XPBI: Position-Based Dynamics with Smoothing Kernels Handles Continuum Inelasticity

Fuente: arXiv
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Main Authors: Yu, Chang, Li, Xuan, Lan, Lei, Yang, Yin, Jiang, Chenfanfu
Format: Preprint
Published: 2024
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author Yu, Chang
Li, Xuan
Lan, Lei
Yang, Yin
Jiang, Chenfanfu
author_facet Yu, Chang
Li, Xuan
Lan, Lei
Yang, Yin
Jiang, Chenfanfu
contents PBD and its extension, XPBD, have been predominantly applied to compliant constrained elastodynamics, with their potential in finite strain (visco-) elastoplasticity remaining underexplored. XPBD is often perceived to stand in contrast to other meshless methods, such as the MPM. MPM is based on discretizing the weak form of governing partial differential equations within a continuum domain, coupled with a hybrid Lagrangian-Eulerian method for tracking deformation gradients. In contrast, XPBD formulates specific constraints, whether hard or compliant, to positional degrees of freedom. We revisit this perception by investigating the potential of XPBD in handling inelastic materials that are described with classical continuum mechanics-based yield surfaces and elastoplastic flow rules. Our inspiration is that a robust estimation of the velocity gradient is a sufficiently useful key to effectively tracking deformation gradients in XPBD simulations. By further incorporating implicit inelastic constitutive relationships, we introduce a plasticity in-the-loop updated Lagrangian augmentation to XPBD. This enhancement enables the simulation of elastoplastic, viscoplastic, and granular substances following their standard constitutive laws. We demonstrate the effectiveness of our method through high-resolution and real-time simulations of diverse materials such as snow, sand, and plasticine, and its integration with standard XPBD simulations of cloth and water.
format Preprint
id arxiv_https___arxiv_org_abs_2405_11694
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle XPBI: Position-Based Dynamics with Smoothing Kernels Handles Continuum Inelasticity
Yu, Chang
Li, Xuan
Lan, Lei
Yang, Yin
Jiang, Chenfanfu
Graphics
PBD and its extension, XPBD, have been predominantly applied to compliant constrained elastodynamics, with their potential in finite strain (visco-) elastoplasticity remaining underexplored. XPBD is often perceived to stand in contrast to other meshless methods, such as the MPM. MPM is based on discretizing the weak form of governing partial differential equations within a continuum domain, coupled with a hybrid Lagrangian-Eulerian method for tracking deformation gradients. In contrast, XPBD formulates specific constraints, whether hard or compliant, to positional degrees of freedom. We revisit this perception by investigating the potential of XPBD in handling inelastic materials that are described with classical continuum mechanics-based yield surfaces and elastoplastic flow rules. Our inspiration is that a robust estimation of the velocity gradient is a sufficiently useful key to effectively tracking deformation gradients in XPBD simulations. By further incorporating implicit inelastic constitutive relationships, we introduce a plasticity in-the-loop updated Lagrangian augmentation to XPBD. This enhancement enables the simulation of elastoplastic, viscoplastic, and granular substances following their standard constitutive laws. We demonstrate the effectiveness of our method through high-resolution and real-time simulations of diverse materials such as snow, sand, and plasticine, and its integration with standard XPBD simulations of cloth and water.
title XPBI: Position-Based Dynamics with Smoothing Kernels Handles Continuum Inelasticity
topic Graphics
url https://arxiv.org/abs/2405.11694