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Mesh-Based and Meshfree Reduced Order Phase-Field Models for Brittle Fracture: One Dimensional Problems

机译:脆性断裂的基于网格和无网格的降阶相场模型:一维问题

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摘要

Modelling brittle fracture by a phase-field fracture formulation has now been widely accepted. However, the full-order phase-field fracture model implemented using finite elements results in a nonlinear coupled system for which simulations are very computationally demanding, particularly for parametrized problems when the randomness and uncertainty of material properties are considered. To tackle this issue, we present two reduced-order phase-field models for parametrized brittle fracture problems in this work. The first one is a mesh-based Proper Orthogonal Decomposition (POD) method. Both the Discrete Empirical Interpolation Method (DEIM) and the Matrix Discrete Empirical Interpolation Method ((M)DEIM) are adopted to approximate the nonlinear vectors and matrices. The second one is a meshfree Krigingmodel. For one-dimensional problems, served as proof-of-concept demonstrations, in which Young’s modulus and the fracture energy vary, the POD-based model can speed up the online computations eight-times, and for the Kriging model, the speed-up factor is 1100, albeit with a slightly lower accuracy. Another merit of the Kriging’s model is its non-intrusive nature, as one does not need to modify the full-order model code.
机译:通过相场裂缝公式化对脆性裂缝进行建模现已被广泛接受。但是,使用有限元实现的全阶相场断裂模型会导致非线性耦合系统,其模拟对计算的要求很高,尤其是考虑到材料特性的随机性和不确定性时的参数化问题。为了解决这个问题,我们在这项工作中针对参数化的脆性断裂问题提出了两个降阶相场模型。第一种是基于网格的适当正交分解(POD)方法。离散经验插值方法(DEIM)和矩阵离散经验插值方法((M)DEIM)均被用来逼近非线性矢量和矩阵。第二个是无网格的Kriging模型。对于一维问题(作为概念证明),其中杨氏模量和断裂能发生变化,基于POD的模型可以使在线计算速度提高八倍,对于Kriging模型,可以提高速度系数为1100,尽管精度略低。克里格模型的另一个优点是它的非侵入性,因为不需要修改全序模型代码。

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