A crystal plasticity-based creep model considering the concurrent evolution of point defect, dislocation, grain boundary, and void

IF 5 2区 工程技术 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
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Abstract

Creep poses a significant threat to the integrity and longevity of structural components at high-temperature. The most current understanding of creep mainly focuses on the coupled dynamics of point defects and dislocation, which may well describe the first and second stage of creep. However, the behavior of the three stages of creep is jointly controlled by point defect (vacancy) diffusion, dislocation glide, dislocation climb, grain boundary (GB) sliding, and void evolution. A critical knowledge gap still exists regarding how these different creep mechanisms are simultaneously coupled during the three stages of creep. In this work, a multi-physical mechanisms-based crystal plasticity model is proposed to consider the concurrent evolution of point defect, dislocation, GB, and void based on a unified thermodynamic framework. In-situ scanning electron microscope creep experiments and macroscopic creep experiments of Ti-6Al-4V were conducted to validate our model. The in-situ creep experiment directly revealed the GB sliding creep failure behavior of Ti-6Al-4V for the first time. The proposed model well predicts both the microscopic and macroscopic experimental behavior of creep. The contribution of different microstructure evolutions is discussed, and a phase diagram of the dominated creep mechanism is obtained. An in-depth analysis was conducted on the coupling effects and microstructure characteristics of different creep mechanisms. This work not only deepens our understanding of the micro creep mechanism but also offers valuable insights for designing materials with specific microstructures to enhance their creep resistance.

基于晶体塑性的蠕变模型,考虑了点缺陷、位错、晶界和空隙的同时演化
蠕变对高温下结构组件的完整性和寿命构成重大威胁。目前对蠕变的理解主要集中在点缺陷和位错的耦合动力学上,这可以很好地描述蠕变的第一和第二阶段。然而,蠕变三个阶段的行为是由点缺陷(空位)扩散、位错滑行、位错爬升、晶界(GB)滑动和空隙演化共同控制的。关于这些不同的蠕变机制如何在蠕变的三个阶段中同时耦合,仍然存在着重要的知识空白。在这项工作中,基于统一的热力学框架,提出了一种基于多物理机制的晶体塑性模型,以考虑点缺陷、位错、晶界和空隙的同时演化。为了验证我们的模型,我们对 Ti-6Al-4V 进行了原位扫描电子显微蠕变实验和宏观蠕变实验。原位蠕变实验首次直接揭示了 Ti-6Al-4V 的 GB 滑动蠕变失效行为。提出的模型很好地预测了蠕变的微观和宏观实验行为。讨论了不同微观结构演变的贡献,并得到了主导蠕变机制的相图。对不同蠕变机制的耦合效应和微观结构特征进行了深入分析。这项工作不仅加深了我们对微观蠕变机理的理解,而且为设计具有特定微观结构的材料以增强其抗蠕变性提供了宝贵的见解。
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来源期刊
Journal of The Mechanics and Physics of Solids
Journal of The Mechanics and Physics of Solids 物理-材料科学:综合
CiteScore
9.80
自引率
9.40%
发文量
276
审稿时长
52 days
期刊介绍: The aim of Journal of The Mechanics and Physics of Solids is to publish research of the highest quality and of lasting significance on the mechanics of solids. The scope is broad, from fundamental concepts in mechanics to the analysis of novel phenomena and applications. Solids are interpreted broadly to include both hard and soft materials as well as natural and synthetic structures. The approach can be theoretical, experimental or computational.This research activity sits within engineering science and the allied areas of applied mathematics, materials science, bio-mechanics, applied physics, and geophysics. The Journal was founded in 1952 by Rodney Hill, who was its Editor-in-Chief until 1968. The topics of interest to the Journal evolve with developments in the subject but its basic ethos remains the same: to publish research of the highest quality relating to the mechanics of solids. Thus, emphasis is placed on the development of fundamental concepts of mechanics and novel applications of these concepts based on theoretical, experimental or computational approaches, drawing upon the various branches of engineering science and the allied areas within applied mathematics, materials science, structural engineering, applied physics, and geophysics. The main purpose of the Journal is to foster scientific understanding of the processes of deformation and mechanical failure of all solid materials, both technological and natural, and the connections between these processes and their underlying physical mechanisms. In this sense, the content of the Journal should reflect the current state of the discipline in analysis, experimental observation, and numerical simulation. In the interest of achieving this goal, authors are encouraged to consider the significance of their contributions for the field of mechanics and the implications of their results, in addition to describing the details of their work.
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