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Elastic vortices and thermally-driven cracks in brittle materials with peridynamics

机译:具有白颌骨脆性材料的弹性涡旋和热驱动裂缝

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Instabilities in thermally-driven crack growth in thin glass plates have been observed in experiments that slowly immerse a hot, pre-notched glass slide into a cold bath. We show that a nonlocal model of thermomechanical brittle fracture with minimal input parameters can predict the entire phase diagram of fracture measured in experiments for the low immersion speed regime. Geometrical restrictions to crack growth commonly found in other approaches are absent here. We discuss a method for determining the appropriate size of the peridynamic horizon based on a data point around a separating line between crack-type zones in the experimental phase diagram. Once the nonlocal size is smaller than the length-scale introduced by the thermal gradient, the computational results show that no fracture criterion is needed beyond Griffith's criterion to capture the observed instabilities. The combination of thermal gradients and competing contraction forces on the two sides of the crack are behind the observed crack path instabilities. Elastic (velocity) vortices of material points show how and why the cracks develop along the observed paths. Our results demonstrate that thermally-driven fracture in brittle materials can be predicted with accuracy. We anticipate that this model will lead to design protocols for controlled fracture in brittle materials relevant in materials science and advanced manufacturing.
机译:在慢慢浸入热的预缺玻璃滑入冷浴中,已经观察到在薄玻璃板中的薄玻璃板中的热驱动裂纹生长的稳定性。我们表明,具有最小输入参数的热机械脆性断裂的非局部模型可以预测在低浸入速度制度的实验中测量的裂缝的整个相图。在这里缺乏在其他方法中常见的裂缝增长的几何限制。我们讨论用于基于在实验相图中的裂缝型区域之间的分离线周围的数据点确定透明范围的适当大小的方法。一旦非识别尺寸小于热梯度引入的长度级,计算结果表明,在格里菲斯的标准之外,不需要裂缝标准来捕获观察到的不稳定性。裂缝两侧的热梯度和竞争率的组合在​​观察到的裂缝路径不稳定之后。物质点的弹性(速度)涡旋显示裂缝沿观察到的路径的发展方式和原因。我们的结果表明,可以以精度预测脆性材料的热驱动骨折。我们预计该模型将导致在材料科学和先进制造中的脆性材料中受控骨折的设计方案。

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