Mixed-Mode Timoshenko-Based Peridynamics for Dynamic Crack Propagation in Functionally Graded Materials

IF 3.1 2区 材料科学 Q2 ENGINEERING, MECHANICAL
Victor Bautista, Behnam Shahbazian, Mirmilad Mirsayar
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引用次数: 0

Abstract

A recently developed Timoshenko-based peridynamic model with a variable micropolar shear influence factor is extended to study the behavior of dynamic crack propagation in functionally graded materials (FGMs). To this end, first, the proposed model is validated against two experimental three-point bending benchmark problems with different material functions as well as varying loading rates and durations. Then, numerous additional cases with different boundary conditions and material distribution are studied to predict crack initiation and propagation in such mediums. The examples consist of three-point bending and Kalthoff–Winkler specimens with various material functions under dynamic loads. Finally, the effects of material anisotropy induced by functionally varying material properties on crack propagation path are addressed. It is shown that this new model is advantageous because of its capability to account for shear deformation effects in the bonds previously ignored by the original bond-based peridynamic models. Moreover, comparing the proposed modified bond-based model to more complex methods, such as state-based peridynamics, reveals that the simplicity of the current approach results in lower computational costs while still achieving comparable results.

基于混合模timoshenko的功能梯度材料动态裂纹扩展周动力学
本文扩展了基于timoshenko的可变微极剪切影响因子的全动力学模型,用于研究功能梯度材料(fgm)的动态裂纹扩展行为。为此,首先针对两个具有不同材料功能以及不同加载速率和持续时间的三点弯曲基准问题对所提出的模型进行了验证。然后,研究了许多具有不同边界条件和材料分布的附加情况,以预测这些介质中的裂纹萌生和扩展。算例包括动荷载作用下具有不同材料功能的三点弯曲试件和Kalthoff-Winkler试件。最后,讨论了由材料功能特性引起的材料各向异性对裂纹扩展路径的影响。结果表明,这种新模型的优势在于它能够考虑到先前被原始基于键的周动力模型所忽略的键的剪切变形效应。此外,将提出的改进的基于键的模型与更复杂的方法(如基于状态的周动力学)进行比较,可以发现当前方法的简单性降低了计算成本,同时仍然可以获得可比的结果。
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
6.30
自引率
18.90%
发文量
256
审稿时长
4 months
期刊介绍: Fatigue & Fracture of Engineering Materials & Structures (FFEMS) encompasses the broad topic of structural integrity which is founded on the mechanics of fatigue and fracture, and is concerned with the reliability and effectiveness of various materials and structural components of any scale or geometry. The editors publish original contributions that will stimulate the intellectual innovation that generates elegant, effective and economic engineering designs. The journal is interdisciplinary and includes papers from scientists and engineers in the fields of materials science, mechanics, physics, chemistry, etc.
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