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首页> 外文期刊>Journal of Physics, D. Applied Physics: A Europhysics Journal >Impact of radial external magnetic field on plasma deformation during contact opening in SF _6 circuit breakers
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Impact of radial external magnetic field on plasma deformation during contact opening in SF _6 circuit breakers

机译:SF _6断路器触头断开期间径向外部磁场对等离子体变形的影响

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A three-dimensional (3D) transient model is developed to investigate plasma current deformation driven by internal and external magnetic fields and their influences on arc stability in a circuit breaker. The 3D distribution of electric current density is obtained by solving the current continuity equation along with the generalized Ohm's law in the presence of an external magnetic field, while the magnetic field induced by the current flowing through the arc column is calculated by the magnetic vector potential equation. The applied external field imposes a rotational electromagnetic force on the arc and influences the plasma current deformation, which is discussed in this paper. In SF _6 circuit breakers when gas interacts with the arc column, the fundamental equations such as Ampere's law, Ohm's law, turbulence model, transport equations of mass, momentum, and energy of plasma flow have to be coupled for analysing the phenomenon. The coupled interactions between the arc and the plasma flow are described within the framework of magnetohydrodynamic equations in conjunction with a K-ε turbulence model. Simulations are focused on sausage and kink instabilities in the plasma (these phenomena are related to the electromagnetic field distribution and define the plasma deformations). The 3D simulation reveals the relation between plasma current deformation and instability phenomena, which affects the arc stability during the operation. Plasma current deformation is a consequence of coupling between electromagnetic forces (resulting from internal and radial external magnetic fields) and the plasma flow that are described in the simulations.
机译:建立了三维(3D)瞬态模型,以研究由内部和外部磁场驱动的等离子体电流变形及其对断路器电弧稳定性的影响。在存在外部磁场的情况下,通过求解电流连续性方程以及广义欧姆定律,可获得电流密度的3D分布,而由流过电弧柱的电流感应的磁场是由磁矢量势计算的方程。施加的外部磁场在电弧上施加旋转电磁力,并影响等离子体电流的变形,本文对此进行了讨论。在气体气体与弧柱相互作用的SF _6断路器中,必须结合基本方程式(例如安培定律,欧姆定律,湍流模型,质量,动量和等离子流能量的输运方程式)来分析该现象。在磁流体动力学方程的框架内结合K-ε湍流模型描述了电弧与等离子体流之间的耦合相互作用。模拟的重点是等离子体中的香肠和扭结不稳定性(这些现象与电磁场分布有关,并定义了等离子体的变形)。 3D仿真揭示了等离子体电流变形与不稳定性现象之间的关系,该关系会影响操作过程中的电弧稳定性。等离子体电流变形是电磁力(由内部和径向外部磁场产生)与等离子体流之间耦合的结果,在模拟中进行了描述。

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