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Effect of laser shock peening without coating on fretting corrosion of copper contacts

机译:激光冲击薄膜涂层对铜触点的微量腐蚀的影响

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The effects of laser shock peening without coating (LSPwC) on the degradation of copper electrical contact was investigated. A Nd:YAG laser with laser energy densities of 5.3 and 10.6 GW/cm(2) was used for the LSPwC process. Surface hardness was enhanced from 55 HV to 110 and 120 HV for the laser shock-peened copper at 5.3 GW/cm(2) and 10.6 GW/cm(2), respectively. Moreover, near the copper surface, LSPwC introduced the max. compressive residual stress of 387.5 and 385.5 MPa for laser energy densities of 5.3 and 10.6 GW/cm(2), respectively. Electron backscatter diffraction and transmission electron microscopy revealed that LSPwC introduced dislocation rearrangement, deformation twins, and grain refinement. The laser shock-peened copper exhibited superior wear resistance compared with the base metal. During the fretting test, the wear loss of the base metal was 1.61 x 10(-3) mm(3), and this decreased to 0.99 x 10(-3) and 0.94 x 10(-3) mm(3) for the laser shock-peened copper at 5.3 and 10.6 GW/cm(2), respectively. Thus, the laser shock-peened copper maintained a low electrical contact resistance during the fretting test, resulting in electrical contact failure delay from 2790 cycles for the base metal to 5011 and 5210 cycles for laser shock-peened copper at 5.3 and 10.6 GW/cm(2), respectively.
机译:研究了激光冲击喷丸的影响(LSPWC)对铜电接触的降解进行了研究。 LSPWC工艺使用激光能量密度的Nd:激光能量密度为5.3和10.6 gw / cm(2)的YAG激光器。表面硬度从55HV至110和120HV增强,分别为5.3gW / cm(2)和10.6gW / cm(2)的激光冲击喷丸铜。此外,在铜表面附近,LSPWC引入了最大值。激光能量密度分别为5.3和10.6 gw / cm(2)的激光能量密度的压缩残余应力。电子反向散射衍射和透射电子显微镜显示LSPWC引入位错重排,变形双胞胎和晶粒细化。与基础金属相比,激光冲击喷丸铜表现出优异的耐磨性。在微动检测期间,贱金属的磨损损失为1.61×10(3)mm(3),这降至0.99×10(-3)和0.94×10(-3)mm(3)激光冲击喷丸铜,分别为5.3和10.6 gw / cm(2)。因此,激光冲击喷气铜在微动试验期间保持低电接触电阻,导致基础金属的2790个循环的电接触失效延迟为5011和5210循环,用于激光冲击喷丸铜,在5.3和10.6 gw / cm处(2)分别。

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