Li S J, Xu Q S, Wang Z, Hou W T, Hao Y L, Yang R, Murr L E
Shenyang National Laboratory for Materials Science, Institute of Metal Research, Chinese Academy of Sciences, 72 Wenhua Road, Shenyang 110016, People's Republic of China.
Shenyang National Laboratory for Materials Science, Institute of Metal Research, Chinese Academy of Sciences, 72 Wenhua Road, Shenyang 110016, People's Republic of China.
Acta Biomater. 2014 Oct;10(10):4537-47. doi: 10.1016/j.actbio.2014.06.010. Epub 2014 Jun 24.
Ti-6Al-4V reticulated meshes with different elements (cubic, G7 and rhombic dodecahedron) in Materialise software were fabricated by additive manufacturing using the electron beam melting (EBM) method, and the effects of cell shape on the mechanical properties of these samples were studied. The results showed that these cellular structures with porosities of 88-58% had compressive strength and elastic modulus in the range 10-300MPa and 0.5-15GPa, respectively. The compressive strength and deformation behavior of these meshes were determined by the coupling of the buckling and bending deformation of struts. Meshes that were dominated by buckling deformation showed relatively high collapse strength and were prone to exhibit brittle characteristics in their stress-strain curves. For meshes dominated by bending deformation, the elastic deformation corresponded well to the Gibson-Ashby model. By enhancing the effect of bending deformation, the stress-strain curve characteristics can change from brittle to ductile (the smooth plateau area). Therefore, Ti-6Al-4V cellular solids with high strength, low modulus and desirable deformation behavior could be fabricated through the cell shape design using the EBM technique.
利用电子束熔炼(EBM)方法,通过增材制造在Materialise软件中制备了具有不同单元形状(立方体、G7和菱形十二面体)的Ti-6Al-4V网状结构,并研究了单元形状对这些样品力学性能的影响。结果表明,这些孔隙率为88%-58%的多孔结构的抗压强度和弹性模量分别在10-300MPa和0.5-15GPa范围内。这些网状结构的抗压强度和变形行为由支柱的屈曲和弯曲变形耦合决定。以屈曲变形为主的网状结构表现出相对较高的坍塌强度,并且在其应力-应变曲线中易于表现出脆性特征。对于以弯曲变形为主的网状结构,弹性变形与吉布森-阿什比模型吻合良好。通过增强弯曲变形的影响,应力-应变曲线特征可以从脆性转变为韧性(平滑的平台区域)。因此,利用EBM技术通过单元形状设计可以制备出具有高强度、低模量和理想变形行为的Ti-6Al-4V多孔固体。