Predicting the biomechanical behavior of lumbar intervertebral Discs: A comparative finite element analysis of a novel artificial disc design

被引:0
|
作者
Khanna, Ashutosh [1 ]
Jain, Pushpdant [1 ]
Paul, C. P. [2 ]
机构
[1] VIT Bhopal Univ, Sch Mech Engn, Indore Bhopal Highway, Sehore 466114, Madhya Pradesh, India
[2] Raja Ramanna Ctr Adv Technol, Laser Technol Div, Laser Addit Mfg Lab, Indore 452013, Madhya Pradesh, India
关键词
Artificial Intervertebral Disc; Finite Element Analysis; Computer-Aided Design; Biomechanics; Lumbar Spine; Implants; Stress Analysis; SPINE; FIXATION; TITANIUM; SEGMENTS; MODELS; STRAIN; METAL; ROD;
D O I
10.1016/j.jocn.2024.110960
中图分类号
R74 [神经病学与精神病学];
学科分类号
摘要
Osseointegration along with better mimicry of natural bone behaviour addresses the long-term performance of artificial intervertebral disc prosthesis. Here the effect of a novel artificial intervertebral disc geometry on stress, deformation and strain on lumbar segments to restore movement of the spine was investigated. The process involved, using CT image data, and solid modelling, simulation-driven design and finite element (FE) analysis, hexahedral mesh sensitivity analysis, implant placements. The range of motion (ROM) was calculated using an ANSYS deformation probe. The intact lumbar spine model established was compared with two implants, replacement at segment L4-L5 level, and biomechanical results were compared using axial loads of 500 N, 800 N, 1000 N and 10Nm moment. The two lumbosacral FE models, a novel implant Titanium Conix (TIC) and another FDA approved SB ChariteTM (SBC) implant were considered. Novel TIC implant geometry exhibited comparable ROM values in four physiological motions, which were comparable to as required for restoring natural motion. The result shows that the proposed TIC observed the deformation during flexion, extension, bending and twist as 3.43 mm, 3.19 mm, 3.33 mm and 3.48 mm respectively. Similarly strain of 0.01 during flexion, 0.02 during extension, 0.01 during bending and 0.02 during twist. The implants designed in this study demonstrate the suitability of titanium alloy in endplates and annulus. The FE models in the study with their biomechanical parameters can be considered before clinical implementation of any implants, pre-surgery evaluations, implant placement simulations, postsurgical response, follow-up revisions, implant customization and manufacturing.
引用
收藏
页数:13
相关论文
共 50 条
  • [21] A novel finite element model of the ovine lumbar intervertebral disc with anisotropic hyperelastic material properties
    Casaroli, Gloria
    Galbusera, Fabio
    Jonas, Rene
    Schlager, Benedikt
    Wilke, Hans-Joachim
    Villa, Tomaso
    PLOS ONE, 2017, 12 (05):
  • [22] Lumbar Finite Element Analysis and Experimental Study Based on the Biomechanical Properties
    Wang, Jianping
    Gu, Juping
    Zhao, Jian
    SYSTEMS SIMULATION AND SCIENTIFIC COMPUTING, PT I, 2012, 326 : 390 - +
  • [23] A comparative study on the mechanical behavior of intervertebral disc using hyperelastic finite element model
    Xie, Feng
    Zhou, Honghai
    Zhao, Wenju
    Huang, Lixin
    TECHNOLOGY AND HEALTH CARE, 2017, 25 : S177 - S187
  • [24] Biomechanics of artificial intervertebral disc with different materials using finite element method
    Omran, Lamia Nabil
    Ezzat, Kadry Ali
    Elhoseny, Mohamed
    Hassanien, Aboul Ella
    SOFT COMPUTING, 2019, 23 (19) : 9215 - 9236
  • [25] A Proposed Methodology for Setting the Finite Element Models Based on Healthy Human Intervertebral Lumbar Discs
    Gomez, Fatima Somovilla
    Lostado Lorza, Ruben
    Fernandez Martinez, Roberto
    Corral Bobadilla, Marina
    Garcia, Ruben Escribano
    HYBRID ARTIFICIAL INTELLIGENT SYSTEMS, 2016, 9648 : 621 - 633
  • [26] Biomechanics of artificial intervertebral disc with different materials using finite element method
    Lamia Nabil Omran
    Kadry Ali Ezzat
    Mohamed Elhoseny
    Aboul Ella Hassanien
    Soft Computing, 2019, 23 : 9215 - 9236
  • [27] Biomechanical Response of Four Roussouly?s Sagittal Alignment Lumbar to Degeneration of Different Parts of Intervertebral Disc: Finite Element Model Analysis
    Wang, W.
    Pan, F.
    Wang, P.
    Wang, Y.
    Kong, C.
    Lu, S.
    IRBM, 2023, 44 (04)
  • [28] Comparison of the biomechanical effects of lumbar disc degeneration on normal patients and osteoporotic patients: A finite element analysis
    Zhang, Xin-Ying
    Han, Ye
    MEDICAL ENGINEERING & PHYSICS, 2023, 112
  • [29] Biomechanical Effect of Constraint in Lumbar Total Disc Replacement A Study With Finite Element Analysis
    Chung, Sang Ki
    Kim, Young Eun
    Wang, Kyu-Chang
    SPINE, 2009, 34 (12) : 1281 - 1286
  • [30] Prediction of biomechanical responses of human lumbar discs-a stochastic finite element model analysis
    Wang, Wei
    Zhou, Chaochao
    Guo, Runsheng
    Cha, Thomas
    Li, Guoan
    COMPUTER METHODS IN BIOMECHANICS AND BIOMEDICAL ENGINEERING, 2021, 24 (15) : 1730 - 1741