DocumentCode :
495227
Title :
Geometrical Nonlinear Analysis of the Spinal Motion Segments by Poroelastic Finite Element Method
Author :
Wu, James Shih-Shyn ; Lin, Hsiao-Che ; Chen, Jian-Horng
Author_Institution :
Inst. of Mech. Eng., Nat. Chung Hsing Univ., Taichung, Taiwan
Volume :
5
fYear :
2009
fDate :
March 31 2009-April 2 2009
Firstpage :
357
Lastpage :
361
Abstract :
The aim of this work is to understand the biomechanical behaviors of vertebra, intervertebral disc, ligament and facet joint. In view of biomechanics, the spinal motion segments are porous and solid-fluid interactive tissue structures and swelling pressure may be produced as a result in the intervertebral disc when under loading. The relationships of loading and displacement almost were linear in previous literature. However, published experimental data revealed that the response of large loadings corresponded closely with geometrical nonlinearity. A rather fine and efficient poroelastic finite element model of spinal motion segments is constructed for the purpose of simulating the complicated porous tissue structures/geometry of human lumbar spine. The FEM includes complicated L4/L5 porous tissue structures, nucleus pulpous, annulus fiber, seven nonlinear ligaments and non-thickness contact elements that were developed to simulate the compressive behavior of facet joints. The analytical process also offers an additional method with the approach from geometrical nonlinearity.
Keywords :
biological tissues; biology computing; biomechanics; elasticity; finite element analysis; geometry; orthopaedics; biomechanical behavior; biomechanics; facet joint; geometrical nonlinear analysis; geometrical nonlinearity; intervertebral disc; ligament; poroelastic finite element method; poroelastic finite element model; porous structures; solid-fluid interactive tissue structures; spinal motion segments; swelling pressure; Biological materials; Biomechanics; Finite element methods; Geometry; Humans; Ligaments; Mechanical engineering; Motion analysis; Solid modeling; Tensile stress;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Computer Science and Information Engineering, 2009 WRI World Congress on
Conference_Location :
Los Angeles, CA
Print_ISBN :
978-0-7695-3507-4
Type :
conf
DOI :
10.1109/CSIE.2009.1097
Filename :
5170558
Link To Document :
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