diameter and depth) into one disc which is bonded onto another disc, so that the defect is located internally within the final sample. The samples in the batch are named as follows. Sample ID Diameter Thickness Recess d Recess t
LFA_RNA_### 12.6 2.5 N/A N/A LFA_Rd0t00_### 12.6 1.25 x 2 N/A N/A LFA_Rd8t02_### 12.6 1.25 x 2 8.0 0.2 LFA_Rd8t08_### 12.6 1.25 x 2 8.0 0.8 LFA_Rd6t02_### 12.6 1.25 x 2 6.0 0.2 LFA_Rd6t08_### 12.6 1.25 x 2 6.0 0.8 LFA_Rd4t02_### 12.6 1.25 x 2 4.0 0.2 LFA_Rd4t08_### 12.6 1.25 x 2 4.0 0.8 Where ### denotes the furnace bonding batch (A-C and N for no bonding cycle) and sample number (01-30). Values in mm. |
Type Of Material | Database/Collection of data |
Year Produced | 2020 |
Provided To Others? | Yes |
URL | https://zenodo.org/record/3625044 |
Title | IBSim Virtual Test Benchmark Data - Experiment Type: Thermal (LFA), SampleID: LFA_Rd0t00_A20, Data: XCT |
Description | Sample ID: LFA_Rd0t00_A20 X-ray tomography (CT) image data of a Ti6Al4V disc. The 3D image was generated with an X-ray tomography scan performed by Dr Llion Evans with Swansea University, Advanced Imaging of Materials (AIM) equipment. The dataset includes: raw radiographs; scan & reconstruction parameter settings file; reconstructed 3D volume. To visualise the 3D volume use software such as ImageJ (https://imagej.net/Fiji/Downloads). The volume image data (.raw file) is in binary format and has the following characteristics: 1920 x 1920 x 1536; 16-bit; little-endian byte order. This data is part of a 'virtual testing' benchmark study, where samples are tested physically in the lab and their microscale accurate digital equivalent are tested virtually through simulation. The technique of converting 3D volumetric images directly into finite element method (FEM) meshes is part of the Image-Based Simulation (IBSim) approach. This data is part of a batch of samples for thermal testing via laser flash analysis (LFA), following the standards ASTM E1461 / ASTM E2585. As part of the study, controlled defects were introduced into the samples. This was achieved by machining a disc shaped recess (of defined diameter and depth) into one disc which is bonded onto another disc, so that the defect is located internally within the final sample. The samples in the batch are named as follows. Sample ID Diameter Thickness Recess d Recess t
LFA_RNA_### 12.6 2.5 N/A N/A LFA_Rd0t00_### 12.6 1.25 x 2 N/A N/A LFA_Rd8t02_### 12.6 1.25 x 2 8.0 0.2 LFA_Rd8t08_### 12.6 1.25 x 2 8.0 0.8 LFA_Rd6t02_### 12.6 1.25 x 2 6.0 0.2 LFA_Rd6t08_### 12.6 1.25 x 2 6.0 0.8 LFA_Rd4t02_### 12.6 1.25 x 2 4.0 0.2 LFA_Rd4t08_### 12.6 1.25 x 2 4.0 0.8 Where ### denotes the furnace bonding batch (A-C and N for no bonding cycle) and sample number (01-30). Values in mm. |
Type Of Material | Database/Collection of data |
Year Produced | 2020 |
Provided To Others? | Yes |
URL | https://zenodo.org/record/3625043 |
Title | IBSim Virtual Test Benchmark Data - Experiment Type: Thermal (LFA), SampleID: LFA_Rd4t02_A13, Data: XCT |
Description | Sample ID: LFA_Rd4t02_A13 X-ray tomography (CT) image data of a Ti6Al4V disc. The 3D image was generated with an X-ray tomography scan performed by Dr Llion Evans with Swansea University, Advanced Imaging of Materials (AIM) equipment. The dataset includes: raw radiographs; scan & reconstruction parameter settings file; reconstructed 3D volume. To visualise the 3D volume use software such as ImageJ (https://imagej.net/Fiji/Downloads). The volume image data (.raw file) is in binary format and |
Type Of Material | Database/Collection of data |
Year Produced | 2020 |
Provided To Others? | Yes |
URL | https://zenodo.org/record/3625034 |
Title | IBSim Virtual Test Benchmark Data - Experiment Type: Thermal (LFA), SampleID: LFA_Rd4t02_A13, Data: XCT |
Description | Sample ID: LFA_Rd4t02_A13 X-ray tomography (CT) image data of a Ti6Al4V disc. The 3D image was generated with an X-ray tomography scan performed by Dr Llion Evans with Swansea University, Advanced Imaging of Materials (AIM) equipment. The dataset includes: raw radiographs; scan & reconstruction parameter settings file; reconstructed 3D volume. To visualise the 3D volume use software such as ImageJ (https://imagej.net/Fiji/Downloads). The volume image data (.raw file) is in binary format and has the following characteristics: 1920 x 1920 x 1536; 16-bit; little-endian byte order. This data is part of a 'virtual testing' benchmark study, where samples are tested physically in the lab and their microscale accurate digital equivalent are tested virtually through simulation. The technique of converting 3D volumetric images directly into finite element method (FEM) meshes is part of the Image-Based Simulation (IBSim) approach. This data is part of a batch of samples for thermal testing via laser flash analysis (LFA), following the standards ASTM E1461 / ASTM E2585. As part of the study, controlled defects were introduced into the samples. This was achieved by machining a disc shaped recess (of defined diameter and depth) into one disc which is bonded onto another disc, so that the defect is located internally within the final sample. The samples in the batch are named as follows. Sample ID Diameter Thickness Recess d Recess t
LFA_RNA_### 12.6 2.5 N/A N/A LFA_Rd0t00_### 12.6 1.25 x 2 N/A N/A LFA_Rd8t02_### 12.6 1.25 x 2 8.0 0.2 LFA_Rd8t08_### 12.6 1.25 x 2 8.0 0.8 LFA_Rd6t02_### 12.6 1.25 x 2 6.0 0.2 LFA_Rd6t08_### 12.6 1.25 x 2 6.0 0.8 LFA_Rd4t02_### 12.6 1.25 x 2 4.0 0.2 LFA_Rd4t08_### 12.6 1.25 x 2 4.0 0.8 Where ### denotes the furnace bonding batch (A-C and N for no bonding cycle) and sample number (01-30). Values in mm. |
Type Of Material | Database/Collection of data |
Year Produced | 2020 |
Provided To Others? | Yes |
URL | https://zenodo.org/record/3625033 |
Title | IBSim Virtual Test Benchmark Data - Experiment Type: Thermal (LFA), SampleID: LFA_Rd4t08_A15, Data: XCT |
Description | Sample ID: LFA_Rd4t08_A15 X-ray tomography (CT) image data of a Ti6Al4V disc. The 3D image was generated with an X-ray tomography scan performed by Dr Llion Evans with Swansea University, Advanced Imaging of Materials (AIM) equipment. The dataset includes: raw radiographs; scan & reconstruction parameter settings file; reconstructed 3D volume. To visualise the 3D volume use software such as ImageJ (https://imagej.net/Fiji/Downloads). The volume image data (.raw file) is in binary format and has the following characteristics: 1920 x 1920 x 1536; 16-bit; little-endian byte order. This data is part of a 'virtual testing' benchmark study, where samples are tested physically in the lab and their microscale accurate digital equivalent are tested virtually through simulation. The technique of converting 3D volumetric images directly into finite element method (FEM) meshes is part of the Image-Based Simulation (IBSim) approach. This data is part of a batch of samples for thermal testing via laser flash analysis (LFA), following the standards ASTM E1461 / ASTM E2585. As part of the study, controlled defects were introduced into the samples. This was achieved by machining a disc shaped recess (of defined diameter and depth) into one disc which is bonded onto another disc, so that the defect is located internally within the final sample. The samples in the batch are named as follows. Sample ID Diameter Thickness Recess d Recess t
LFA_RNA_### 12.6 2.5 N/A N/A LFA_Rd0t00_### 12.6 1.25 x 2 N/A N/A LFA_Rd8t02_### 12.6 1.25 x 2 8.0 0.2 LFA_Rd8t08_### 12.6 1.25 x 2 8.0 0.8 LFA_Rd6t02_### 12.6 1.25 x 2 6.0 0.2 LFA_Rd6t08_### 12.6 1.25 x 2 6.0 0.8 LFA_Rd4t02_### 12.6 1.25 x 2 4.0 0.2 LFA_Rd4t08_### 12.6 1.25 x 2 4.0 0.8 Where ### denotes the furnace bonding batch (A-C and N for no bonding cycle) and sample number (01-30). Values in mm. |
Type Of Material | Database/Collection of data |
Year Produced | 2020 |
Provided To Others? | Yes |
URL | https://zenodo.org/record/3625036 |
Title | IBSim Virtual Test Benchmark Data - Experiment Type: Thermal (LFA), SampleID: LFA_Rd4t08_A15, Data: XCT |
Description | Sample ID: LFA_Rd4t08_A15 X-ray tomography (CT) image data of a Ti6Al4V disc. The 3D image was generated with an X-ray tomography scan performed by Dr Llion Evans with Swansea University, Advanced Imaging of Materials (AIM) equipment. The dataset includes: raw radiographs; scan & reconstruction parameter settings file; reconstructed 3D volume. To visualise the 3D volume use software such as ImageJ (https://imagej.net/Fiji/Downloads). The volume image data (.raw file) is in binary format and has the following characteristics: 1920 x 1920 x 1536; 16-bit; little-endian byte order. This data is part of a 'virtual testing' benchmark study, where samples are tested physically in the lab and their microscale accurate digital equivalent are tested virtually through simulation. The technique of converting 3D volumetric images directly into finite element method (FEM) meshes is part of the Image-Based Simulation (IBSim) approach. This data is part of a batch of samples for thermal testing via laser flash analysis (LFA), following the standards ASTM E1461 / ASTM E2585. As part of the study, controlled defects were introduced into the samples. This was achieved by machining a disc shaped recess (of defined diameter and depth) into one disc which is bonded onto another disc, so that the defect is located internally within the final sample. The samples in the batch are named as follows. Sample ID Diameter Thickness Recess d Recess t
