Low-Cost Distributed Multi-Parameter Sensing for Energy Networks

Lead Research Organisation: University of Strathclyde
Department Name: Electronic and Electrical Engineering

Abstract

Our concept of a distributed electrical and environmental sensor system to enable unprecedented flexibility and reduction
of cost in deploying innovative measurement, control and protection functions for the power network requires to be proven
in the context of relevant industry standards, with particular emphasis on current and voltage measurements.
Consequently, the core research idea of this proposal is to assess the feasibility of this undertaking through systematic
research and implementation of a range of innovative error compensation methods. In particular, the feasibility study will
aim to demonstrate that metering and protection accuracy classes for voltage and current transducers are attainable by this
technology.
In order to address the objectives of the project, the research programme will be subdivided into specific work packages.
The scope and methodologies adopted with respect to the individual tasks are described in the Case for Support
attachment under the following work packages:
WP1. Engagement with stakeholders (Month 1-12)
WP2. Design and simulation of transducers and experiments. (Month 1-7)
WP3. Assembly and packaging of electrical current and voltage transducers. (Month 4-7)
WP4. Characterisation and environmental/high-voltage stress testing of transducers (Month 7-12)
WP5. Development and testing of sensor interrogation hardware and software. (Month 1-12)

Planned Impact

The project stands to make a huge impact on the UK economy by taking to market, via a new SME vehicle, a groundbreaking
technology. Since this sensing technology is able to leverage the standard telecomunication-grade optical fibres
that are installed on power networks, it could lead to the elimination of many costs conventionally associated with power
network instrumentation, and simultaneously address the challenge of providing wide-area sensor coverage with minimal
investment. This could lead to greater integration of our electrical and environmental sensing systems, and to extensive,
wide-area, real-time knowledge of electrical transmission and distribution systems.
This project aims therefore to address the entirety of the 'energy trilemma' within the scope of early-stage feasibility
funding, in order to maximise the positive impact of this technology by demonstrating its excellent economic potential.
Strathclyde and Synaptec has conducted in-depth interviews with Alstom, Siemens, ABB, Toshiba, and S&C Electric
Company and a range of network operators relating to the efficacy of the technology and its market potential. All interviewees were confident that the market potential is very high, at both high-voltage transmission level and at medium
voltage distribution level, and particularly where fibre is pre-installed. Based on discussions with end users and potential
partners, the impacts of taking the technology towards market through this project are described below:
1. Reduced costs to consumers through savings on network operators' costs:
Synaptec and Strathclyde's conversations with major UK power network operators have shown that deployment of this
technology could vastly reduce the cost of instrumenting network sections by up to 90% by removing the requirements for
civil infrastructure investment in sensing locations, and by eliminating the need for supporting telecommunications and
power supplies. The financial benefits accrued by network operators must be passed on as cost savings to their customers,
ultimately reducing the cost of electrical utility bills in the UK.
2. Improved security of energy supply:
By providing a cost-effective method to provide more extensive instrumentation and protection of the power transmission
and distribution network, the large-scale affordable deployment of the technology will curtail the impact of faults (e.g. short
circuits), leading to a reduction in both the duration and the geographical reach of power outages (black-outs) experienced
by energy customers in the UK. This in turn leads to further savings for network operators by reducing penalty metrics such
as customer-minutes-lost.
3. Reduced emissions through integration of low-carbon technologies:
The provision of extensive, cost-effective visibility of the network status at all points on the system increases its
responsiveness and stability. This level of awareness and control is crucial to enabling network operators to permit higher
levels of renewable generation and energy storage devices to be connected to the network. Enabling a higher penetration
of renewables will lead to a reduction in carbon emissions and will contribute to a more sustainable and diversified future
energy system.
This project is likely therefore to have both large scientific and economic impact which will be ensured through continual
engagement with UK industry which stands to benefit greatly from the development and ultimate commercialisation of this
innovative technology.

Publications

10 25 50
 
Description For the first time, the consortium carried out testing and pre-qualification of hybrid fibre Bragg grating (FBG) piezoelectric sensors configured to measure electric current to specific IEC standards for instrument current transformers, proving that the transducers are capable of meeting at least the 5P10 protection class. Furthermore, the consortium has initiated lifetime accelerated testing of the transducers, necessary for successful commercialisation of this technology.
Exploitation Route The findings now form the basis for further concentrated investigations of the novel sensor technology. This will be carried out as part of a follow-on 3-year research project funded by the Innovate UK Mid-stage Energy Catalyst award. Furthermore, the findings will assist the industrial partner on the consortium, Synaptec, to continue to develop the technology and exploit it commercially.
Sectors Aerospace, Defence and Marine,Electronics,Energy

