A volumetric-loss model for predicting flowrate characteristics of a 45 MPa diaphragm compressor in hydrogen refueling stations

Diaphragm compressors in hydrogen refueling stations are frequently subjected to off-design operation, making their flowrate characteristics essential for evaluating station refueling efficiency. In this study, a theoretical calculation model is developed to analyze the flowrate characteristics of a single-stage 45 MPa diaphragm compressor under a wide range of operating conditions. The model accuracy is validated against using volumetric efficiency data obtained during the pressurization process in a hydrogen refueling station. The results indicate that the measured flowrates agree well with the calculated values, with a maximum relative error not exceeding 5%. The effects of compression ratio and oil-gas pressure differential on the clearance expansion, oil expansion, valve loss and suction heating factors are further analyzed to reveal the mechanisms affecting the flowrate. Finally, a full-range volumetric-efficiency map is established and applied to storage-bank repressurization after vehicle refueling, supporting hydrogen supply optimization and practical refueling strategies.

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Publication Details

Journal
International Journal of Hydrogen Energy
Published
2026-09-15
DOI
https://doi.org/10.1016/j.ijhydene.2026.157420
Primary Topic
Refrigeration and Air Conditioning Technologies
Type
article
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article

A volumetric-loss model for predicting flowrate characteristics of a 45 MPa diaphragm compressor in hydrogen refueling stations

Shu Wan, Yanming Wan, Zhonghui Tian, Xueyuan Peng et al.
International Journal of Hydrogen Energy
Refrigeration and Air Conditioning Technologies
article

A volumetric-loss model for predicting flowrate characteristics of a 45 MPa diaphragm compressor in hydrogen refueling stations

Shu Wan, Yanming Wan, Zhonghui Tian, Xueyuan Peng, Shengdong Ren, Kai Li, Xiaohan Jia
article en

Abstract

Diaphragm compressors in hydrogen refueling stations are frequently subjected to off-design operation, making their flowrate characteristics essential for evaluating station refueling efficiency. In this study, a theoretical calculation model is developed to analyze the flowrate characteristics of a single-stage 45 MPa diaphragm compressor under a wide range of operating conditions. The model accuracy is validated against using volumetric efficiency data obtained during the pressurization process in a hydrogen refueling station. The results indicate that the measured flowrates agree well with the calculated values, with a maximum relative error not exceeding 5%. The effects of compression ratio and oil-gas pressure differential on the clearance expansion, oil expansion, valve loss and suction heating factors are further analyzed to reveal the mechanisms affecting the flowrate. Finally, a full-range volumetric-efficiency map is established and applied to storage-bank repressurization after vehicle refueling, supporting hydrogen supply optimization and practical refueling strategies.

International Journal of Hydrogen EnergyVol. 275
RE Hydrogen (United Kingdom) (GB), Xi'an Jiaotong University (CN)
Affordable and clean energy
Openalex Percentile: Top 20%
Refrigeration and Air Conditioning Technologies
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A volumetric-loss model for predicting flowrate characteristics of a 45 MPa diaphragm compressor in hydrogen refueling stations — Shu Wan, Yanming Wan, et al. · International Journal of Hydrogen Energy (2026) | TGRS Research Map | TGRS