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Numerical Simulation of Thermal Characteristics of Anodes by Pure Metal and CuCr Alloy Material in Vacuum Arc

机译:纯金属和CuCr合金材料在真空电弧中阳极热特性的数值模拟

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摘要

Anode material seriously influences the characteristics of vacuum arc and further affects the performance of medium-voltage vacuum switches when the interruption current is high. There are many materials used for electrode manufacture, and different materials are selected for different switches. For a pure metal, its performance usually cannot satisfy the actual requirement. To improve switch’s performance, an alloy is usually used as an electrode material. In this paper, thermal processes of six kinds of metal anodes (including pure metal and alloy anodes) are simulated and researched. The physical parameters of the pure metals all come from experiment results directly or are fitted by the experimental data. The physical parameters of the CuCr alloys are derived from Cu and Cr parameters. Two kinds of temperature calculation methods are used, which are called melting and solidification model and equivalent specific heat method, respectively. Simulation results show that W and Mo anodes have the higher temperature than Cu, Cr, CuCr25, and CuCr50 anodes. A pure Cr anode has the largest melting width and highest saturated vapor pressure and evaporation energy. A Cu anode has the biggest melting depth. A W anode has the smallest melting width and depth. Axial temperature gradient is related to the thermal conductivity, and the Cr anode has the largest axial temperature gradient. The thermal characteristics of CuCr25 and CuCr50 anodes are located between the pure Cu and Cr anodes. There are two melting points appearing in the results of CuCr alloys, and between the two melting points, the alloy anodes are in solid–liquid mixture state.
机译:当中断电流很高时,阳极材料会严重影响真空电弧的特性,并进一步影响中压真空开关的性能。用于电极制造的材料很多,为不同的开关选择了不同的材料。对于纯金属,其性能通常不能满足实际要求。为了提高开关的性能,通常将合金用作电极材料。本文对六种金属阳极(包括纯金属和合金阳极)的热过程进行了模拟和研究。纯金属的物理参数都直接来自实验结果或由实验数据拟合。 CuCr合金的物理参数是从Cu和Cr参数得出的。使用两种温度计算方法,分别称为熔融和凝固模型和等效比热方法。仿真结果表明,W和Mo阳极的温度高于Cu,Cr,CuCr25和CuCr50阳极。纯Cr阳极具有最大的熔化宽度,最高的饱和蒸气压和蒸发能。 Cu阳极具有最大的熔化深度。 W阳极具有最小的熔化宽度和深度。轴向温度梯度与热导率有关,Cr阳极的轴向温度梯度最大。 CuCr25和CuCr50阳极的热特性位于纯Cu和Cr阳极之间。 CuCr合金的结果中出现两个熔点,并且在两个熔点之间,合金阳极处于固液混合状态。

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