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Studies of tin coated brass contacts in fretting conditions under different normal loads and frequencies

机译:在不同的正常负载和频率下微动条件下镀锡黄铜触点的研究

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The fretting corrosion behavior of tin-plated brass contacts is studied at various normal loads (0.25, 0.5, 1.0 and 1.5 N) and fretting frequencies (1, 3 and 8 Hz). The typical characteristics of the change in contact resistance with fretting cycles and time are explained. Irrespective of the frequencies under study, 1 N normal load suppressed the fretting corrosion of tin contacts by maintaining the mechanical stability and good electrical contact between the contacting members which makes less accumulation of wear debris at the fretted zone. For a given normal load, the fretting corrosion of tin-plated contacts occur much faster at higher frequencies as it provides more fresh metal for oxidation and generates more accumulation of oxide wear debris at the contact zone. The failure time, i.e. the time for contact resistance at the fretted surface to reach 0.1 Ω is delayed with increasing normal loads at the studied frequencies. For a given normal load, the failure time reaches early at 8 Hz, i.e. at higher fretting frequencies. The fretted surface is examined using laser scanning microscope, scanning electron microscope and energy dispersive X-ray analysis to assess the surface profile, extent of fretting damage, extent of oxidation and elemental distribution across the contact zone. From the surface profile data, the fretted area and the wear rate is calculated and correlated with the observed extent of oxidation and earlier failure of electrical contacts. The surface morphology and EDX analysis results of the fretted surface clearly revealed the severe fretting damage at 0.25 N and 8 Hz.
机译:研究了在各种正常负载(0.25、0.5、1.0和1.5 N)和微动频率(1、3和8 Hz)下镀锡黄铜触点的微动腐蚀行为。解释了随着微动周期和时间的变化,接触电阻的典型特征。无论所研究的频率如何,1 N的正常负载都通过保持接触部件之间的机械稳定性和良好的电接触而抑制了锡触头的微动腐蚀,从而减少了磨屑在微动区域的积聚。对于给定的正常负载,镀锡触点的微动腐蚀在较高频率下会更快地发生,因为它为氧化提供了更多的新鲜金属,并在接触区域产生了更多的氧化物磨损碎片堆积。在研究频率下,随着正常负载的增加,故障时间(即,有毛表面的接触电阻达到0.1Ω的时间)会延迟。对于给定的正常负载,故障时间较早达到8 Hz,即在较高的微动频率下。使用激光扫描显微镜,扫描电子显微镜和能量色散X射线分析来检查带毛表面,以评估表面轮廓,微动损伤程度,氧化程度以及整个接触区的元素分布。根据表面轮廓数据,可以计算出毛刺面积和磨损率,并将其与观察到的氧化程度和电触点的早期失效相关联。有毛表面的表面形态和EDX分析结果清楚地表明了在0.25 N和8 Hz下的严重微动损伤。

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