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首页> 外文期刊>Modern Applied Science >Computer-Aided Study of Materials’ Microstructure Influence on Cracks' Propagation Pattern in Brittle Anisotropic Bodies
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Computer-Aided Study of Materials’ Microstructure Influence on Cracks' Propagation Pattern in Brittle Anisotropic Bodies

机译:材料的微观结构对脆性各向异性体裂纹扩展模式影响的计算机辅助研究

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The purpose of the presented study is a solution of a boundary-value problem, a visualization and a study of crack propagation pattern of a plane specimen of an anisotropic brittle material by computer modeling method. As main software for the research, MSC Nastran finite-element analysis package is used. As a result of the presented study, a methodology for a creation of finite-element models of various structural constituents and specimens with consideration of material’s microstructure is developed. Developed methodology is tested during the creation of finite-element model of the specimen assigned for a fracture with stress concentrators of varying forms and with a consideration of hypothetical structure, consisting of three types of crystallite with different mechanical properties. The methodology is proposed for an evaluation of kinetics and visualization of the crack growth in models of isotropic and anisotropic brittle materials. As the result of step-by-step visualization of the crack growth, animation files in AVI-format are created, which allow us to analyze the process of the material fracture. A theoretical equation is proposed for determination of the crack growth trajectory, which defines a relationship between a work needed for the crack growth and stresses in the specimen and its geometric parameters. An influence of the material on the trajectory of the crack growth is determined. Results of the presented study can serve as a tool for development of new materials with a high crack resistance due to their optimal microstructure. Developed methodologies allow you to determine desired location, size, shape of grains and their mechanical properties in microstructure of created material, without fabrication of many expensive full-size specimens.
机译:本研究的目的是通过计算机建模方法解决边界值问题,可视化和研究各向异性脆性材料平面试样的裂纹扩展模式。作为研究的主要软件,使用了MSC Nastran有限元分析软件包。这项研究的结果是,开发了一种在考虑材料的微观结构的情况下创建各种结构成分和标本的有限元模型的方法。在创建有限元模型的过程中测试了开发的方法,该模型分配给具有不同形式的应力集中器并考虑假设结构的骨折,该结构由三种类型的具有不同机械性能的微晶组成。提出了该方法用于评估各向同性和各向异性脆性材料模型中的裂纹扩展的动力学和可视化。通过对裂纹扩展进行逐步可视化的结果,可以创建AVI格式的动画文件,这使我们能够分析材料断裂的过程。提出了确定裂纹扩展轨迹的理论方程式,该方程式定义了裂纹扩展所需的功和试样中的应力与其几何参数之间的关系。确定材料对裂纹扩展轨迹的影响。由于其最佳的微观结构,本研究的结果可作为开发具有高抗裂性的新材料的工具。先进的方法使您能够确定所需位置,晶粒的大小,形状以及所创建材料的微观结构中的机械性能,而无需制造许多昂贵的全尺寸试样。

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