[1] |
陈熙. 热等离子体传热与流动[M]. 北京: 科学出版社, 2009: 353−378 (in Chinese)
Chen X. Thermal plasma heat transfer and flow[M]. Beijing: Science Press, 2009: 353−378
|
[2] |
Boulos M I. The role of transport phenomena and modeling in the development of thermal plasma technology[J]. Plasma Chemistry and Plasma Processing,2016,36(1):3−28 doi: 10.1007/s11090-015-9660-7
|
[3] |
Kim K S, Moradian A, Mostaghimi J, et al. Synthesis of single-walled carbon nanotubes by induction thermal plasma[J]. Nano Research,2009,2(10):800−817 doi: 10.1007/s12274-009-9085-9
|
[4] |
Zhengxin Y I N, Deping Y U, Yana W E N, et al. Numerical investigation on the flow characteristics of a reverse-polarity plasma torch by two-temperature thermal non-equilibrium modelling[J]. Plasma Science and Technology, 2021, 23(9): 095402.
|
[5] |
黄勇, 刘林, 王新鑫, 等. TIG电弧等离子体双温度数值模拟[J]. 焊接学报,2018,39(10):6−10,34 (in Chinese)
Huang Y, Liu L, Wang X X, et al. A two-temperature modeling of TIG arc plasma[J]. Transactions of the China Welding Institution,2018,39(10):6−10,34
|
[6] |
Boulos M I, Fauchais P, Pfender E. Thermal plasmas: fundamentals and applications[M]. New York: Springer, 1994: 56−71
|
[7] |
Mostaghimi J, Proulx P, Boulos M I. A two-temperature model of the inductively coupled rf plasma[J]. Journal of Applied Physics,1987,61(5):1753−1760
|
[8] |
Zhang W B, Lani A, Panesi M. Modeling of non-equilibrium plasmas in an inductively coupled plasma facility[C]//45th AIAA Plasmadynamics and Lasers Conference, Atlanta: AIAA, 2014: 2235
|
[9] |
Shigeta M, Atsuchi N, Watanabe T. Numerical investigation of a local oxygen injection effect on argon induction plasmas using a chemically non-equilibrium model[J]. Journal of Chemical Engineering of Japan,2006,39(12):1255−1264 doi: 10.1252/jcej.39.1255
|
[10] |
Tanaka Y. Thermally and chemically non-equilibrium modelling of Ar–N2–H2 inductively coupled plasmas at reduced pressure[J]. Thin Solid Films,2009,518(3):936−942 doi: 10.1016/j.tsf.2009.07.173
|
[11] |
Watanabe T, Sugimoto N. Numerical analysis of oxygen induction thermal plasmas with chemically non-equilibrium assumption for dissociation and ionization[J]. Thin Solid Films, 2004, 457(1): 201-208.
|
[12] |
Tanaka Y. Two-temperature chemically non-equilibrium modelling of high-power Ar–N2 inductively coupled plasmas at atmospheric pressure[J]. Journal of Physics D: Applied Physics,2004,37(8):1190−1205 doi: 10.1088/0022-3727/37/8/007
|
[13] |
Lu B X, Feng Q K. Numerical simulation of thermochemically non-equilibrium inductively coupled plasmas under different operating parameters[J]. Physics of Plasmas,2018,25(9):093510 doi: 10.1063/1.5028204
|
[14] |
Ye R B, Proulx P, Boulos M I. Turbulence phenomena in the radio frequency induction plasma torch[J]. International Journal of Heat and Mass Transfer,1999,42(9):1585−1595 doi: 10.1016/S0017-9310(98)00260-9
|
[15] |
Cheng K, Chen X, Pan W X. Comparison of laminar and turbulent thermal plasma jet characteristics—a modeling study[J]. Plasma Chemistry And Plasma Processing,2006,26(3):211−235
|
[16] |
Punjabi S B, Sahasrabudhe S N, Joshi N K, et al. Comparative study of laminar and turbulent flow model with different operating parameters for radio frequency-inductively coupled plasma torch working at 3 MHz frequency at atmospheric pressure[J]. Physics of Plasmas,2014,21(1):013506 doi: 10.1063/1.4862238
|
[17] |
Chang C H, Pfender E. Nonequilibrium modeling of low-pressure argon plasma jets; part I: laminar flow[J]. Plasma Chemistry and Plasma Processing,1990,10(3):473−491 doi: 10.1007/BF01447204
|
[18] |
陈文波, 陈伦江, 刘川东, 等. 高频电感耦合等离子体炬内速度及温度空间分布的数值计算[J]. 高电压技术,2018,44(9):3035−3042 (in Chinese)
Chen W B, Chen L J, Liu C D, et al. Numerical calculation of spatial distribution of temperature and velocity in inductively coupled plasma torch[J]. High Voltage Engineering,2018,44(9):3035−3042
|
[19] |
Tanaka Y. Time-dependent two-temperature chemically non-equilibrium modelling of high-power Ar–N2 pulse-modulated inductively coupled plasmas at atmospheric pressure[J]. Journal of Physics D: Applied Physics,2006,39(2):307−319 doi: 10.1088/0022-3727/39/2/011
|
[20] |
陈文波, 陈伦江, 刘川东, 等. 工作频率及装置结构对射频感应等离子体特性影响的数值研究[J]. 高电压技术,2019,45(1):316−323 (in Chinese)
Chen W B, Chen L J, Liu C D, et al. Numerical study on influence of operating frequency and plasma torch structure on characteristics of radio-frequency-inductive coupled plasma[J]. High Voltage Engineering,2019,45(1):316−323
|
[21] |
钱海洋, 吴彬. 直流电弧等离子体双温度化学非平衡数值模拟[J]. 核聚变与等离子体物理,2011,31(2):186−192 (in Chinese)
Qian H Y, Wu B. A two-temperature chemical non-equilibrium modeling of DC arc plasma[J]. Nuclear Fusion and Plasma Physics,2011,31(2):186−192
|