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首页> 外文期刊>International Journal of Rock Mechanics and Mining Sciences >Application of a local degradation model to the analysis of brittle fracture of laboratory scale rock specimens under triaxial conditions
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Application of a local degradation model to the analysis of brittle fracture of laboratory scale rock specimens under triaxial conditions

机译:局部退化模型在三轴条件下实验室尺度岩石试样脆性断裂分析中的应用

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摘要

Development of brittle fracture and the associated macroscopic behaviour of rock specimens in laboratory tests are simulated using a local degradation model for brittle fracture in heterogeneous rocks. We examine this subject because laboratory uniaxial and triaxial tests are widely used in the rock mechanics community to both characterise rock behaviour and to interpret fracture phenomena observed in natural rock, such as the Earth's crust, and developed around rock engineering structures. In addition, numerous historical efforts related to the detailed study of this subject have made available a great deal of information for use both as model input data and comparison results.A series of numerical experiments have been performed to investigate the influence of a number of parameters on rock fracture. In particular, rock fracture under various confining stresses has been explored. The results show that the degradation algorithm is capable of reproducing many characteristics associated with brittle fracture in heterogeneous rocks, including: the development of fracture from the elemental scale to the macroscopic scale; fracture pattern as a function of confining pressure; variation of fracture plane angle with respect to confining pressure; the complete stress-strain curve and corresponding strain energy dissipation characteristics; dependence of the stress-strain curve on confining pressure; and loading-unloading hysteresis loops.Independent investigations into the effect on rock fracture of (i) the degradation parameter embodied with the model and (ii) the Weibull shape parameter used to introduce heterogeneity distribution are described. The results indicate that the degradation parameter controls the degree of degradation relative to confining pressure. As this parameter increases, and the elemental degradation decreases, the number of failed sites generated prior to the formation of macroscopic fracture plane increases, and both the peak and ultimate strengths of the model increase.The Weibull parameter influences the formation of the final fracture plane. As this parameter increases, reducing the heterogeneity, the number of diffused failed sites and the angle of the eventual fracture plane to the major principal stress tends to decrease, and the brittleness of the resulting stress-strain curve increases. It is suggested that values in the range 2-4 are appropriate for this parameter in representing elemental strength distribution of rock materials.
机译:使用非均质岩石脆性破裂的局部退化模型,模拟了脆性破裂的发展以及在实验室测试中岩石标本的相关宏观行为。我们之所以要研究此主题,是因为在岩石力学领域中广泛使用实验室单轴和三轴测试来表征岩石行为并解释在自然岩石中观察到的破裂现象,例如地壳,并围绕岩石工程结构发展。此外,与该主题的详细研究相关的大量历史努力为模型输入数据和比较结果提供了大量信息。进行了一系列数值实验以研究许多参数的影响在岩石断裂上。特别地,已经探索了在各种限制应力下的岩石破裂。结果表明,该退化算法能够再现与非均质岩石脆性断裂有关的许多特征,包括:从单元尺度到宏观尺度的断裂发展;裂缝模式与围压的关系裂缝平面角相对于围压的变化;完整的应力-应变曲线和相应的应变能量耗散特性;应力-应变曲线与围压的关系;分别描述了(i)模型所体现的退化参数和(ii)用于引入非均质分布的Weibull形状参数对岩石破裂的影响的独立研究。结果表明,降解参数控制相对于围压的降解程度。随着此参数的增加和元素降解的减少,宏观断裂面形成之前产生的失效点数量增加,模型的峰值强度和极限强度均增加.Weibull参数影响最终断裂面的形成。随着此参数的增加,异质性降低,失效点扩散的数量以及最终断裂面与主要主应力的夹角趋于减小,所得应力-应变曲线的脆性增加。建议在2-4范围内的值适合于表示岩石材料的元素强度分布的该参数。

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