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Micro-particle impact phenomena on contact surface under different applied voltages in vacuum interrupters

机译:真空灭弧室在不同施加电压下在接触面上的微粒撞击现象

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摘要

According to the vacuum breakdown model based on Cranberg “clump” hypothesis, micro-particles on contact surface can be detached from the contact surface and accelerated across the vacuum gap towards to the opposite contact under an applied voltage in vacuum interrupters (VIs). Finally they can impact on the target contact surface with high velocities, which probably triggers a breakdown in the vacuum gap. Thus, the mechanism of the impact phenomena may be the key to understanding the mechanism of the vacuum breakdown initiated by the micro-particles. Moreover, the detailed nature of the dynamic impact process is a subject of the hydro-dynamical theories on the projectile impact. The objective of this paper is to study the micro-particles impact phenomena in VIs by introducing a mesh-free numerical calculation method Smoothed Particle Hydrodynamics (SPH) method which is an efficient method of the projectile impact studies. In this paper, the materials of the micro-particle and the target contact were assumed to be copper and stainless-steel, respectively. The radius of the micro-particle was assumed to be 0.1 μm. The characteristics of the deformations occurring during the high-velocity impact processes are investigated under the different applied voltages (10 to 60 kV). As a result, it is found that the deformations of the micro-particles and the target contacts are severer with the increase of applied voltages, due to the increase of the impact velocities. With the applied voltages 50 kV and even to 60 kV (the impact velocity 526 and 631 m/s), there can be damages generated on the contact surface accompanying by a large number of high-velocity secondary particles. Furthermore, the influencing factors of the micro-particles impact phenomena in VIs, such as the size of the micro-particles, the microscopic electric field distribution, the contact materials and so on, have also be considered. The result of this paper may provide some useful information to understand the vacuum breakdown initiated by the micro-particles.
机译:根据基于Cranberg“团块”假设的真空击穿模型,可以在真空灭弧室(VIs)中施加电压,使接触表面上的微粒与接触表面分离,并通过真空间隙朝相对的接触加速。最后,它们会以很高的速度撞击目标接触表面,这可能会触发真空间隙的破坏。因此,冲击现象的机理可能是理解由微粒引发的真空破坏机理的关键。而且,动态冲击过程的详细性质是射弹冲击的流体力学理论的主题。本文的目的是通过引入无网格数值计算方法平滑粒子流体动力学(SPH)方法研究VI中的微粒撞击现象,该方法是弹丸撞击研究的有效方法。在本文中,假设微粒和目标触点的材料分别为铜和不锈钢。假定微粒的半径为0.1μm。在不同的施加电压(10至60 kV)下,研究了高速冲击过程中发生的变形特征。结果,发现由于冲击速度的增加,随着施加电压的增加,微粒和目标接触的变形更加严重。在施加的电压为50 kV甚至60 kV(冲击速度526和631 m / s)的情况下,接触表面可能会产生大量高速次级粒子,从而产生损坏。此外,还考虑了微粒在VI中的影响现象的影响因素,例如微粒的尺寸,微观电场分布,接触材料等。本文的结果可能提供一些有用的信息,以了解由微粒引发的真空破坏。

著录项

  • 来源
  • 作者单位

    Department of Electrical Engineering, Tongji University, Shanghai 201804, China;

    Department of Electrical Engineering, Tongji University, Shanghai 201804, China;

    Department of Electrical Engineering, Tongji University, Shanghai 201804, China;

    Shanghai Key Laboratory of Special Artificial Micro structure Materials and Technology, Tongji University, 201804, China;

    State Key Laboratory of Electrical Insulation and Power Equipment, Xi'an Jiaotong University, 710049, China;

    State Key Laboratory of Electrical Insulation and Power Equipment, Xi'an Jiaotong University, 710049, China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Contacts; Interrupters;

    机译:触头;中断器;

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