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Research Article

Effect of hydrogen addition on the explosion characteristics of methane-hydrogen-air mixture in T-shaped bifurcation pipe

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Pages 3808-3822 | Received 13 Sep 2021, Accepted 24 Mar 2022, Published online: 03 May 2022

References

  • Abdel-Raheem, M. A., S. S. Ibrahim, W. Malalasekera, and A. R. Masri. 2015. Large eddy simulation of hydrogen–air premixed flames in a small scale combustion chamber. International Journal of Hydrogen Energy 40 (7):3098–109. doi:10.1016/j.ijhydene.2014.12.042.
  • Di Sarli, V., and A. D. Benedetto. 2007. Laminar burning velocity of hydrogen–methane-air premixed flames. International Journal of Hydrogen Energy 32 (5):637–46. doi:10.1016/j.ijhydene.2006.05.016.
  • Du, Y., G. Li, Y. Li, S. Qi, and B. Wang. 2016. Effects of a T-shaped branch pipe on overpressure of gasoline-air mixture explosion. Explosion And Shock Waves 1 (9):120–27.
  • Du, Y., G. Li, S. Wu, P. Zhang, and S. Wang. 2015. Explosion intensity of gasoline air mixture in the pipeline containing a T-shaped branch pipe. Explosion And Shock Waves 35 (5):729–34.
  • Emdai, M., K. Kaufman, M. W. Burkhalter, T. Salameh, and A. Ratner. 2015. Examination of thermo-acoustic instability in a low swirl burner. International Journal of Hydrogen Energy 40 (39):13594–603. doi:10.1016/j.ijhydene.2015.08.016.
  • Jia, B., C. Li, R. Hu, K. Jing, Z. Li, and S. Li. 2016. Study on synergistic effect mechanism of CO, H2 mixed gas on methane explosion. World Sci-tech R&D 38 (1):35–39.
  • Jia, B., H. Wen, and Y. Liang. 2012. Study on the methane explosion in an enclosed space and hydrogen promoting mechanism. China Safety Science Journal 22 (2):81–87.
  • Jiang, Y., G. D. Alamo, A. Gruber, M. R. Bothien, K. Seshadri, and F. A. Williams. 2019. A skeletal mechanism for prediction of ignition delay times and laminar premixed flame velocities of hydrogen-methane mixtures under gas turbine conditions. International Journal of Hydrogen Energy 44 (33):18573–85. doi:10.1016/j.ijhydene.2019.05.068.
  • Li, H., J. Deng, X. Chen, C.-M. Shu, C.-H. Kuo, X. Zhai, X. Hu, and X. Hu. 2020. Qualitative and quantitative characterisation for explosion severity and gaseous–solid residues during methane–coal particle hybrid explosions: An approach to estimating the safety degree for underground coal mines. Process Safety and Environmental Protection 141:150–66. doi:10.1016/j.psep.2020.05.033.
  • Li, G., X. Wang, and X. Zhao. 2018. Experimental study on explosion characteristics of ethanol-gasoline blended fuels. Journal of Loss Prevention in the Process Industries 54:281–88.
  • Lin, B. Q., C. Guo, Y. Sun, C. J. Zhu, Y. D. Hong, and H. Yao. 2016. Effect of bifurcation on premixed methane-air explosion overpressure in pipes. Journal of Loss Prevention in the Process Industries 43:464–70. doi:10.1016/j.jlp.2016.07.011.
  • MA, Q. 2015. Multicomponent gas explosion in confined space and the mechanism of explosion to combustion transition. Beijing Institute of Technology.
  • Marianne, M., F. Stephen, G. Jerry, and M. John. 2002. Hydrogen: On the horizon or just a mirage. SAE Paper 1:911–19.
  • Masri, A. R., S. S. Ibrahim, and B. J. Cadwallader. 2006. Measurements and large eddy simulation of propagating premixed flames. Experimental Thermal and Fluid Science 30 (7):687–702. doi:10.1016/j.expthermflusci.2006.01.008.
  • Nie, B., C. Peng, J. Gong, F. Yin, and K. Wang. 2020a. Explosion characteristics and energy utilisation of coal mine ultra-lean methane. Combustion Theory and Modelling 25(1): 73–95 doi:10.1080/13647830.2020.1833085.
  • Nie, B., C. Peng, K. Wang, L. Yang, et al. 2020b. Structure and formation mechanism of methane explosion soot. ACS Omega. 5(49):31716–23. doi:10.1021/acsomega.0c04234.
  • Pang, L., J. C. Gao, Q. J. Ma, J. C. Chen, Q. Q. Meng, J. L. Tan, and Q. Zhang. 2013. Influence of Bend structure on high-temperature flow after gas explosion. Experimental Thermal and Fluid Science 43:201–05. doi:10.1016/j.expthermflusci.2013.05.001.
  • Shen, X., G. Xiu, and S. Wu. 2017. Experimental study on the explosion characteristics of methane/air mixtures with hydrogen addition. Applied Thermal Engineering 120:741–47. doi:10.1016/j.applthermaleng.2017.04.040.
  • Wang, J., Y. Wu, W. Shan, L. Zheng, R. Pan, and M. Yu. 2019. Effect of variable cross-section duct on flame propagation characteristics of premixed hydrogen/methane/air combustible gas. Combustion Science and Technology 193 (8):1425–1443.
  • Wang, C. J., S. L. Xu, and C. M. Guo. 2008. Gaseous detonation propagation in a bifurcated tube. Journal of Fluid Mechanics 599:81–110. doi:10.1017/S0022112007009986.
  • Xiao, H., Q. Duan, L. Jiang, X. He, and J. Sun. 2015. Effect of Bend on premixed flame dynamics in a closed duct. International Journal of Heat and Mass Transfer 88:297–305. doi:10.1016/j.ijheatmasstransfer.2015.04.078.
  • Xiao, H., J. Sun, and X. He. 2018. A study on the dynamic behaviour of premixed propane-air flames propagating in a curved combustion chamber. Fuel 228:342–48. doi:10.1016/j.fuel.2018.04.165.
  • Zhang, G. 2018. Study on propane combustion explosion rules and Dynamic loading characteristics of tube wall in complex pipe. Changzhou University.
  • Zhou, N., Y. Mei, X. Li, B. Chen, W. Huang, H. Zhao, and X. Yuan. 2020a. Numerical simulation of the influence of vent conditions on hydrogen flame propagation. Combustion Science and Technology. doi:10.1080/00102202.2020.1736576.
  • Zhou, N., T. Wang, X. Li, P. Ni, and H. Zhao. 2020b. Experimental study on hydrogen-air premixed gas explosion in confined space. Energy Sources, Part A: Recovery, Utilization, and Environmental Effects 1–12. doi:10.1080/15567036.2020.1782535.
  • Zhou, N., W. Wang, G. Zhang, Y. Zong, H. Zhao, and X. Yuan. 2018a. Effect of obstacles on flame acceleration of propane-air explosion. Explosion And Shock Waves 38 (5):1106–14.
  • Zhou, N., Q. Yu, B. Chen, X. Li, and Y. Zong. 2020c. Effects of ignition position on explosion of premixed propane-air in a T-type pipe. Process Safety Progress 40 (1):e12184.
  • Zhou, N., G. Zhang, W. Wang, H. Zhao, X. Yuan, and W. Huang. 2018b. Effect of ignition energy on the explosion process and the dynamic response of propane-air premixed gas. Explosion And Shock Waves 38 (5):1031–38.

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