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Modeling of crack growth through particulate clusters in brittle matrix by symmetric-Galerkin boundary element method

机译:对称-Galerkin边界元法模拟脆性基体中颗粒团簇的裂纹扩展

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摘要

The interaction of a crack with perfectly bonded rigid isolated inclusions and clusters of inclusions in a brittle matrix is investigated using numerical simulations. Of particular interest is the role inclusions play on crack paths, stress intensity factors (SIFs) and the energy release rates with potential implications to the fracture behavior of paniculate composites. The effects of particle size and eccentricity relative to the initial crack orientation are examined first as a precursor to the study of particle clusters. Simulations are accomplished using a new quasi-static crack-growth prediction tool based on the symmetric-Galerkin boundary element method, a modified quarter-point crack-tip element, the displacement correlation technique for evaluating SIFs, and the maximum principal stress criterion for crack-growth direction prediction. The numerical simulations demonstrate a complex interplay of crack-tip shielding and amplification mechanisms leading to sig nificant toughening of the material.
机译:使用数值模拟研究了裂纹与脆性基体中完美结合的刚性孤立夹杂物和夹杂物簇的相互作用。特别令人关注的是,夹杂物在裂纹路径,应力强度因子(SIF)和能量释放速率中发挥的作用,这些潜在影响可能会影响颗粒状复合材料的断裂行为。首先考察了颗粒尺寸和偏心率相对于初始裂纹取向的影响,作为研究颗粒团簇的先驱。使用基于对称-Galerkin边界元方法的新型准静态裂纹扩展预测工具,改进的四分之一点裂纹尖端元素,用于评估SIF的位移相关技术以及裂纹的最大主应力准则来完成仿真-生长方向预测。数值模拟表明裂纹尖端的屏蔽和放大机制之间复杂的相互作用,导致材料明显增韧。

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