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System design of a large fuel cell hybrid locomotive

Miller, A. R., Hess, K. S., Barnes, D. L., & Erickson, T. L. (2007). System design of a large fuel cell hybrid locomotive. Journal of Power Sources, 173(2), 935-942+. https://doi.org/10.1016/j.jpowsour.2007.08.045 (Original work published)

Numerical Studies on Hydrogen Distribution in Enclosures in the Presence of Condensing Steam

Agrawal, N. ., & Das, S. K. (2015). Numerical Studies on Hydrogen Distribution in Enclosures in the Presence of Condensing Steam. Journal of Heat Transfer-Transactions of the Asme, 137(12), 10+. https://doi.org/10.1115/1.4030924 (Original work published 2025)

A dual zone thermodynamic model for refueling hydrogen vehicles

Xiao, J. S., Wang, X. ., Zhou, X. ., Benard, P. ., & Chahine, R. . (2019). A dual zone thermodynamic model for refueling hydrogen vehicles. International Journal of Hydrogen Energy, 44(17), 8780-8790+. https://doi.org/10.1016/j.ijhydene.2018.10.235 (Original work published)

Analysis of heat transfer of spilling fire spread over steady flow of n-butanol fuel

Pan, Y. ., Li, M. H., Luo, X. J., Wang, C. J., Luo, Q. T., & Li, J. C. (2020). Analysis of heat transfer of spilling fire spread over steady flow of n-butanol fuel. International Communications in Heat and Mass Transfer, 116, 9+. https://doi.org/10.1016/j.icheatmasstransfer.2020.104685 (Original work published 2025)

An Analysis on the Compressed Hydrogen Storage System for the Fast-Filling Process of Hydrogen Gas at the Pressure of 82 MPa

Li, J. Q., Li, J. C., Park, K. ., Jang, S. J., & Kwon, J. T. (2021). An Analysis on the Compressed Hydrogen Storage System for the Fast-Filling Process of Hydrogen Gas at the Pressure of 82 MPa. Energies, 14(9), 18+. https://doi.org/10.3390/en14092635 (Original work published 2025)
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