TY - JOUR
T1 - Thermodynamic analysis and optimal design of the sub-cooled liquid hydrogen centrifugal pump for hydrogen refueling station
AU - Shi, Ting
AU - Sun, Jieshuai
AU - Feng, Jianmei
AU - Peng, Xueyuan
N1 - Publisher Copyright:
© 2026 Elsevier Ltd. All rights are reserved, including those for text and data mining, AI training, and similar technologies.
PY - 2026/9/30
Y1 - 2026/9/30
N2 - In a sub-cooled liquid hydrogen refueling station, the centrifugal pump is the most critical component to pressurize the liquid hydrogen into a subcooled state to achieve efficient storage. The thermodynamic behavior of the pump significantly affects its subcooling level and efficiency, but the response mechanisms are lacking. Therefore, the thermodynamic model incorporating heat transfer, turbulence, cavitation, and cryogenic liquid hydrogen is presented. Quantitative influence and percentage contribution of critical structural factors to the head and isentropic efficiency by signal-to-noise ratio and analysis of variance are investigated. Multi-optimization is conducted by grey relational analysis. Results suggest that the head increases with the increase of outlet width, axial length, and number of blades, while decreasing with the leading edge. The isentropic efficiency first increases and then decreases with the increase of outlet width, axial length, and leading edge, while decreasing with the increase in the number of blades. Largest percentage contributions are identified as 53.10% at the leading edge and 34.03% at the blades number for the head and isentropic efficiency, respectively. Considering both higher head and efficiency, the preferred combination consisting of the outlet width of 3.6 mm, axial length of 10.6 mm, leading edge of 10 mm, and number blades of 8 is determined. Compared to average values, the head and isentropic efficiency are improved by 14.49% and 0.18% for the combination. These findings provide novel insights into enhancing the efficiency and subcooling of sub-cooled liquid hydrogen centrifugal pump for refueling stations.
AB - In a sub-cooled liquid hydrogen refueling station, the centrifugal pump is the most critical component to pressurize the liquid hydrogen into a subcooled state to achieve efficient storage. The thermodynamic behavior of the pump significantly affects its subcooling level and efficiency, but the response mechanisms are lacking. Therefore, the thermodynamic model incorporating heat transfer, turbulence, cavitation, and cryogenic liquid hydrogen is presented. Quantitative influence and percentage contribution of critical structural factors to the head and isentropic efficiency by signal-to-noise ratio and analysis of variance are investigated. Multi-optimization is conducted by grey relational analysis. Results suggest that the head increases with the increase of outlet width, axial length, and number of blades, while decreasing with the leading edge. The isentropic efficiency first increases and then decreases with the increase of outlet width, axial length, and leading edge, while decreasing with the increase in the number of blades. Largest percentage contributions are identified as 53.10% at the leading edge and 34.03% at the blades number for the head and isentropic efficiency, respectively. Considering both higher head and efficiency, the preferred combination consisting of the outlet width of 3.6 mm, axial length of 10.6 mm, leading edge of 10 mm, and number blades of 8 is determined. Compared to average values, the head and isentropic efficiency are improved by 14.49% and 0.18% for the combination. These findings provide novel insights into enhancing the efficiency and subcooling of sub-cooled liquid hydrogen centrifugal pump for refueling stations.
KW - Centrifugal pump
KW - Energy efficiency
KW - Structural optimization
KW - Sub-cooled liquid hydrogen refueling station
KW - Subcooling
KW - Thermodynamic response
UR - https://www.scopus.com/pages/publications/105043471722
U2 - 10.1016/j.energy.2026.141833
DO - 10.1016/j.energy.2026.141833
M3 - 文章
AN - SCOPUS:105043471722
SN - 0360-5442
VL - 360
JO - Energy
JF - Energy
M1 - 141833
ER -