URL https://pure.strath.ac.uk/admin/files/46622324/1433_Frequency_response_of_ORC_4_page.pdf
 
Description Synaptec is commercialising the technology that was developed as part of this research programme. Synaptec's initial growth phase was focused on the development of core sensor technology, predominantly funded by Government grant funding and private investment. Synaptec has now entered a second phase of growth to establish commercial partnerships with relevant business partners and end-user customers. Revenues from commercial contracts now form a substantial proportion of funding dedicated to technology development and building other key company operations. Synaptec now employs 22 full-time personnel and has a turnover of £750k.
Sector Education,Energy
Impact Types Societal,Economic

 
Description Accelerating impact of the distributed photonic sensors technology on the electricity supply industry
Amount £34,126 (GBP)
Organisation Engineering and Physical Sciences Research Council (EPSRC) 
Sector Public
Country United Kingdom
Start 04/2017 
End 03/2020
 
Description Impact Acceleration Account
Amount £38,192 (GBP)
Organisation Engineering and Physical Sciences Research Council (EPSRC) 
Sector Public
Country United Kingdom
Start 01/2018 
End 12/2018
 
Description Metrology for the next-generation digital substation instrumentation EURAMET
Amount £79,273 (GBP)
Funding ID 17IND06 FutureGrid II 
Organisation European Commission H2020 
Sector Public
Country Belgium
Start 06/2018 
End 05/2021
 
Description Mid-Stage Innovate UK Energy Catalyst
Amount £411,481 (GBP)
Funding ID 59004-431174 
Organisation Innovate UK 
Sector Public
Country United Kingdom
Start 06/2016 
End 05/2019
 
Description Yes to Energy Through Innovative Sensing (YETIS)
Amount £374,384 (GBP)
Funding ID 105638 
Organisation Innovate UK 
Sector Public
Country United Kingdom
Start 12/2019 
End 11/2021
 
Title New facility for accuracy and accelerated lifetime testing of current transducers 
Description A new unique facility for accuracy and accelerated lifetime testing of current transducers has been established in the Department for electronic and Electrical Engineering at Strathclyde. 
Type Of Material Improvements to research infrastructure 
Provided To Others? No  
Impact The facility will enable us to perform testing, calibration and qualification of electric current transducers according to the established industry standards and also to offer accelerated lifetime testing of transducers to establish their longevity and commercial readiness. This will enable us to participate in follow-on work on the development and improvement of these novel sensor technologies. 
 
Title Accuracy data produced from the testing of low-cost distributed, multi-parameter sensors. The files in this dataset were created by testing novel optically-interrogated current sensors against the requirements of IEC-61869-8 (replacing the old IEC-60044-8 
Description Accuracy data produced from the testing of low-cost distributed, multi-parameter sensors. The files in this dataset were created by testing novel optically-interrogated current sensors against the requirements of IEC-61869-8 (replacing the old IEC-60044-8). Specifically, these are the results obtained by applying the standard accuracy type tests to the novel sensors. A Readme file is included with the datasets. 
Type Of Material Database/Collection of data 
Year Produced 2016 
Provided To Others? Yes  
Impact Collaboration with Synaptec and other industry partners. 
URL https://pure.strath.ac.uk/portal/en/datasets/lowcost-distributed-multiparameter-sensing-for-energy-n...
 
Title Low-Cost Distributed Multi-Parameter Sensing for Energy Networks (InnovateUK Catalyst) 
Description Accuracy data produced from the testing of low-cost distributed, multi-parameter sensors. The files in this dataset were created by testing novel optically-interrogated current sensors against the requirements of IEC-61869-8 (replacing the old IEC-60044-8). Specifically, these are the results obtained by applying the standard accuracy type tests to the novel sensors. A Readme file is included with the datasets. 
Type Of Material Database/Collection of data 
Year Produced 2017 
Provided To Others? Yes  
Impact Unknown 
 
Description Collaboration partnership on the Mid-Stage Innovate UK Energy Catalyst Bid 
Organisation Bellrock Ltd
Country United Kingdom 
Sector Private 
PI Contribution The consortium was established to jointly carry out a new R&D project, a follow up to the present project. Strathclyde's contribution is to offer know how in the core technology and to establish a unique testing facility for instrument transformers or sensors.
Collaborator Contribution NPL will bring in expertise in metrology, ITL in instrument transformers, Bellrock in cloud-based condition monitoring systems, and PNDC will offer expertise and facilities to test the new transducers.
Impact A successful Mid-Stage Innovate UK Energy Catalyst Award.
Start Year 2015
 
