CAE analysis on the mechanical properties of a 3D-printed lattice structure from Ti-6Al-4V for biomedical applications

Yu-lian Lin, Chun-Ying Lee, Jhewn-Kuang Chen
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Abstract

This study investigates the structural compression properties of the additive manufactured (AM) Ti-6Al-4V lattice structure using LS-Dyna simulation analysis software and calculates its mechanical properties under different porosities and different pattern designs. Ti-6Al-4V alloys formed by using additive manufacturing produced elliptic holes with long and short axes due to the difference in the direction of construction. These holes could be eliminated and the materials could be compacted by hot isostatic pressing (HIP) treatment. Compactness of the frame element achieved 99.9% and drastically reduced the anisotropic behavior caused by the fabrication process. For the experimental testing, the samples with different porosities and the A-type and AZ-type designs were employed in compression experiment. In the meantime, the Young’s modulus, the yield strength, plateau stress and other mechanical behavior were investigated by CAE simulation. The plateau stress, which is an important property for some biomedical applications, was calculated with satisfactory accuracy compared with experimental measurements. The simulated results of the designed lattice structures with different porosity contents were able to adopt the Gibson-Ashby model to determine their failure mechanisms. Finally, the CAE simulation for the design of an auxetic material was demonstrated.This study investigates the structural compression properties of the additive manufactured (AM) Ti-6Al-4V lattice structure using LS-Dyna simulation analysis software and calculates its mechanical properties under different porosities and different pattern designs. Ti-6Al-4V alloys formed by using additive manufacturing produced elliptic holes with long and short axes due to the difference in the direction of construction. These holes could be eliminated and the materials could be compacted by hot isostatic pressing (HIP) treatment. Compactness of the frame element achieved 99.9% and drastically reduced the anisotropic behavior caused by the fabrication process. For the experimental testing, the samples with different porosities and the A-type and AZ-type designs were employed in compression experiment. In the meantime, the Young’s modulus, the yield strength, plateau stress and other mechanical behavior were investigated by CAE simulation. The plateau stress, which is an important property for some biome...
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用于生物医学应用的Ti-6Al-4V 3d打印晶格结构机械性能的CAE分析
采用LS-Dyna模拟分析软件对增材制造(AM) Ti-6Al-4V晶格结构的结构压缩性能进行了研究,并计算了其在不同孔隙率和不同图案设计下的力学性能。增材制造的Ti-6Al-4V合金由于构造方向的不同,产生了长轴和短轴的椭圆孔。通过热等静压(HIP)处理可以消除这些孔洞并使材料致密化。框架元件的紧凑度达到99.9%,大大降低了制造过程中引起的各向异性行为。实验测试采用不同孔隙率的试样,采用a型和az型设计进行压缩实验。同时,通过CAE模拟对材料的杨氏模量、屈服强度、平台应力等力学行为进行了研究。平台应力是一些生物医学应用的重要特性,与实验测量值相比,计算结果具有令人满意的精度。对设计的不同孔隙率点阵结构的模拟结果可以采用Gibson-Ashby模型确定其破坏机制。最后,对一种增氧材料的设计进行了CAE仿真。采用LS-Dyna模拟分析软件对增材制造(AM) Ti-6Al-4V晶格结构的结构压缩性能进行了研究,并计算了其在不同孔隙率和不同图案设计下的力学性能。增材制造的Ti-6Al-4V合金由于构造方向的不同,产生了长轴和短轴的椭圆孔。通过热等静压(HIP)处理可以消除这些孔洞并使材料致密化。框架元件的紧凑度达到99.9%,大大降低了制造过程中引起的各向异性行为。实验测试采用不同孔隙率的试样,采用a型和az型设计进行压缩实验。同时,通过CAE模拟对材料的杨氏模量、屈服强度、平台应力等力学行为进行了研究。高原胁迫是某些生物群落的重要特征。
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