A possible degeneration mechanism in stationary electrical contacts

R. Timsit
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引用次数: 8

Abstract

A mechanism for the degeneration of stationary electrical contacts is proposed. The mechanism derives from Mullins' model (1959) of flattening of free surfaces through the action of capillarity forces. Mass transport for surface deformation is assumed to occur through volume self-diffusion and is calculated on the basis of diffusion constants characteristic of plastically deformed or mechanically stressed aluminium. A simple electrical contact model suggests that the increase in contact resistance stemming from surface flattening in Al at room temperature can become noticeable in a time interval of a few days ( approximately 10/sup 6/ s). This result may explain the deterioration of contaminated Al/Al stationary electrical contacts operated at room temperature, after run-times of 10/sup 5/-10/sup 6/ s. Finally, since many metals are characterized both by rapid volume or surface diffusion and by a large surface energy, the results suggest that asperity flattening can lead to degeneration in all bulk electrical interfaces.<>
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静止电触点可能的退化机制
提出了静止电触点退化的机理。这种机制源于Mullins的模型(1959),该模型通过毛细力的作用使自由表面变平。假设表面变形的质量输运是通过体积自扩散发生的,并根据塑性变形或机械应力铝的扩散常数进行计算。一个简单的电接触模型表明,室温下铝表面变平引起的接触电阻增加在几天(大约10/sup 6/ s)的时间间隔内会变得明显。这一结果可以解释在室温下运行10/sup 5/-10/sup 6/ s后,受污染的铝/铝固定电触点的恶化。由于许多金属具有快速体积或表面扩散和大表面能的特点,因此结果表明,粗糙平坦化会导致所有体电界面的退化。
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