LFA_RNA_### 12.6 2.5 N/A N/A LFA_Rd0t00_### 12.6 1.25 x 2 N/A N/A LFA_Rd8t02_### 12.6 1.25 x 2 8.0 0.2 LFA_Rd8t08_### 12.6 1.25 x 2 8.0 0.8 LFA_Rd6t02_### 12.6 1.25 x 2 6.0 0.2 LFA_Rd6t08_### 12.6 1.25 x 2 6.0 0.8 LFA_Rd4t02_### 12.6 1.25 x 2 4.0 0.2 LFA_Rd4t08_### 12.6 1.25 x 2 4.0 0.8 Where ### denotes the furnace bonding batch (A-C and N for no bonding cycle) and sample number (01-30). Values in mm. |
Type Of Material | Database/Collection of data |
Year Produced | 2020 |
Provided To Others? | Yes |
URL | https://zenodo.org/record/3625035 |
Title | IBSim Virtual Test Benchmark Data - Experiment Type: Thermal (LFA), SampleID: LFA_Rd6t02_A09, Data: XCT |
Description | Sample ID: LFA_Rd6t02_A09 X-ray tomography (CT) image data of a Ti6Al4V disc. The 3D image was generated with an X-ray tomography scan performed by Dr Llion Evans with Swansea University, Advanced Imaging of Materials (AIM) equipment. The dataset includes: raw radiographs; scan & reconstruction parameter settings file; reconstructed 3D volume. To visualise the 3D volume use software such as ImageJ (https://imagej.net/Fiji/Downloads). The volume image data (.raw file) is in binary format and has the following characteristics: 1920 x 1920 x 1536; 16-bit; little-endian byte order. This data is part of a 'virtual testing' benchmark study, where samples are tested physically in the lab and their microscale accurate digital equivalent are tested virtually through simulation. The technique of converting 3D volumetric images directly into finite element method (FEM) meshes is part of the Image-Based Simulation (IBSim) approach. This data is part of a batch of samples for thermal testing via laser flash analysis (LFA), following the standards ASTM E1461 / ASTM E2585. As part of the study, controlled defects were introduced into the samples. This was achieved by machining a disc shaped recess (of defined diameter and depth) into one disc which is bonded onto another disc, so that the defect is located internally within the final sample. The samples in the batch are named as follows. Sample ID Diameter Thickness Recess d Recess t
LFA_RNA_### 12.6 2.5 N/A N/A LFA_Rd0t00_### 12.6 1.25 x 2 N/A N/A LFA_Rd8t02_### 12.6 1.25 x 2 8.0 0.2 LFA_Rd8t08_### 12.6 1.25 x 2 8.0 0.8 LFA_Rd6t02_### 12.6 1.25 x 2 6.0 0.2 LFA_Rd6t08_### 12.6 1.25 x 2 6.0 0.8 LFA_Rd4t02_### 12.6 1.25 x 2 4.0 0.2 LFA_Rd4t08_### 12.6 1.25 x 2 4.0 0.8 Where ### denotes the furnace bonding batch (A-C and N for no bonding cycle) and sample number (01-30). Values in mm. |
Type Of Material | Database/Collection of data |
Year Produced | 2020 |
Provided To Others? | Yes |
URL | https://zenodo.org/record/3625022 |
Title | IBSim Virtual Test Benchmark Data - Experiment Type: Thermal (LFA), SampleID: LFA_Rd6t02_A09, Data: XCT |
Description | Sample ID: LFA_Rd6t02_A09 X-ray tomography (CT) image data of a Ti6Al4V disc. The 3D image was generated with an X-ray tomography scan performed by Dr Llion Evans with Swansea University, Advanced Imaging of Materials (AIM) equipment. The dataset includes: raw radiographs; scan & reconstruction parameter settings file; reconstructed 3D volume. To visualise the 3D volume use software such as ImageJ (https://imagej.net/Fiji/Downloads). The volume image data (.raw file) is in binary format and has the following characteristics: 1920 x 1920 x 1536; 16-bit; little-endian byte order. This data is part of a 'virtual testing' benchmark study, where samples are tested physically in the lab and their microscale accurate digital equivalent are tested virtually through simulation. The technique of converting 3D volumetric images directly into finite element method (FEM) meshes is part of the Image-Based Simulation (IBSim) approach. This data is part of a batch of samples for thermal testing via laser flash analysis (LFA), following the standards ASTM E1461 / ASTM E2585. As part of the study, controlled defects were introduced into the samples. This was achieved by machining a disc shaped recess (of defined diameter and depth) into one disc which is bonded onto another disc, so that the defect is located internally within the final sample. The samples in the batch are named as follows. Sample ID Diameter Thickness Recess d Recess t
LFA_RNA_### 12.6 2.5 N/A N/A LFA_Rd0t00_### 12.6 1.25 x 2 N/A N/A LFA_Rd8t02_### 12.6 1.25 x 2 8.0 0.2 LFA_Rd8t08_### 12.6 1.25 x 2 8.0 0.8 LFA_Rd6t02_### 12.6 1.25 x 2 6.0 0.2 LFA_Rd6t08_### 12.6 1.25 x 2 6.0 0.8 LFA_Rd4t02_### 12.6 1.25 x 2 4.0 0.2 LFA_Rd4t08_### 12.6 1.25 x 2 4.0 0.8 Where ### denotes the furnace bonding batch (A-C and N for no bonding cycle) and sample number (01-30). Values in mm. |
Type Of Material | Database/Collection of data |
Year Produced | 2020 |
Provided To Others? | Yes |
URL | https://zenodo.org/record/3625021 |
Title | IBSim Virtual Test Benchmark Data - Experiment Type: Thermal (LFA), SampleID: LFA_Rd6t08_A11, Data: XCT |
Description | Sample ID: LFA_Rd6t08_A11 X-ray tomography (CT) image data of a Ti6Al4V disc. The 3D image was generated with an X-ray tomography scan performed by Dr Llion Evans with Swansea University, Advanced Imaging of Materials (AIM) equipment. The dataset includes: raw radiographs; scan & reconstruction parameter settings file; reconstructed 3D volume. To visualise the 3D volume use software such as ImageJ (https://imagej.net/Fiji/Downloads). The volume image data (.raw file) is in binary format and has the following characteristics: 1920 x 1920 x 1536; 16-bit; little-endian byte order. This data is part of a 'virtual testing' benchmark study, where samples are tested physically in the lab and their microscale accurate digital equivalent are tested virtually through simulation. The technique of converting 3D volumetric images directly into finite element method (FEM) meshes is part of the Image-Based Simulation (IBSim) approach. This data is part of a batch of samples for thermal testing via laser flash analysis (LFA), following the standards ASTM E1461 / ASTM E2585. As part of the study, controlled defects were introduced into the samples. This was achieved by machining a disc shaped recess (of defined diameter and depth) into one disc which is bonded onto another disc, so that the defect is located internally within the final sample. The samples in the batch are named as follows. Sample ID Diameter Thickness Recess d Recess t
LFA_RNA_### 12.6 2.5 N/A N/A LFA_Rd0t00_### 12.6 1.25 x 2 N/A N/A LFA_Rd8t02_### 12.6 1.25 x 2 8.0 0.2 LFA_Rd8t08_### 12.6 1.25 x 2 8.0 0.8 LFA_Rd6t02_### 12.6 1.25 x 2 6.0 0.2 LFA_Rd6t08_### 12.6 1.25 x 2 6.0 0.8 LFA_Rd4t02_### 12.6 1.25 x 2 4.0 0.2 LFA_Rd4t08_### 12.6 1.25 x 2 4.0 0.8 Where ### denotes the furnace bonding batch (A-C and N for no bonding cycle) and sample number (01-30). Values in mm. |
Type Of Material | Database/Collection of data |
Year Produced | 2020 |
Provided To Others? | Yes |
URL | https://zenodo.org/record/3625032 |
Title | IBSim Virtual Test Benchmark Data - Experiment Type: Thermal (LFA), SampleID: LFA_Rd6t08_A11, Data: XCT |
Description | Sample ID: LFA_Rd6t08_A11 X-ray tomography (CT) image data of a Ti6Al4V disc. The 3D image was generated with an X-ray tomography scan performed by Dr Llion Evans with Swansea University, Advanced Imaging of Materials (AIM) equipment. The dataset includes: raw radiographs; scan & reconstruction parameter settings file; reconstructed 3D volume. To visualise the 3D volume use software such as ImageJ (https://imagej.net/Fiji/Downloads). The volume image data (.raw file) is in binary format and has the following characteristics: 1920 x 1920 x 1536; 16-bit; little-endian byte order. This data is part of a 'virtual testing' benchmark study, where samples are tested physically in the lab and their microscale accurate digital equivalent are tested virtually through simulation. The technique of converting 3D volumetric images directly into finite element method (FEM) meshes is part of the Image-Based Simulation (IBSim) approach. This data is part of a batch of samples for thermal testing via laser flash analysis (LFA), following the standards ASTM E1461 / ASTM E2585. As part of the study, controlled defects were introduced into the samples. This was achieved by machining a disc shaped recess (of defined diameter and depth) into one disc which is bonded onto another disc, so that the defect is located internally within the final sample. The samples in the batch are named as follows. Sample ID Diameter Thickness Recess d Recess t
