Multiaxial fatigue behavior of additively manufactured Ti6Al4V alloy: Axial–torsional proportional loads

Danilo A. Renzo, Emanuele Sgambitterra, Pietro Magarò, Franco Furgiuele, Carmine Maletta, Carlo Alberto Biffi, Jacopo Fiocchi, Ausonio Tuissi
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引用次数: 7

Abstract

Additive manufacturing (AM) techniques are under constant development and selective laser melting (SLM) is among the most promising ones. However, widespread use of AM techniques in many industries is limited by the different/unusual mechanical properties of AM metallic parts, with respect to traditionally processed ones, especially when dealing with complex fatigue loading conditions. In fact, crack formation and propagation mechanisms are mainly affected by the development of internal defects, residual stresses, and microstructural changes. This is actually one of the major issues the materials engineering community is facing today. In many applications, AM components are subjected to multiaxial fatigue loads, arising from operating conditions and/or from complex geometries, that unavoidably generate crack initiation and propagation mechanisms. The aim of this study is to investigate the multiaxial fatigue behavior of additively manufactured Ti6Al4V samples, made by SLM. Fatigue tests, combining proportional axial and torsional loads, were performed on thin-walled tubular specimens. Full-field measurement techniques, such as the infrared thermography and digital image correlation, were also used to capture temperature and strain evolutions, at both local scales and global scales. Fatigue results highlighted damage mechanisms, and failure modes are strongly related to the applied stress level.

增材制造Ti6Al4V合金的多轴疲劳行为:轴扭比例载荷
增材制造(AM)技术在不断发展,而选择性激光熔化(SLM)技术是最有前途的增材制造技术之一。然而,AM技术在许多行业的广泛使用受到AM金属零件不同/不寻常的机械性能的限制,相对于传统加工的零件,特别是在处理复杂的疲劳载荷条件时。实际上,裂纹的形成和扩展机制主要受内部缺陷的发展、残余应力和微观组织变化的影响。这实际上是当今材料工程界面临的主要问题之一。在许多应用中,增材制造部件受到由操作条件和/或复杂几何形状引起的多轴疲劳载荷的影响,这不可避免地产生裂纹的产生和扩展机制。本研究的目的是研究用SLM增材制造Ti6Al4V试样的多轴疲劳行为。结合比例轴向和扭转载荷,对薄壁管状试件进行了疲劳试验。全场测量技术,如红外热成像和数字图像相关,也被用来捕捉温度和应变的演变,在局部尺度和全球尺度。疲劳结果突出了损伤机制,失效模式与外加应力水平密切相关。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
5.30
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