材料科学
断裂(地质)
单调函数
变形(气象学)
振幅
复合材料
联轴节(管道)
循环应力
无定形固体
结构工程
断裂力学
压力(语言学)
拉伤
低周疲劳
结晶学
物理
数学
工程类
医学
数学分析
语言学
化学
哲学
量子力学
内科学
作者
Yuji Kurotani,Hajime Tanaka
标识
DOI:10.1038/s43246-022-00293-9
摘要
Abstract Fatigue fracture is a unique failure mode of materials induced by repeated loading and is crucial for the long-term stability of materials used in cars and aeroplanes. Fatigue is the progressive and localised structural damage of a material subjected to cyclic loading. The minimum strain amplitude that causes such damage is much less than the material’s yield strain under simple loading. This observation leads to a widespread belief that the threshold strain amplitude for fatigue fracture is much smaller than that for monotonic fracture under continuous loading. Here, we study the physical mechanism of the low-cycle fatigue fracture of amorphous solids by considering the complex coupling between density, deformation (velocity), and stress. Contrary to the common belief, we find that the critical strain amplitude, i.e., the onset of irreversible deformation, is the same for fatigue and monotonic fractures. Experimental verification of this prediction is desirable.
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