LFA_RNA_### 12.6 2.5 N/A N/A LFA_Rd0t00_### 12.6 1.25 x 2 N/A N/A LFA_Rd8t02_### 12.6 1.25 x 2 8.0 0.2 LFA_Rd8t08_### 12.6 1.25 x 2 8.0 0.8 LFA_Rd6t02_### 12.6 1.25 x 2 6.0 0.2 LFA_Rd6t08_### 12.6 1.25 x 2 6.0 0.8 LFA_Rd4t02_### 12.6 1.25 x 2 4.0 0.2 LFA_Rd4t08_### 12.6 1.25 x 2 4.0 0.8 Where ### denotes the furnace bonding batch (A-C and N for no bonding cycle) and sample number (01-30). Values in mm. |
Type Of Material | Database/Collection of data |
Year Produced | 2020 |
Provided To Others? | Yes |
URL | https://zenodo.org/record/3625031 |
Title | IBSim Virtual Test Benchmark Data - Experiment Type: Thermal (LFA), SampleID: LFA_Rd8t02_A05, Data: XCT |
Description | Sample ID: LFA_Rd8t02_A05 X-ray tomography (CT) image data of a Ti6Al4V disc. The 3D image was generated with an X-ray tomography scan performed by Dr Llion Evans with Swansea University, Advanced Imaging of Materials (AIM) equipment. The dataset includes: raw radiographs; scan & reconstruction parameter settings file; reconstructed 3D volume. To visualise the 3D volume use software such as ImageJ (https://imagej.net/Fiji/Downloads). The volume image data (.raw file) is in binary format and has the following characteristics: 1920 x 1920 x 1536; 16-bit; little-endian byte order. This data is part of a 'virtual testing' benchmark study, where samples are tested physically in the lab and their microscale accurate digital equivalent are tested virtually through simulation. The technique of converting 3D volumetric images directly into finite element method (FEM) meshes is part of the Image-Based Simulation (IBSim) approach. This data is part of a batch of samples for thermal testing via laser flash analysis (LFA), following the standards ASTM E1461 / ASTM E2585. As part of the study, controlled defects were introduced into the samples. This was achieved by machining a disc shaped recess (of defined diameter and depth) into one disc which is bonded onto another disc, so that the defect is located internally within the final sample. The samples in the batch are named as follows. Sample ID Diameter Thickness Recess d Recess t
LFA_RNA_### 12.6 2.5 N/A N/A LFA_Rd0t00_### 12.6 1.25 x 2 N/A N/A LFA_Rd8t02_### 12.6 1.25 x 2 8.0 0.2 LFA_Rd8t08_### 12.6 1.25 x 2 8.0 0.8 LFA_Rd6t02_### 12.6 1.25 x 2 6.0 0.2 LFA_Rd6t08_### 12.6 1.25 x 2 6.0 0.8 LFA_Rd4t02_### 12.6 1.25 x 2 4.0 0.2 LFA_Rd4t08_### 12.6 1.25 x 2 4.0 0.8 Where ### denotes the furnace bonding batch (A-C and N for no bonding cycle) and sample number (01-30). Values in mm. |
Type Of Material | Database/Collection of data |
Year Produced | 2020 |
Provided To Others? | Yes |
URL | https://zenodo.org/record/3625014 |
Title | IBSim Virtual Test Benchmark Data - Experiment Type: Thermal (LFA), SampleID: LFA_Rd8t02_A05, Data: XCT |
Description | Sample ID: LFA_Rd8t02_A05 X-ray tomography (CT) image data of a Ti6Al4V disc. The 3D image was generated with an X-ray tomography scan performed by Dr Llion Evans with Swansea University, Advanced Imaging of Materials (AIM) equipment. The dataset includes: raw radiographs; scan & reconstruction parameter settings file; reconstructed 3D volume. To visualise the 3D volume use software such as ImageJ (https://imagej.net/Fiji/Downloads). The volume image data (.raw file) is in binary format and has the following characteristics: 1920 x 1920 x 1536; 16-bit; little-endian byte order. This data is part of a 'virtual testing' benchmark study, where samples are tested physically in the lab and their microscale accurate digital equivalent are tested virtually through simulation. The technique of converting 3D volumetric images directly into finite element method (FEM) meshes is part of the Image-Based Simulation (IBSim) approach. This data is part of a batch of samples for thermal testing via laser flash analysis (LFA), following the standards ASTM E1461 / ASTM E2585. As part of the study, controlled defects were introduced into the samples. This was achieved by machining a disc shaped recess (of defined diameter and depth) into one disc which is bonded onto another disc, so that the defect is located internally within the final sample. The samples in the batch are named as follows. Sample ID Diameter Thickness Recess d Recess t
LFA_RNA_### 12.6 2.5 N/A N/A LFA_Rd0t00_### 12.6 1.25 x 2 N/A N/A LFA_Rd8t02_### 12.6 1.25 x 2 8.0 0.2 LFA_Rd8t08_### 12.6 1.25 x 2 8.0 0.8 LFA_Rd6t02_### 12.6 1.25 x 2 6.0 0.2 LFA_Rd6t08_### 12.6 1.25 x 2 6.0 0.8 LFA_Rd4t02_### 12.6 1.25 x 2 4.0 0.2 LFA_Rd4t08_### 12.6 1.25 x 2 4.0 0.8 Where ### denotes the furnace bonding batch (A-C and N for no bonding cycle) and sample number (01-30). Values in mm. |
Type Of Material | Database/Collection of data |
Year Produced | 2020 |
Provided To Others? | Yes |
URL | https://zenodo.org/record/3625015 |
Title | IBSim Virtual Test Benchmark Data - Experiment Type: Thermal (LFA), SampleID: LFA_Rd8t08_A07, Data: XCT |
Description | Sample ID: LFA_Rd8t08_A07 X-ray tomography (CT) image data of a Ti6Al4V disc. The 3D image was generated with an X-ray tomography scan performed by Dr Llion Evans with Swansea University, Advanced Imaging of Materials (AIM) equipment. The dataset includes: raw radiographs; scan & reconstruction parameter settings file; reconstructed 3D volume. To visualise the 3D volume use software such as ImageJ (https://imagej.net/Fiji/Downloads). The volume image data (.raw file) is in binary format and has the following characteristics: 1920 x 1920 x 1536; 16-bit; little-endian byte order. This data is part of a 'virtual testing' benchmark study, where samples are tested physically in the lab and their microscale accurate digital equivalent are tested virtually through simulation. The technique of converting 3D volumetric images directly into finite element method (FEM) meshes is part of the Image-Based Simulation (IBSim) approach. This data is part of a batch of samples for thermal testing via laser flash analysis (LFA), following the standards ASTM E1461 / ASTM E2585. As part of the study, controlled defects were introduced into the samples. This was achieved by machining a disc shaped recess (of defined diameter and depth) into one disc which is bonded onto another disc, so that the defect is located internally within the final sample. The samples in the batch are named as follows. Sample ID Diameter Thickness Recess d Recess t
LFA_RNA_### 12.6 2.5 N/A N/A LFA_Rd0t00_### 12.6 1.25 x 2 N/A N/A LFA_Rd8t02_### 12.6 1.25 x 2 8.0 0.2 LFA_Rd8t08_### 12.6 1.25 x 2 8.0 0.8 LFA_Rd6t02_### 12.6 1.25 x 2 6.0 0.2 LFA_Rd6t08_### 12.6 1.25 x 2 6.0 0.8 LFA_Rd4t02_### 12.6 1.25 x 2 4.0 0.2 LFA_Rd4t08_### 12.6 1.25 x 2 4.0 0.8 Where ### denotes the furnace bonding batch (A-C and N for no bonding cycle) and sample number (01-30). Values in mm. |
Type Of Material | Database/Collection of data |
Year Produced | 2020 |
Provided To Others? | Yes |
URL | https://zenodo.org/record/3625020 |
Title | IBSim Virtual Test Benchmark Data - Experiment Type: Thermal (LFA), SampleID: LFA_Rd8t08_A07, Data: XCT |
Description | Sample ID: LFA_Rd8t08_A07 X-ray tomography (CT) image data of a Ti6Al4V disc. The 3D image was generated with an X-ray tomography scan performed by Dr Llion Evans with Swansea University, Advanced Imaging of Materials (AIM) equipment. The dataset includes: raw radiographs; scan & reconstruction parameter settings file; reconstructed 3D volume. To visualise the 3D volume use software such as ImageJ (https://imagej.net/Fiji/Downloads). The volume image data (.raw file) is in binary format and has the following characteristics: 1920 x 1920 x 1536; 16-bit; little-endian byte order. This data is part of a 'virtual testing' benchmark study, where samples are tested physically in the lab and their microscale accurate digital equivalent are tested virtually through simulation. The technique of converting 3D volumetric images directly into finite element method (FEM) meshes is part of the Image-Based Simulation (IBSim) approach. This data is part of a batch of samples for thermal testing via laser flash analysis (LFA), following the standards ASTM E1461 / ASTM E2585. As part of the study, controlled defects were introduced into the samples. This was achieved by machining a disc shaped recess (of defined diameter and depth) into one disc which is bonded onto another disc, so that the defect is located internally within the final sample. The samples in the batch are named as follows. Sample ID Diameter Thickness Recess d Recess t
LFA_RNA_### 12.6 2.5 N/A N/A LFA_Rd0t00_### 12.6 1.25 x 2 N/A N/A LFA_Rd8t02_### 12.6 1.25 x 2 8.0 0.2 LFA_Rd8t08_### 12.6 1.25 x 2 8.0 0.8 LFA_Rd6t02_### 12.6 1.25 x 2 6.0 0.2 LFA_Rd6t08_### 12.6 1.25 x 2 6.0 0.8 LFA_Rd4t02_### 12.6 1.25 x 2 4.0 0.2 LFA_Rd4t08_### 12.6 1.25 x 2 4.0 0.8 Where ### denotes the furnace bonding batch (A-C and N for no bonding cycle) and sample number (01-30). Values in mm. |
