Title
Underpinning Power Electronics - Integrated Drives

CoPED ID
2c0e017d-eff2-44d8-b86b-71f3a9e33d9d

Status
Closed


Value
£10,205,610

Start Date
June 30, 2013

End Date
Oct. 31, 2017

Description

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An electric drive, defined as a system which includes a power electronic converter, an electrical machine and a controller, is a key enabling technology which is penetrating into almost all sectors of industry, and has particularly exciting opportunities in aerospace, automotive, renewable energy generation and industrial processes as well as consumer products. It facilitates cost effective and efficient renewable energy generation, enables the adoption of "more electric aircraft" technology, and provides traction power for electric propulsions in railways, ships and cars. The world market for industrial drives alone is over £8.5 billion and has grown between 2% and 5% above the industrial average over the past 30 years, driven by (1) the growth of industrial automation for better quality, productivity and management, and (2) energy saving for cost reduction opportunities which are increasingly supported by regulations such as the climate change levy (UK Department for Business Innovation and Skill report: Power Electronics Strategy for Success, http://www.bis.gov.uk/assets/biscore/business-sectors/docs/p/11-1073-power-electronics-strategy-for-success).

Advances in electric drives therefore are not only crucial for the UK's economic growth and competitiveness but also has the potential to make a huge contribution to the low carbon economy as well as to achieve the UK Government target of 15% of all energy generation to come from renewable sources by 2020.

While electric drive technology could be considered as established, many challenges lie ahead, including adding new functionality, improving efficiency and compactness in drives as well as the overall system, better availability and condition monitoring, increasing power density and ability to operate in adverse environments. Underlying all of this is the drive for lower costs. The technology is advancing rapidly, and new developments in components and customer requirements in emerging markets such as automotive, aerospace and renewable energy need to be embraced quickly to maintain a competitive advantage. The constraints on material supply chains, such as rare earth magnets, have to be addressed too.

This theme will encompass research ranging from the physical integration of the drive, to the design of components, through to the integrated design of the system, using a holistic approach. The ultimate aim of this research will be to advance a selection of the following challenges: Increased Efficiency; Increased Power Density; Greater Functionality; Increased Robustness; Higher Levels of Integration; Lower EMI and Lower Life Cycle Costs, many of which will embrace transformational research topics as opposed to incremental advances. Lower costs will be a key over-arching feature of the theme: although certain cost functions relating to manufacture are to a certain degree independent of this programme, the research will endeavour to reduce component and life-cycle costs and maintain a close working collaboration with the industrial partners to ensure manufacturing costs are not ignored.

A systems approach in this theme is essential. Devices and converter concepts will be developed under other themes and, with the exception of the machine and controller, this aspect is about integration. Modelling tools will be developed to enable system optimisation, so that motor, converter and load trade-offs can be understood, enabling design for maximum efficiency, life cycle costs or power density. Finally, this progresses into the topic of design for manufacture.


More Information

Potential Impact:
This proposal forms part of the Virtual Centre for Excellence in Power Electronics (VCPE). Outputs from research conducted in this theme will be communicated to the wider academic community and to industrial collaborators via the Hub of the Virtual Centre. Investigators on this theme form part of the Hub organisation and are integral to its operation. Readers are referred to the Hub proposal for further information.

The Virtual Centre for Excellence in Power Electronics (VCPE) Pathways to Impact plan has 4 Key Performance Indicators:

1.Centre brand established as the natural point of contact for academic power electronics expertise in UK.
2.Evidence of the exploitation of Centre research to the long-terms benefit of the UK e.g. through continued support (TSB, direct industrial etc.), licensing of IP, spin-out activities, new business, new jobs.
3.Evidence of the impact of the Centre on relevant policy making bodies and on the perception of power electronics by the public.
4.Collaborative links established with leading academic groups and other relevant organisations.

In relation to contribution to national and international policy, the Hub will contribute, where appropriate, to the development of relevant policy through engagement with national government, national and international funding bodies and professional societies. A number of core members of the Centre already have the opportunity to influence policy makers through direct links with civil servants and advisor roles in a number of funding bodies and professional societies in the UK including the Electronic Systems and Photonics Knowledge Transfer Network, Power Electronics UK and the Energy Technologies Institute. Professors Mawby and Johnson are both members of the steering group for Power Electronics UK.

Barrie Mecrow PI_PER
Philip Mellor COI_PER
Volker Pickert COI_PER
Greg Asher COI_PER
Christopher Gerada COI_PER
J Wang COI_PER
Sandy Smith COI_PER
David Drury COI_PER
Zi-Qiang Zhu COI_PER
Judith Apsley COI_PER

Subjects by relevance
  1. Renewable energy sources
  2. Energy production (process industry)
  3. Power electronics
  4. Electronics industry
  5. Industry
  6. Costs
  7. Energy technology
  8. Energy efficiency
  9. Cost effectiveness
  10. Energy policy
  11. Technology

Extracted key phrases
  1. Underpinning Power Electronics
  2. Power Electronics UK
  3. Power Electronics Strategy
  4. Electric drive technology
  5. Power density
  6. Industrial drive
  7. Power electronic converter
  8. Integrated Drives
  9. Quot;more electric aircraft&quot
  10. Academic power electronic expertise
  11. Efficient renewable energy generation
  12. Lower Life cycle cost
  13. Electric propulsion
  14. Life cycle cost
  15. Cost reduction opportunity

Related Pages

UKRI project entry

UK Project Locations
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