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Study on crack curving and branching mechanism in quasi-brittle materials under dynamic biaxial loading

机译:动态双轴载荷下准脆性材料的裂纹弯曲和分支机理研究

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摘要

Attempts are made to analyze the temporal and spatial effect and the complex mechanical behaviors of microcracks and the macro crack at mesoscopic scale based on the damage evolution principle. The mechanism of crack curving and branching in quasi-brittle materials under dynamic biaxial loading is investigated. The effects of different ratios between the load in the horizontal and vertical directions (for convenience, the loading ratio is denoted by B in this paper), crack dip angles and material homogeneity on crack curving and branching are considered. The results indicate that: Crack curving is mainly controlled by the loading ratio, while initiation and propagation of branch microcracks are related to the stress level. The initial dip angle of crack can vary the stress configuration at the crack tip zone. If the loading ratio remains constant, the crack tends to propagate toward the vertical direction with increasing crack dip angle. It is also found that heterogeneity due to defects in the material play an important role in the distribution of tiny voids and cracks in the material and the crack propagation mode. The results in this study are not only in good agreement with the physical test results, but also can provide some valuable reference for studies on the tensile properties and failure modes of heterogeneous quasi-brittle materials with internal defects.
机译:尝试基于损伤演化原理,分析了细观裂纹和宏观裂纹的时空效应以及复杂的力学行为。研究了在动态双轴载荷下准脆性材料中裂纹的弯曲和分支机理。考虑了水平和垂直方向上载荷的不同比率(为方便起见,本文中的载荷比率用B表示),裂纹倾角和材料均匀性对裂纹弯曲和分支的影响。结果表明:裂纹的弯曲主要由载荷比控制,而分支微裂纹的萌生和扩展与应力水平有关。裂纹的初始倾角可以改变裂纹尖端区域的应力构型。如果载荷比保持恒定,则裂纹会随着裂纹倾角的增加而向垂直方向扩展。还发现由于材料缺陷引起的异质性在材料中微小空隙和裂纹的分布以及裂纹扩展模式中起着重要作用。研究结果不仅与物理测试结果吻合良好,而且可以为研究具有内部缺陷的异类准脆性材料的拉伸性能和破坏模式提供有价值的参考。

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