Type Of Material | Database/Collection of data |
Year Produced | 2020 |
Provided To Others? | Yes |
URL | https://zenodo.org/record/3625019 |
Title | Neutron tomography (CT) image data of tungsten fusion energy heat exchange components |
Description | Neutron tomography (CT) image data of tungsten fusion energy heat exchange components. The dataset includes three sets of images: ITER_171T-WA-0002_MB (ITER reference monoblock) CCFE_ThBr_MB (Culham Centre for Fusion Energy thermal break concept monoblock) ROIsamples_Stack (A stack of four region of interest samples*) The region of interest samples within the stack are as below: CCFE_ThBr_ROI (Culham Centre for Fusion Energy thermal break concept monoblock) IPP_Wf-Cu_p5_s1 (Max-Planck-Institut für Plasmaphysik tungsten fibre / copper matrix coolant pipe) ITER_HHFT_ROI (ITER reference monoblock which has undergone high heat flux testing) ITER_17IT-WA-0002_ROI (ITER reference monoblock) This data was used originally for the following publication (please cite if re-using the data) where further details on the data may be obtained: Ll.M. Evans, L. Margetts, P.D. Lee, C.A.M. Butler, E. Surrey, "Image based in silico characterisation of the effective thermal properties of a graphite foam", Carbon, Vol. 143, pp. 542-558, 2018. https://doi.org/10.1016/j.carbon.2018.10.031 Each of the sample directories include reconstructed slices in Tiff format. To visualise the 3D volume use software such as ImageJ (https://imagej.net/Fiji/Downloads). CCFE_ThBr_ROI and ROIsamples_Stack include raw radiographs; dark and flat field images; scan & reconstruction parameter settings file. ITER_171T-WA-0002_MB includes data relating to the modulation transfer function (MTF) measurement. An X-Ray CT version of the ROI data is available for comparison: https://doi.org/10.5281/zenodo.3533420 Image-based simulation (IBSim) meshes were generated directly from these datasets: https://doi.org/10.5281/zenodo.3533422 |
Type Of Material | Database/Collection of data |
Year Produced | 2019 |
Provided To Others? | Yes |
Title | Neutron tomography (CT) image data of tungsten fusion energy heat exchange components |
Description | Neutron tomography (CT) image data of tungsten fusion energy heat exchange components. The dataset includes three sets of images: ITER_171T-WA-0002_MB (ITER reference monoblock) CCFE_ThBr_MB (Culham Centre for Fusion Energy thermal break concept monoblock) ROIsamples_Stack (A stack of four region of interest samples*) The region of interest samples within the stack are as below: CCFE_ThBr_ROI (Culham Centre for Fusion Energy thermal break concept monoblock) IPP_Wf-Cu_p5_s1 (Max-Planck-Institut für Plasmaphysik tungsten fibre / copper matrix coolant pipe) ITER_HHFT_ROI (ITER reference monoblock which has undergone high heat flux testing) ITER_17IT-WA-0002_ROI (ITER reference monoblock) This data was used originally for the following publication (please cite if re-using the data) where further details on the data may be obtained: Ll.M. Evans, L. Margetts, P.D. Lee, C.A.M. Butler, E. Surrey, "Image based in silico characterisation of the effective thermal properties of a graphite foam", Carbon, Vol. 143, pp. 542-558, 2018. https://doi.org/10.1016/j.carbon.2018.10.031 Each of the sample directories include reconstructed slices in Tiff format. To visualise the 3D volume use software such as ImageJ (https://imagej.net/Fiji/Downloads). CCFE_ThBr_ROI and ROIsamples_Stack include raw radiographs; dark and flat field images; scan & reconstruction parameter settings file. ITER_171T-WA-0002_MB includes data relating to the modulation transfer function (MTF) measurement. An X-Ray CT version of the ROI data is available for comparison: https://doi.org/10.5281/zenodo.3533420 Image-based simulation (IBSim) meshes were generated directly from these datasets: https://doi.org/10.5281/zenodo.3533422 |
Type Of Material | Database/Collection of data |
Year Produced | 2019 |
Provided To Others? | Yes |
Title | X-ray tomography (CT) image data of tungsten fusion energy heat exchange components |
Description | X-ray tomography (CT) image data of tungsten fusion energy heat exchange components. The dataset includes images of four samples: CCFE_MB_ROI (Culham Centre for Fusion Energy thermal break concept monoblock, region of interest sample) IPP_Wf-Cu (Max-Planck-Institut für Plasmaphysik tungsten fibre / copper matrix coolant pipe) ITER_HHFT_ROI (ITER reference monoblock which has undergone high heat flux testing, region of interest sample) ITER_MB_ROI (ITER reference monoblock, region of interest sample) This data was used originally for the following publication (please cite if re-using the data) where further details on the data may be obtained: Ll.M. Evans, L. Margetts, P.D. Lee, C.A.M. Butler, E. Surrey, "Image based in silico characterisation of the effective thermal properties of a graphite foam", Carbon, Vol. 143, pp. 542-558, 2018. https://doi.org/10.1016/j.carbon.2018.10.031 Each of the sample directories include reconstructed slices in Tiff format. To visualise the 3D volume use software such as ImageJ (https://imagej.net/Fiji/Downloads). CCFE_MB_ROI also includes raw radiographs; scan & reconstruction parameter settings file. A Neutron CT version of this data is available for comparison: https://doi.org/10.5281/zenodo.3533418 Image-based simulation (IBSim) meshes were generated directly from these datasets: https://doi.org/10.5281/zenodo.3533422 |
Type Of Material | Database/Collection of data |
Year Produced | 2019 |
Provided To Others? | Yes |
Title | X-ray tomography (CT) image data of tungsten fusion energy heat exchange components |
Description | X-ray tomography (CT) image data of tungsten fusion energy heat exchange components. The dataset includes images of four samples: CCFE_MB_ROI (Culham Centre for Fusion Energy thermal break concept monoblock, region of interest sample) IPP_Wf-Cu (Max-Planck-Institut für Plasmaphysik tungsten fibre / copper matrix coolant pipe) ITER_HHFT_ROI (ITER reference monoblock which has undergone high heat flux testing, region of interest sample) ITER_MB_ROI (ITER reference monoblock, region of interest sample) This data was used originally for the following publication (please cite if re-using the data) where further details on the data may be obtained: Ll.M. Evans, L. Margetts, P.D. Lee, C.A.M. Butler, E. Surrey, "Image based in silico characterisation of the effective thermal properties of a graphite foam", Carbon, Vol. 143, pp. 542-558, 2018. https://doi.org/10.1016/j.carbon.2018.10.031 Each of the sample directories include reconstructed slices in Tiff format. To visualise the 3D volume use software such as ImageJ (https://imagej.net/Fiji/Downloads). CCFE_MB_ROI also includes raw radiographs; scan & reconstruction parameter settings file. A Neutron CT version of this data is available for comparison: https://doi.org/10.5281/zenodo.3533418 Image-based simulation (IBSim) meshes were generated directly from these datasets: https://doi.org/10.5281/zenodo.3533422 |
Type Of Material | Database/Collection of data |
Year Produced | 2019 |
Provided To Others? | Yes |
Title | X-ray tomography image data of a graphite foam block (KFoam) and tortuosity analysis |
Description | X-ray tomography (CT) image data of a graphite foam block (KFoam). The 3D image was generated with an X-ray tomography scan performed by Dr Llion Evans with Manchester X-ray Imaging Facility equipment, which was funded in part by the EPSRC (grants EP/F007906/1, EP/F001452/1 and EP/I02249X/1). The dataset includes: raw radiographs; scan & reconstruction parameter settings file; reconstructed 3D volume. To visualise the 3D volume use software such as ImageJ (https://imagej.net/Fiji/Downloads). The volume image data (NMT_15_229_LLME_DivInterlayer.raw) is in binary format and has the following characteristics: 1586 x 1567 x 1588; 8-bit; little-endian byte order. The second .zip file is a 200 x 200 x 200 subset of this dataset. This was used to perform a tortuosity analysis on the foam. This dataset includes three sets of tiff images; tomographic slices; binarised slices; skeletonised slices. It also includes an excel file with the results of the tortuosity analysis performed with ImageJ. This data was used originally for the following publications (please cite if re-using the data): Ll.M. Evans, L. Margetts, P.D. Lee, C.A.M. Butler, E. Surrey, "Image based in silico characterisation of the effective thermal properties of a graphite foam", Carbon, Vol. 143, pp. 542-558, 2018. https://doi.org/10.1016/j.carbon.2018.10.031 Ll.M. Evans, L. Margetts, P.D. Lee, C.A.M. Butler, E. Surrey, "Improving modelling of complex geometries in novel materials using 3D imaging", Proceedings of NEA International Workshop on Structural Materials for Innovative Nuclear Systems, Manchester, UK, July 2016. https://www.oecd-nea.org/science/smins4/documents/P1-18_LlME_SMINS4_paper_reviewed.pdf |