Description Collaboration partnership on the Mid-Stage Innovate UK Energy Catalyst Bid 
Organisation Instrument Transformers Ltd
Country United Kingdom 
Sector Private 
PI Contribution The consortium was established to jointly carry out a new R&D project, a follow up to the present project. Strathclyde's contribution is to offer know how in the core technology and to establish a unique testing facility for instrument transformers or sensors.
Collaborator Contribution NPL will bring in expertise in metrology, ITL in instrument transformers, Bellrock in cloud-based condition monitoring systems, and PNDC will offer expertise and facilities to test the new transducers.
Impact A successful Mid-Stage Innovate UK Energy Catalyst Award.
Start Year 2015
 
Description Collaboration partnership on the Mid-Stage Innovate UK Energy Catalyst Bid 
Organisation National Physical Laboratory
Country United Kingdom 
Sector Academic/University 
PI Contribution The consortium was established to jointly carry out a new R&D project, a follow up to the present project. Strathclyde's contribution is to offer know how in the core technology and to establish a unique testing facility for instrument transformers or sensors.
Collaborator Contribution NPL will bring in expertise in metrology, ITL in instrument transformers, Bellrock in cloud-based condition monitoring systems, and PNDC will offer expertise and facilities to test the new transducers.
Impact A successful Mid-Stage Innovate UK Energy Catalyst Award.
Start Year 2015
 
Description Collaboration partnership on the Mid-Stage Innovate UK Energy Catalyst Bid 
Organisation University of Strathclyde
Department Power Network Demonstration Centre
Country United Kingdom 
Sector Academic/University 
PI Contribution The consortium was established to jointly carry out a new R&D project, a follow up to the present project. Strathclyde's contribution is to offer know how in the core technology and to establish a unique testing facility for instrument transformers or sensors.
Collaborator Contribution NPL will bring in expertise in metrology, ITL in instrument transformers, Bellrock in cloud-based condition monitoring systems, and PNDC will offer expertise and facilities to test the new transducers.
Impact A successful Mid-Stage Innovate UK Energy Catalyst Award.
Start Year 2015
 
Description Mid stage I UK Partners 
Organisation Synaptec Ltd
Country United Kingdom 
Sector Private 
PI Contribution Research
Collaborator Contribution Application
Impact Sensor hardware and software
Start Year 2016
 
Company Name Synaptec Ltd 
Description Synaptec reduces electrical power transmission costs through reducing outages, preventing circuit damage, and minimizing civil works. Synaptec provides instrumentation that utilises existing optical fibres installed within power systems to enhance network protection and fault identification. 
Year Established 2014 
Impact Synaptec is a direct beneficiary of the current project. It is Synaptec's technology that was subject of R&D in the project.
Website http://synapt.ec/
 
Description Conference Tutorial at the International Instrumentation and Measurement Technology Conference (I2MTC 2020) 
Form Of Engagement Activity A talk or presentation
Part Of Official Scheme? No
Geographic Reach International
Primary Audience Professional Practitioners
Results and Impact The tutorial is meant at 'educating' professionals and postgraduate students who attend the IEEE I2MTC conference on the topic of the tutorial which was derived from the themes and outcomes covered by the award.
Year(s) Of Engagement Activity 2020
URL https://i2mtc2020.ieee-ims.org/tutorial-program
 
Description Confernece Tutorial at the Inernational Instrumentation and Measurmenet Technology Conference (I2MTC 2018) 
Form Of Engagement Activity A talk or presentation
Part Of Official Scheme? No
Geographic Reach International
Primary Audience Industry/Business
Results and Impact This tutorial will cover many of the findings from the project and will highlight the important applications within the are of power system measurement, control and protection. This will target audiences that are not normally exposed to photonics or power system metrology hence this is a highly effective means of reaching alternative audiences.
Year(s) Of Engagement Activity 2018
URL http://imtc.ieee-ims.org/pages/tutorials-program
 
Description IEEE I2MTC 2019 Tutorial 
Form Of Engagement Activity A talk or presentation
Part Of Official Scheme? No
Geographic Reach International
Primary Audience Professional Practitioners
Results and Impact I was invited to give a talk about the topics covered by the project: "Distributed Photonic Sensing For Power and Energy Industries". The presentation was very well received, and I was invited again to give a similar tutorial at the IEEE I2MTC 2020.
Year(s) Of Engagement Activity 2019
URL https://i2mtc2019.ieee-ims.org/pages/tutorial-schedule
 
Description Industry Engagement Workshop 
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 The industry engagement workshop was organised to inform the key stakeholders interested in this technology about the project, its objectives and intended outcomes and to establish applications and markets for the technology developed within the project.
Year(s) Of Engagement Activity 2015