基于开尔文分解的镍基单晶超级合金各向异性循环塑性构造模型

IF 5.7 2区 材料科学 Q1 ENGINEERING, MECHANICAL
Yuheng Yun , Yongsheng Fan , Duoqi Shi , Tianxiao Sui , Xiaoguang Yang
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引用次数: 0

摘要

由于消除了内部晶界,镍基单晶(SC)超级合金在高温下表现出优异的特殊机械性能,并产生了强烈的取向依赖性材料响应。基于开尔文分解理论[1],从宏观角度对 SC 超合金的各向异性进行了粘塑性建模。开尔文分解理论是根据弹性矩阵特征向量对应力空间进行分解,通过相互解耦的开尔文应力控制粘塑性流动。与经典的现象学宏观模型相比,所提出的模型有效地捕捉了SC超合金的滑移变形机理,由于两个标准框架由开尔文应力控制,因此具有模拟各向异性的内在能力。与其他模型相比,所提出的模型能够模拟复杂加载下的随时间变化的非弹性变形和循环变形行为。在运动硬化模型和各向同性硬化模型中加入了位错密度和通道相宽等微观量,将宏观力学响应与微观状态联系起来,实现了多尺度构效建模。在 SC 超合金上进行了参数识别和有限元实现[2]。仿真结果表明,所提出的模型能准确预测各种取向、速率相关效应、等温和非等温循环变形下的变形行为。与经典的各向异性基体宏观现象学方法相比,所提出的模型在模拟单晶合金与取向相关的力学性能方面具有更强的能力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Anisotropy cyclic plasticity constitutive modelling for Ni-based single-crystal superalloys based on Kelvin decomposition
Nickel-based single-crystal (SC) superalloys exhibited excellent exceptional mechanical properties at high temperatures due to the elimination of internal grain boundaries, contributed a strong orientation-dependent material response. The anisotropy of SC superalloys was modeled viscoplastically from a macroscopic viewpoint based on the Kelvin decomposition theory [1] which was a decomposition of the stress space according to the elastic matrix eigen-directions to control the viscoplastic flow by Kelvin stress decoupled from each other. Compared to the classical phenomenological macro model, the proposed model effectively captures the slip deformation mechanism of SC superalloys with the inherent ability to simulate anisotropic because of the two criterions framework controlled by Kelvin stress. Compared with others, the proposed model was able to simulate time-dependent inelastic deformation and cyclic deformation behavior under complex loading. The kinematic hardening and isotropic hardening models incorporated microscopic quantities, such as dislocation density and channel phase width, connecting the macroscopic mechanical response with the microscopic state to achieve multiscale constitutive modelling. The parameter identification and finite element implementation were conducted on a SC superalloy [2]. Simulation results demonstrated the accuracy of the proposed model in predicting deformation behavior under various orientations, rate-dependent effects, isothermal and non-isothermal cyclic deformation. Comparison with the classical anisotropic matrix macroscopic phenomenological approaches highlights the superior capability of the proposed model to simulate the orientation-dependent mechanical properties of single-crystal alloys.
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来源期刊
International Journal of Fatigue
International Journal of Fatigue 工程技术-材料科学:综合
CiteScore
10.70
自引率
21.70%
发文量
619
审稿时长
58 days
期刊介绍: Typical subjects discussed in International Journal of Fatigue address: Novel fatigue testing and characterization methods (new kinds of fatigue tests, critical evaluation of existing methods, in situ measurement of fatigue degradation, non-contact field measurements) Multiaxial fatigue and complex loading effects of materials and structures, exploring state-of-the-art concepts in degradation under cyclic loading Fatigue in the very high cycle regime, including failure mode transitions from surface to subsurface, effects of surface treatment, processing, and loading conditions Modeling (including degradation processes and related driving forces, multiscale/multi-resolution methods, computational hierarchical and concurrent methods for coupled component and material responses, novel methods for notch root analysis, fracture mechanics, damage mechanics, crack growth kinetics, life prediction and durability, and prediction of stochastic fatigue behavior reflecting microstructure and service conditions) Models for early stages of fatigue crack formation and growth that explicitly consider microstructure and relevant materials science aspects Understanding the influence or manufacturing and processing route on fatigue degradation, and embedding this understanding in more predictive schemes for mitigation and design against fatigue Prognosis and damage state awareness (including sensors, monitoring, methodology, interactive control, accelerated methods, data interpretation) Applications of technologies associated with fatigue and their implications for structural integrity and reliability. This includes issues related to design, operation and maintenance, i.e., life cycle engineering Smart materials and structures that can sense and mitigate fatigue degradation Fatigue of devices and structures at small scales, including effects of process route and surfaces/interfaces.
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