损伤力学问题的新统一弧长法

IF 3.7 2区 工程技术 Q1 MATHEMATICS, INTERDISCIPLINARY APPLICATIONS Computational Mechanics Pub Date : 2024-05-06 DOI:10.1007/s00466-024-02473-5
Roshan Philip Saji, Panos Pantidis, Mostafa E. Mobasher
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引用次数: 0

摘要

连续损伤力学(CDM)问题的数值求解在材料软化阶段面临收敛性方面的挑战,因此现有的迭代求解器需要在计算费用和求解精度之间进行权衡。在这项工作中,我们提出了一种新颖的统一弧长(UAL)方法,并推导出了局部和非局部梯度损伤问题的分析切线矩阵和控制方程系统的公式。现有版本的弧长求解器只对外力矢量进行整体缩放,与之不同的是,所提出的方法将外力矢量视为一个独立变量,并根据外力矢量的所有节点变化来确定系统在平衡路径上的位置。与用于 CDM 问题的现有求解器相比,这种方法大大提高了拟议求解器的效率和鲁棒性。我们通过几个具有急剧回弹的基准一维问题以及各种边界条件和加载情况下的二维示例,展示了所提算法的显著优势。所提出的 UAL 方法在克服平衡路径上的临界增量方面表现出卓越的能力。此外,在所介绍的示例中,所提出的 UAL 方法比力控制弧长和整体牛顿-拉斐森求解器快 1-2 个数量级。
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A new unified arc-length method for damage mechanics problems

The numerical solution of continuum damage mechanics (CDM) problems suffers from convergence-related challenges during the material softening stage, and consequently existing iterative solvers are subject to a trade-off between computational expense and solution accuracy. In this work, we present a novel unified arc-length (UAL) method, and we derive the formulation of the analytical tangent matrix and governing system of equations for both local and non-local gradient damage problems. Unlike existing versions of arc-length solvers that monolithically scale the external force vector, the proposed method treats the latter as an independent variable and determines the position of the system on the equilibrium path based on all the nodal variations of the external force vector. This approach renders the proposed solver substantially more efficient and robust than existing solvers used in CDM problems. We demonstrate the considerable advantages of the proposed algorithm through several benchmark 1D problems with sharp snap-backs and 2D examples under various boundary conditions and loading scenarios. The proposed UAL approach exhibits a superior ability of overcoming critical increments along the equilibrium path. Moreover, in the presented examples, the proposed UAL method is 1–2 orders of magnitude faster than force-controlled arc-length and monolithic Newton–Raphson solvers.

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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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