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Simulation and Experimental Study of Arc Column Expansion After Ignition in Low-Voltage Circuit Breakers

Simulation and Experimental Study of Arc Column Expansion After Ignition in Low-Voltage Circuit Breakers
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摘要 The dynamic process of arc pressure and corresponding arc column expansion, which is the main feature after arc ignition and has a significant effect on the breaking behaviour of low -voltage circuit breakers, is studied. By constructing a three dimensional mathematical model of air arc plasma and adopting the Control Volume Method, the parameters of arc plasma including temperature and pressure are obtained. The variations of pressure field and temperature field with time are simulated. The result indicates that there are six stages for the process of arc column expansion according to the variation of pressure in arc chamber. In the first stage, the maximal pressure locates in the region close to cathode, and in the second stage the maximal pressure shifts to the region close to the anode. In the third stage, the pressure difference between the middle of arc column and the ambient gas is very large, so the arc column begins to expand apparently. In the fourth stage, the pressure wave propagates towards both ends and the maximal pressure appears at the two ends when the pressure wave reaches both sidewalls. In the fifth stage, the pressure wave is reflected and collides in the middle of the arc chamber. In the last stage, the propagation and reflection of pressure wave will repeat several times until a steady burning state is reached. In addition, the experimental results of arc column expansion, corresponding to the arc pressure variation, are presented to verify the simulation results. The dynamic process of arc pressure and corresponding arc column expansion, which is the main feature after arc ignition and has a significant effect on the breaking behaviour of low -voltage circuit breakers, is studied. By constructing a three dimensional mathematical model of air arc plasma and adopting the Control Volume Method, the parameters of arc plasma including temperature and pressure are obtained. The variations of pressure field and temperature field with time are simulated. The result indicates that there are six stages for the process of arc column expansion according to the variation of pressure in arc chamber. In the first stage, the maximal pressure locates in the region close to cathode, and in the second stage the maximal pressure shifts to the region close to the anode. In the third stage, the pressure difference between the middle of arc column and the ambient gas is very large, so the arc column begins to expand apparently. In the fourth stage, the pressure wave propagates towards both ends and the maximal pressure appears at the two ends when the pressure wave reaches both sidewalls. In the fifth stage, the pressure wave is reflected and collides in the middle of the arc chamber. In the last stage, the propagation and reflection of pressure wave will repeat several times until a steady burning state is reached. In addition, the experimental results of arc column expansion, corresponding to the arc pressure variation, are presented to verify the simulation results.
出处 《Plasma Science and Technology》 SCIE EI CAS CSCD 2008年第4期438-445,共8页 等离子体科学和技术(英文版)
基金 National Natural Science Foundation of China(Nos.5047702,50537050 and 50525722) Science and Technology Research Key Project of MOE(10518)
关键词 arc plasma arc simulation arc column expansion arc plasma, arc simulation, arc column expansion
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参考文献14

  • 1Mcbride J W, Weaver P M, Jeffery P A. 1998, IEEE Transactions on Components, Packing and Manufacturing Technology A, 21:61
  • 2Mcbride J W, Pechrach K, Weaver P M. 2001, IEEE Transactions on Components, Packing and Manufacturing Technology A, 24:331
  • 3Belbel E M, Lauraire M. 1985, IEEE Trans. Comp. Hybrids. Manufacture Technol., 8:3
  • 4Mcbride J W, Jeffery P A. 1999, IEEE Transactions on Components, Packing and Manufacturing Technology A, 22:38
  • 5Mcbride J W, Pechrach K, Weaver P M. 2002, IEEE Transactions on Components, Packing and Manufacturing Technology A, 25:427
  • 6Gauster E, Rieder W. 1998, IEEE Transactions on Components, Packing and Manufacturing Technology A, 21:82
  • 7Weaver P M, Mcbide J W. 1994, IEEE Trans. Compon. Packag. Manuf. Technol. A, 17:39
  • 8Karetta F, Lindmayer M. 1998, IEEE Trans. Compon. Packag. Manuf. Technol. A, 21:96
  • 9Yos J. 1967, Revised transport properties for high temperature air and its components. Avco Space Systems Division, Technical Release, Massachusetts: Avco Corporation
  • 10Patankar S V. 1980, Numerical Heat Transfer and Fluid Flow. New York: McGraw-Hill

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