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    Design and Evaluation of a Multitubular Catalytic Membrane Reactor for Onboard Ammonia Cracking in Commercial Aviation

    Source: ASME Open Journal of Engineering:;2025:;volume( 004 ):;issue:00::page 63
    Author:
    Guo, Siyu
    ,
    Mercangöz, Mehmet
    DOI: 10.1115/1.4069334
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: Abstract. Ammonia is a promising zero-carbon fuel for aviation, but its low flame speed and high ignition temperature hinder direct use in gas turbines. While a blend of ammonia and hydrogen can enable stable combustion, supplying hydrogen onboard through storage poses significant technical challenges. To address this, we propose an onboard ammonia cracking system based on a novel multitubular catalytic membrane reactor that can decompose ammonia to hydrogen during flight. The reactor comprises 16 microtubes (1.05 m length, 0.1 m outer, 0.04 m inner diameter), each featuring a 0.75 m palladium membrane section for hydrogen separation and a 0.3 m silica membrane section for nitrogen removal. A detailed simulation model incorporating reaction kinetics, multicomponent diffusion, and permeation behavior is developed to assess performance. At 450 °C and 30 bar, the system achieves over 98.9% ammonia conversion with minimal pressure drop, processing up to 180 g/s per tube. Sensitivity analyses confirm strong thermal efficiency, scalability, and reactor stability under varying flow and packing conditions. The system is benchmarked against the fuel demands of Rolls-Royce Trent 900 and GP7000 engines, demonstrating feasibility for integration into large commercial aircraft such as the Airbus A380. This design offers a viable pathway toward zero-carbon, hydrogen-ammonia sustainable aviation fuel systems.
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      Design and Evaluation of a Multitubular Catalytic Membrane Reactor for Onboard Ammonia Cracking in Commercial Aviation

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    https://yetl.yabesh.ir/yetl1/handle/yetl/4315838
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    contributor authorGuo, Siyu
    contributor authorMercangöz, Mehmet
    date accessioned2026-08-23T07:56:35Z
    date available2026-08-23T07:56:35Z
    date copyright2025/01/01
    date issued2025
    identifier otheraoje-25-1087.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4315838
    description abstractAbstract. Ammonia is a promising zero-carbon fuel for aviation, but its low flame speed and high ignition temperature hinder direct use in gas turbines. While a blend of ammonia and hydrogen can enable stable combustion, supplying hydrogen onboard through storage poses significant technical challenges. To address this, we propose an onboard ammonia cracking system based on a novel multitubular catalytic membrane reactor that can decompose ammonia to hydrogen during flight. The reactor comprises 16 microtubes (1.05 m length, 0.1 m outer, 0.04 m inner diameter), each featuring a 0.75 m palladium membrane section for hydrogen separation and a 0.3 m silica membrane section for nitrogen removal. A detailed simulation model incorporating reaction kinetics, multicomponent diffusion, and permeation behavior is developed to assess performance. At 450 °C and 30 bar, the system achieves over 98.9% ammonia conversion with minimal pressure drop, processing up to 180 g/s per tube. Sensitivity analyses confirm strong thermal efficiency, scalability, and reactor stability under varying flow and packing conditions. The system is benchmarked against the fuel demands of Rolls-Royce Trent 900 and GP7000 engines, demonstrating feasibility for integration into large commercial aircraft such as the Airbus A380. This design offers a viable pathway toward zero-carbon, hydrogen-ammonia sustainable aviation fuel systems.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleDesign and Evaluation of a Multitubular Catalytic Membrane Reactor for Onboard Ammonia Cracking in Commercial Aviation
    typeJournal Paper
    journal volume4
    journal titleASME Open Journal of Engineering
    identifier doi10.1115/1.4069334
    journal fristpage63
    journal lastpage102
    page40
    treeASME Open Journal of Engineering:;2025:;volume( 004 ):;issue:00
    contenttypeFulltext
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