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Transform from gasoline stations to electric-hydrogen hybrid refueling stations: An islanding DC microgrid with electric-hydrogen hybrid energy storage system and its control strategy

Zhang, X. ., Pei, W. ., Mei, C. ., Deng, W. ., Tan, J. ., & Zhang, Q. . (2022). Transform from gasoline stations to electric-hydrogen hybrid refueling stations: An islanding DC microgrid with electric-hydrogen hybrid energy storage system and its control strategy. International Journal of Electrical Power & Energy Systems, 136, 19+. https://doi.org/10.1016/j.ijepes.2021.107684 (Original work published 2025)

Motion of Liquid Convective Flow and Heat Transfer Analysis of Flame Spread over butanol fuel within narrow channels

Li, M. ., Hu, P. ., Ji, J. ., & Wang, C. . (2022). Motion of Liquid Convective Flow and Heat Transfer Analysis of Flame Spread over butanol fuel within narrow channels. Fire Safety Journal, 127, 8+. https://doi.org/10.1016/j.firesaf.2021.103502 (Original work published 2025)

Investigative and probabilistic perspective of the accidental release of styrene: a case study in Vizag, India

Sivaraman, S. ., Tauseef, S. M., & Siddiqui, N. A. (2022). Investigative and probabilistic perspective of the accidental release of styrene: a case study in Vizag, India. Process Safety and Environmental Protection, 158, 55-69+. https://doi.org/10.1016/j.psep.2021.11.034 (Original work published 2025)

Influence of concentration gradient on detonation re-initiation in a bifurcated channel

Jiang, C. ., Pan, J. ., Zhu, Y. ., Li, J. ., Chen, H. ., & Quaye, E. K. (2022). Influence of concentration gradient on detonation re-initiation in a bifurcated channel. Fuel, 307, 14+. https://doi.org/10.1016/j.fuel.2021.121895 (Original work published 2025)

Hydrogen Safety Fundamentals

Eck, S. ., & Snyder, M. D. (2021). Hydrogen Safety Fundamentals. Chemical & Engineering News, 99(45), 36-41+. Retrieved from https://www.webofscience.com/wos/woscc/full-record/WOS:000732020800004 (Original work published)

Experimental study on external explosion for vented hydrogen deflagration in a rectangular tube with different vent coefficients

Wang, Q. ., Luo, X. ., Wang, C. ., Liu, Y. ., Zhou, P. ., & Li, B. . (2022). Experimental study on external explosion for vented hydrogen deflagration in a rectangular tube with different vent coefficients. Process Safety and Environmental Protection, 158, 331-339+. https://doi.org/10.1016/j.psep.2021.12.002 (Original work published 2025)

Explosion venting of hydrogen-air mixture in an obstructed rectangular tube

Wang, Q. ., Luo, X. ., Li, Q. ., Rui, S. ., Wang, C. ., & Zhang, A. . (2022). Explosion venting of hydrogen-air mixture in an obstructed rectangular tube. Fuel, 310, 9+. https://doi.org/10.1016/j.fuel.2021.122473 (Original work published 2025)

Experimental investigation on the temperature characteristics and hydrogen elimination effect of non-premixed hydrogen-oxygen recombination reaction at ambient temperature

Li, X. ., Zhang, J. ., Zhou, S.-Y. ., Li, B. ., Zhang, D. ., & Xie, L.-F. . (2023). Experimental investigation on the temperature characteristics and hydrogen elimination effect of non-premixed hydrogen-oxygen recombination reaction at ambient temperature. Fuel, 331, 11+. https://doi.org/10.1016/j.fuel.2022.125622 (Original work published 2025)

Effect of vent area on the vented methane-air deflagrations in a 1 m3 rectangular vessel with and without obstacles

Rui, S. ., Wang, Q. ., Chen, F. ., Li, Q. ., Guo, J. ., Wang, J. ., & Wang, C. . (2022). Effect of vent area on the vented methane-air deflagrations in a 1 m3 rectangular vessel with and without obstacles. Journal of Loss Prevention in the Process Industries, 74, 8+. https://doi.org/10.1016/j.jlp.2021.104642 (Original work published 2025)

Effect of flow directions in the T-shaped tubes on the shock wave and spontaneous ignition of pressurized hydrogen

Jiang, Y. ., Pan, X. ., Hua, M. ., Wang, Z. ., Zhang, T. ., Wang, Q. ., … Jiang, J. . (2023). Effect of flow directions in the T-shaped tubes on the shock wave and spontaneous ignition of pressurized hydrogen. Fuel, 332, 9+. https://doi.org/10.1016/j.fuel.2022.126054 (Original work published 2025)
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