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A comparative assessment of alternative liquid hydrogen heat exchanger architectures for fuel preconditioning in turboshaft engines

dc.contributor.authorEbrahimi, Alireza
dc.contributor.authorRolt, Andrew Martin
dc.contributor.authorSanders, Drewan S.
dc.date.accessioned2026-06-25T14:30:44Z
dc.date.available2026-06-25T14:30:44Z
dc.date.freetoread2026-06-25
dc.date.issued2026-06
dc.date.pubOnline2026-06-01
dc.description.abstractHeat exchanger integration is a key design consideration for engines adapted to run on hydrogen and requiring liquid hydrogen to be preheated prior to combustion. For a typical small turboshaft, a comparison is made of fuel heating via an intercooler, a recuperator, or both in combination. This steady-state, zero-dimensional thermodynamic assessment examines the overall performance effects of the heat exchanger installations, heat loads and setpoint temperatures. It shows that exhaust gas recuperation provides up to 15% SFC reduction relative to an engine using power offtake for fuel preconditioning, with an average reduction of 14% across the evaluated operating points. Fuel heating via an intercooler is constrained by off-design and low-temperature thermal management requirements, so it only gives modest SFC benefits and will reduce specific power unless the engine is substantially redesigned. Within the evaluated design space, the combined intercooled and recuperated arrangement does not provide the lowest SFC, but it offers a balanced heat load distribution that may help to mitigate the risk of local air-side icing in the heat exchangers. Unlike previous works that considered turbofan engine architectures, this study focuses on turboshaft and turbogenerator installations where shaft power objectives and operating constraints determine the relative merits of alternative heat exchanger integration strategies. It includes an assessment of potential effects on NOx emissions as well as SFC. The study provides guidance for preliminary design and sizing of heat exchangers for fuel thermal management, but analysis of transients in the cryogenic systems and detailed assessments of aircraft-level integration penalties will be specific to particular engine applications and are beyond the scope of the present study.
dc.description.journalNameHydrogen
dc.description.sponsorshipThe work was supported by Innovate UK, part of UK Research and Innovation (UKRI), for funding the UK Aerospace Technology Institute (ATI) project, Future Engine Technology for the Control of Hydrogen (FETCH), under grant agreement No: 10065215.
dc.identifier.citationEbrahimi A, Rolt A, Sanders D. (2026) A comparative assessment of alternative liquid hydrogen heat exchanger architectures for fuel preconditioning in turboshaft engines. Hydrogen, Volume 7, Issue 2, June 2026, Article number 74en_UK
dc.identifier.eissn2673-4141
dc.identifier.elementsID870928
dc.identifier.issn2673-4141
dc.identifier.issueNo2
dc.identifier.paperNo74
dc.identifier.urihttps://doi.org/10.3390/hydrogen7020074
dc.identifier.urihttps://dspace.lib.cranfield.ac.uk/handle/1826/25330
dc.identifier.volumeNo7
dc.languageEnglish
dc.language.isoen
dc.publisherMDPIen_UK
dc.publisher.urihttps://www.mdpi.com/2673-4141/7/2/74
dc.rightsAttribution 4.0 Internationalen
dc.rights.urihttp://creativecommons.org/licenses/by/4.0/
dc.subject40 Engineeringen_UK
dc.subject4017 Mechanical Engineeringen_UK
dc.subject4002 Automotive Engineeringen_UK
dc.subject13 Climate Actionen_UK
dc.subjectliquid hydrogenen_UK
dc.subjectLH2en_UK
dc.subjectheat exchangeren_UK
dc.subjectaircraft engineen_UK
dc.subjectfuel systemen_UK
dc.subjectturboshaften_UK
dc.titleA comparative assessment of alternative liquid hydrogen heat exchanger architectures for fuel preconditioning in turboshaft enginesen_UK
dc.typeArticle
dcterms.dateAccepted2026-05-20

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