» Articles » PMID: 16060343

Subject-specific Finite Element Model of the Pelvis: Development, Validation and Sensitivity Studies

Overview
Journal J Biomech Eng
Date 2005 Aug 3
PMID 16060343
Citations 87
Authors
Affiliations
Soon will be listed here.
Abstract

A better understanding of the three-dimensional mechanics of the pelvis, at the patient-specific level, may lead to improved treatment modalities. Although finite element (FE) models of the pelvis have been developed, validation by direct comparison with subject-specific strains has not been performed, and previous models used simplifying assumptions regarding geometry and material properties. The objectives of this study were to develop and validate a realistic FE model of the pelvis using subject-specific estimates of bone geometry, location-dependent cortical thickness and trabecular bone elastic modulus, and to assess the sensitivity of FE strain predictions to assumptions regarding cortical bone thickness as well as bone and cartilage material properties. A FE model of a cadaveric pelvis was created using subject-specific computed tomography image data. Acetabular loading was applied to the same pelvis using a prosthetic femoral stem in a fashion that could be easily duplicated in the computational model. Cortical bone strains were monitored with rosette strain gauges in ten locations on the left hemipelvis. FE strain predictions were compared directly with experimental results for validation. Overall, baseline FE predictions were strongly correlated with experimental results (r2=0.824), with a best-fit line that was not statistically different than the line y=x (experimental strains = FE predicted strains). Changes to cortical bone thickness and elastic modulus had the largest effect on cortical bone strains. The FE model was less sensitive to changes in all other parameters. The methods developed and validated in this study will be useful for creating and analyzing patient-specific FE models to better understand the biomechanics of the pelvis.

Citing Articles

Finite element analysis of retrograde superior ramus screw of pubis for the treament of pelvic anterior ring fracture.

Meiqi G, Zhe X, Yifei L, Penghui X, Zhen W, Rui Z J Orthop Surg Res. 2025; 20(1):263.

PMID: 40069735 PMC: 11899371. DOI: 10.1186/s13018-025-05676-5.


A framework for three-dimensional statistical shape modeling of the proximal femur in Legg-Calvé-Perthes disease.

Johnson L, Mozingo J, Atkins P, Schwab S, Morris A, Elhabian S Int J Comput Assist Radiol Surg. 2024; .

PMID: 39377856 DOI: 10.1007/s11548-024-03272-2.


Modular Hemipelvic Prosthesis Preserves Normal Biomechanics and Showed Good Compatibility: A Finite Element Analysis.

Luo Y, Sheng H, Zhou Y, Min L, Tu C, Luo Y J Funct Biomater. 2024; 15(9).

PMID: 39330251 PMC: 11433228. DOI: 10.3390/jfb15090276.


Evaluation of finite element modeling methods for predicting compression screw failure in a custom pelvic implant.

Zhu Y, Babazadeh-Naseri A, Brake M, Akin J, Li G, Lewis V Front Bioeng Biotechnol. 2024; 12:1420870.

PMID: 39234264 PMC: 11372789. DOI: 10.3389/fbioe.2024.1420870.


Comparison between Novel Anatomical Locking Guide Plate and Conventional Locking Plate for Acetabular Fractures: A Finite Element Analysis.

Liu X, Gao J, Wu X, Deng J, Li Z, Li R Life (Basel). 2023; 13(11).

PMID: 38004248 PMC: 10671966. DOI: 10.3390/life13112108.