双韧性陶瓷:优化支持的多尺度计算设计

IF 8.3 1区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Jian Zhang , Francesco Aiello , Mauro Salazar , Diletta Giuntini
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引用次数: 0

摘要

为了克服陶瓷的脆性限制,人们提出了各种增韧机制。其中最引人注目的,尤其是氧化物,包括导致氧化锆裂纹屏蔽的四方向单斜相变,以及促进裂纹偏转的仿生砖瓦微结构。然而,事实证明,将这两种机制结合到单一的全陶瓷材料中是具有挑战性的。在这项工作中,我们提出了一种结合这两种增韧策略的材料设计的计算方法,使用多尺度建模方法来捕获它们各自的贡献和整体断裂性能。这是通过开发一种具有砖瓦结构的全陶瓷复合材料来实现的,其中纳米晶砂浆是相变增韧的。分析了影响相变的关键因素,如晶界特性、晶粒取向和动力学系数,并将相变的应力-应变行为纳入微尺度砂浆本构模型。我们证明了两种增韧机制的协同效应是可以实现的,并且是提高断裂性能的一种非常有效的策略。然后系统地研究了砖尺寸、砂浆厚度和组成材料性能的影响。最后,采用无梯度优化算法确定最优几何和材料参数,结果表明砂浆厚度最小的更长、更薄的砖具有最佳的抗断裂性能。根据给定的砖尺寸和砂浆厚度确定材料性能的最佳组合。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Double-tough ceramics: Optimization-supported multiscale computational design

Double-tough ceramics: Optimization-supported multiscale computational design
To overcome the brittleness limitation of ceramics, various toughening mechanisms have been proposed. Some of the most remarkable, especially for oxides, include the tetragonal-to-monoclinic phase transformation leading to crack shielding in zirconia, and bioinspired brick-and-mortar microstructures fostering crack deflection. It has, however, proven challenging to incorporate both these mechanisms into a single all-ceramic material. In this work, we propose a computational methodology for the design of a material that combines these two toughening strategies, using a multiscale modeling approach that captures both their individual contributions and the overall fracture performance. This is achieved by developing an all-ceramic composite with a brick-and-mortar microstructure, in which the nanocrystalline mortar is transformation-toughened. Key factors influencing phase transformation, such as grain boundary properties, grain orientations, and kinetic coefficients, are analyzed, and the resulting transformation stress–strain behavior is incorporated into the microscale mortar constitutive model. We demonstrate that the synergistic effect of the two toughening mechanisms is achievable, and that it is an extremely effective strategy to boost fracture performance. The influence of brick size, mortar thickness, and properties of the constituent materials is then systematically investigated. Finally, a gradient-free optimization algorithm is employed to identify optimal geometric and material parameters, revealing that longer, thinner bricks with minimal mortar thickness provide the best fracture resistance. Optimal combinations of material properties are identified for given brick sizes and mortar thicknesses.
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来源期刊
Acta Materialia
Acta Materialia 工程技术-材料科学:综合
CiteScore
16.10
自引率
8.50%
发文量
801
审稿时长
53 days
期刊介绍: Acta Materialia serves as a platform for publishing full-length, original papers and commissioned overviews that contribute to a profound understanding of the correlation between the processing, structure, and properties of inorganic materials. The journal seeks papers with high impact potential or those that significantly propel the field forward. The scope includes the atomic and molecular arrangements, chemical and electronic structures, and microstructure of materials, focusing on their mechanical or functional behavior across all length scales, including nanostructures.
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