Type Of Material | Database/Collection of data |
Year Produced | 2019 |
Provided To Others? | Yes |
Title | X-ray tomography image data of a graphite foam block (KFoam) and tortuosity analysis |
Description | X-ray tomography (CT) image data of a graphite foam block (KFoam). The 3D image was generated with an X-ray tomography scan performed by Dr Llion Evans with Manchester X-ray Imaging Facility equipment, which was funded in part by the EPSRC (grants EP/F007906/1, EP/F001452/1 and EP/I02249X/1). The dataset includes: raw radiographs; scan & reconstruction parameter settings file; reconstructed 3D volume. To visualise the 3D volume use software such as ImageJ (https://imagej.net/Fiji/Downloads). The volume image data (NMT_15_229_LLME_DivInterlayer.raw) is in binary format and has the following characteristics: 1586 x 1567 x 1588; 8-bit; little-endian byte order. The second .zip file is a 200 x 200 x 200 subset of this dataset. This was used to perform a tortuosity analysis on the foam. This dataset includes three sets of tiff images; tomographic slices; binarised slices; skeletonised slices. It also includes an excel file with the results of the tortuosity analysis performed with ImageJ. This data was used originally for the following publications (please cite if re-using the data): Ll.M. Evans, L. Margetts, P.D. Lee, C.A.M. Butler, E. Surrey, "Image based in silico characterisation of the effective thermal properties of a graphite foam", Carbon, Vol. 143, pp. 542-558, 2018. https://doi.org/10.1016/j.carbon.2018.10.031 Ll.M. Evans, L. Margetts, P.D. Lee, C.A.M. Butler, E. Surrey, "Improving modelling of complex geometries in novel materials using 3D imaging", Proceedings of NEA International Workshop on Structural Materials for Innovative Nuclear Systems, Manchester, UK, July 2016. https://www.oecd-nea.org/science/smins4/documents/P1-18_LlME_SMINS4_paper_reviewed.pdf |
Type Of Material | Database/Collection of data |
Year Produced | 2019 |
Provided To Others? | Yes |
Description | Airbus Defence & Space |
Organisation | Airbus Group |
Department | Airbus Defence and Space UK |
Country | United Kingdom |
Sector | Private |
PI Contribution | Provided guidance in setting up image-based simulation workflow at Airbus |
Collaborator Contribution | Tested image-based simulation workflow on component to assess value to the organisation |
Impact | A conference paper has been presented. In this paper, it was identified that a potential 95% saving could be made by following the developed workflow. |
Start Year | 2018 |
Description | Bangor University Collaboration |
Organisation | Bangor University |
Country | United Kingdom |
Sector | Academic/University |
PI Contribution | The research team have been working to integrate open-source software developed by Bangor University into the VirtualLab platform. |
Collaborator Contribution | Bangor University have supported this activity through providing training, support and additional development to their code where neccessary. |
Impact | New capabilities have been added to the VirtualLab platform through this collaboration. |
Start Year | 2021 |
Description | Institute of Physics hosting IBSim-4i |
Organisation | Institute of Physics (IOP) |
Country | United Kingdom |
Sector | Learned Society |
PI Contribution | Our team plans and arranges the annual IBSim-4i event. |
Collaborator Contribution | The IOP supported us by hosting and coordinating logistics for the event. |
Impact | Through the IOP's participation we were able to engage a broader audience than in previous events. |
Start Year | 2021 |
Description | MTC PhD iCASE |
Organisation | Manufacturing Technology Centre (MTC) |
Country | United Kingdom |
Sector | Private |
PI Contribution | Swansea University provided one EPSRC PhD studentship (fees + stipend). |
Collaborator Contribution | The MTC provided financial top up for this PhD project. They also provided in kind support through use of experimental facilities, access to data and personnel time. |
Impact | This partnership started in Jan 2020, due to Covid-19 and disruption to the student's studies progress has been severely impacted. |
Start Year | 2020 |
Description | Math2Market event support |
Organisation | Math2Market GmbH |
Country | Germany |
Sector | Private |
PI Contribution | The IBSim-4i event hosted by us was an opportunity to strengthen the international community in image-based simulation and computational techniques associated with 3D imaging and non-destructive evaluation. |
Collaborator Contribution | Math2Market supported the IBSim-4i event financially, by running a 2-day training course hosted by us and by publicising the event. |
Impact | IBSim-4i was a measured success (demonstrable by the attendee evaluation forms). |
Start Year | 2020 |
Description | NCAF event support |
Organisation | Natural Computing Applications Forum |
Country | United Kingdom |
Sector | Charity/Non Profit |
PI Contribution | The IBFEM-4i event hosted by us was an opportunity to strengthen the international community in image-based simulation and computational techniques associated with 3D imaging and non-destructive evaluation. |
Collaborator Contribution | NCAF supported the event financially. |
Impact | IBFEM-4i was a measured success (demonstrable by the attendee evaluation forms). |
Start Year | 2019 |
Description | Object Research Systems (ORS) Inc. |
Organisation | Object Research Systems |
Country | Canada |
Sector | Private |
PI Contribution | The IBSim-4i event hosted by us was an opportunity to strengthen the international community in image-based simulation and computational techniques associated with 3D imaging and non-destructive evaluation. |
Collaborator Contribution | ORS supported the IBSim-4i event financially, by running a training course hosted by us and by publicising the event. |
Impact | IBSim-4i was a measured success (demonstrable by the attendee evaluation forms). |
Start Year | 2021 |
Description | Synopsys event support |
Organisation | Synopsys Inc. |
Country | United States |
Sector | Private |
PI Contribution | The IBFEM-4i event held was an opportunity to strengthen the UK community in image-based modelling and computational techniques associated with tomography. |
Collaborator Contribution | Synopsys supported the IBFEM-4i event financially and by publicising the event. |
Impact | IBFEM-4i was a measured success (demonstrable by the attendee evaluation forms). |
Start Year | 2018 |
Description | UKAEA PhD iCase |
Organisation | Culham Centre for Fusion Energy |
Country | United Kingdom |
Sector | Academic/University |
PI Contribution | Swansea University provided one EPSRC PhD studentship (fees + stipend). |
Collaborator Contribution | UKAEA provided a financial top up for this PhD project. They also provided in kind support through use of experimental facilities, access to data and personnel time. |
Impact | Thus far, the collaboration has resulted in a new software (VirtualLab) which is a platform to couple engineering simulations with machine learning to provide an automated method for optimising the setup and execution of physical laboratory experiments. |
Start Year | 2019 |
Description | UKAEA PhD: Inducing multiple choices in fusion energy designs using AI and inverse analysis |
Organisation | UK Atomic Energy Authority |
Country | United Kingdom |
Sector | Public |
PI Contribution | Swansea University earmarked one 50% funded PhD to be match funded by UKAEA. |
Collaborator Contribution | UKAEA provided the match funding for this PhD project. They also provided in kind support through use of experimental facilities, access to data and personnel time. |
Impact | None to date |
Start Year | 2022 |
Description | UKAEA PhD: The digital twin of fusion energy components |
Organisation | UK Atomic Energy Authority |
Country | United Kingdom |
Sector | Public |
PI Contribution | Swansea University earmarked one 50% funded PhD to be match funded by UKAEA. |
Collaborator Contribution | UKAEA provided the match funding for this PhD project. They also provided in kind support through use of experimental facilities, access to data and personnel time. |
Impact | 10.1007/s11831-023-09890-4 |
Start Year | 2021 |
Description | UKAEA virtual testing |
Organisation | Culham Centre for Fusion Energy |
Country | United Kingdom |
Sector | Academic/University |
PI Contribution | We are developing an automated image-based simulation workflow with UKAEA as an end-user case-study. |
Collaborator Contribution | UKAEA are manufacturing test samples and performing physical thermo-mechanical testing for validation of the research. |
