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Effect of Post Treatment on the Microstructure, Surface Roughness and Residual Stress Regarding the Fatigue Strength of Selectively Laser Melted AlSi10Mg Structures

机译:关于选择性激光熔融AlSi10Mg结构的疲劳强度,后处理对组织,表面粗糙度和残余应力的影响

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This paper focusses on the effect of hot isostatic pressing (HIP) and a solution annealing post treatment on the fatigue strength of selectively laser melted (SLM) AlSi10Mg structures. The aim of this work is to assess the effect of the unprocessed (as-built) surface and residual stresses, regarding the fatigue behaviour for each condition. The surface roughness of unprocessed specimens is evaluated based on digital light optical microscopy and subsequent three-dimensional image post processing. To holistically characterize contributing factors to the fatigue strength, the axial surface residual stress of all specimens with unprocessed surfaces is measured using X-ray diffraction. Furthermore, the in-depth residual stress distribution of selected samples is analyzed. The fatigue strength is evaluated by tension-compression high-cycle fatigue tests under a load stress ratio of R = ?1. For the machined specimens, intrinsic defects like pores or intermetallic phases are identified as the failure origin. Regarding the unprocessed test series, surface features cause the failures that correspond to significantly reduced cyclic material properties of approximately ?60% referring to machined ones. There are beneficial effects on the surface roughness and residual stresses evoked due to the post treatments. Considering the aforementioned influencing factors, this study provides a fatigue assessment of the mentioned conditions of the investigated Al-material.
机译:本文重点研究热等静压(HIP)和固溶退火后处理对选择性激光熔融(SLM)AlSi10Mg结构的疲劳强度的影响。这项工作的目的是针对每种条件下的疲劳行为,评估未处理(已建好的)表面和残余应力的影响。基于数字光学显微镜和随后的三维图像后处理,评估未处理样品的表面粗糙度。为了全面表征影响疲劳强度的因素,使用X射线衍射测量了所有未加工表面试样的轴向残余应力。此外,分析了所选样品的深度残余应力分布。疲劳强度是通过在载荷应力比R =?1的条件下进行拉伸压缩高周疲劳试验来评估的。对于机加工的样品,固有缺陷(例如孔或金属间相)被确定为失效源。对于未加工的测试系列,表面特征会导致失效,这与循环材料的加工性能显着降低(约60%)相对应。对后处理引起的表面粗糙度和残余应力产生有益的影响。考虑到上述影响因素,本研究对所研究的铝材料的上述条件进行了疲劳评估。

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