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首页> 外文期刊>International Journal for Numerical Methods in Engineering >Combined continuum damage-embedded discontinuity model for explicit dynamic fracture analyses of quasi-brittle materials
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Combined continuum damage-embedded discontinuity model for explicit dynamic fracture analyses of quasi-brittle materials

机译:准连续脆性材料显式动态断裂分析的组合连续损伤嵌入式不连续模型

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摘要

In this paper, a novel constitutive model combining continuum damage with embedded discontinuity is developed for explicit dynamic analyses of quasi-brittle failure phenomena. The model is capable of describing the rate-dependent behavior in dynamics and the three phases in failure of quasi-brittle materials. The first phase is always linear elastic, followed by the second phase corresponding to fracture-process zone creation, represented with rate-dependent continuum damage with isotropic hardening formulated by utilizing consistency approach. The third and final phase, involving nonlinear softening, is formulated by using an embedded displacement discontinuity model with constant displacement jumps both in normal and tangential directions. The proposed model is capable of describing the rate-dependent ductile to brittle transition typical of cohesive materials (e.g., rocks and ice). The model is implemented in the finite element setting by using the CST elements. The displacement jump vector is solved for implicitly at the local (finite element) level along with a viscoplastic return mapping algorithm, whereas the global equations of motion are solved with explicit time-stepping scheme. The model performance is illustrated by several numerical simulations, including both material point and structural tests. The final validation example concerns the dynamic Brazilian disc test on rock material under plane stress assumption. Copyright (c) 2014 John Wiley & Sons, Ltd.
机译:本文针对连续脆性破坏现象的显式动力分析,开发了一种将连续损伤与嵌入不连续性相结合的新型本构模型。该模型能够描述动力学中与速率相关的行为以及准脆性材料破坏的三个阶段。第一阶段始终是线性弹性,其后第二阶段对应于断裂过程带的创建,其表现为速率依赖性连续体损伤,并利用一致性方法制定了各向同性硬化。第三阶段和最后阶段,涉及非线性软化,是通过使用在法向和切向都具有恒定位移跳跃的嵌入式位移不连续模型来制定的。提出的模型能够描述粘性材料(例如,岩石和冰)典型的速率相关的韧性到脆性转变。该模型通过使用CST元素在有限元素设置中实现。位移跳跃向量与粘塑性返回映射算法一起在局部(有限元)级别上隐式求解,而整体运动方程式通过显式时间步长方案求解。通过几个数值模拟(包括材料点和结构测试)来说明模型的性能。最终的验证示例涉及在平面应力假设下对岩石材料进行的动态巴西圆盘试验。版权所有(c)2014 John Wiley&Sons,Ltd.

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