利用网格细化和粗化方案以及基于八面体的修剪六面体网格分析相场断裂的自适应连续-非连续方法

IF 3.7 2区 工程技术 Q1 MATHEMATICS, INTERDISCIPLINARY APPLICATIONS Computational Mechanics Pub Date : 2024-04-05 DOI:10.1007/s00466-024-02472-6
Ho-Young Kim, Hyun-Gyu Kim
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引用次数: 0

摘要

在本文中,我们提出了一种用于相场断裂分析的新型自适应连续-非连续方法。通过切割六面体背景网格与实体域边界,创建初始修剪六面体(TH)网格。根据基于能量的准则,对初始六面体网格进行基于八面体的自适应网格细化,以精确解析相场裂纹的损伤演变。相场的临界损伤等值面用于将完全发展的相场裂纹转换为不连续的离散裂纹。此外,还沿不连续离散裂纹进行网格粗化,以降低计算成本。研究了准脆性断裂的三维问题,以验证本自适应连续-非连续方法在相场断裂分析中的有效性和效率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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An adaptive continuous–discontinuous approach for the analysis of phase field fracture using mesh refinement and coarsening schemes and octree-based trimmed hexahedral meshes

In this paper, we present a novel adaptive continuous–discontinuous approach for the analysis of phase field fracture. An initial trimmed hexahedral (TH) mesh is created by cutting a hexahedral background grid with the boundary of the solid domain. Octree-based adaptive mesh refinement is performed on the initial TH mesh based on an energy-based criterion to accurately resolve the damage evolution along the phase field crack. Critical damage isosurfaces of the phase field are used to convert fully developed phase field cracks into discontinuous discrete cracks. Mesh coarsening is also performed along the discontinuous discrete cracks to reduce the computational cost. Three-dimensional problems of quasi-brittle fracture are investigated to verify the effectiveness and efficiency of the present adaptive continuous–discontinuous approach for the analysis of phase field fracture.

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来源期刊
Computational Mechanics
Computational Mechanics 物理-力学
CiteScore
7.80
自引率
12.20%
发文量
122
审稿时长
3.4 months
期刊介绍: The journal reports original research of scholarly value in computational engineering and sciences. It focuses on areas that involve and enrich the application of mechanics, mathematics and numerical methods. It covers new methods and computationally-challenging technologies. Areas covered include method development in solid, fluid mechanics and materials simulations with application to biomechanics and mechanics in medicine, multiphysics, fracture mechanics, multiscale mechanics, particle and meshfree methods. Additionally, manuscripts including simulation and method development of synthesis of material systems are encouraged. Manuscripts reporting results obtained with established methods, unless they involve challenging computations, and manuscripts that report computations using commercial software packages are not encouraged.
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