Rotational Vibration Assisted Increment Sheet Forming by Novel Tooling (RV-ISF)
Lead Research Organisation:
University of Sheffield
Department Name: Mechanical Engineering
Abstract
Incremental Sheet Forming (ISF) is a flexible, cost effective, energy and resource efficient process. It only requires a simple tool to deform the sheet material incrementally by moving the tool along a predefined tool path created directly from the CAD model of a product. Without using moulds, dies or heavy-duty forming machines, it is flexible to manufacture small-batch or customised sheet products with complex geometries. However, existing ISF processes cannot manufacture hard-to-form materials, such as high strength aluminium, magnesium and titanium alloys, because these materials have limited ductility at room temperature.
This EPSRC follow-on project aims to build on the initial success of an EPSRC Adventurous Manufacturing grant (EP/T005254/1) in developing a rotational vibration assisted incremental sheet forming (RV-ISF) process to manufacture hard-to-form materials for industrial applications. The RV-ISF process is centred on a novel ISF tooling to generate low frequency and high amplitude vibration in ISF processing, which produces localised heating and material softening therefore improve the material ductility without the need of additional heating or extra energy input. By developing and implementing the novel tooling, RV-ISF experimental testing of a well-known hard-to-form material has demonstrated a 300% increase in forming depth, more than 70% reduction of average grain size through microstructure refinement, 20% improvement in average hardness and up to 37% reduction of average surface roughness.
To capitalise the promising findings from the EPSRC Adventurous Manufacturing grant (EP/T005254/1), this follow-on project assembles a multidisciplinary team with expertise in flexible sheet forming, material science and plasticity, advanced manufacturing technologies, novel tooling and bespoke machine systems. The aim is to develop an in-depth understanding of the material deformation mechanisms under RV-ISF processing conditions and to use this new knowledge to expand the material types and products that can be successfully manufactured using this innovative process. In working with the project partners, the follow-on project aims to deliver a range of demonstrable products and to engage in dissemination activities for a swift translation of the developed flexible, cost effective and sustainable forming process into UK's medical, automotive, aerospace and nuclear industries.
This EPSRC follow-on project aims to build on the initial success of an EPSRC Adventurous Manufacturing grant (EP/T005254/1) in developing a rotational vibration assisted incremental sheet forming (RV-ISF) process to manufacture hard-to-form materials for industrial applications. The RV-ISF process is centred on a novel ISF tooling to generate low frequency and high amplitude vibration in ISF processing, which produces localised heating and material softening therefore improve the material ductility without the need of additional heating or extra energy input. By developing and implementing the novel tooling, RV-ISF experimental testing of a well-known hard-to-form material has demonstrated a 300% increase in forming depth, more than 70% reduction of average grain size through microstructure refinement, 20% improvement in average hardness and up to 37% reduction of average surface roughness.
To capitalise the promising findings from the EPSRC Adventurous Manufacturing grant (EP/T005254/1), this follow-on project assembles a multidisciplinary team with expertise in flexible sheet forming, material science and plasticity, advanced manufacturing technologies, novel tooling and bespoke machine systems. The aim is to develop an in-depth understanding of the material deformation mechanisms under RV-ISF processing conditions and to use this new knowledge to expand the material types and products that can be successfully manufactured using this innovative process. In working with the project partners, the follow-on project aims to deliver a range of demonstrable products and to engage in dissemination activities for a swift translation of the developed flexible, cost effective and sustainable forming process into UK's medical, automotive, aerospace and nuclear industries.
