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回流效应下电磁轨道炮膛口电弧运动的数值分析 被引量:2

NUMERICAL ANALYSIS OF ARC MOTION IN RAILGUN MUZZLE UNDER THE EFFECT OF BACKFLOW
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摘要 在电磁轨道炮发射过程中,膛口外的高温气团以远高于声速的运动速度向内膛运动,这会使得膛口的电弧形态发生改变以及电弧位移。为了实现膛口电弧运动过程的数值计算,本文基于磁流体理论,引入了一种和电弧等离子体自身电导率密切相关的电位边界条件处理方法,建立了膛口位置电弧仿真模型。对回流效应下的电弧运动规律进行了分析,并且研究了运动过程中电弧对内膛流场的温度分布产生的影响。结果表明电弧的运动加剧了膛内温升。 During the launching process of the railgun, the high temperature air mass outside the muzzle moves to the interior at a speed far higher than the sound speed, which will change the arc shape of the muzzle and cause the arc displacement. This paper makes a numerical calculation of the movement process of the muzzle arc, based on the theory of magneto hydro dynamical(MHD), with a treatment method of potential boundary condition closely related to the electric conductivity of the arc plasma itself, and a three dimensional simulation model of the muzzle position arc is established. The arc motion under the backflow effect is analyzed, and the influence of the arc on the temperature distribution of the railgun inner bore flow field is studied. The simulation results show that the movement of the muzzle arc intensifies the temperature rise in the bore.
作者 高源 王昭昕 肖宏成 倪琰杰 徐英桃 栗保明 GAO Yuan;WANG Zhaoxin;XIAO Hongcheng;NI Yanjie;XU Yingtao;LI Baoming(National Key Laboratory of Transient Physics,Nanjing University of Science&Technology,Nanjing 210094,China)
出处 《力学与实践》 北大核心 2020年第3期331-336,共6页 Mechanics in Engineering
关键词 电磁轨道炮 膛口 磁流体 运动电弧 数值计算 railgun muzzle magneto-hydro-dynamical arc motion numerical calculation
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  • 1LEE ChunHian.Direct numerical simulation of the turbulent MHD channel flow at low magnetic Reynolds number for electric correlation characteristics[J].Science China(Physics,Mechanics & Astronomy),2010,53(10):1901-1913. 被引量:6
  • 2张俊民.喷口电弧与喷口材料蒸气相互作用的数学模型[J].中国电机工程学报,2004,24(7):206-209. 被引量:20
  • 3刘洪武,陈德桂,李志鹏.不同因素对气吹式塑壳断路器开断电弧运动影响的实验研究[J].中国电机工程学报,2004,24(11):154-159. 被引量:32
  • 4Lindmayer M, Paulke J. Arc motion and pressure formation in low voltage switchgear[J]. IEEE Transactions on components, packaging and manufacturing technology, 1998, 21(1): 33-39.
  • 5McBride J W, Pechrach K, Weaver P M. Arc motion and gas flow in current limiting circuit breakers operating with a low contact switching velocity[J]. IEEE Transactions on components, packaging and manufacturingtechnology, 2002, 25(3): 427-433.
  • 6Schlitz L Z, Garimella S V, Chan S H. Gas dynamics and electromagnetic processes in high-current arc plasmas[J]. J.Appl.Phys., 1999, 85(5): 2540-2546.
  • 7Schlitz L Z, Garimella S V, Chan S H. Gas dynamics and electromagnetic processes in high-current arc plasmas[J]. J. Appl.Phys., 1999, 85(5): 2547-2555.
  • 8Karetta F, Lindmayer M. Simulation of the gasdynamic and electromagnetic processes in low voltage switching arcs[J]. IEEE Transactions on Components, Packaging and Manufacturing Technology, 1998, 21(1):96-103.
  • 9Swierczynski B, Gonzalez J J, Teulet P, et al. Advances in low-voltage circuit breaker modeling[J]. J.phys.D:Appl.Phys., 2004,37(4): 595-609.
  • 10Yos J. Revised transport properties for high temperature air and its components[R]. Avco Space Systems Division, Technical Release,1967.

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