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A 3D gradient-enhanced micropolar damage-plasticity approach for modeling quasi-brittle failure of cohesive-frictional materials

机译:一种梯度增强的微息损伤塑性塑性方法,用于建模粘性摩擦材料的拟脆性失效

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Continuum models based on the combination of the theories of plasticity and damage mechanics pose a powerful framework for representing the highly nonlinear material behavior of cohesive-frictional materials. However, non-associated plastic flow rules for representing the inelastic volumetric expansion of such materials may result in unstable material behavior and, accordingly, strongly mesh-dependent results in finite element simulations. Regularization techniques such as the gradient-enhanced continuum or similar nonlocal approaches, which work well for regularizing mode I failure, are often not sufficient as a remedy. In contrast to the latter, the theory of the micropolar continuum represents a suitable framework for regularizing non-associated plastic flow and shear band dominated failure properly, but it fails to do so for mode I failure. Hence, in the present contribution, a combination of the theories of the micropolar continuum and the gradient-enhanced continuum for regularizing both shear band dominated failure and mode I failure is presented. By incorporating a 3D damage-plasticity model for concrete into the proposed framework, it is demonstrated that the proposed model constitutes a physically sound and numerically stable approach for modeling the nonlinear material behavior of concrete in both the pre-peak and the post-peak regime for a broad variety of loading conditions. (C) 2020 The Author(s). Published by Elsevier Ltd.
机译:基于可塑性和损伤力学理论的组合的连续体型构成了代表粘性摩擦材料高度非线性材料行为的强大框架。然而,用于代表这种材料的非弹性体积膨胀的非相关塑性流量规则可能导致不稳定的材料行为,因此,有限元模拟的强烈依赖性导致具有强烈的啮合。正规化技术,如梯度增强的连续体或类似的非识别方法,该技术很好地用于规则化模式I失败,通常是一种补救措施。与后者相比,微柱连续体的理论代表了适当的框架,用于正规化无关的塑料流量和剪切带子正确主导地位,但它无法为模式执行此操作。因此,在目前的贡献中,呈现了微柱连续体的理论和梯度增强的连续体的组合,用于规范剪切频带主导的故障和模式。通过将用于混凝土的3D损伤塑性模型结合到所提出的框架中,证明了所提出的模型构成了物理声音和数值稳定的方法,用于在预峰和后峰值中模拟混凝土的非线性材料行为对于各种各样的装载条件。 (c)2020提交人。 elsevier有限公司出版

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