模拟汽车工况下接触性能的材料贴片试验方法

N.A. Gildersleeve, K. Collins
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引用次数: 1

摘要

在过去的十年里,对汽车互连的研究和失效分析出现了一个巨大的高潮。失效通常归因于法向力损失、微动腐蚀、普遍腐蚀、过热、镀层退化等因素的组合。大部分的研究工作都是在材料系统和电气性能可靠性之间建立可重复的联系。金属合金生产商和材料拼盘商试图通过进行表征其产品电气性能的具体优惠券研究来为这一努力作出贡献。一般来说,这些接头研究并没有解决扁平接头样品和成形接头性能之间的关键差异。在汽车工业中,有各种性能测试应用于互连组件,评估在模拟或加速使用条件下的电气性能结果。本文描述了一种能够模拟汽车互连关键性能特性的测试方法的发展。包括对未来改进的建议。这一发展的目标是提供一种测试系统,该系统可以评估样品中接触电阻的退化,这些样品与成型组件非常接近,而不需要完整的组件制造。选择以下标准作为最低测试系统要求:样品必须易于从感兴趣的材料系统制造;环境必须提供热循环(δ T=125/spl℃,最小);提供形成的接触弹簧的应力松弛,以体现在性能结果中;提供接触表面微动腐蚀所需的运动;接触电阻随时间的变化必须以足够接近的间隔测量,以识别临界现象;在循环测试完成后,样品必须易于提取并准备用于接触面分析。比较黄铜和铜铍上的重热锡涂层的初步结果表明,接触电阻的增加速度有极高的差异。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Material coupon test method to simulate contact performance under automotive conditions
There has been a great upsurge in research and failure analysis on automotive interconnections over the past 10 years. Failures are often attributed to a combination of loss of normal force, fretting corrosion, general corrosion, overheating, plating degradation, and others. Much of the research effort has been to establish a reproducible link between material system and electrical performance reliability. Metal alloy producers and material platers have attempted to contribute to this effort by performing specific coupon studies which characterize the electrical performance of their products. Generally, these coupon studies do not address the critical differences between the performance of a flat coupon sample and a formed connector. Within the automotive industry, there are various performance tests applied to interconnection components which evaluate electrical performance results after simulated or accelerated service conditions. This paper describes the development of a test method which is capable of simulating the key performance characteristics of an automotive interconnection. Recommendations for future improvements are included. The goal of this development was to provide a testing system which evaluates the degradation of contact resistance in samples which closely represent formed components, without the encumbrance of complete component fabrication. The following criteria were selected as minimum test system requirements : Samples must be easily fabricated from the material systems of interest; The environment must provide for thermal cycling (Delta T=125/spl deg/C, min.); Provide for stress relaxation of a formed contact spring to manifest in the performance result; Provide for the motion required for fretting corrosion at the contact surface; The change in contact resistance with time must be measured at intervals close enough to identify critical phenomena; Samples must be easily retrieved and prepared for contact surface analysis after cycle testing is completed. Initial results comparing heavy hot tin coatings on both brass and copper beryllium show an extremely high difference in the rate of increase in contact resistance.
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