Surface roughness of Ti-6Al-4V parts obtained by SLM and EBM: Effect on the High Cycle Fatigue life

Bastien Vayssette , Nicolas Saintier , Charles Brugger , Mohamed Elmay , Etienne Pessard
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引用次数: 116

Abstract

Selective Laser Melting (SLM) and Electron Beam Melting (EBM) are powder bed fusion processing which allows to build-up parts by successive addition of layers using 3D-CAD models. Among the advantages, are the high degree of freedom for part design and the small loss of material, which explain the increase of Ti-6Al-4V parts obtained by these processes. However, Ti-6Al-4V parts produced by SLM and EBM contain defects (surface roughness, porosity, tensile residual stresses) which decrease significantly the High Cycle Fatigue (HCF) life. In order to minimize the porosity and tensile residual stresses, post-processing treatments like Hot Isostatic Pressing (HIP) and Stress Relieving are often conducted. But the modification of the surface roughness by machining is very costly and not always possible, especially for parts with complex design. The aim of this work is to evaluate the effect of the surface roughness and microstructure of Ti-6Al-4V parts produced by SLM and EBM on the HCF life. Five sets of specimens were tested in tension-compression (R=-1; f=120Hz): Hot-Rolled (reference); SLM HIP machined; SLM HIP As-Built; EBM HIP machined; EBM HIP As-Built. For each condition, microstructure characterization, observation of the fracture surface of broken specimens and surface analysis were carried out respectively by Optical Microscope (OM), Scanning Electron Microscope (SEM) and 3D optical profilometer. Results of fatigue testing show a significant decrease of the HCF life mainly due to the surface roughness. Along with experimental testing, numerical simulations using FEM were conducted using the surface scans obtained by profilometry. Based on extreme values statistics of the crossland equivalent stress averaged on a critical distance, a methodology is proposed to take into account the effect of the surface roughness on the HCF life.

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SLM和EBM制备Ti-6Al-4V零件表面粗糙度对高周疲劳寿命的影响
选择性激光熔化(SLM)和电子束熔化(EBM)是粉末床熔化加工,允许使用3D-CAD模型通过连续添加层来构建零件。其中的优点是零件设计自由度高,材料损耗小,这解释了通过这些工艺获得的Ti-6Al-4V零件的增加。然而,SLM和EBM生产的Ti-6Al-4V零件存在缺陷(表面粗糙度、孔隙率、拉伸残余应力),这些缺陷显著降低了高周疲劳(HCF)寿命。为了最小化孔隙率和拉伸残余应力,通常会进行热等静压(HIP)和应力消除等后处理。但是,通过机械加工来改变表面粗糙度是非常昂贵的,而且并不总是可行的,特别是对于具有复杂设计的零件。本工作的目的是评估SLM和EBM生产的Ti-6Al-4V零件的表面粗糙度和微观结构对HCF寿命的影响。5组试件进行拉压试验(R=-1;f=120Hz):热轧(参考);SLM HIP加工;SLM HIP成品;EBM HIP加工;EBM HIP已建成。在每种情况下,分别通过光学显微镜(OM)、扫描电镜(SEM)和三维光学轮廓仪对断裂试样进行显微组织表征、断口形貌观察和表面分析。疲劳试验结果表明,HCF寿命显著降低主要是由于表面粗糙度的影响。在进行试验的同时,利用轮廓术获得的表面扫描进行了有限元数值模拟。基于临界距离上交叉等效应力的极值统计,提出了一种考虑表面粗糙度对HCF寿命影响的方法。
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