刚性冲床下的谐波裂纹基板分析

IF 2.2 3区 工程技术 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY
Hailiang Ma, Yueting Zhou, Xu Wang, Xing Li, Shenghu Ding
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引用次数: 0

摘要

研究冲头与开裂基体之间的机械作用对材料保护具有一定的理论指导意义。因此研究了刚性平冲头作用下裂纹半无限调和基体的耦合问题。应用复变法将混合边界值问题转化为黎曼-希尔伯特边界值问题,然后转化为奇异积分方程进行数值求解。接触端和裂纹尖端的应力强度因子以及整个谐波材料的皮奥拉应力都可以用复变函数表示。结果表明,谐波固体在裂纹尖端和接触端附近的受力状态与线性弹性固体的受力状态具有相似的特征。裂纹对接触区附近的应力分布有明显的影响。该研究为分析一些软材料在小变形下的损坏问题提供了理论指导。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Analysis of a cracked harmonic substrate under a rigid punch

Analysis of a cracked harmonic substrate under a rigid punch

Analysis of a cracked harmonic substrate under a rigid punch

The study of the mechanical action between a punch and a cracked substrate has some theoretical guidance for the material protection. So the coupling problem of a cracked semi-infinite harmonic substrate under the action of a rigid flat punch is studied. The mixed boundary value problem is transformed into the Riemann-Hilbert boundary value problem by applying the complex-variable method, and then converted into singular integral equation for a numerical solution. The stress intensity factors at the contact ends and crack tips and the Piola stresses of whole harmonic material can be expressed as complex functions. The results indicate that the stressed state of harmonic solid near the crack tip and contact ends have similar features as those in linear elastic solids. The crack causes an obvious impact on the stress distributions near the contact region. The study provides theoretical guidance for analyzing the damaged problems of some soft materials under small deformation.

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来源期刊
International Journal of Fracture
International Journal of Fracture 物理-材料科学:综合
CiteScore
4.80
自引率
8.00%
发文量
74
审稿时长
13.5 months
期刊介绍: The International Journal of Fracture is an outlet for original analytical, numerical and experimental contributions which provide improved understanding of the mechanisms of micro and macro fracture in all materials, and their engineering implications. The Journal is pleased to receive papers from engineers and scientists working in various aspects of fracture. Contributions emphasizing empirical correlations, unanalyzed experimental results or routine numerical computations, while representing important necessary aspects of certain fatigue, strength, and fracture analyses, will normally be discouraged; occasional review papers in these as well as other areas are welcomed. Innovative and in-depth engineering applications of fracture theory are also encouraged. In addition, the Journal welcomes, for rapid publication, Brief Notes in Fracture and Micromechanics which serve the Journal''s Objective. Brief Notes include: Brief presentation of a new idea, concept or method; new experimental observations or methods of significance; short notes of quality that do not amount to full length papers; discussion of previously published work in the Journal, and Brief Notes Errata.
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