用原位热机械探针测定材料性能和失效

B. Arrazat, S. Orellana, C. Rivero, P. Fornara, A. Di-Giacomo, S. Blayac, P. Montmitonnet, K. Inal
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引用次数: 1

摘要

对金属地应力传感器进行了改进,以解决电极化问题,从而利用焦耳效应对传感器进行局部加热。通过SEM电纳米探测与解析建模和多物理场有限元法的耦合,对材料的热力学性能进行了表征。结果表明,铝薄膜的拉伸应力状态为190 MPa,热膨胀系数为22.5×10-6 K-1,导热系数为190 W/(K·m),与文献一致。此外,大电流会引起不可逆的变形和断裂。利用多物理场有限元模型,确定了传感器的热-机械性能,研究了传感器在电激励下的失效。在不同的传感器设计上,局部温度和机械变形的演变允许确定断裂的位置和条件。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Determination of material properties and failure using in-situ thermo-mechanical probe
A metallic in-situ stress sensor is modified to address electrical polarization and thus to locally heat this sensor by Joule effect. By coupling SEM electrical nano-probing with analytical modeling and multiphysics Finite Element Method (FEM), the thermo-mechanical properties are identified. As a result, a tensile stress state of 190 MPa, coefficient of thermal expansion of 22.5×10-6 K-1 and thermal conductivity of 190 W/(K·m) are identified in the aluminum thin film in agreement with literature. Moreover, high current induces irreversible deformation and breaking. Using multiphysics FE model with identified thermo-mechanical properties, the failure of the sensor under electrical solicitation is investigated. The evolution of local temperature and mechanical deformation on different sensor designs allows the determination of the breaking location and condition.
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