Impact | - Benchmark datasets are being produced from this study and made publicly available on Zenodo - Code developed is available via gitlab |
Start Year | 2018 |
Description | Volume Graphics event support |
Organisation | Volume Graphics GmbH |
Country | Germany |
Sector | Private |
PI Contribution | The IBFEM-4i event held was an opportunity to strengthen the international community in image-based modelling and computational techniques associated with tomography. |
Collaborator Contribution | Volume Graphics supported the IBFEM-4i event financially, by running a 2-day training course hosted by us and by publicising the event. |
Impact | IBFEM-4i was a measured success (demonstrable by the attendee evaluation forms). |
Start Year | 2019 |
Title | VirtualLab |
Description | A fully automated Virtual Twin (VT) of a set of physical laboratory experiments has been developed using VirtualLab, an open-source package created by the authors used to perform virtual experiments. Simulation results provide valuable data points in the parameter space which VirtualLab's ML routine can use to gain valuable insight from, including the optimal experimental parameters. Utilising VirtualLab's multi-node and High Throughput Computing (HTC) capabilities a large number of simulations are performed for a variety of experimental parameters in a very short space of time, allowing rapid iterations of the engineering design cycle. This is an example of human-machine collaboration which is becoming an increasingly important discipline in a wide variety of fields. |
Type Of Technology | Software |
Year Produced | 2020 |
Open Source License? | Yes |
Impact | VirtualLab has been used by the authors to plan and optimise physical experiments before they were performed. |
URL | https://virtuallab.readthedocs.io/ |
Description | 31st Symposium on Fusion Technology (SOFT2020) |
Form Of Engagement Activity | A talk or presentation |
Part Of Official Scheme? | No |
Geographic Reach | International |
Primary Audience | Other audiences |
Results and Impact | Research presented at 31st Symposium on Fusion Technology (SOFT2020) |
Year(s) Of Engagement Activity | 2020 |
URL | https://soft2020.eu/ |
Description | 32nd Symposium on Fusion Technology (SOFT) |
Form Of Engagement Activity | A talk or presentation |
Part Of Official Scheme? | No |
Geographic Reach | International |
Primary Audience | Other audiences |
Results and Impact | Research presented at 32nd Symposium on Fusion Technology |
Year(s) Of Engagement Activity | 2022 |
URL | https://cdn.fourwaves.com/static/media/filecontent/ce501320-3fbf-4819-a48f-4fa286bcff61/af5fb82b-67a... |
Description | 6th Dimensional X-ray Computed Tomography conference |
Form Of Engagement Activity | A talk or presentation |
Part Of Official Scheme? | No |
Geographic Reach | International |
Primary Audience | Industry/Business |
Results and Impact | Presented at 6th Dimensional X-ray Computed Tomography conference |
Year(s) Of Engagement Activity | 2022 |
URL | https://www.npl.co.uk/research/dimensional/dxct-conference/dxct-2022 |
Description | Article in BINDT's Insight |
Form Of Engagement Activity | A magazine, newsletter or online publication |
Part Of Official Scheme? | No |
Geographic Reach | International |
Primary Audience | Industry/Business |
Results and Impact | The BINDT NDE 4.0 WG contributed discussions towards the article titled "Roadmap for NDE 4.0 reveals breadth of challenges to be tackled" authored by Brierley, N; Loftus, P. Insight - Non-Destructive Testing and Condition Monitoring is the Journal of The British Institute of Non-Destructive Testing. Insight is published monthly and circulated worldwide to more than 65 countries. |
Year(s) Of Engagement Activity | 2021 |
URL | https://www.ingentaconnect.com/content/bindt/insight/2021/00000063/00000009/art00005 |
Description | Article in RMS's InFocus magazine |
Form Of Engagement Activity | A magazine, newsletter or online publication |
Part Of Official Scheme? | No |
Geographic Reach | International |
Primary Audience | Industry/Business |
Results and Impact | The RMS X-Ray focused interest group (FIG) contributed discussions towards the article. InFocus is published quarterly and circulated worldwide. |
Year(s) Of Engagement Activity | 2022 |
URL | https://www.rms.org.uk/resource/infocus-magazine-issue-67-september-2022.html |
Description | BBC Radio Cymru Interview: Yfory Newydd |
Form Of Engagement Activity | A broadcast e.g. TV/radio/film/podcast (other than news/press) |
Part Of Official Scheme? | No |
Geographic Reach | National |
Primary Audience | Public/other audiences |
Results and Impact | Interview discussing latest research in the field. |
Year(s) Of Engagement Activity | 2023 |
URL | https://www.bbc.co.uk/programmes/m000p5vj |
Description | BBC Radio Wales Interview: What if...? |
Form Of Engagement Activity | A broadcast e.g. TV/radio/film/podcast (other than news/press) |
Part Of Official Scheme? | No |
Geographic Reach | International |
Primary Audience | Public/other audiences |
Results and Impact | Provided an interview for the BBC Radio Wales programme 'What if...?' which looked into the future for the weather and landscape of Wales in a warming world, asking experts to answer what if we do nothing, and what if we change our ways. |
Year(s) Of Engagement Activity | 2020 |
URL | https://www.bbc.co.uk/programmes/m000ght5 |
Description | British Institute of Non-Destructive Testing Working Group on NDE 4.0 |
Form Of Engagement Activity | A formal working group, expert panel or dialogue |
Part Of Official Scheme? | No |
Geographic Reach | National |
Primary Audience | Industry/Business |
Results and Impact | The BINDT's aim is to promote the advancement of the science and practice of non-destructive testing (NDT), condition monitoring (CM), diagnostic engineering and all other materials and quality testing disciplines. This WG was established to: 1. To promote and enable the introduction of new NDE 4.0 technologies by identifying and tackling barriers, and education of manufacturing and maintenance supply chains in particular. 2. To support the contribution of NDE to wider Industry 4.0 practices, frameworks etc., including throughlife approaches, thereby enabling a greater organisational value from NDE to be unlocked. 3. To conduct a road-mapping exercise, revisited periodically, to help determine the detailed priorities of the group. A particular focus will be placed on elements requiring coordination across the field and beyond, such as interfaces and data formats for inter-operability. 4. To support the transition to NDE 4.0 practices by contributing to the definition and planning of future qualifications, and future Institute offerings in general. |
Year(s) Of Engagement Activity | 2021,2022 |
URL | https://www.bindt.org/branches-and-committees/Institute-Groups/nde-4-0-group/ |
Description | Daily Mail |
Form Of Engagement Activity | A magazine, newsletter or online publication |
Part Of Official Scheme? | No |
Geographic Reach | International |
Primary Audience | Public/other audiences |
Results and Impact | A press release to publicise the publication of a journal paper was picked up by The Daily Mail who published an article on the subject. |
Year(s) Of Engagement Activity | 2018 |
URL | https://www.dailymail.co.uk/sciencetech/article-6459991/Breakthrough-researchers-reveal-new-way-test... |
Description | ECCOMAS CONGRESS 2022 |
Form Of Engagement Activity | A talk or presentation |
Part Of Official Scheme? | No |
Geographic Reach | International |
Primary Audience | Other audiences |
Results and Impact | Research presented at ECCOMAS CONGRESS 2022 |
Year(s) Of Engagement Activity | 2022 |
URL | https://www.eccomas.org/2021/01/22/3542/ |
Description | EPSRC Manufacturing the Future Research Priorities Workshop |
Form Of Engagement Activity | A formal working group, expert panel or dialogue |
Part Of Official Scheme? | No |
Geographic Reach | National |
Primary Audience | Other audiences |
Results and Impact | Participated in EPSRC Manufacturing the Future Research Priorities Workshop |
Year(s) Of Engagement Activity | 2019 |
Description | EPSRC Reducing Risk Advisory Panel |
Form Of Engagement Activity | A formal working group, expert panel or dialogue |
Part Of Official Scheme? | No |
Geographic Reach | National |
Primary Audience | Study participants or study members |
Results and Impact | Dr Evans is on the advisory board for EP/R013047/1. Review meetings are held 2-3 times a year to provide feedback on progress and future direction. |
Year(s) Of Engagement Activity | 2018,2019,2020,2021 |
URL | https://gow.epsrc.ukri.org/NGBOViewGrant.aspx?GrantRef=EP/R013047/1 |
Description | EPSRC Review of Doctoral Support |
Form Of Engagement Activity | A formal working group, expert panel or dialogue |
Part Of Official Scheme? | No |
Geographic Reach | National |
