Material sensitivity study on lumbar motion segment (L2-L3) under sagittal plane loadings using probabilistic method

被引:28
作者
Lee, KK [1 ]
Teo, EC [1 ]
机构
[1] Nanyang Technol Univ, Sch Mech & Prod Engn, Singapore 639798, Singapore
来源
JOURNAL OF SPINAL DISORDERS & TECHNIQUES | 2005年 / 18卷 / 02期
关键词
biomechanics; finite element analysis; probabilistic analysis; sensitivity;
D O I
10.1097/01.bsd.0000147658.60961.51
中图分类号
R74 [神经病学与精神病学];
学科分类号
摘要
Objective: In this study, the probabilistic responses of a three-dimensional finite element L2-L3 motion segment, with and without posterior elements, tested under sagittal plane loadings, are presented. Understanding the effect of biologic uncertainties and variations on the biomechanical response provides an insight into spinal behavior under normal and degenerated conditions. Methods: The biologic variability of 19 spinal components (nucleus, annulus, ligament, cortical/cancellous bone, endplate, and ligaments) in the motion segment was incorporated using statistical distributions into the model. A total of 2000 runs were performed using Monte Carlo probabilistic algorithms to compute the probabilistic response. Results: This study establishes the relative importance of the spinal components in resisting the loading modes. The results show that for an intact motion segment, posterior ligaments are more dominant than intervertebral disc in resisting flexion moment. In extension, the capsular ligaments were found to be the most influential parameter. The inter-vertebral disc (ie, nucleus and annulus) affects the angular response of the disc body segment more than the hard tissues (ie, cortical and cancellous bone). Conclusions: The application of the probabilistic analysis provides a new approach whereby the influences of inherent uncertainties and variations in biologic structures can be studied and the biomechanical response assessed.
引用
收藏
页码:163 / 170
页数:8
相关论文
共 27 条
[1]   THE LUMBAR SPINE IN BACKWARD BENDING [J].
ADAMS, MA ;
DOLAN, P ;
HUTTON, WC .
SPINE, 1988, 13 (09) :1019-1026
[2]   THE RESISTANCE TO FLEXION OF THE LUMBAR INTERVERTEBRAL JOINT [J].
ADAMS, MA ;
HUTTON, WC ;
STOTT, JRR .
SPINE, 1980, 5 (03) :245-253
[3]  
*ANSYS, 1996, US MAN VERS 5 7
[4]   NEW METHOD TO ANALYZE MECHANICAL BEHAVIOR OF SKELETAL PARTS [J].
BREKELMA.WA ;
SLOOFF, TJJH ;
POORT, HW .
ACTA ORTHOPAEDICA SCANDINAVICA, 1972, 43 (05) :301-&
[5]   SPINE UPDATE - AGING AND DEGENERATION OF THE HUMAN INTERVERTEBRAL DISC [J].
BUCKWALTER, JA .
SPINE, 1995, 20 (11) :1307-1314
[6]  
Cook RD., 2007, CONCEPTS APPL FINITE
[7]   Patient-specific spine models. Part 1: finite element analysis of the lumbar intervertebral disc - a material sensitivity study [J].
Fagan, MJ ;
Julian, S ;
Siddall, DJ ;
Mohsen, AM .
PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART H-JOURNAL OF ENGINEERING IN MEDICINE, 2002, 216 (H5) :299-314
[8]  
GIBERTSON LG, 1985, CRIT REV BIOMED ENG, V23, P411
[9]   INTERLAMINAR SHEAR STRESSES AND LAMINAE SEPARATION IN A DISC - FINITE-ELEMENT ANALYSIS OF THE L3-L4 MOTION SEGMENT SUBJECTED TO AXIAL COMPRESSIVE LOADS [J].
GOEL, VK ;
MONROE, BT ;
GILBERTSON, LG ;
BRINCKMANN, P ;
NAT, R .
SPINE, 1995, 20 (06) :689-698
[10]   Finite element analysis of the cervical spine: a material property sensitivity study [J].
Kumaresan, S ;
Yoganandan, N ;
Pintar, FA .
CLINICAL BIOMECHANICS, 1999, 14 (01) :41-53