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Technology exploration of zero-emission regional aircraft: why, what, when and how?

dc.contributor.authorPontika, Evangelia
dc.contributor.authorLaskaridis, Panagiotis
dc.contributor.authorAnsell, Phillip J.
dc.contributor.authorHaran, Kiruba
dc.contributor.authorNavaratne, Rukshan
dc.contributor.authorKipouros, Timoleon
dc.date.accessioned2026-03-09T12:58:32Z
dc.date.available2026-03-09T12:58:32Z
dc.date.freetoread2026-03-09
dc.date.issued2026-01-01
dc.date.pubOnline2026-02-12
dc.description.abstractThe paper focuses on the exploration and comparison of zero-emission technology strategies for regional aircraft. While significant progress is made on the development of technologies, systems and aircraft configurations, major challenges and uncertainties mean that various strategies are considered but are difficult to compare as they rely on different technologies, metrics, requirements, maturity levels and sustainability targets. A novel, holistic approach that captures inter-dependencies, synergies and combined impact of technologies is developed to evaluate the feasibility of such aircraft over 2 horizons, quantify performance and emissions through various phases of the life cycle, establish technology bottlenecks and required step changes and classify developments in terms of impact and risk. For at least 30 passengers at 300 nmi, significant advances are required for fuel cells (2 kW/kg), electric machines (13 kW/kg), power distribution ( > 1.5 kVolts), and thermal management systems (3.5 kW/kg and 3.5 kW/kW). These will lead to major mission level ( + 90%) and lifecycle energy penalties (up to + 177%) with a carbon intensity level of 6.5 kgCO2/kgH2 (ex. blue, turquoise, green hydrogen) required to breakeven current CO2 levels. Step changes including superconductivity and high temperature fuel cells, along with aircraft mass and drag reductions are required to increase capacity to pax > 40 and 800 nmi, and achieve energy reductions against existing designs. The energy density of batteries and the need of gas turbines to meet diversion and hold requirements limit full electric variants to 30 passengers at 200 nmi with 480 Wh/kg battery energy density but they can offer an exceptional energy per passenger benefit ( ∼ 40% reduction) against current aircraft.
dc.description.journalNameProgress in Aerospace Sciences
dc.identifier.citationPontika E, Laskaridis P, Ansell PJ, et al., (2026) Technology exploration of zero-emission regional aircraft: why, what, when and how?. Progress in Aerospace Sciences, Volume 160, January 2026, Article number 101171en_UK
dc.identifier.elementsID867759
dc.identifier.issn0376-0421
dc.identifier.paperNo101171
dc.identifier.urihttps://doi.org/10.1016/j.paerosci.2025.101171
dc.identifier.urihttps://dspace.lib.cranfield.ac.uk/handle/1826/24928
dc.identifier.volumeNo160
dc.languageEnglish
dc.language.isoen
dc.publisherElsevieren_UK
dc.publisher.urihttps://www.sciencedirect.com/science/article/pii/S0376042125000971?via%3Dihub
dc.relation.isreferencedbyhttps://doi.org/10.57996/cran.ceres-2809
dc.rightsAttribution 4.0 Internationalen
dc.rights.urihttp://creativecommons.org/licenses/by/4.0/
dc.subject40 Engineeringen_UK
dc.subject7 Affordable and Clean Energyen_UK
dc.subject13 Climate Actionen_UK
dc.subjectAerospace & Aeronauticsen_UK
dc.subject4001 Aerospace engineeringen_UK
dc.subjectFuel cellsen_UK
dc.subjectBatteriesen_UK
dc.subjectHydrogenen_UK
dc.subjectAviationen_UK
dc.subjectRoadmapsen_UK
dc.titleTechnology exploration of zero-emission regional aircraft: why, what, when and how?en_UK
dc.typeArticle
dcterms.dateAccepted2025-12-08

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