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Fatigue Crack Growth on the Interface of Copper and Epoxy Molding Compound under Mixed-Mode Loading

机译:混合模式载荷作用下铜与环氧模塑料界面疲劳裂纹扩展

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The fatigue growth of a crack on the interface of Cu and liquid epoxy molding compound (EMC) was investigated by using a novel mixed-mode bending test setup. In this setup, the mixed-mode loading is achieved by using two voice-coil motors for applying unequal end-loads on a split-beam specimen. The specimen consists of two oxygen-free Cu strips bonded by using EMC. By using an analytical formula based on the beam-on-elastic-foundation theory and compliance method, the crack length and the strain energy release rate are calculated from the crack-mouth opening displacement and the applied end forces. A real-time OS controller CompactRIO is used for the system control and data analysis. The control program calculates the crack length and phase angle for adjusting the applied force to maintain the prescribed mode mixity throughout the fatigue experiment. By post-processing the experiment results, the subcritical fatigue growth responses of the Cu-EMC interface were obtained. It was found that the steady-state cyclic fatigue delamination growth rate displays a power-law dependence on the applied strain energy release rate range. The measured fatigue growth characteristics may be further incorporate with the fracture mechanics analysis to predict the delamination growth on the interface of interest in a realistic structure.
机译:通过使用新型的混合模式弯曲测试装置,研究了铜与液态环氧模塑化合物(EMC)界面上裂纹的疲劳增长。在这种设置中,通过使用两个音圈电机在分束试样上施加不相等的最终载荷来实现混合模式载荷。样品由两条通过EMC粘合的无氧铜带组成。通过使用基于弹性地基梁理论和柔度法的解析公式,根据裂纹口张开位移和施加的端力计算出裂纹长度和应变能释放率。实时操作系统控制器CompactRIO用于系统控制和数据分析。控制程序计算裂纹长度和相角,以调节施加的力,以在整个疲劳实验中保持规定的模态混合度。通过对实验结果进行后处理,获得了Cu-EMC界面的亚临界疲劳增长响应。发现稳态循环疲劳分层生长速率对施加的应变能释放速率范围表现出幂律依赖性。所测量的疲劳增长特性可以进一步与断裂力学分析结合,以预测现实结构中目标界面上的分层增长。

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