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A Mechanism-Based Approach From Low Cycle Fatigue to Thermomechanical Fatigue Life Prediction

机译:从低周疲劳到热机械疲劳寿命预测的基于机理的方法

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摘要

Deformation and damage accumulation occur by fundamental dislocation and diffusion mechanisms. An integrated creep-fatigue theory (ICFT) has been developed, based on the physical strain decomposition rule that recognizes the role of each deformation mechanism, and thus relate damage accumulation to its underlying physical mechanism(s). The ICFT formulates the overall damage accumulation as a holistic damage process consisting of nucleation and propagation of surface/subsurface cracks in coalescence with internally distributed damage I discontinuities. These guiding principles run through both isothermal low cycle fatigue (LCF) and thermomechanical fatigue (TMF) under general conditions. This paper presents a methodology using mechanism-based constitutive equations to describe the cyclic stress-strain curve and the nonlinear damage accumulation equation incorporating (ⅰ) rate-independent plasticity-induced fatigue, (ⅱ) inter granular embrittlement (IE), (ⅲ) creep, and (ⅳ) oxidation to predict LCF and TMF lives of ductile cast iron (DCI). The complication of the mechanisms and their interactions in this material provide a good demonstration case for the model, which is in good agreement with the experimental observations.
机译:变形和损伤积累是通过基本的位错和扩散机制发生的。基于物理应变分解规则,已开发出一种综合的蠕变疲劳理论(ICFT),该规则认识到每个变形机制的作用,从而将损伤累积与其潜在的物理机制联系起来。 ICFT将整体损伤累积表述为整体损伤过程,包括成核和表面/亚表面裂纹在聚结中扩散并内部分布不连续I。这些指导原则贯穿一般条件下的等温低周疲劳(LCF)和热机械疲劳(TMF)。本文提出了一种使用基于机制的本构方程来描述循环应力-应变曲线和非线性损伤累积方程的方法,其中包括(ⅰ)与速率无关的可塑性诱发的疲劳,(ⅱ)颗粒间脆化(IE),(ⅲ)蠕变和(ⅳ)氧化来预测球墨铸铁(DCI)的LCF和TMF寿命。该材料中机理的复杂性及其相互作用为该模型提供了很好的演示案例,与实验观察结果非常吻合。

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