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  3. The effects of impingement and dysplasia on stress distributions in the hip joint during sitting and walking: a finite element analysis

The effects of impingement and dysplasia on stress distributions in the hip joint during sitting and walking: a finite element analysis

Details
Publisher DOI
10.1002/jor.20747
PubMed ID
18752280
Abstract
Soft tissue damage has been observed in hip joints with pathological geometries. Our primary goal was to study the relationship between morphological variations of the bony components of the hip and resultant stresses within the soft tissues of the joint during routine daily activities. The secondary goal was to find the range of morphological parameters in which stresses are minimized. Computational models of normal and pathological joints were developed based on variations of morphological parameters of the femoral head (Alpha angle) and acetabulum (CE angle). The Alpha angle was varied between 40 degrees (normal joint) and 80 degrees (cam joint). The CE angle was varied between 0 degrees (dysplastic joint) and 40 degrees (pincer joint). Dynamic loads and motions for walking and standing to sitting were applied to all joint configurations. Contact pressures and stresses were calculated and crosscompared to evaluate the influence of morphology. The stresses in the soft tissues depended strongly on the head and acetabular geometry. For the dysplastic joint, walking produced high acetabular rim stresses. Conversely, for impinging joints, standing-to-sitting activities that involved extensive motion were critical, inducing excessive distortion and shearing of the tissue-bone interface. Zones with high von Mises stresses corresponded with clinically observed damage zones in the acetabular cartilage and labrum. Hip joint morphological parameters that minimized were 20 degrees <or= CE <or= 30 degrees and alpha <or= 50 degrees .
Date Issued
2009
Publication Type
Article
Language(s)
en
Author(s)
Chegini, Salman  
Institut für chirurgische Technologien und Biomechanik (ISTB)  
Beck, Martin  
Universitätsklinik für Orthopädische Chirurgie  
Ferguson, Stephen John  
Institut für chirurgische Technologien und Biomechanik (ISTB)  
Additional Credits
Universitätsklinik für Orthopädische Chirurgie  
Institut für chirurgische Technologien und Biomechanik (ISTB)  
Journal
Journal of orthopaedic research
Publisher
Wiley
ISSN
0736-0266
ISBN
18752280
Access(Rights)
metadata.only
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