Transient Response Simulation of Downstream Thermofluid Field in a Gas Circuit Breaker during Current Interruption(<Special Issue>Advanced Fusion of Functional Fluids Engineering)

Abstract

A transient response of SF_6 thermofluid field inside the exhaust tube in a Gas Circuit Breaker under high temperature, high pressure and high velocity conditions is analyzed by taking compressible effect and some realistic processes into account related to the available experimental data of GCB test facility. Furthermore, computational simulation is conducted to clarify the effective cooling process of SF_6 hot gas flow inside the exhaust tube for transient time to avoid the SF_6 hot gas breakdown near exhaust tube exit after the arc current interruption. It is found that the SF_6 hot gas flow can be effectively cooled down for the rough inside wall of exhaust tube due to the separation of SF_6 hot gas flow from the inside wall and also active mixing with upstream cold gas. The effect of roughness pattern on the real time thermofluid field of SF_6 hot gas flow and possible breakdown region are also clarified. Finally, the computed temperature in GCB shows the good agreement with the available experimental data for smooth surface of exhaust tube.

Journal

JSME international journal. Ser. B, Fluids and thermal engineering   [List of Volumes]

JSME international journal. Ser. B, Fluids and thermal engineering 48(3), 381-388, 2005-08-15  [Table of Contents]

The Japan Society of Mechanical Engineers

References:  13

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Cited by:  1

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Codes

  • NII Article ID (NAID) :
    110004820195
  • NII NACSIS-CAT ID (NCID) :
    AA10888815
  • Text Lang :
    ENG
  • Article Type :
    Journal Article
  • ISSN :
    13408054
  • NDL Article ID :
    7386961
  • NDL Source Classification :
    ZN11(科学技術--機械工学・工業)
  • NDL Call No. :
    Z53-Y271
  • Databases :
    CJP  CJPref  NDL  NII-ELS  J-STAGE