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首页> 外文期刊>International Journal of Damage Mechanics >A mesoscale approach for growth of 3D microstructurally small fatigue cracks in polycrystals
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A mesoscale approach for growth of 3D microstructurally small fatigue cracks in polycrystals

机译:中尺度方法在多晶中生长3D微结构小疲劳裂纹

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摘要

In the high cycle fatigue regime, microstructure attributes such as grain size, shape, and crystallographic orientation usually affect fatigue crack formation and early growth. However, most computational strategies and theoretical models for assessing the influence of the microstructure on early stages of fatigue crack formation and growth rely on simple constitutive models and 2D microstructures, which limit their applicability in design of microstructure of engineering materials. This work employs finite element simulations that explicitly render the 3D microstructure of an Face-centered cubic (FCC) alloy to evaluate the change of the driving force for fatigue crack formation and early stages of transgranular growth, including consideration of growth within individual grains and stress redistribution as the crack extends. The methodology is implemented using a crystal plasticity algorithm in ABAQUS and used to study the effect of microstructure on early fatigue life of a powder processed Ni-base RR1000 superalloy at 650℃ subjected to constant amplitude loading. The effects of the microstructure in extending a fatigue crack over the first few grains are analyzed.
机译:在高循环疲劳状态下,微观结构属性(例如晶粒尺寸,形状和晶体学取向)通常会影响疲劳裂纹的形成和早期生长。但是,大多数评估微观结构对疲劳裂纹形成和生长早期阶段的影响的计算策略和理论模型都依赖于简单的本构模型和二维微观结构,这限制了它们在工程材料微观结构设计中的适用性。这项工作采用了有限元模拟,可以明确渲染面心立方(FCC)合金的3D微观结构,以评估疲劳裂纹形成和跨晶生长早期阶段的驱动力变化,包括考虑单个晶粒内的生长和应力裂纹扩展时重新分配。该方法是在ABAQUS中使用晶体可塑性算法实现的,并用于研究微观结构对粉末加工的镍基RR1000合金在650℃恒定振幅载荷下的早期疲劳寿命的影响。分析了微观结构在疲劳裂纹扩展到前几个晶粒上的作用。

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