Publications
Ai S
(2022)
Biaxial tension under bending and compression - development of a new formability test for incremental sheet forming
in IOP Conference Series: Materials Science and Engineering
Chang Z
(2025)
Towards understanding the surface friction in rotational-vibration assisted incremental sheet forming
in Journal of Materials Processing Technology
Li Z
(2022)
An analytical model integrated with toolpath design for wrinkling prediction in conventional spinning
in Journal of Materials Processing Technology
Long H
(2024)
New rosette tools for developing rotational vibration-assisted incremental sheet forming
in Journal of Materials Processing Technology
Peng W
(2024)
Vibration characterisation in new rotational vibration-assisted incremental sheet forming
in MATEC Web of Conferences
Peng W
(2023)
Deformation mechanisms and fracture in tension under cyclic bending plus compression, single point and double-sided incremental sheet forming processes
in International Journal of Machine Tools and Manufacture
| Description | Achieving the set objectives, the project consortium has produced the following key findings: - advances in understanding the thermal and vibration softening effects and mechanisms in the rotational vibration-assisted incremental sheet forming (RV-ISF) by analysing microstructural evolution and quantifying dislocation density, recrystallisation, and low angle grain boundaries; - new models to calculate the softening coefficients by decoupling the combined effect of thermal and vibration softening to understand their individual contributions to formability improvement in the RV-ISF condition, which supporting new tool development; - constitutive modelling methods for flow stress prediction under different temperatures and strain rates to simulate material plastic deformation; a new calibration model for accurate calculation of the coefficient of friction in the RV-ISF to evaluate its effect on surface quality; - RV-ISF process modelling framework by employing Abaqus finite element software and Python scripts, providing an effective modelling tool to evaluate the performance of new tool designs for process optimisation; - demonstration of new process capability of the RV-ISF in processing hard-to-form materials including high strength light-weight alloys, AZ31B, AA7075, AA6082 for high-tech industrial applications; and Ti-Grade1, PEEK and PMMA for medical applications. |
| Exploitation Route | We are currently working with our partners to develop case studies for demonstration in medical and aerospace applications. Academic outcomes include the publication of 9 papers on high-quality journals and 10 peer-reviewed international conference papers. |
| Sectors | Aerospace Defence and Marine Healthcare |
| Description | We are working with NHS hospital neurosurgeons in assessing the feasibility/viability of incremental sheet forming based cranioplasty in consideration of surgical requirements. |
| Sector | Healthcare |
| Impact Types | Societal |
| Description | ESAFORM Benchmark |
| Organisation | University of Leuven |
| Department | Department of Mechanical Engineering |
| Country | Belgium |
| Sector | Academic/University |
| PI Contribution | We conducted studies of the ISF tool path development and optimization as part of the benchmark exercise, and manufacturing the benchmark parts using two different scales and tool path strategies to improve the quality of the parts manufactured. We contributed the development and writing of the research report / paper of the benchmark, which will published in 2025. |
| Collaborator Contribution | ESAFORM benchmark collaboration, led by KU Leuven, forms a broad international team of researchers (10 partners, from Belgium, Germany, UK, Italy, Poland, Portugal, USA, China) with expertise in the Incremental Sheet Forming (ISF). The collaboration aims to explore the capability and limitations of the ISF for flexible sheet manufacturing by conducting an in-depth benchmark exercise by employing Single-Point ISF, to investigate and calibrate different and well-optimized process planning strategies in ISF manufacturing. The collaboration is support by ESAFORM Benchmark funding. |
| Impact | A research report is under development to be published in 2025, on the International Journal of Material Forming. |
| Start Year | 2023 |
| Description | Project Industrial and Academic Workshop |
| Form Of Engagement Activity | Participation in an activity, workshop or similar |
| Part Of Official Scheme? | No |
| Geographic Reach | National |
| Primary Audience | Industry/Business |
| Results and Impact | The workshop of the future of flexible manufacturing with Incremental Sheet Forming (ISF) took place at the Advanced Manufacturing Research Centre (AMRC), University of Sheffield, in January 2025. The details of the workshop: - The event will feature presentations, live demonstrations of the ISF process, technical poster presentations detailing the technology, and examples of formed parts used across various industries. - Attendees will also have the opportunity to engage in discussions with ISF experts and participate in a Q&A session. |
| Year(s) Of Engagement Activity | 2025 |
| Description | Website to publicise the project and provide free trainings for researchers: https://isf.sites.sheffield.ac.uk/home |
| Form Of Engagement Activity | Engagement focused website, blog or social media channel |
| Part Of Official Scheme? | No |
| Geographic Reach | International |
| Primary Audience | Postgraduate students |
| Results and Impact | Since the development of the project website, it has been visited by undergraduate and postgraduate students, PostDoc researchers, university supervisors, academic collaborators, and project industrial partners. This work led to an invited participation of the EU ESAFORM Benchmarking Project, led by KU LEUVEN with 14 leading organisations worldwide, to explore potentials of the application of the developed new tools and new sheet forming process RV-ISF and other incremental sheet forming processes; https://www.isf-exchange.com/about/ |
| Year(s) Of Engagement Activity | 2022,2023,2024 |
| URL | https://isf.sites.sheffield.ac.uk/home |
