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Study on the Radial Dissipation of Residual Plasma in Vacuum Circuit Breaker with a Two-Dimensional Particle-In-Cell Model

机译:具有二维粒子内模型真空断路器残留等离子体径向耗散研究

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Vacuum circuit breakers (VCB) have been widely applied in medium voltage field. Because of the excellent high-frequency switching characteristics, VCB can also be used in DC switching field. During a current interruption process in a vacuum circuit breaker, the residual plasma has great effects on its breaking performance. At present, post-arc residual plasma dissipation is mainly studied with the one-dimensional (1D) models including continuous transition model, the hybrid Maxwell-Boltzmann model and the particle-in-cell (PIC) model. Due to the limitation of 1D model, the residual plasma radial motion is seldom discussed. In this paper, to study the dissipation of the residual plasma, a two-dimensional (2D) particle-in-cell (PIC) model is developed. The influences of contact radius, contact gap, shield position and polarity on the dissipation of residual plasma are investigated. The simulation results show that the factors above have certain influences on the residual plasma motions, and the contact gap and shielding position have a small effect on the radial motion of the particles. To verify the feasibility of the simulation, a comparison between experiment and simulation is carried out. These simulations also benefit the understanding of the microscopic physical mechanism of residual plasma dissipation.
机译:真空断路器(VCB)已广泛应用于中电压场。由于优异的高频开关特性,VCB也可用于DC开关场。在真空断路器中的电流中断过程中,残留等离子体对其断裂性能具有很大的影响。目前,主要的剩余等离子体耗散主要用一维(1D)模型研究,包括连续转换模型,混合麦克风 - Boltzmann模型和粒子 - 细胞内(PIC)模型。由于1D模型的局限性,剩余等离子体径向运动很少讨论。在本文中,为了研究残留等离子体的耗散,开发了二维(2D)粒子细胞(PIC)模型。研究了接触半径,接触间隙,屏蔽位置和极性对残留等离子体耗散的影响。仿真结果表明,上述因素对残留等离子体运动有一定的影响,并且接触间隙和屏蔽位置对颗粒的径向运动具有很小的影响。为了验证模拟的可行性,执行实验和模拟之间的比较。这些模拟还有利于了解残留等离子体耗散的微观物理机制。

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