Gupta Yash, Iyer Rohit, Dommeti Vamsi Krishna, Nutu Emil, Rana Masud, Merdji Ali, Biswas Jayanta Kumar, Roy Sandipan
Department of Mechanical Engineering, SRM Institute of Science and Technology, Kattankulathur, Tamil Nadu, India.
Strength of Materials Department, University Politehnica of Bucharest, Faculty of Engineering and Management of Technological Systems, Bucharest, Romania.
Proc Inst Mech Eng H. 2021 Feb;235(2):157-166. doi: 10.1177/0954411920967146. Epub 2020 Oct 23.
Ever since the introduction of topology optimization into the industrial and manufacturing fields, it has been a top priority to maximize the performance of any system by optimizing its geometrical parameters to save material while keeping its functionality unaltered. The purpose of this study is to design a dental implant macro-geometry by removing expendable material using topology optimization and to evaluate its biomechanical function. Three-dimensional finite element models were created of an implant embedded in cortical and cancellous bone. Parameters like the length and diameter of the implant and the bone quality (±20% variation in Young's modulus, Poisson's ratio and density for both cortical and cancellous bone) were varied to evaluate their effect on the principal stresses induced on the peri-implant bone tissues and the micromotion of the implant at 150 N applied load. Design optimization is used to select one suitable implant for each material property combination with optimum parameters that experiences the least von Mises stress and axial deformation, out of twenty implants with different length and diameter for each material property combination. Topology optimization was then used on the selected implants to remove the redundant material. The biomechanical functions of the implants with optimized parameter and volume were then evaluated. The finite element analyses estimated that a reduction of 32% to 45% in the implant volume is possible with the implant still retaining all of its functionality.
自从拓扑优化被引入工业和制造领域以来,通过优化几何参数以在保持系统功能不变的同时节省材料来最大化任何系统的性能一直是首要任务。本研究的目的是通过使用拓扑优化去除可消耗材料来设计牙科植入物的宏观几何形状,并评估其生物力学功能。创建了植入皮质骨和松质骨中的植入物的三维有限元模型。改变植入物的长度和直径以及骨质量(皮质骨和松质骨的杨氏模量、泊松比和密度变化±20%)等参数,以评估它们对植入物周围骨组织上诱导的主应力以及在150 N施加负载下植入物的微动的影响。设计优化用于从每种材料属性组合的二十种不同长度和直径的植入物中选择一种具有最佳参数的合适植入物,该植入物承受的冯·米塞斯应力和轴向变形最小。然后对选定的植入物进行拓扑优化以去除多余材料。然后评估具有优化参数和体积的植入物的生物力学功能。有限元分析估计,植入物体积有可能减少32%至45%,同时植入物仍保留其所有功能。