Ultrasonic measurement of H2 & H2 Blends to enable a sustainable energy future for all (H2MET)

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

Abstract

The primary aim of the H2METproject is to carryout fundamental research into design of ultrasound transducers applicable to the emerging industrial hydrogen metering requirement, particularly devices that are able to operate at elevated pressure (up to 1000bar in extreme cases). Specifically, this PhD project would involve:
(1) Simulation (finite element) to study behaviour of novel ultrasonic transducer design(s) for operation in pressurised H2 (both pure & blends of various combinations) that might be encountered in hydrogen use cases.
(2) Proof-of-concept prototype fabrication/characterisation of novel transducers to generate/receive strong ultrasonic signal for measurement in H2 and other unconventional gases.
(3) Test POC prototype transducer in H2 loop (NEL Facility) to demonstrate viability in N2/H2/CH4 blends in atmospheric pressure and also at Hy-Met test setup at Tyseley Energy Park for H2/other blends at slightly elevated pressure (max 150 bar).

Planned Impact

FUSE has been designed to maximise impact in partnership with industry, international academics, and other organisations such as NPL and the NHS. It includes funded mechanisms to deal with opportunities in equality, diversity and integration (EDI) and in realisation of impactful outcomes.

EDI is aimed at realising the full potential of the talented individuals that join FUSE. Funding mechanisms include support for ten undergraduate internships to prime the pipeline into FUSE research studentships; part-time studentships reserved for people with specific needs to access this route; and talent scholarships for people from Widening Participation backgrounds. Additionally, cultural issues will be addressed through funded support for work life-balance activities and for workshops exploring the enhancement of research creativity and inventiveness through diversity.

People: As a community, FUSE will contribute to impact principally through its excellent training of outstanding people. At least 54 EngD and PhD graduates will emerge with very high value skills from the experience FUSE will provide in ultrasonics and through highly relevant professional skills. This will position them perfectly as future leaders in ultrasonics in the types of organisation represented by the partners.

Knowledge: FUSE will also create significant knowledge which will be captured in many different forms including industrial know-how, patents and processes, designs, and academic papers. Management of this knowledge will be integrated into the students' training, including data management and archival, and will be communicated effectively to those in positions to exploit it.

Economic Gain: In turn, the people and knowledge will lead to the economic impact that FUSE is ultimately designed to generate. The close interaction between the FUSE academics, its research students and industry partners will make it particularly efficient and, since FUSE includes both suppliers and customers, the transition from knowledge creation to exploitation will be accelerated.

Societal Benefit: FUSE is well placed to deliver a number of societal benefits which will reinforce our researcher training and external partner impacts. This activity encompasses new consumer products; improved public safety through advanced inspection across many industrial sectors; and new modalities for medical surgery and therapy. In addition, FUSE will provide engaging demonstrators to promote education in science, technology, engineering and maths, helping replenish the FUSE pipeline and supporting growth of the FUSE community far beyond its immediate members.

Impactful outcomes will gain from several specific funding mechanisms: horizon scanning workshops will focus on specific ultrasonic engineering application areas with industrial and other external participation; all FUSE students will have external partners and both industrial and international academic secondments will be arranged, as well as EngD studentships primarily in industry; and industry case studies will be considered. There will also be STEM promotion activity, funding ultrasonic technology demonstrators to support school outreach and public science and engineering events.

Publications

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Studentship Projects

Project Reference Relationship Related To Start End Student Name
EP/S023879/1 01/07/2019 31/12/2027
2744589 Studentship EP/S023879/1 19/09/2022 18/09/2026 Adel Gani