Primary Audience | Postgraduate students |
Results and Impact | EPSRC Review of Doctoral Support workshop which provided EPSRC with evidence on which to base future policy/strategy and produce reports to gov. |
Year(s) Of Engagement Activity | 2020 |
Description | EPSRC UK-India Civil Nuclear Collaboration Workshop |
Form Of Engagement Activity | A formal working group, expert panel or dialogue |
Part Of Official Scheme? | No |
Geographic Reach | International |
Primary Audience | Professional Practitioners |
Results and Impact | Participated in EPSRC UK-India Civil Nuclear Collaboration Workshop, Oxford April 2019 |
Year(s) Of Engagement Activity | 2019 |
Description | EPSRC and DSTL digital twinning workshop |
Form Of Engagement Activity | A formal working group, expert panel or dialogue |
Part Of Official Scheme? | No |
Geographic Reach | National |
Primary Audience | Other audiences |
Results and Impact | Participated in EPSRC and DSTL digital twinning workshop |
Year(s) Of Engagement Activity | 2023 |
Description | FuseNet PhD Event |
Form Of Engagement Activity | A talk or presentation |
Part Of Official Scheme? | No |
Geographic Reach | International |
Primary Audience | Postgraduate students |
Results and Impact | Research presented at FuseNet PhD Event |
Year(s) Of Engagement Activity | 2022 |
URL | https://indico.fusenet.eu/event/35/ |
Description | Fusion CDT Careers Talk (Fellowships) |
Form Of Engagement Activity | A talk or presentation |
Part Of Official Scheme? | No |
Geographic Reach | National |
Primary Audience | Postgraduate students |
Results and Impact | Dr Evans gave a careers talk specifically on fellowship applications from the perspective of a previous PhD student researching fusion energy. |
Year(s) Of Engagement Activity | 2020 |
Description | Fusion CDT: Advanced non-destructive testing and evaluation (NDT/NDE) for fusion energy R&D |
Form Of Engagement Activity | A talk or presentation |
Part Of Official Scheme? | No |
Geographic Reach | National |
Primary Audience | Postgraduate students |
Results and Impact | Presented at annual 'Fusion Frontiers and Interfaces' FCDT workshop |
Year(s) Of Engagement Activity | 2022 |
URL | https://fusion-cdt.ac.uk/fusion-frontiers-week-returns-to-the-ypi/ |
Description | Fusion CDT: Technical Training on IBSim and FEA |
Form Of Engagement Activity | A talk or presentation |
Part Of Official Scheme? | No |
Geographic Reach | National |
Primary Audience | Postgraduate students |
Results and Impact | Each year the Fusion CDT runs several training courses for each new cohort intake. Once per annum I have delivered a 2-day course on FEA and application of IBSim for Fusion Energy. This is usually attended by 6-8 PhD students. |
Year(s) Of Engagement Activity | 2018,2019,2020,2021,2022 |
URL | https://fusion-cdt.ac.uk/ |
Description | IAEA Technical Meeting on the Development and Application of Open-Source Modelling and Simulation Tools for Nuclear Reactors. |
Form Of Engagement Activity | A talk or presentation |
Part Of Official Scheme? | No |
Geographic Reach | International |
Primary Audience | Other audiences |
Results and Impact | Research presented at IAEA Technical Meeting on the Development and Application of Open-Source Modelling and Simulation Tools for Nuclear Reactors. |
Year(s) Of Engagement Activity | 2022 |
URL | https://conferences.iaea.org/event/247/?print=1 |
Description | IBFEM-4i 2018 |
Form Of Engagement Activity | Participation in an activity, workshop or similar |
Part Of Official Scheme? | No |
Geographic Reach | International |
Primary Audience | Industry/Business |
Results and Impact | A 4-day event was held on 'image-based finite element method for industry'. This was attended by around 40 people with 40% from industry and 60% from academia. The first two days were focussed on training courses with days 3-4 decidated to talks and discussion sessions. Questionnaires were completed showing that the event was very positively received and that it had positively changed opinions on IBFEM. |
Year(s) Of Engagement Activity | 2018 |
URL | https://ibfem.co.uk/events/past-events/ibfem-4i_2018/ |
Description | IBFEM-4i 2019 |
Form Of Engagement Activity | Participation in an activity, workshop or similar |
Part Of Official Scheme? | No |
Geographic Reach | International |
Primary Audience | Industry/Business |
Results and Impact | A 4-day event was held on 'image-based finite element method for industry'. This was attended by around 40 people with 40% from industry and 60% from academia. The first two days were focussed on training courses with days 3-4 decidated to talks and discussion sessions. Questionnaires were completed showing that the event was very positively received and that it had positively changed opinions on IBFEM. |
Year(s) Of Engagement Activity | 2019 |
URL | https://ibfem.co.uk/events/past-events/ibfem-4i_2019/ |
Description | IBSim-4i 2020 |
Form Of Engagement Activity | Participation in an activity, workshop or similar |
Part Of Official Scheme? | No |
Geographic Reach | International |
Primary Audience | Industry/Business |
Results and Impact | A 4-day event was held on 'image-based simulation for industry'. This was attended by over 80 people with 40% from industry and 60% from academia. The first two days were focussed on training courses with days 3-4 dedicated to talks and discussion sessions. Questionnaires were completed showing that the event was very positively received and that it had positively changed opinions on IBSim. |
Year(s) Of Engagement Activity | 2020 |
URL | https://ibsim.co.uk/events/past-events/ibsim-4i_2020/ |
Description | IBSim-4i 2021 |
Form Of Engagement Activity | Participation in an activity, workshop or similar |
Part Of Official Scheme? | No |
Geographic Reach | International |
Primary Audience | Other audiences |
Results and Impact | A 4-day event was held on 'image-based simulation for industry'. This was attended by 50 people (limited due to covid regulations) with 40% from industry and 60% from academia. The first two days were focussed on training courses with days 3-4 dedicated to talks and discussion sessions. Questionnaires were completed showing that the event was very positively received and that it had positively changed opinions on IBSim. |
Year(s) Of Engagement Activity | 2021 |
URL | https://ibsim.co.uk/events/past-events/ibsim-4i-2021/ |
Description | IBSim-4i 2022 |
Form Of Engagement Activity | Participation in an activity, workshop or similar |
Part Of Official Scheme? | No |
Geographic Reach | International |
Primary Audience | Industry/Business |
Results and Impact | A 5-day event was held on 'image-based simulation for industry'. This was attended by over 50 people with 20% from industry and 80% from academia. The first two days were focussed on training courses with days 3-4 dedicated to talks and discussion sessions, day 5 was a workshop to discuss collaboration opportunities. Questionnaires were completed showing that the event was very positively received and that it had positively changed opinions on IBSim. |
Year(s) Of Engagement Activity | 2022 |
URL | https://ibsim.co.uk/events/past-events/ibsim-4i-2022/ |
Description | Industrial CT 2019, Padova, Italy |
Form Of Engagement Activity | A talk or presentation |
Part Of Official Scheme? | No |
Geographic Reach | International |
Primary Audience | Industry/Business |
Results and Impact | Presented at Industrial CT 2019, Padova, Italy |
Year(s) Of Engagement Activity | 2019 |
URL | https://www.ict2019.org/ |
Description | Interview for S4C coverage of Urdd Eisteddfod 2019 |
Form Of Engagement Activity | A press release, press conference or response to a media enquiry/interview |
Part Of Official Scheme? | No |
Geographic Reach | National |
Primary Audience | Public/other audiences |
Results and Impact | Interview for S4C coverage of Urdd Eisteddfod 2019 from our STEM outreach stand in the 'Science & Technology Village'. Purpose of interview was general interest segment to raise awareness of research activities relating to this field. |
Year(s) Of Engagement Activity | 2019 |
Description | Invited to speak at the Dalton Nuclear Institute |
Form Of Engagement Activity | A talk or presentation |
Part Of Official Scheme? | No |
Geographic Reach | Regional |
Primary Audience | Postgraduate students |
Results and Impact | Gave talk to researchers at the Dalton Nuclear Institute on examples of Virtual Testing methodology which can be employed during the Covid-19 pandemic where physical access to laboratories is being restricted. |
Year(s) Of Engagement Activity | 2021 |
Description | Invited to talk at Dongguk University |
Form Of Engagement Activity | A talk or presentation |
Part Of Official Scheme? | No |
Geographic Reach | International |
Primary Audience | Other audiences |
