|
|
A review of gas discharge simulation based on finite element method |
CHE Rui1, SUN Ming2 |
1. Logistics Engineering College, Shanghai Maritime University, Shanghai 201306; 2. Institute of Electrostatics, Shanghai Maritime University, Shanghai 201306 |
|
|
Abstract Research on gas discharge processes using multi-physical coupling analysis software COMSOL is reviewed in this paper. The establishments of one-dimensional, two-dimensional and three-dimensional numerical models of different electrode structures, finding the solution of the coupled physical equations and simulation of different gas discharge processes by a finite element method are included. As an important means to assist COMSOL numerical simulation, experimental method is used to verify the simulation results, mainly including oscilloscope detection method and emission spectrum method. The research results show that parameters,such as electric field strength, electron density, particle density, and electron temperature, are affected by dielectric constants, dielectric thickness, discharge gap, aerial speed, gas componentsand pulse parameters in different discharge forms. Finally, the insufficiency in the research of gas discharge based on finite element method is discussed.
|
Received: 25 August 2021
|
|
|
|
[1] 吴利航. 介质阻挡放电等离子体处理染料废水的研究[D]. 杭州: 浙江工业大学, 2020. [2] 高睿恒, 张发旺, 顾琳, 等. 水中电火花放电能量分配系数研究[J]. 电加工与模具, 2014(2): 1-4, 9. [3] WANG Ying, WANG Zirong, YANG Haiyan, et al.Gas phase surface discharge plasma model for yeast inactivation in water[J]. Journal of Food Engineering, 2020, 286: 110117. [4] INTRA P, YAWOOTTI A, RATTANADECHO P.Influence of the corona-wire diameter and length on corona discharge characteristics of a cylindrical tri-axial charger[J]. Journal of Electrostatics, 2015, 74: 37-46. [5] 徐俊生. kHz交流同轴型CH4/He/O2氛围DBD建模与仿真研究[D]. 淮南: 安徽理工大学, 2020. [6] 顾小卫, 刘彬, 许雪梅, 等. 基于COMSOL Mutiphy-sics的空芯光纤中氩气放电模拟仿真[J]. 软件导刊, 2020, 19(6): 155-159. [7] 刘欣妮, 梁环宇, 齐志华, 等. 大气压空气沿面介质阻挡放电均匀性分析[J]. 低温物理学报, 2018, 40(4): 9-13. [8] 王涛. 大气压沿面介质阻挡放电激励器数值模拟研究[D]. 大连: 大连理工大学, 2019. [9] 李清泉, 许光可, 房新振, 等. 沿面型介质阻挡放电的数值仿真计算[J]. 高电压技术, 2012, 38(7): 1548-1555. [10] XU Qiu, YANG Zhuoqing, ZHANG Qihuan, et al.Simulation and characterization of a thin film Au/Ni micro hot bridge-wire ignition element under capacitor discharging[J]. International Journal of Thermal Sciences, 2016, 102: 100-110. [11] ROUKIA A, FOUZI B, SAIDA R.Computational study of surface dielectric barrier discharge plasma actuator for flow control using COMSOL Multi-physics[C]//2018 International Conference on Elec-trical Sciences and Technologies in Maghreb (CISTEM), Algiers, Algeria, 2018. [12] ADAMIAK K.Two-species modeling of electrohy-drodynamic pump based on surface dielectric barrier discharge[J]. Journal of Electrostatics, 2020, 106: 103470. [13] CRISTEA V M, BAGIU E D, AGACHI P S.Simulation and control of pollutant propagation in Somes River using COMSOL Multiphysics[J]. Com-puter Aided Chemical Engineering, 2010, 28: 985-990. [14] 牛海清, 徐乐平, 李小潇, 等. SF6气体正极性电晕放电特性仿真研究[J]. 