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首页> 外文期刊>International Journal of Rock Mechanics and Mining Sciences >Laboratory measurements of the rate dependence of the fracture toughness anisotropy of Barre granite
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Laboratory measurements of the rate dependence of the fracture toughness anisotropy of Barre granite

机译:Barre花岗岩断裂韧性各向异性与速率的关系的实验室测量

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Barre granite exhibits strong anisotropy due to its pre-existing microcracks induced by long-term tectonic loading. The quantification of rock anisotropy in fracture properties such as mode-I fracture toughness under a wide range of loading rates is critical to a variety of rock engineering applications. To quantify fracture toughness of Barre granite, notched semi-circular bend (NSCB) fracture tests are conducted statically with an MTS hydraulic servo-control testing machine and dynamically with a split Hopkinson pressure bar (SHPB) system. Barre granite samples are prepared based on the three principal directions, resulting in six orientation sample groups. For dynamic tests, pulse shaping technique is used to achieve dynamic force balance. The finite element method is then implemented to formulate equations relating the failure load to the mode-I fracture toughness using an orthotropic elastic material model. For samples in the same orientation group, the fracture toughness shows clear loading rate dependence, with the fracture toughness increasing with the loading rate. The fracture toughness anisotropy is characterized by the ratio of the largest fracture toughness over the smallest one at a given loading rate. The mode-I fracture toughness anisotropy exhibits a pronounced rate dependence, being strong under static loading while diminishing as the loading rate increases. The mode-I fracture toughness anisotropy may be understood by considering the preferentially oriented microcracks, which will be fully explored in the future.
机译:由于长期存在的构造载荷引起的微裂纹,巴利花岗岩具有很强的各向异性。在各种加载速率下,对岩石各向异性(例如I型断裂韧性)等断裂特性的量化对于各种岩石工程应用都是至关重要的。为了量化Barre花岗岩的断裂韧性,采用MTS液压伺服控制试验机静态进行带缺口的半圆弯曲(NSCB)断裂试验,并使用分体式Hopkinson压力棒(SHPB)系统动态进行缺口半圆形弯曲(NSCB)断裂试验。根据三个主要方向制备了花岗石花岗岩样品,形成了六个取向样品组。对于动态测试,使用脉冲整形技术来实现动态力平衡。然后使用正交各向异性弹性材料模型实施有限元方法,以公式化将破坏载荷与I型断裂韧性相关的方程式。对于相同取向组的样品,断裂韧性显示出明显的加载速率依赖性,且断裂韧性随加载速率而增加。断裂韧性各向异性的特征在于,在给定的加载速率下,最大断裂韧性与最小断裂韧性之比。 Ⅰ型断裂韧性各向异性表现出明显的速率依赖性,在静态载荷下很强,而随着载荷速率的增加而减小。可以通过考虑优先取向的微裂纹来理解I型断裂韧性各向异性,这将在以后进行全面探讨。

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