Doroszko Michał
Department of Mechanics and Applied Computer Science, Faculty of Mechanical Engineering, Bialystok University of Technology, 45C Wiejska, 15-351 Bialystok, Poland.
Materials (Basel). 2022 Jul 9;15(14):4807. doi: 10.3390/ma15144807.
This paper describes the influence of defects occurring in struts under tension, obtained using the additive method of laser powder bed fusion (LPBF), on the stress and strain distributions. The study used struts of different thicknesses separated from Ti-6Al-4V diamond lattice structures. For numerical modeling of stress and strain fields, models that reflect the realistic shape of the tested struts with their imperfections were used. The shape of the diamond structure struts was obtained based on microtomographic measurements. Based on the results obtained, the influence of defects in the material structure on the stress and strain distribution was analyzed. It was observed that the main factor influencing the stress and strain distribution in the struts are micronotches on their external surface. These imperfections have a significantly greater impact on the stress and strain concentration than the micropores inside. Furthermore, the interactions of the imperfections are also important, which in turn affects the stress distributions and the formation of bands of high-stress values inside the material. The relationship between the presence of micropores, the stress-strain curves, and the mechanical properties of the material was also assessed.
本文描述了采用激光粉末床熔融(LPBF)增材制造方法得到的受拉支柱中出现的缺陷对应力和应变分布的影响。该研究使用了从Ti-6Al-4V菱形晶格结构中分离出来的不同厚度的支柱。为了对应力和应变场进行数值模拟,使用了能够反映测试支柱实际形状及其缺陷的模型。菱形结构支柱的形状是基于显微断层扫描测量得到的。根据所得结果,分析了材料结构中的缺陷对应力和应变分布的影响。观察到影响支柱应力和应变分布的主要因素是其外表面的微切口。这些缺陷对应力和应变集中的影响比内部微孔大得多。此外,缺陷之间的相互作用也很重要,这反过来又会影响应力分布以及材料内部高应力值带的形成。还评估了微孔的存在、应力-应变曲线与材料力学性能之间的关系。