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Theoretical and Experimental Investigation of New Innovative TMF–AMF Contacts for High-Current Vacuum Arc Interruption

机译:用于大电流真空电弧中断的新型创新TMF–AMF触头的理论和实验研究

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This paper consists of investigating the vacuum arc behavior during the high-current interruption process with a new innovative coaxial double-contact system. The structure of the so-called TMF-AMF double-contact offers the advanatage of low total resistance for nominal current conduction as in standard transverse magnetic field (TMF) contacts and similar vacuum arc control as in axial magnetic field (AMF) contacts. For an optimized contact's geometry, finite element method B-field simulations were performed to evaluate the effect of geometric parameters on the axial B-field strength and distribution and mechanical simulations to evaluate the closing forces distribution. The arc dynamics for two distinct cases, where the arc ignition takes place between the inner contacts, and between the outer contacts, are investigated experimentally. The arc appearance extracted from the high-speed movie is correlated with the arc voltage to explain the mechanisms of arc commutation to fully diffuse mode. It has been shown that the commutation to fully diffuse arc takes place in all cases but with a shorter commutation time with the second case. The benefit of using the present TMF–AMF contact system for high-current interruption while keeping the total nominal resistance as low as possible is demonstrated.
机译:本文包括使用新型创新的同轴双触点系统研究大电流中断过程中的真空电弧行为。所谓的TMF-AMF双触点结构为标称电流传导提供了低的总电阻,这与标准横向磁场(TMF)触点一样,而真空电弧控制与轴向磁场(AMF)触点类似。为了优化触点的几何形状,执行了有限元方法B场模拟,以评估几何参数对轴向B场强度和分布的影响,并进行机械模拟,以评估闭合力的分布。实验研究了两种不同情况下的电弧动力学,在这种情况下,内部触点之间以及外部触点之间发生电弧点火。从高速电影中提取的电弧外观与电弧电压相关,以解释电弧换向至完全扩散模式的机理。已经表明,在所有情况下都发生了向完全扩散电弧的换向,但是与第二种情况相比换向时间更短。展示了使用当前的TMF-AMF接触系统进行大电流中断的好处,同时将总标称电阻保持在尽可能低的水平。

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