The Porosity Design and Deformation Behavior Analysis of Additively Manufactured Bone Scaffolds through Finite Element Modelling and Mechanical Property Investigations

被引:2
|
作者
Rasheed, Shummaila [1 ]
Lughmani, Waqas Akbar [2 ]
Khan, Muhammad Mahabat [1 ]
Brabazon, Dermot [3 ]
Obeidi, Muhannad Ahmed [3 ]
Ahad, Inam Ul [3 ]
机构
[1] Capital Univ Sci & Technol, Dept Mech Engn, Islamabad 44000, Pakistan
[2] Ghulam Ishaq Khan Inst Engn Sci & Technol, Fac Mech Engn, Topi 23460, Pakistan
[3] Dublin City Univ, SFI Res Ctr Adv Mfg, Sch Mech & Mfg Engn, I Form, Dublin, Ireland
基金
英国工程与自然科学研究理事会; 爱尔兰科学基金会;
关键词
polymeric bone scaffolds; 3D printing; mechanical response; finite element method; deformation pattern; crushable foam plasticity model; ARCHITECTURE; STRENGTH; FAILURE;
D O I
10.3390/jfb14100496
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Additively manufactured synthetic bone scaffolds have emerged as promising candidates for the replacement and regeneration of damaged and diseased bones. By employing optimal pore architecture, including pore morphology, sizes, and porosities, 3D-printed scaffolds can closely mimic the mechanical properties of natural bone and withstand external loads. This study aims to investigate the deformation pattern exhibited by polymeric bone scaffolds fabricated using the PolyJet (PJ) 3D printing technique. Cubic and hexagonal closed-packed uniform scaffolds with porosities of 30%, 50%, and 70% are utilized in finite element (FE) models. The crushable foam plasticity model is employed to analyze the scaffolds' mechanical response under quasi-static compression. Experimental validation of the FE results demonstrates a favorable agreement, with an average percentage error of 12.27% +/- 7.1%. Moreover, the yield strength and elastic modulus of the scaffolds are evaluated and compared, revealing notable differences between cubic and hexagonal closed-packed designs. The 30%, 50%, and 70% porous cubic pore-shaped bone scaffolds exhibit significantly higher yield strengths of 46.89%, 58.29%, and 66.09%, respectively, compared to the hexagonal closed-packed bone scaffolds at percentage strains of 5%, 6%, and 7%. Similarly, the elastic modulus of the 30%, 50%, and 70% porous cubic pore-shaped bone scaffolds is 42.68%, 59.70%, and 58.18% higher, respectively, than the hexagonal closed-packed bone scaffolds at the same percentage strain levels. Furthermore, it is observed in comparison with our previous study the mu SLA-printed bone scaffolds demonstrate 1.5 times higher elastic moduli and yield strengths compared to the PJ-printed bone scaffolds.
引用
收藏
页数:19
相关论文
共 50 条
  • [1] Effect of Porosity and Pore Shape on the Mechanical and Biological Properties of Additively Manufactured Bone Scaffolds
    Liu, Qingyang
    Wei, Fei
    Coathup, Melanie
    Shen, Wen
    Wu, Dazhong
    ADVANCED HEALTHCARE MATERIALS, 2023, 12 (30)
  • [2] Additively Manufactured Scaffolds for Bone Tissue Engineering and the Prediction of their Mechanical Behavior: A Review
    Zhang, Xiang-Yu
    Fang, Gang
    Zhou, Jie
    MATERIALS, 2017, 10 (01):
  • [3] Finite element analysis of the performance of additively manufactured scaffolds for scapholunate ligament reconstruction
    Perevoshchikova, Nataliya
    Moerman, Kevin M.
    Akhbari, Bardiya
    Bindra, Randy
    Maharaj, Jayishni N.
    Lloyd, David G.
    Cerezo, Maria Gomez
    Carr, Amelia
    Vaquette, Cedryck
    Saxby, David J.
    PLOS ONE, 2021, 16 (11):
  • [4] Influence of design and postprocessing parameters on the degradation behavior and mechanical properties of additively manufactured magnesium scaffolds
    Kopp, Alexander
    Derra, Thomas
    Muether, Max
    Jauer, Lucas
    Schleifenbaum, Johannes H.
    Voshage, Maximilian
    Jung, Ole
    Smeets, Ralf
    Kroeger, Nadja
    ACTA BIOMATERIALIA, 2019, 98 : 23 - 35
  • [5] Ratcheting Simulation of Additively Manufactured Aluminum 4043 Samples through Finite Element Analysis
    Servatan, M.
    Hashemi, S. M.
    Varvani-Farahani, A.
    APPLIED SCIENCES-BASEL, 2023, 13 (20):
  • [6] Finite Element Analysis of Flexural Test of Additively Manufactured Components Fabricated by Fused Deposition Modelling
    Patil, Chaitanya
    Sonawane, Pushkaraj D.
    Naik, Mahesh
    Thakur, D. G.
    3RD INTERNATIONAL CONFERENCE ON FRONTIERS IN AUTOMOBILE AND MECHANICAL ENGINEERING (FAME 2020), 2020, 2311
  • [7] Additively Manufactured Functionally Graded Lattices: Design, Mechanical Response, Deformation Behavior, Applications, and Insights
    Dash, J.
    Dash, J.
    Brandt, M.
    Brandt, M.
    Brandt, M.
    Kyriakou, E.
    Brandt, M.
    JOM, 2023, 75 (12) : 5729 - 5754
  • [8] Additively Manufactured Functionally Graded Lattices: Design, Mechanical Response, Deformation Behavior, Applications, and Insights
    J. Noronha
    J. Dash
    M. Leary
    M. Watson
    M. Qian
    E. Kyriakou
    M. Brandt
    JOM, 2023, 75 : 5729 - 5754
  • [9] Finite element analysis of the influence of porosity and pore geometry on mechanical properties of orthopaedic scaffolds
    Gryko, Anita
    Prochor, Piotr
    Sajewicz, Eugeniusz
    JOURNAL OF THE MECHANICAL BEHAVIOR OF BIOMEDICAL MATERIALS, 2022, 132
  • [10] Mechanical property determination of bone through nanoindentation testing and finite element simulation
    Zhang, Jingzhou
    Ovaert, Timothy C.
    PROCEEDING OF THE ASME SUMMER BIOENGINEERING CONFERENCE - 2007, 2007, : 971 - 972