材料科学
应变计
结构工程
弯曲
抗弯强度
偏转(物理)
复合材料
振动
有限元法
超声波传感器
三点弯曲试验
悬臂梁
声学
工程类
光学
物理
作者
Dongtong Yang,Sen Tang,Yongtao Hu,Alexander Nikitin,Qingyuan Wang,Yongjie Liu,Lang Li,Chao He,Yan Li,Bo Xu,Chong Wang
出处
期刊:Materials
[Multidisciplinary Digital Publishing Institute]
日期:2022-07-13
卷期号:15 (14): 4864-4864
被引量:5
摘要
The very high cycle fatigue (VHCF) failure of in-service components is mainly caused by the vibration of thin-wall elements at a high frequency. In this work, a novel model of ultrasonic fatigue test was developed to test thin-wall material in bending up to VHCF with an accelerated frequency. The theoretical principle and finite element analysis were introduced for designing a sample that resonated at the frequency of 20 kHz in flexural vibration. In the advantage of the second-order flexural vibration, the gauge section of the sample was in the pure bending condition which prevented the intricate stress condition for thin-wall material as in the root of cantilever or the contact point of three points bending. Moreover, combining the constraint and the loading contact in one small section significantly reduced heating that originated from the friction at an ultrasonic frequency. Both strain gauge and deflection angle methods were applied to verify the controlling of stress amplitude. The fractography observation on Ti6Al4V samples indicated that the characterized fracture obtained from the novel model was the same as that from the conventional bending test.
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