AnisoMPM:动画各向异性损伤机制

Joshuah Wolper, Yunuo Chen, Minchen Li, Yu Fang, Ziyin Qu, Jiecong Lu, Meggie Cheng, Chenfanfu Jiang
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引用次数: 27

摘要

动态断裂在我们的日常生活中随处可见,但要将这一现象动画化是非常困难的,而且各向异性材料(其底层结构决定了断裂的优先方向)只会使这一现象变得更加复杂。因此,我们提出了AnisoMPM:一种强大而通用的方法来动画各向同性,横向各向同性和正交异性材料的动态断裂。AnisoMPM有三个核心部分:各向异性损伤演化技术、各向异性弹性响应方法和耦合方法。对于各向异性损伤,我们采用非局部连续损伤力学(CDM)几何方法进行裂纹建模,并用结构张量对材料各向异性进行编码。此外,我们采用显式和隐式积分将损伤演化离散化,从而提高了计算效率和灵活性。我们还利用基于qr分解的各向异性本构模型,该模型反演安全,比SVD模型更有效,易于实现,对极端变形具有鲁棒性,并且可以捕获所有上述各向异性模式。我们的弹性-损伤耦合是通过将超弹性分解为拉伸和压缩组件来实现的,其中损伤用于降低拉伸贡献,从而允许材料分离。对于非常坚硬的纤维材料,我们进一步引入了一种新的伽辽金弱形式离散,使嵌入的方向不可扩展性。我们将其作为硬约束网格速度解,它为我们的各向异性弹性提供了一种替代方案,该方案无锁定并且可以模拟非常坚硬的材料。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
AnisoMPM: animating anisotropic damage mechanics
Dynamic fracture surrounds us in our day-to-day lives, but animating this phenomenon is notoriously difficult and only further complicated by anisotropic materials---those with underlying structures that dictate preferred fracture directions. Thus, we present AnisoMPM: a robust and general approach for animating the dynamic fracture of isotropic, transversely isotropic, and orthotropic materials. AnisoMPM has three core components: a technique for anisotropic damage evolution, methods for anisotropic elastic response, and a coupling approach. For anisotropic damage, we adopt a non-local continuum damage mechanics (CDM) geometric approach to crack modeling and augment this with structural tensors to encode material anisotropy. Furthermore, we discretize our damage evolution with explicit and implicit integration, giving a high degree of computational efficiency and flexibility. We also utilize a QR-decomposition based anisotropic constitutive model that is inversion safe, more efficient than SVD models, easy to implement, robust to extreme deformations, and that captures all aforementioned modes of anisotropy. Our elasto-damage coupling is enforced through an additive decomposition of our hyperelasticity into a tensile and compressive component in which damage is used to degrade the tensile contribution to allow for material separation. For extremely stiff fibered materials, we further introduce a novel Galerkin weak form discretization that enables embedded directional inextensibility. We present this as a hard-constrained grid velocity solve that poses an alternative to our anisotropic elasticity that is locking-free and can model very stiff materials.
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