Results and Impact | A seminar was delivered. The seminar focused on the role of advanced non-destructive testing and evaluation in the field of fusion energy. |
Year(s) Of Engagement Activity | 2022 |
Description | Invited to talk at Politecnico di Torino's series on Materials for Nuclear Applications |
Form Of Engagement Activity | A talk or presentation |
Part Of Official Scheme? | No |
Geographic Reach | International |
Primary Audience | Postgraduate students |
Results and Impact | Two lectures were delivered as part of Politecnico di Torino's series on Materials for Nuclear Applications for master's level students. The lectures focused on the role of advanced non-destructive testing and evaluation in the field of fusion energy. |
Year(s) Of Engagement Activity | 2021 |
Description | Manufacturing Technology Centre (MTC) Research Portfolio Booklet |
Form Of Engagement Activity | A magazine, newsletter or online publication |
Part Of Official Scheme? | No |
Geographic Reach | National |
Primary Audience | Industry/Business |
Results and Impact | The MTC sponsors research in several UK universities. This booklet, published in print and online, showcased the most recent developments including those from our group. |
Year(s) Of Engagement Activity | 2022 |
URL | https://online.flippingbook.com/view/362637148/46/ |
Description | NVIDIA modulus series |
Form Of Engagement Activity | Participation in an activity, workshop or similar |
Part Of Official Scheme? | No |
Geographic Reach | National |
Primary Audience | Other audiences |
Results and Impact | An event series was hosted by us in conjunction with NVIDIA and with participants also attending from UKAEA and STFC. The event series was to explore the potential benefits of coupling machine learning with engineering simulations. The series occurred over three events: 1) Introduction delivered by NVIDIA; 2) Lightning talks of applications by the researchers; 3) Hands-on training & Hackathon. |
Year(s) Of Engagement Activity | 2022,2023 |
URL | https://tocyn.cymru/en/event/4d3f85a8-6d6f-4c74-b101-1edc80a08585 |
Description | National Eisteddfod 2018 |
Form Of Engagement Activity | Participation in an activity, workshop or similar |
Part Of Official Scheme? | No |
Geographic Reach | International |
Primary Audience | Public/other audiences |
Results and Impact | STEM outreach activity at the 'Science & Technology Village' of the 2018 National Eisteddfod held at Cardiff. It was estimated that over 500,000 people attended. Due to its location in a tourist area of Cardiff and free admission the attendance was greater than in typical years with international summer holiday tourists also visiting. The stand was visited regularly during the week long event leading to numerous discussions and was featured on S4C Welsh TV channel for an interview. |
Year(s) Of Engagement Activity | 2018 |
Description | NuMat2022: The Nuclear Materials Conference |
Form Of Engagement Activity | A talk or presentation |
Part Of Official Scheme? | No |
Geographic Reach | International |
Primary Audience | Other audiences |
Results and Impact | Research presented at NuMat2022: The Nuclear Materials Conference |
Year(s) Of Engagement Activity | 2022 |
URL | https://www.elsevier.com/events/conferences/the-nuclear-materials-conference/about |
Description | Royal Microscopical Society X-ray Focussed Interest Group |
Form Of Engagement Activity | A formal working group, expert panel or dialogue |
Part Of Official Scheme? | No |
Geographic Reach | National |
Primary Audience | Other audiences |
Results and Impact | The RMS FIG exists to promote the use of X-ray microscopy primarily to members of the RMS but also to the wider population. This is achieved through contributing to engagement activities by arranging events (or presenting at events), with articles and social media. |
Year(s) Of Engagement Activity | 2021,2022 |
URL | https://www.rms.org.uk/community/focussed-interest-groups/x-ray-microscopy.html |
Description | SeptembRSE: Fifth Conference of Research Software Engineers |
Form Of Engagement Activity | A talk or presentation |
Part Of Official Scheme? | No |
Geographic Reach | National |
Primary Audience | Other audiences |
Results and Impact | Member of the team presented at SeptembRSE. |
Year(s) Of Engagement Activity | 2021 |
URL | https://septembrse.github.io/#/event/T1011 |
Description | Swansea-Tsinghua Workshop, Beijing 2019 |
Form Of Engagement Activity | A formal working group, expert panel or dialogue |
Part Of Official Scheme? | No |
Geographic Reach | International |
Primary Audience | Other audiences |
Results and Impact | Invited to Tsinghua University, Beijing, as part of a delegation from Swansea University as part of a formal partnership between the two institutions. |
Year(s) Of Engagement Activity | 2019 |
Description | Synopsys twitterview |
Form Of Engagement Activity | A press release, press conference or response to a media enquiry/interview |
Part Of Official Scheme? | No |
Geographic Reach | International |
Primary Audience | Industry/Business |
Results and Impact | An live interview was held over twitter to engage with users of the Synopsys Simpleware software and the broader image-based modelling community. |
Year(s) Of Engagement Activity | 2018 |
URL | https://www.synopsys.com/simpleware/news-and-events/twitterview-llion-evans.html |
Description | The Engineer |
Form Of Engagement Activity | A magazine, newsletter or online publication |
Part Of Official Scheme? | No |
Geographic Reach | International |
Primary Audience | Industry/Business |
Results and Impact | A press release to publicise the initiation of this fellowship was picked up by The Engineer who published an article on the subject. |
Year(s) Of Engagement Activity | 2018 |
URL | https://www.theengineer.co.uk/virtual-testing-technique/ |
Description | UK Industrial XCT Metrology Working Group |
Form Of Engagement Activity | A formal working group, expert panel or dialogue |
Part Of Official Scheme? | No |
Geographic Reach | National |
Primary Audience | Industry/Business |
Results and Impact | This is an expert panel of industrial XCT users and developers of methodology who meet a number of times a year to share best-practices and work towards standardised approaches to be published and influence international standards (e.g. ISO) which are currently being developed for XCT. |
Year(s) Of Engagement Activity | 2020,2021 |
Description | UKACM 2021: Lab experiment optimisation using coupled finite element analysis and machine learning |
Form Of Engagement Activity | A talk or presentation |
Part Of Official Scheme? | No |
Geographic Reach | National |
Primary Audience | Other audiences |
Results and Impact | Member of team presented at UKACM 2021. |
Year(s) Of Engagement Activity | 2021 |
URL | https://www.ukacm2021.ukacm.org/ |
Description | UKAEA PGR Event: Multi-scale computational analysis to predict the irradiation-induced change in engineering properties of fusion reactor materials |
Form Of Engagement Activity | A talk or presentation |
Part Of Official Scheme? | No |
Geographic Reach | National |
Primary Audience | Other audiences |
Results and Impact | A member of the team presented at the UKAEA PGR event. |
Year(s) Of Engagement Activity | 2021 |
Description | Urdd Eisteddfod 2019 |
Form Of Engagement Activity | Participation in an activity, workshop or similar |
Part Of Official Scheme? | No |
Geographic Reach | International |
Primary Audience | Public/other audiences |
Results and Impact | STEM outreach activity at the 'Science & Technology Village' of the 2019 Urdd Youth Eisteddfod held at Cardiff. It was estimated that over 100,000 people attended. Due to its location in a tourist area of Cardiff and free admission the attendance was greater than in typical years with international summer holiday tourists also visiting. The stand was visited regularly during the week long event leading to numerous discussions and was featured on S4C Welsh TV channel for an interview. |
Year(s) Of Engagement Activity | 2019 |
URL | https://www.urdd.cymru/en/eisteddfod/eisteddfod-2019/ |
Description | Women in Machine Learning UK 2020 |
Form Of Engagement Activity | Participation in an activity, workshop or similar |
Part Of Official Scheme? | No |
Geographic Reach | National |
Primary Audience | Postgraduate students |
Results and Impact | Nashid Alam was a member of the organising committee for this event. 48 women from different universities and industry represented their work (oral and poster) on machine learning and big data. The aim of the conference was to increase awareness and appreciation of the achievements of women in machine learning. The programme helps women build their technical confidence and their voice, and the publicity efforts help ensure that women in machine learning and their achievements are known in the community. |
Year(s) Of Engagement Activity | 2020 |