Effects of interfacial debonding on the stability of finitely strained periodic microstructured elastic composites.

IF 4.3 3区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES
Fabrizio Greco, Raimondo Luciano, Andrea Pranno
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引用次数: 0

Abstract

Predicting failure initiation in nonlinear composite materials, often referred to as metamaterials, is a fundamental challenge in nonlinear solid mechanics. Microstructural failure mechanisms encompass fracture, decohesion, cavitation, compression-induced contact and instabilities, affecting their unconventional static and dynamic performances. To fully take advantage of these materials, especially in extreme applications, it is imperative to predict their nonlinear behaviour using reliable, accurate and computationally efficient numerical methodologies. This study presents an innovative nonlinear homogenization-based theoretical framework for characterizing the failure behaviour of periodic reinforced hyperelastic composites induced by reinforcement/matrix decohesion and interaction between contact mechanisms and microscopic instabilities. Debonding and unilateral contact between different phases are incorporated by employing an enhanced cohesive/contact model, which features a special nonlinear interface constitutive law and an accurate contact formulation within the context of finite strain continuum mechanics. The theoretical formulation is demonstrated using periodically layered composites subjected to macroscopic compressive loading conditions along the lamination direction. Numerical results illustrate the ways in which debonding phenomena, in conjunction with fibre microbuckling, may influence the critical loads of the examined composite solid. The sensitivity of the results obtained through the proposed contact-cohesive model at finite strain with respect to its implementation is also explored. This article is part of the theme issue 'Current developments in elastic and acoustic metamaterials science (Part 1)'.

界面脱粘对有限应变周期性微结构弹性复合材料稳定性的影响
预测非线性复合材料(通常称为超材料)的失效起因是非线性固体力学的一项基本挑战。微结构失效机制包括断裂、解粘、空化、压缩诱导接触和不稳定性,这些都会影响材料的非传统静态和动态性能。为了充分利用这些材料的优势,尤其是在极端应用中,必须使用可靠、准确且计算效率高的数值方法来预测其非线性行为。本研究提出了一种基于非线性均质化的创新理论框架,用于描述周期性增强超弹性复合材料在增强体/基体脱粘以及接触机制和微观不稳定性之间相互作用的诱导下的失效行为。通过采用增强型内聚/接触模型,在有限应变连续介质力学的背景下,将不同相之间的脱粘和单侧接触纳入其中,该模型具有特殊的非线性界面构成定律和精确的接触表述。在沿层压方向施加宏观压缩载荷的条件下,使用周期性分层复合材料演示了该理论公式。数值结果说明了脱粘现象与纤维微屈曲如何影响所研究复合材料实体的临界载荷。此外,还探讨了在有限应变条件下,通过所提出的接触-粘合模型获得的结果对其实施的敏感性。本文是主题 "弹性和声学超材料科学的最新发展(第一部分)"的一部分。
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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来源期刊
CiteScore
9.30
自引率
2.00%
发文量
367
审稿时长
3 months
期刊介绍: Continuing its long history of influential scientific publishing, Philosophical Transactions A publishes high-quality theme issues on topics of current importance and general interest within the physical, mathematical and engineering sciences, guest-edited by leading authorities and comprising new research, reviews and opinions from prominent researchers.
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