[1] Bechane Y, Fiorina B. Numerical analysis of turbulent flame enhancement by nanosecond repetitively pulsed plasma discharges[J/OL]. Proceedings of the Combustion Institute, (2022-7-26) [2022-11-1]. https://www.sciencedirect.com/science/article/pii/S1540748922000293.
[2] Barleon N, Cheng L, Cuenot B, et al. Investigation of the impact of NRP discharge frequency on the ignition of a lean methane-air mixture using fully coupled plasma-combustion numerical simulations[J/OL]. Proceedings of the Combustion Institute, (2022-8-17) [2022-11-1]. https://www.sciencedirect.com/science/article/pii/S1540748922000797.
[3] Li S,Wang X B,Liu Y,et al. Numerical analysis of the effect of surface recombination on N-atom in discharge and post-discharge region[J]. Physics of Plasmas,2020,27(6):063502 doi: 10.1063/5.0006986
[4] Larsson A,Zettervall N,Hurtig T,et al. Skeletal Methane-Air Reaction Mechanism for Large Eddy Simulation of Turbulent Microwave-Assisted Combustion[J]. Energy & Fuels,2017,31(2):1904−1926
[5] Smith G P, Golden D M, Frenklach M, et al. GRI-Mech 3.0 home page [EB/OL]. (1999-7-30) [2022-11-1]. http://www.me.berkeley.edu/grimech.
[6] Wang Z H,Yang L,Li B,et al. Investigation of combustion enhancement by ozone additive in CH4/air flames using direct laminar burning velocity measurements and kinetic simulations[J]. Combustion and Flame,2012,159(1):120−129 doi: 10.1016/j.combustflame.2011.06.017
[7] Pancheshnyi S,Nudnova M,Starikovskii A,et al. Development of a cathode-directed streamer discharge in air at different pressures: Experiment and comparison with direct numerical simulation[J]. Physical Review E,2005,71(1):016407 doi: 10.1103/PhysRevE.71.016407
[8] LXcat Electron Scattering Database [EB/OL]. (2022-10-24) [2022-11-1]. http://www.lxcat.laplace.univ-tlse.fr/.
[9] Golubovskii Y B,Maiorov V A,Behnke J,et al. Modelling of the homogeneous barrier discharge in helium at atmospheric pressure[J]. Journal of Physics D:Applied Physics,2002,36(1):39−49
[10] Li S,Wang Y,Wang L. Numerical study on pulse modulated RF argon discharge at atmospheric pressure[J]. Nuclear Fusion and Plasma Physics,2021,41(04):591−597 (李帅星,王一男,王莉. 大气压脉冲调制射频氩气放电等离子体特性的数值研究[J]. 核聚变与等离子体物理,2021,41(04):591−597(in chinese) doi: 10.16568/j.0254-6086.202104002 Li S, Wang Y, Wang L. Numerical study on pulse modulated RF argon discharge at atmospheric pressure [J]. Nuclear Fusion and Plasma Physics, 2021, 41(04): 591-597. doi: 10.16568/j.0254-6086.202104002