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Study on Topology Optimization Design, Manufacturability, and Performance Evaluation of Ti-6Al-4V Porous Structures Fabricated by Selective Laser Melting (SLM)

机译:选择性激光熔化(SLM)制备的Ti-6Al-4V多孔结构的拓扑优化设计,可制造性和性能评估的研究

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The combination of topology optimization (TOP) and selective laser melting (SLM) provides the possibility of fabricating the complex, lightweight and high performance geometries overcoming the traditional manufacturing “bottleneck”. This paper evaluates the biomechanical properties of porous structures with porosity from 40% to 80% and unit cell size from 2 to 8 mm, which are designed by TOP and manufactured by SLM. During manufacturability exploration, three typical structures including spiral structure, arched bridge structure and structures with thin walls and small holes are abstracted and investigated, analyzing their manufacturing limits and forming reason. The property tests show that dynamic elastic modulus and compressive strength of porous structures decreases with increases of porosity (constant unit cell size) or unit cell size (constant porosity). Based on the Gibson-Ashby model, three failure models are proposed to describe their compressive behavior, and the structural parameter λ is used to evaluate the stability of the porous structure. Finally, a numerical model for the correlation between porous structural parameters (unit cell size and porosity) and elastic modulus is established, which provides a theoretical reference for matching the elastic modulus of human bones from different age, gender and skeletal sites during innovative medical implant design and manufacturing.
机译:拓扑优化(TOP)和选择性激光熔化(SLM)的结合提供了制造复杂,轻巧和高性能的几何形状的可能性,从而克服了传统的制造“瓶颈”。本文评估了由TOP设计并由SLM制造的,孔隙率为40%至80%,晶胞尺寸为2至8 mm的多孔结构的生物力学性能。在可制造性探索过程中,对螺旋结构,拱桥结构和薄壁小孔结构三种典型结构进行了抽象研究,分析了它们的制造极限和形成原因。性能测试表明,多孔结构的动态弹性模量和抗压强度随着孔隙率(单位晶胞尺寸不变)或单位晶胞尺寸(孔隙率恒定)的增加而降低。基于吉布森-阿什比模型,提出了三种破坏模型来描述其压缩行为,并使用结构参数λ来评估多孔结构的稳定性。最后,建立了多孔结构参数(晶胞大小和孔隙率)与弹性模量之间相关性的数值模型,为匹配创新医学植入过程中不同年龄,性别和骨骼部位的人体骨骼的弹性模量提供了理论参考。设计和制造。

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