再论裂纹碰撞界面问题:脆性断裂相场法与界面黏结区模型相互作用的建模框架

IF 6.9 1区 工程技术 Q1 ENGINEERING, MULTIDISCIPLINARY
M. Paggi , J. Reinoso
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引用次数: 177

摘要

在过去的三十年中,由于裂纹在固体力学和物理学中的重要作用,对界面碰撞问题进行了深入的研究。在当前的研究中,考虑到脆性断裂的相场方法的最新进展,对这一问题进行了重新探讨。为此,本文提出了一种新的公式,结合相场法来模拟体中脆性断裂和预先存在的粘接界面的粘接区模型,以研究界面上裂纹渗透和挠度之间的竞争。该模型在有限元方法框架内实现,使用整体全隐式解决策略,用于进一步了解模型参数在上述竞争中的作用。特别地,本研究分析了耗散模型中界面与相邻块体之间断裂韧性比和特征断裂长度尺度的作用。对于脆性界面,基于线弹性断裂力学准则的裂纹贯通、单挠度或双挠度的渐近预测完全被本文方法所捕获。此外,通过增加沿界面的工艺区尺寸,或通过改变相场模型的内部长度尺度,会出现新的复杂现象,例如裂纹同时渗透和偏转,以及从单一裂纹渗透到偏转和渗透并随后分支到块体的转变。得到的计算趋势与先前的实验观察结果非常吻合,对两种断裂力学模型之间竞争和相互作用的理论考虑为模拟和理解复杂断裂模式开辟了新的研究视角。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Revisiting the problem of a crack impinging on an interface:A modeling framework for the interaction between the phase field approach for brittle fracture and the interface cohesive zone model

The problem of a crack impinging on an interface has been thoroughly investigated in the last three decades due to its important role in the mechanics and physics of solids. In the current investigation, this problem is revisited in view of the recent progresses on the phase field approach of brittle fracture. In this concern, a novel formulation combining the phase field approach for modeling brittle fracture in the bulk and a cohesive zone model for pre-existing adhesive interfaces is herein proposed to investigate the competition between crack penetration and deflection at an interface. The model, implemented within the finite element method framework using a monolithic fully implicit solution strategy, is applied to provide a further insight into the understanding of the role of model parameters on the above competition. In particular, in this study, the role of the fracture toughness ratio between the interface and the adjoining bulks and of the characteristic fracture-length scales of the dissipative models is analyzed. In the case of a brittle interface, the asymptotic predictions based on linear elastic fracture mechanics criteria for crack penetration, single deflection or double deflection are fully captured by the present method. Moreover, by increasing the size of the process zone along the interface, or by varying the internal length scale of the phase field model, new complex phenomena are emerging, such as simultaneous crack penetration and deflection and the transition from single crack penetration to deflection and penetration with subsequent branching into the bulk. The obtained computational trends are in very good agreement with previous experimental observations and the theoretical considerations on the competition and interplay between both fracture mechanics models open new research perspectives for the simulation and understanding of complex fracture patterns.

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来源期刊
CiteScore
12.70
自引率
15.30%
发文量
719
审稿时长
44 days
期刊介绍: Computer Methods in Applied Mechanics and Engineering stands as a cornerstone in the realm of computational science and engineering. With a history spanning over five decades, the journal has been a key platform for disseminating papers on advanced mathematical modeling and numerical solutions. Interdisciplinary in nature, these contributions encompass mechanics, mathematics, computer science, and various scientific disciplines. The journal welcomes a broad range of computational methods addressing the simulation, analysis, and design of complex physical problems, making it a vital resource for researchers in the field.
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