Finite Element Analysis of Renewable Porous Bones and Optimization of Additive Manufacturing Processes

被引:0
|
作者
Ma, Hailong [1 ]
Xu, Shubo [1 ]
Ju, Xiaoyu [1 ]
Tang, Aijun [2 ]
Hu, Xinzhi [1 ]
机构
[1] Shandong Jianzhu Univ, Sch Mat Sci & Engn, Jinan 250101, Peoples R China
[2] Shandong Jianzhu Univ, Sch Mech & Elect Engn, Jinan 250101, Peoples R China
基金
中国国家自然科学基金;
关键词
bone scaffold; finite element analysis; compression experiment; additive manufacturing; porosity; MECHANICAL-PROPERTIES; DESIGN; SCAFFOLDS; FABRICATION; IMPLANTS; POROSITY; SURFACE;
D O I
10.3390/coatings13050912
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Three-dimensional printing technology has a precise manufacturing process that can control tiny pores and can design individualized prostheses based on the patient's own conditions. Different porous structures were designed by controlling different parameters such as porosity, using UG NX to establish models with different porosities and using ANSYS to simulate stress and strain. Unidirectional compression and stretching simulations were carried out to obtain stress, strain, and deformation. Based on these data, a porosity was found to approximate the elastic modulus of the humeral bone scaffold. As the porosity increased, the equivalent elastic modulus decreased significantly in the lateral direction, and the maximum stress formed by the porous structure and deformation increased significantly. Four different finite element models and geometric models of cubic, face-centered cubic, honeycomb, and body-centered cubic unit structures were selected. Then these porous structures were simulated for tensile and compression experiments, and the simulation results were analyzed. The forming simulation of the finite element model was carried out, and the evolution of mechanical properties of the porous structure during the 3D printing process was analyzed. The results showed that designing the humeral bone scaffold as a porous structure could reduce the stiffness of the prosthesis, alleviate stress shielding around the prosthesis after surgery, enhance its stability, and prolong its service life. The study provides reference values and scientific guidance for the feasibility of porous humeral bone scaffolds and provides a basis for the research and design of clinical humeral bone scaffolds.
引用
收藏
页数:17
相关论文
共 50 条
  • [1] Lattice Modeling and Finite Element Simulation for Additive Manufacturing of Porous Scaffolds
    Singh, Surya Pratap
    Bhardwaj, Tarun
    Shukla, Mukul
    [J]. 2017 INTERNATIONAL CONFERENCE ON ADVANCES IN MECHANICAL, INDUSTRIAL, AUTOMATION AND MANAGEMENT SYSTEMS (AMIAMS) - PROCEEDINGS, 2017, : 333 - 336
  • [2] A Computationally Efficient Finite Element Framework to Simulate Additive Manufacturing Processes
    Jayanath, Shiyan
    Achuthan, Ajit
    [J]. JOURNAL OF MANUFACTURING SCIENCE AND ENGINEERING-TRANSACTIONS OF THE ASME, 2018, 140 (04):
  • [3] An adaptive Finite Element strategy for the numerical simulation of additive manufacturing processes
    Baiges, Joan
    Chiumenti, Michele
    Moreira, Carlos A.
    Cervera, Miguel
    Codina, Ramon
    [J]. Additive Manufacturing, 2021, 37
  • [4] An adaptive Finite Element strategy for the numerical simulation of additive manufacturing processes
    Baiges, Joan
    Chiumenti, Michele
    Moreira, Carlos A.
    Cervera, Miguel
    Codina, Ramon
    [J]. ADDITIVE MANUFACTURING, 2021, 37
  • [5] Finite Element Analysis on Initial Crack Site of Porous Structure Fabricated by Electron Beam Additive Manufacturing
    Tsai, Meng-Hsiu
    Yang, Chia-Ming
    Hung, Yu-Xuan
    Jheng, Chao-Yong
    Chen, Yen-Ju
    Fu, Ho-Chung
    Chen, In-Gann
    [J]. MATERIALS, 2021, 14 (23)
  • [6] A Finite Element Approach for Trajectory Optimization in Wire-Arc Additive Manufacturing
    Schmidt, Johannes
    Buhl, Johannes
    Fuegenschuh, Armin
    [J]. OPERATIONS RESEARCH PROCEEDINGS 2021, 2022, : 325 - 330
  • [7] Finite element analysis of clamping form in wire and arc additive manufacturing
    Wang, Xiaolong
    Wang, Aimin
    [J]. 2017 7TH INTERNATIONAL CONFERENCE ON MODELING, SIMULATION, AND APPLIED OPTIMIZATION (ICMSAO), 2017,
  • [8] Finite element analysis of a lightweight milling cutter for metal additive manufacturing
    Hanzl P.
    Zetek M.
    Rulc V.
    Purš H.
    Zetková I.
    [J]. Manuf. Technol., 2019, 5 (753-758): : 753 - 758
  • [9] FINITE ELEMENT MODELING AND OPTIMIZATION OF THE LUMBAR INTERBODY CAGE BASED ON THE ADDITIVE MANUFACTURING METHOD
    P. Sadeghinia
    A. S. Roshan
    P. K. Goudarzi
    M. Nikkhoo
    [J]. Journal of Applied Mechanics and Technical Physics, 2022, 63 : 231 - 239
  • [10] FINITE ELEMENT MODELING AND OPTIMIZATION OF THE LUMBAR INTERBODY CAGE BASED ON THE ADDITIVE MANUFACTURING METHOD
    Sadeghinia, P.
    Roshan, A. S.
    Goudarzi, P. K.
    Nikkhoo, M.
    [J]. JOURNAL OF APPLIED MECHANICS AND TECHNICAL PHYSICS, 2022, 63 (02) : 231 - 239