高电压技术, 2021, 47(11): 4063-4071. [15] 白枫. 电晕放电数值模拟及基于氮化镓紫外探测器的放电检测研究[D]. 重庆: 重庆大学, 2019. [16] 曾晗, 张靖, 程宏波, 等. 考虑H2O影响的绝缘子电晕放电数值仿真[J]. 广东电力, 2019, 32(12): 89-97. [17] 徐乐平. 空气针-板正负电晕微观放电机理仿真研究[D]. 广州: 华南理工大学, 2020. [18] 蔡普申, 吕玉祥, 王启银, 等. 正负极性棒-板间隙放电流注特性的研究[J]. 数学的实践与认识, 2015, 45(13): 146-152. [19] HORE S, BASAK S, HAQUE N, et al.Studies on the effect of void geometry and location on electric field distribution and partial discharge in XLPE insulated power cable by finite element analysis using COMSOL Multiphysics simulation[C]//2017 6th International Conference on Computer Applications in Electrical Engineering-Recent Advances (CERA), Roorkee, India, 2017: 220-225. [20] 钱杨, 冯音琦, 黄民双, 等. 水中脉冲电压放电形成等离子体通道模拟分析[J]. 真空科学与技术学报, 2019, 39(12): 1119-1129. [21] 聂云良, 康忠健, 王聪, 等. 水中脉冲放电电极的烧蚀特性[J]. 高电压技术, 2021, 47(7): 2607-2614. [22] 王超. 甲烷针—板放电等离子体的数值模拟及特性研究[D]. 济南: 山东师范大学, 2018. [23] XIAO Jinsheng, WANG Jijuan, COSSEMENT D, et al.Finite element model for charge and discharge cycle of activated carbon hydrogen storage[J]. International Journal of Hydrogen Energy, 2012, 37(1): 802-810. [24] XIAO Jinsheng, HU Min, COSSEMENT D, et al.Finite element simulation for charge-discharge cycle of cryo-adsorptive hydrogen storage on activated car-bon[J]. International Journal of Hydrogen Energy, 2012, 37(17): 12947-12959. [25] XIAO Jinsheng, ZHOU Zhiqing, COSSEMENT D, et al.Lumped parameter model for charge-discharge cycle of adsorptive hydrogen storage system[J]. International Journal of Heat and Mass Transfer, 2013, 64: 245-253. [26] ZHOU Yan, LI Chengxiang, WANG Xianmin, et al.Investigation of jet and micro-gap discharge in Cu-Al plates EMPW process[J]. Journal of Materials Pro-cessing Technology, 2021, 290: 116977. [27] CAI Long, WHITE R E.Mathematical modeling of a lithium-ion battery with thermal effects in COMSOL Inc. Multiphysics (MP) software[J]. Journal of Power Sources, 2011, 196(14): 5985-5989. [28] BEHI H, KARIMI D, JAGUEMONT J, et al.Novel thermal management methods to improve the per-formance of the Li-ion batteries in high discharge current applications[J]. Energy, 2021, 224: 120165. [29] BEHI H, KARIMI D, BEHI M, et al.Thermal management analysis using heat pipe in the high current discharging of lithium-ion battery in electric vehicles[J]. Journal of Energy Storage, 2020, 32: 101893. [30] 许智清, 李楚. 气动力和电磁力耦合作用下的双分裂导线粘连振荡特性分析[J]. 电气技术, 2021, 22(7): 42-47, 94. [31] 陈千懿, 高立克, 陈绍南, 等. 应用于无人机无线充电的轻量化磁耦合结构[J]. 电气技术, 2020, 21(5): 15-20. [32] WEI Song, LIU Dongjie, Liu Cancan, et al.Improve the tribological performance of anodic coating by plasma discharge treatment[J]. Materials Research Express, 2021, 8(4): 046404. [33] LI Feng, HOU Xu, WANG Jie, et al.Structure-design strategy of 0-3 type (Bi0.32Sr0.42Na0.20) TiO3/MgO composite to boost energy storage density, efficiency and charge-discharge performance[J]. Journal of the European Ceramic Society, 2019, 39(9): 2889-2898. [34] COLLINS E S, GESNER J P, PANTOYA M L, et al.Synthesizing aluminum particles towards controlling electrostatic discharge ignition sensitivity[J]. Journal of Electrostatics, 2014, 72(1): 28-32. [35] 张颖. 