压力相关接触电阻率对接触面条件的影响

K. Hsieh, S. Satapathy, M. Hsieh
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引用次数: 1

摘要

需要在电触点处施加足够的接触压力,以克服由于电流收缩效应而产生的接触分离力。在轨道炮操作中,初始接触压力由电枢和轨道之间的干涉压力提供。当磁场在孔内建立时,电磁力提供接触压力,因为初始接触压力由于磨损或接触熔化而降低。过高的初始接触压力可能会延迟电枢的运动,并导致电枢过热。另一方面,初始压力不足会导致电枢与钢轨接触分离。触控界面从来都不是完美平滑的。在微观尺度上,由于接触界面的变形,只能在离散的点上接触,而在宏观尺度上,只能在离散的点上接触。接口特性不同于本体行为。一个详细的接触电阻率模型是精确计算界面电流密度和温度分布的必要条件。建立了一个接触电阻率模型,该模型是接触压力、较软接触构件硬度、平均体电阻率和接触常数的函数。该模型在EMAP3D代码中实现。本文给出了有接触电阻和无接触电阻情况下样品轨道炮启动的仿真结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Effects of Pressure-Dependent Contact Resistivity on Contact Interfacial Conditions
Adequate contact pressure needs to be applied at electrical contacts to overcome contact separation force due to current constriction effects. In the railgun operation, the initial contact pressure is provided by the interference pressure between the armature and the rail. As the magnetic field is established in the bore, the electromagnetic force provides the contact pressure, as the initial contact pressure reduces due to wear or contact melting. Excessive initial contact pressure may delay the motion of the armature and cause overheating of the armature. On the other hand, insufficient initial pressure would result in contact separation of armature and rail. The contact interface is never perfectly smooth. It only contacts at discrete asperities at micro scale and at discrete points due to deformation of the contact interface at macro scale. The interface characteristics are different from the bulk behavior. A detailed model of contact resistivity is essential to compute the interfacial current density and temperature distributions accurately. A contact resistivity model was developed that is a function of contact pressure, the hardness of the softer contact member, average bulk resistivity, and contact constants. The model was implemented into the code EMAP3D. This paper presents the simulation results of the startup of a sample railgun with and without contact resistivity.
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