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Influence of Microstructural Features on the Propagation of Microstructurally Short Fatigue Cracks in Structural Steels

机译:微观结构特征对结构钢微结构短疲劳裂缝繁殖的影响

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摘要

Cyclically loaded structural steel components are usually designed to endure macroscopic stress amplitudes close to the material's endurance strength where microcracks initiate due to microstructural inhomogeneities and exhibit strong interactions with the various microstructural features in their neighborhood upon propagating. The current study presents a microstructural model with a capability to quantitatively describe the influence of microstructural features on the growth of cyclic cracks in the decisive, very early fatigue behavior stage. The FE model is based on the crystal plasticity theory and accounts for relative grain orientations. Both the extended finite element method (XFEM) and a coupled damage mechanics approach are used to describe crack opening behavior. The model is implemented to simulate real microcracking events produced in interrupted cyclic multiple-step tests under metallographic observation with temperature change measurements. Furthermore, the model is implemented on virtually created microstructures with altered grain sizes and orientations based on statistical EBSD analysis.
机译:循环装载的结构钢组件通常设计成突然靠近材料的耐久性强度的宏观应力幅度,其中微裂纹引起的微观裂纹由于微观结构的不均匀性并且在传播时与其邻距中的各种微观结构特征表现出强烈的相互作用。目前的研究呈现了一种微观结构模型,具有定量描述微观结构特征对循环裂缝在决定性,非常早的疲劳行为阶段的生长的影响。 FE模型基于晶体塑性理论和相对晶粒取向的占据思考。扩展有限元方法(XFEM)和耦合损伤力学方法都用于描述裂缝开度行为。该模型被实施为模拟在金相变化测量的金相观察下在中断的循环多步测试中产生的真实微裂纹事件。此外,基于统计EBSD分析的晶粒尺寸和取向改变的微结构在几乎创建的微结构上实现了模型。

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