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Micromechanical study of strength and toughness of advanced ceramics

机译:高级陶瓷强度和韧性的微机械研究

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Numerical investigations using the finite volume (FV) method were conducted to examine the effect of microstructure and microstructural properties on the fracture strength of advanced ceramics with industrial applications. Statistically representative microstructural volumes were created using a diffuse-interface model using OpenFOAM-1.6-ext. Crack initiation and growth was modeled using a recently developed arbitrary crack propagation model. It was found that by varying the Young's modulus of the second phase material, a significant change in the maximum failure load was observed. It was also shown that there exists an optimum Young's modulus for which a maximum failure load will be reached. A number of microstructures with a varying percentage second phase material were investigated in this study. Results indicate that for a given set of material and cohesive parameters the maximum failure load was insensitive to the percentage second phase material. This study highlights the role that microstructure and constituent properties of brittle ceramics have on influencing the fracture strength of such material. With this in mind, a parametric study was undertaken to examine the competition between crack deflection and crack penetration at the interface between two materials. It was found that appropriate choice of interface strength and toughness as well as second phase material compliance was required in order to promote an overall strength and toughness increase through crack deflection and bridging. Such numerical modeling is essential in order to gain a greater understanding into the structure-property relationship that exists for such advanced ceramics.
机译:进行了使用有限体积(FV)方法的数值研究,以研究微观结构和微观结构性能对工业应用的先进陶瓷裂缝强度的影响。使用OpenFoam-1.6-ext使用漫射接口模型创建统计代表性的微结构卷。使用最近开发的任意裂缝传播模型建模裂纹启动和生长。结果发现,通过改变第二相材料的杨氏模量,观察到最大失效载荷的显着变化。还表明,存在最佳杨氏模量,最大失效负载将达到最大的失效负载。在本研究中研究了许多具有不同百分子材料的微观结构。结果表明,对于给定的一组材料和粘性参数,最大故障负载对百分比的第二相材料不敏感。本研究突出了脆性陶瓷的微观结构和组成特性对影响这种材料的断裂强度的作用。考虑到这一点,进行了参数研究,以检查两种材料之间的界面裂缝偏转和裂纹渗透之间的竞争。 It was found that appropriate choice of interface strength and toughness as well as second phase material compliance was required in order to promote an overall strength and toughness increase through crack deflection and bridging.这种数值建模是必不可少的,以便获得对这种先进陶瓷存在的结构性质关系的更大理解。

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