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Numerical Simulation of Arc Motion and Anode Activity Considering the Action of Metal Vapor

机译:考虑金属蒸气作用的电弧运动和阳极活度的数值模拟

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The constricted vacuum arc can be controlled by transverse magnetic field (TMF) to make it moving on the contacts. The movement of the arc avoids the excessive ablation of the contact surface, which is benefit for the successful breaking of interrupters. Previous studies have suggested that the speed of arc motion is closely related to the contact surface temperature. Only if the temperature of arc root is high enough, the arc is likely to move forward. However, it is also noted that too high metal vapor pressure near arc would limit its forward process. In this paper, a transient two-dimensional anode activity model (subjected to TMF contacts) is established, with consideration of the limitation of metal vapor. Based on this model, the arc speed and anode thermal process are calculated. In addition, the arc speed and relevant parameters are compared with previous simulation and experimental results.
机译:可以通过横向磁场(TMF)控制狭窄的真空电弧,使其在触点上移动。电弧的运动避免了接触表面的过度烧蚀,这对于成功地断开断路器是有好处的。先前的研究表明,电弧运动的速度与接触表面温度密切相关。仅当电弧根的温度足够高时,电弧才可能向前移动。但是,还应注意,电弧附近的金属蒸气压过高会限制其前进过程。在本文中,考虑到金属蒸气的限制,建立了一个瞬态二维阳极活性模型(受TMF接触)。基于该模型,计算了电弧速度和阳极热过程。另外,将电弧速度和相关参数与先前的仿真和实验结果进行了比较。

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