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Propagation dynamics uncertainty analysis of a premixed laminar unstable hydrogen-air flame

Elyanov, A. E., Gavrikov, A. ., Golub, V. V., . Y. Mikushkin, A. ., & Volodin, V. V. (2022). Propagation dynamics uncertainty analysis of a premixed laminar unstable hydrogen-air flame. Process Safety and Environmental Protection, 164, 50-56+. https://doi.org/10.1016/j.psep.2022.06.007 (Original work published 2025)

Prediction of Deflagrative Explosions in Variety of Closed Vessels

Rudy, W. ., Pekalski, A. ., Makarov, D. ., Teodorczyk, A. ., & Molkov, V. . (2021). Prediction of Deflagrative Explosions in Variety of Closed Vessels. Energies, 14(8), 19+. https://doi.org/10.3390/en14082138 (Original work published 2025)

PIV-measurements of reactant flow in hydrogen-air explosions

Vaagsaether, K. ., Gaathaug, A. V., & Bjerketvedt, D. . (2019). PIV-measurements of reactant flow in hydrogen-air explosions. International Journal of Hydrogen Energy, 44(17), 8799-8806+. https://doi.org/10.1016/j.ijhydene.2018.10.025 (Original work published)

Numerical study on the mechanism of spontaneous ignition of high-pressure hydrogen in the L-shaped tube

Gong, L. ., . Y. Jin, K. ., Yang, S. N., . Y. Yang, Z. ., Li, Z. S., Gao, Y. J., & Zhang, Y. C. (2020). Numerical study on the mechanism of spontaneous ignition of high-pressure hydrogen in the L-shaped tube. International Journal of Hydrogen Energy, 45(56), 32730-32742+. https://doi.org/10.1016/j.ijhydene.2020.08.267 (Original work published)

Numerical modeling of deflagration to detonation transition in inhomogeneous hydrogen/air mixtures

Azadboni, R. K., Wen, J. X., Heidari, A. ., & Wang, C. J. (2017). Numerical modeling of deflagration to detonation transition in inhomogeneous hydrogen/air mixtures. Journal of Loss Prevention in the Process Industries, 49, 722-730+. https://doi.org/10.1016/j.jlp.2017.04.024 (Original work published 2025)

Non-premixed flame propagation inside and outside the different three-way tubes after the self-ignition of pressurized hydrogen

Jiang, Y. M., Pan, X. H., Hua, M. ., Zhang, T. ., . Y. Wang, Q. ., Wang, Z. L., … Jiang, J. C. (2022). Non-premixed flame propagation inside and outside the different three-way tubes after the self-ignition of pressurized hydrogen. Process Safety and Environmental Protection, 165, 102-113+. https://doi.org/10.1016/j.psep.2022.06.061 (Original work published 2025)

Numerical investigations of heat losses to confinement structures from hydrogen-air turbulent flames in ENACCEF facility

Xiao, J. J., Travis, J. R., & Kuznetsov, M. . (2015). Numerical investigations of heat losses to confinement structures from hydrogen-air turbulent flames in ENACCEF facility. International Journal of Hydrogen Energy, 40(38), 13106-13120+. https://doi.org/10.1016/j.ijhydene.2015.07.090 (Original work published)

Modeling impacts of combustion products on humans in complex processing facilities

Tan, J. W., Garaniya, V. ., Baalisampang, T. ., Abbassi, R. ., Khan, F. ., & Dadashzadeh, M. . (2020). Modeling impacts of combustion products on humans in complex processing facilities. Process Safety Progress, 39(S1), 11+. https://doi.org/10.1002/prs.12114 (Original work published 2025)

Liquid Hydrogen Spills on Water—Risk and Consequences of Rapid Phase Transition

Odsæter, L. H., Skarsvåg, H. L., Aursand, E. ., Ustolin, F. ., Reigstad, G. A., & Paltrinieri, N. . (2021). Liquid Hydrogen Spills on Water—Risk and Consequences of Rapid Phase Transition. Energies, 14(16), 15+. https://doi.org/10.3390/en14164789 (Original work published 2025)

Hydrogen infrastructure-Efficient risk assessment and design optimization approach to ensure safe and practical solutions

Hansen, O. R. (2020). Hydrogen infrastructure-Efficient risk assessment and design optimization approach to ensure safe and practical solutions. Process Safety and Environmental Protection, 143, 164-176+. https://doi.org/10.1016/j.psep.2020.06.028 (Original work published 2025)
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