A Finite Element Study of Lean Anterior Cervical Plating Instrumentation Designs

被引:0
|
作者
Vishnu S.P. [1 ]
Sivakumar K.G.V. [1 ]
Muraleedharan C.V. [1 ]
机构
[1] Department of Medical Devices Engineering, Biomedical Technology Wing, Sree Chitra Tirunal Institute for Medical Science and Technology, Poojapura, Trivandrum
来源
关键词
anterior cervical plating; axial screw load; contact stress; finite element modelling; lean implant design; plate-screw interface;
D O I
10.5281/zenodo.12181005
中图分类号
学科分类号
摘要
This study reports a finite element model for predicting stresses at the critical locations of an anterior cervical plating instrumentation due to routine neck movements of flexion, extension, lateral bending, axial rotation and a combination thereof. The model’s simplicity lies in the remote mapping of the applied moments directly at the anchoring locations of the plating system construct without the complexities of invoking the cervical spinal architecture. The model’s utility is demonstrated by evaluating the performance of two different ‘lean’ plating system designs, viz. ‘uniformly lean plate’ and ‘lean plate-with-stubs’. The axial screw loads were found to be under 150N for all the neck movement cases simulated, well below the pullout force of the screws typically employed in anterior cervical plating systems. The von Mises stress at the critical locations, viz., plate-screwhole interfaces and screwhead surfaces, was found to be below 150MPa. The contact stress at the anchor locations of the plate with the vertebral body was determined to be 31.8% higher for the ‘lean plate-with-stubs’ than the ‘uniformly lean plate’. The higher contact stress in the former appears to be adequate to induce changes in bone remodelling, favouring osseointegration. © (2024) Society for Biomaterials & Artificial Organs #20005024.
引用
收藏
页码:105 / 113
页数:8
相关论文
共 50 条
  • [41] ANTERIOR CERVICAL FUSION WITH THE CASPAR INSTRUMENTATION SYSTEM
    NAITO, M
    KUROSE, S
    OYAMA, M
    SUGIOKA, Y
    INTERNATIONAL ORTHOPAEDICS, 1993, 17 (02) : 73 - 76
  • [42] ANTERIOR CERVICAL FUSION WITH THE CASPAR INSTRUMENTATION SYSTEM
    TIPPETS, RH
    APFELBAUM, RI
    NEUROSURGERY, 1988, 22 (06) : 1008 - 1013
  • [43] Investigation of stabilizing potential of two anterior cervical spine plating systems incorporating unicortical locking screw designs
    Goel, VK
    Clausen, JD
    Sawin, PD
    Ryken, TC
    Traynelis, VC
    NEURO-ORTHOPEDICS, 1999, 25 (1-2): : 67 - 73
  • [44] Comparative studies of cervical spine anterior stabilization systems - Finite element analysis
    Mackiewicz, A.
    Banach, M.
    Denisiewicz, A.
    Bedzinski, R.
    CLINICAL BIOMECHANICS, 2016, 32 : 72 - 79
  • [45] The efficacy of anterior cervical plating in the management of symptomatic pseudoarthrosis of the cervical spine
    Tribus, CB
    Corteen, DP
    Zdeblick, TA
    SPINE, 1999, 24 (09) : 860 - 864
  • [46] The Influence of peg designs on glenoid component: A finite element study
    Hadi, A. W. A.
    Kadir, M. R. A.
    Harun, M. N.
    Syahrom, A.
    PROCEEDINGS OF MALAYSIAN INTERNATIONAL TRIBOLOGY CONFERENCE 2015, 2015, : 52 - 53
  • [47] Temporary anterior cervical plating in a child with traumatic cervical ligamentous instability
    Özer, E
    Yücesoy, K
    Kalemci, O
    PEDIATRIC NEUROSURGERY, 2005, 41 (05) : 269 - 271
  • [48] The effects of titanium mesh cage size on the biomechanical responses of cervical spine after anterior cervical corpectomy and fusion: A finite element study
    Zhou, Enze
    Huang, Huiwen
    Zhao, Yanbin
    Wang, Lizhen
    Fan, Yubo
    CLINICAL BIOMECHANICS, 2022, 91
  • [49] A finite element study of traditional Chinese cervical manipulation
    Zhen Deng
    Kuan Wang
    Huihao Wang
    Tianying Lan
    Hongsheng Zhan
    Wenxin Niu
    European Spine Journal, 2017, 26 : 2308 - 2317
  • [50] The biomechanical study of cervical spine: A Finite Element Analysis
    Manickam, Pechimuthu Susai
    Roy, Sandipan
    INTERNATIONAL JOURNAL OF ARTIFICIAL ORGANS, 2022, 45 (01): : 89 - 95