Xiao Xiong, Xie Liangwen, Zhu Xianyong, Liu Jiaan, Luo Yanru, Song Peng, Zhao Jiali, Zhang Jinyuan, Wang Chen, Yang Song, Wu Peng, You Xiangmi, Jiang Cheng
School of Mechanical and Aerospace Engineering, Jilin University, Changchun 130022, China.
Chongqing Research Institute, Jilin University, Chongqing 401120, China.
Materials (Basel). 2023 Aug 6;16(15):5487. doi: 10.3390/ma16155487.
In recent years, lattice structures produced via additive manufacturing have been increasingly investigated for their unique mechanical properties and the flexible and diverse approaches available to design them. The design of a strut with variable cross-sections in a lattice structure is required to improve the mechanical properties. In this study, a lattice structure design method based on a strut cross-section composed of a mixture of three ellipses named a tri-directional elliptical cylindrical section (TEC) is proposed. The lattice structures were fabricated via the selective laser melting of 316L alloy. The finite element analysis results show that the TEC strut possessed the high mechanical properties of lattice structures. Compression experiments confirmed that the novel lattice structure with the TEC strut exhibited increases in the elastic modulus, compressive yield strength, and energy absorption capacity of 24.99%, 21.66%, and 20.50%, respectively, compared with the conventional lattice structure at an equal level of porosity.
近年来,通过增材制造生产的晶格结构因其独特的机械性能以及设计它们时可用的灵活多样的方法而受到越来越多的研究。为了提高机械性能,需要在晶格结构中设计具有可变横截面的支柱。在本研究中,提出了一种基于由三个椭圆混合组成的支柱横截面的晶格结构设计方法,称为三向椭圆圆柱截面(TEC)。通过对316L合金进行选择性激光熔化来制造晶格结构。有限元分析结果表明,TEC支柱具有晶格结构的高机械性能。压缩实验证实,与具有相同孔隙率水平的传统晶格结构相比,具有TEC支柱的新型晶格结构的弹性模量、抗压屈服强度和能量吸收能力分别提高了24.99%、21.66%和20.50%。