脆性材料单轴压缩下三维内部便士形裂纹扩展的实验研究

Jiyun Xu, Hanzhang Li, Haijun Wang, Lei Tang
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引用次数: 0

摘要

裂缝广泛存在于土木工程和深部地下工程的岩土材料中。考虑到岩土材料通常是脆性的,裂缝会显著影响地下工程施工安全的评估和岩石破坏的预警。然而,到目前为止,脆性材料在复合载荷下的裂纹萌生和扩展仍然未知。在这项研究中,应用三维内部激光雕刻裂纹技术来产生内部裂纹,而不会对表面造成损坏。对具有内部裂纹的脆性材料进行了单轴压缩试验,以研究这些内部裂纹在压缩和剪切下在不同倾角下的扩展。试验结果表明,翼裂纹扩展主要发生在内部裂纹倾斜的试样中,属于I–II–III型混合断裂;相反,I型断裂出现在具有垂直内部裂纹的试样中。Ⅲ型断裂的分形特征表现为矛状结构。脆性材料在压缩下的断裂机制是内部翼裂纹扩展到整个样品的末端并导致最终失效。机翼裂纹的初始偏转角由内部裂纹尖端的应力强度因子KII与KI的参与比决定。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Experimental study on 3D internal penny-shaped crack propagation in brittle materials under uniaxial compression

Experimental study on 3D internal penny-shaped crack propagation in brittle materials under uniaxial compression

Fractures are widely present in geomaterials of civil engineering and deep underground engineering. Given that geomaterials are usually brittle, the fractures can significantly affect the evaluation of underground engineering construction safety and the early warning of rock failure. However, the crack initiation and propagation in brittle materials under composite loading remain unknown so far. In this study, a three-dimensional internal laser-engraved cracking technique was applied to produce internal cracks without causing damage to the surfaces. The uniaxial compression tests were performed on a brittle material with internal cracks to investigate the propagation of these internal cracks at different dip angles under compression and shear. The test results show that the wing crack propagation mainly occurs in the specimen with an inclined internal crack, which is a mixed-Mode I–II–III fracture; in contrast, Mode I fracture is present in the specimen with a vertical internal crack. The fractography characteristics of Mode III fracture display a lance-like pattern. The fracture mechanism in the brittle material under compression is that the internal wing cracks propagate to the ends of the whole sample and cause the final failure. The initial deflection angle of the wing crack is determined by the participation ratio of stress intensity factors KII to KI at the tip of the internal crack.

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