Synergistic Technology Combinations for Future Commercial Aircraft Using Liquid Hydrogen

被引:23
|
作者
Rompokos, Pavlos [1 ]
Rolt, Andrew [1 ]
Nalianda, Devaiah [1 ]
Isikveren, Askin T. [2 ]
Senne, Capucine [2 ]
Gronstedt, Tomas [3 ]
Abedi, Hamidreza [3 ]
机构
[1] Cranfield Univ, Power & Prop Ctr, Bedford MK43 0AL, England
[2] SAFRAN SA, Dept Energy & Prop, F-78117 Chateaufort, France
[3] Chalmers Univ Technol, Dept Mech & Maritime Sci, SE-41296 Gothenburg, Sweden
基金
欧盟地平线“2020”;
关键词
DESIGN;
D O I
10.1115/1.4049694
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Liquid hydrogen (LH2) has long been seen as a technically feasible fuel for a fully sustainable greener aviation future. The low density of the cryogenic fuel would dictate the redesign of commercial aircraft to accommodate the large tanks, which are unlikely to be integrated within the whole internal volume of the wing. In the ENABLEH2 project, the morphological aspects of a LH2 aircraft design are discussed and a methodology for rapid concept comparative assessment is proposed. An exercise is then carried on to down-select short-to-medium range (SMR) and long-range (LR) concepts, able to carry 200 passengers for 3000 nmi and 414 passengers for 7500 nmi, respectively. The down-selection process was split into two phases with the first considering 31 potential air-frame architectures and 21 propulsion-system arrangements. The second phase made the final down-selections from a short-list of nine integrated design concepts that were ranked according to 34 criteria, relating to operating cost, revenue, noise, and safety. Upon completion of the process, a tube and wing design with the tanks integrated into extended wing roots, and a blended-wing-body design were selected as the best candidates for the SMR and LR applications, respectively. Both concepts feature distributed propulsion to maximize synergies from integrating the airframe and propulsion systems.
引用
收藏
页数:8
相关论文
共 50 条
  • [21] Military Technology Pull and the Structure of the Commercial Aircraft Industry
    Collopy, P.D., 1600, American Institute of Aeronautics and Astronautics Inc. (41):
  • [22] Development of the Future Aircraft Propulsion System Based on HTS Electrical Equipment With Liquid Hydrogen Cooling
    Dezhin, D. S.
    Dezhina, I. N.
    IEEE TRANSACTIONS ON APPLIED SUPERCONDUCTIVITY, 2022, 32 (04)
  • [23] Future Perspectives of Commercial Vehicle Technology
    Müller, Hildegard
    ATZheavy Duty Worldwide, 2024, 17 (02) : 7 - 7
  • [24] Hydrogen powered aircraft : The future of air transport
    Khandelwal, Bhupendra
    Karakurt, Adam
    Sekaran, Paulas R.
    Sethi, Vishal
    Singh, Riti
    PROGRESS IN AEROSPACE SCIENCES, 2013, 60 : 45 - 59
  • [25] Technology for the More and All Electric Aircraft of the Future
    Wheeler, Pat
    2016 IEEE INTERNATIONAL CONFERENCE ON AUTOMATICA (ICA-ACCA), 2016,
  • [26] Influence of Technology Trends on Future Aircraft Architecture
    Kellari, Demetrios
    Crawley, Edward F.
    Cameron, Bruce G.
    JOURNAL OF AIRCRAFT, 2017, 54 (06): : 2213 - 2227
  • [27] THE PROSPECTS FOR LIQUID-HYDROGEN FUELED AIRCRAFT
    BREWER, GD
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 1982, 7 (01) : 21 - 41
  • [28] A review of liquid hydrogen aircraft and propulsion technologies
    Tiwari, Saurav
    Pekris, Michael J.
    Doherty, John J.
    International Journal of Hydrogen Energy, 2024, 57 : 1174 - 1196
  • [29] Hydrogen energy technology for future
    Pugazhendhi, Arivalagan
    Chen, Wei-Hsin
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2022, 47 (88) : 37153 - 37153
  • [30] Design and Integration of a Liquid Hydrogen Tank on an Aircraft
    Parello, Romain C.
    Gourinat, Yves
    Benard, Emmanuel
    Defoort, Sebastien
    AIAA SCITECH 2024 FORUM, 2024,