大气压沿面型介质阻挡放电光电特性实验和模拟研究[D]. 大连: 大连理工大学, 2016. [36] 黄之明. 平板电极介质阻挡大气压氦气柱状放电研究[D]. 广州: 华南理工大学, 2017. [37] 孙岩洲, 巩银苗, 孙念念. 线筒结构电极介质阻挡放电的数值仿真[J]. 绝缘材料, 2015, 48(7): 29-33. [38] 罗书豪. 影响大气压放电等离子体放电特性因素及灭菌实验研究[D]. 重庆: 重庆大学, 2013. [39] 宋书通. 大气压脉冲辉光放电数值模拟[D]. 上海: 东华大学, 2013. [40] 付光晶, 张峰, 张士文. 基于COMSOL Multiphysics的交流故障电弧仿真研究[J]. 电器与能效管理技术, 2018(6): 23-29. [41] BO Kai, ZHOU Xue, ZHAI Guofu.Investigation on arc dwell and restriking characteristics in DC high-power relay[J]. IEEE Transactions on Plasma Science, 2017, 45(6): 1032-1042. [42] ALMEIDA P G C, BENILOV M S, CUNHA M D, et al. Computing DC glow and arc discharges by means of COMSOL Multiphysics: time-dependent vs. stationary solvers[C]//2013 Abstracts IEEE International Con-ference on Plasma Science (ICOPS), San Francisco, CA, USA, 2013. [43] LI Hua, ZENG Decha, LIU Junyu, et al.Realization of DC atmospheric pressure glow discharge without external airflow[J]. Vacuum, 2015, 113: 28-35. [44] ALMEIDA P G C, BENILOV M S, FARIA M J. Study of stability of DC glow discharges with the use of Comsol Multiphysics software[J]. Journal of Physics D: Applied Physics, 2011, 44(41): 415203. [45] ABIDAT R, REBIAI S, BENTERROUCHE L.Numerical simulation of atmospheric dielectric barrier discharge in helium gas using COMSOL Multi-physics[C]//3rd International Conference on Systems and Control, Algiers, Algeria, 2013: 134-139. [46] SOHBATZADEH F, SOLTANI H.Time-dependent one-dimensional simulation of atmospheric dielectric barrier discharge in N2/O2/H2O using COMSOL Multi-physics[J]. Journal of Theoretical and Applied Physics, 2018,12: 53-63. [47] ALMEIDA P G C, BENILOV M S, BIENIEK M S. Three-dimensional modelling of self-organization phenomena in cathode boundary layer discharges using COMSOL Multiphysics[C]//2015 IEEE International Conference on Plasma Sciences (ICOPS), Antalya, Turkey, 2015. [48] RATHOD V B, KUMBHAR G B, BHALJA B R.Simulation of partial discharge acoustic wave pro-pagation using COMSOL Multiphysics and its localization in a model transformer tank[C]//2020 21st National Power Systems Conference (NPSC), Gandhinagar, India, 2020. [49] YOU Qi, MO Ni, LIU Xingnan, et al.Experiments on helium breakdown at high pressure and temperature in uniform field and its simulation using COMSOL Multiphysics and FD-FCT[J]. Annals of Nuclear Energy, 2020, 141: 107351. [50] YISAEV Y, KOLCHANOVA V A, MALTSEV A P, et al.Capacity calculation of the electrotechnical scheme of discharge gap replacement of the ozonizer in the COMSOL environment[J]. IOP Conference Series: Materials Science and Engineering, 2017, 177: 012068. [51] 朱寒, 何湘, 陈秉岩, 等. 容性耦合射频放电等离子体的仿真模拟与实验诊断研究[J]. 电工技术学报, 2019, 34(16): 3504-3511. [52] 李帆, 罗海云, 杜娟, 等. 基于直流辉光放电等离子体的气体压力传感器[J]. 电工技术学报, 2021, 36(15): 3163-3171. [53] 何聪, 张芊, 曹铎耀, 等. 交流与操作冲击叠加电压下SF6气体中沿面局部放电特性[J]. 电工技术学报, 2020, 35(8): 1807-1817. [54] 郑忠波, 陈楠, 李志闯, 等. 操作冲击电压下C4F7N/ CO2混合气体252kV GIL间隙及沿面放电特性[J]. 电工技术学报, 2021, 36(14): 3055-3062. |
|
|
|