CIESC Journal ›› 2025, Vol. 76 ›› Issue (10): 5390-5401.DOI: 10.11949/0438-1157.20250367
• Energy and environmental engineering • Previous Articles Next Articles
Qingwei ZHAI1(
), Jinhui LIN2, Yanfeng LI3, Dongxu HAN3(
), Xiaohua WU3, Peng WANG3, Yujie CHEN3, Bo YU4
Received:2025-04-09
Revised:2025-05-21
Online:2025-11-25
Published:2025-10-25
Contact:
Dongxu HAN
翟庆伟1(
), 林锦辉2, 李彦锋3, 韩东旭3(
), 吴小华3, 王鹏3, 陈宇杰3, 宇波4
通讯作者:
韩东旭
作者简介:翟庆伟(1993—),男,博士研究生,zhaiqingwei6@163.com
基金资助:CLC Number:
Qingwei ZHAI, Jinhui LIN, Yanfeng LI, Dongxu HAN, Xiaohua WU, Peng WANG, Yujie CHEN, Bo YU. Exergy analysis of novel pump-thermal synergistic pressurization liquid hydrogen refueling station system[J]. CIESC Journal, 2025, 76(10): 5390-5401.
翟庆伟, 林锦辉, 李彦锋, 韩东旭, 吴小华, 王鹏, 陈宇杰, 宇波. 新型泵-热协同增压液氢加氢站系统㶲分析[J]. 化工学报, 2025, 76(10): 5390-5401.
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Fig.5 Variations of exergy destruction and exergy efficiency during the pump-thermal synergistic pressurization process under different pressure vessel parameters
Fig.6 Variations of exergy destruction and exergy efficiency of key components during the hydrogen refueling process under different ambient temperatures
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