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Adaptive Numerical Simulation of a Phase-Field Fracture Model in Mixed Form Tested on an L-shaped Specimen with High Poisson Ratios

机译:高泊松比在L形试样上测试的混合形式相位场骨折模型的自适应数值模拟

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This work presents a new adaptive approach for the numerical simulation of a phase-field model for fractures in nearly incompressible solids. In order to cope with locking effects, we use a recently proposed mixed form where we have a hydro-static pressure as additional unknown besides the displacement field and the phase-field variable. To fulfill the fracture irreversibility constraint, we consider a formulation as a variational inequality in the phase-field variable. For adaptive mesh refinement, we use a recently developed residual-type a posteriori error estimator for the phase-field variational inequality which is efficient and reliable, and robust with respect to the phase-field regularization parameter. The proposed model and the adaptive error-based refinement strategy are demonstrated by means of numerical tests derived from the L-shaped panel test, originally developed for concrete. Here, the Poisson's ratio is changed from the standard setting towards the incompressible limit v →0.5.
机译:该工作提出了一种新的自适应方法,用于几乎不可压缩固体中裂缝的相现场模型的数值模拟。为了应对锁定效果,我们使用最近提出的混合形式,其中我们具有水静压,除了位移场和相场可变之外还具有额外的未知。为了满足裂缝不可逆转的约束,我们将制剂视为相场变量中的变分不等式。对于自适应网格细化,我们使用最近开发的残差型后验误差估计器用于相位场变分不等式,这对于相场正则化参数相对于相位场正则化参数有效可靠,并且稳健。通过源自L形面板测试的数值测试来证明所提出的模型和自适应误差的细化策略,最初为混凝土开发。在这里,泊松比率从标准设置改变到不可压缩极限→0.5。

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