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NASA NTRS · 20260003867

Cryogenic Fuel Aviation – Challenges and Opportunities

Abstract

NASA aeronautics goals include pioneering new technology to increase efficiency and reduce emissions from air travel. The feasibility of using of on-board cryogenic fuels systems in combination with fuel cells, high efficiency engines, and electric motors for high efficiency commercial transport aircraft is being examined at NASA in collaborations with external partners. Growing emphasis on next generation air transportation resulted in the development of strategic investigations into cryogenic fuels aviation, including roadmaps for maturing new technologies, needs to improve testing and manufacturing capabilities, and the requirements for establishing regulatory and certification standards. A NASA cross-organizational multidisciplinary project team is exploring new aircraft architectures, enabling materials, and the engineering challenges associated with cryogenic fuels for aircraft. The engineering challenges include high performance cryogenic, thermal management, and power/propulsion components and subsystems to tackle the challenging problem of development of commercially viable aircraft that would radically transform air transportation.

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Vadim F Lvovich, Wesley L Johnson, Ian J Jakupca, H Douglas Perkins, Thomas M Lavelle, Hashmatullah Hasseeb, Ezra O McNichols, F David Koci, Sandi G Miller, Stephanie L Vivod, Sadeq Malakooti, Joseph J Pinakidis, Zhimin Zhong, Brett A Bednarcyk, Evan J Pineda, Brandon L Hearley, Rula M Coroneos, Joshua Stuckner, Christopher L Hartman, Mahtab Fox. Cryogenic Fuel Aviation – Challenges and Opportunities. https://ntrs.nasa.gov/citations/20260003867

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