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Application of the Microstructural Finite Element Alternating Method to assess the impact of specimen size and distributions of contact/residual stress fields on fatigue strength

机译:应用微观结构有限元交替法评估试样尺寸和接触/残余应力场分布对疲劳强度的影响

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摘要

This paper shows an implementation of the Microstructural Finite Element Alternating Method (MFEAM) to calculate fatigue strength of engineering components subjected to complex loading conditions. These conditions include combination of primary cyclic loading and residual stress fields or localised stress distributions due to the contact of two solids. The alternating method uses the finite element method (FEM) to solve the boundary value problem of the un-cracked body, allowing treatment of arbitrary shaped components, in conjunction with a short crack model to account for the interaction of the crack with the microstructural barriers, implemented within the distributed dislocation technique (DDT) to assess the crack problem in an infinite medium. An iterative scheme between the FEM and the DDT solutions is proposed in order to predict the required applied load to propagate the crack in the finite size body. Comparisons of results with reported data in the literature show that the MFEAM can be used effectively to analyse finite size components and that it is capable of capturing the effect of localised stress concentration features on cyclic behaviour.
机译:本文展示了一种微结构有限元交替方法(MFEAM)的实现,该方法可以计算复杂载荷条件下工程部件的疲劳强度。这些条件包括一次循环载荷和残余应力场或由于两种固体接触而产生的局部应力分布的组合。交替法使用有限元方法(FEM)解决未破裂物体的边值问题,允许处理任意形状的零件,并结合短裂纹模型来考虑裂纹与微结构壁垒的相互作用在分布式错位技术(DDT)中实施,以评估无限介质中的裂纹问题。为了预测在有限尺寸体中传播裂纹所需的施加载荷,提出了有限元法和DDT解决方案之间的迭代方案。将结果与文献中报道的数据进行比较表明,MFEAM可有效地用于分析有限大小的分量,并且能够捕捉局部应力集中特征对循环行为的影响。

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