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Simulation of surface erosion of anode under high-current vacuum arcs

机译:大电流真空电弧下阳极表面腐蚀的模拟

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The anode melting and erosion process has a significant effect on the interruption of a high-current vacuum arc. The objective of this paper is to theoretically investigate the mechanism of anode surface erosion caused by a combined effect of vacuum arc heating and the blow effect of arc pressure. A model of fluid flow and heat transfer of an anode region in a vacuum interrupter's high-current interruption process is developed. The results show that, under the combined effect of arc heating and arc pressure, an obvious erosion on anode surfaces was seen for peak arcing current of 20 kA. The flow of liquid metal started after 5 ms of arcing, the maximum velocity was 0.95 m/s. This flow of liquid metal on anode surfaces driven by arc plasma may redistribute the thermal energy of molten liquid metal. As a result, the maximum temperature of an anode surface did not stay in the center of an anode surface.
机译:阳极熔化和腐蚀过程对大电流真空电弧的中断具有重大影响。本文的目的是从理论上研究由真空电弧加热和电弧压力的吹气作用共同引起的阳极表面腐蚀的机理。建立了真空灭弧室大电流中断过程中阳极区域的流体流动和传热模型。结果表明,在电弧加热和电弧压力的共同作用下,峰值电弧电流为20 kA时,阳极表面出现了明显的腐蚀。电弧放电5毫秒后,液态金属开始流动,最大速度为0.95 m / s。电弧等离子体驱动的阳极表面上液态金属的这种流动可能会重新分配熔融液态金属的热能。结果,阳极表面的最高温度没有停留在阳极表面的中心。

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