3D Simulation of Air Arc in the Molded Case Circuit Breaker

Keewon Kim, H. Joo, Chae Yoon Bae, Jongung Choi, Young Geun Kim
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Abstract

In low voltage switch gears, the arc voltage is a very important factor that decides the interruption performance. There are several ways to increase the arc voltage, like increasing the number of the arc chutes or the distance between the contacts. During the interruption, the separation of the contacts plays an important role in different kinds of switch gears since the arc motion or the arc elongation will be effected. However, the simulation of the arc behavior in low voltage switch gears is quite difficult due to the fact that: the 3D simulation makes the computation quite expensive; the existence of the arc chutes makes the calculation non-linear; the structure of some switch gears could be quite complicated. Therefore, the movement of the contact was neglected for simplicity. In fact, the movement of the contact could increase the arc length and then decide the arc behavior. In reverse, the arc current will be changed during the interruption and the Lorentz force will then influence the movement of the contact. It is necessary to consider this phenomenon to make the arc simulation more accurate and universal. In this work, low voltage arc plasma simulation in 3D with contact opening process has been established. Both the sheath and nonlinear magnetic material are taken into consideration. Calculation is based on magneto-hydrodynamic arc model, a method for coupling different software to separately calculate fluid and electromagnetic field has been developed to fulfill the requirements above. Furthermore, a low voltage circuit breaker has been experimented to compare with the simulation from U-I characteristics. The simulation results suggest that this method applied in arc simulation performs better in converging and accuracy.
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塑壳断路器空气电弧的三维模拟
在低压开关设备中,电弧电压是决定开关设备中断性能的一个重要因素。有几种方法可以增加电弧电压,如增加电弧槽的数量或增加触点之间的距离。在中断过程中,触点分离对各种开关齿轮的电弧运动或电弧伸长都有重要影响。然而,低压开关设备电弧行为的模拟是相当困难的,因为:三维模拟使计算成本相当高;弧槽的存在使计算呈非线性;一些开关齿轮的结构可能相当复杂。因此,为简单起见,忽略了触点的运动。事实上,触点的运动可以增加电弧长度,从而决定电弧的行为。反之,电弧电流将在中断期间发生变化,洛伦兹力将影响触点的运动。为了使电弧模拟更加准确和通用,有必要考虑这一现象。本文建立了具有触点开启过程的低压电弧等离子体三维仿真模型。同时考虑了护套和非线性磁性材料。计算基于磁流体动力电弧模型,为满足上述要求,开发了一种耦合不同软件分别计算流体和电磁场的方法。此外,还对一个低压断路器进行了U-I特性实验,并与仿真结果进行了比较。仿真结果表明,该方法在电弧仿真中具有较好的收敛性和精度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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