Title of article
Anisotropic behaviour of human gallbladder walls
Author/Authors
Li، نويسنده , , W.G. and Hill، نويسنده , , N.A. and Ogden، نويسنده , , R.W. and Smythe، نويسنده , , A. and Majeed، نويسنده , , A.W. and Bird، نويسنده , , N. P. Luo، نويسنده , , X.Y.، نويسنده ,
Issue Information
ماهنامه با شماره پیاپی سال 2013
Pages
13
From page
363
To page
375
Abstract
Inverse estimation of biomechanical parameters of soft tissues from non-invasive measurements has clinical significance in patient-specific modelling and disease diagnosis. In this paper, we propose a fully nonlinear approach to estimate the mechanical properties of the human gallbladder wall muscles from in vivo ultrasound images. The iteration method consists of a forward approach, in which the constitutive equation is based on a modified Hozapfel–Gasser–Ogden law initially developed for arteries. Five constitutive parameters describing the two orthogonal families of fibres and the matrix material are determined by comparing the computed displacements with medical images. The optimisation process is carried out using the MATLAB toolbox, a Python code, and the ABAQUS solver. The proposed method is validated with published artery data and subsequently applied to ten human gallbladder samples. Results show that the human gallbladder wall is anisotropic during the passive refilling phase, and that the peak stress is 1.6 times greater than that calculated using linear mechanics. This discrepancy arises because the wall thickness reduces by 1.6 times during the deformation, which is not predicted by conventional linear elasticity. If the change of wall thickness is accounted for, then the linear model can used to predict the gallbladder stress and its correlation with pain. This work provides further understanding of the nonlinear characteristics of human gallbladder.
Keywords
Ultrasound images , Emptying , Nonlinear analysis , Fibre reinforced material , strain energy function , Inverse approach , CONSTITUTIVE EQUATION , gallbladder
Journal title
Journal of the Mechanical Behavior of Biomedical Materials
Serial Year
2013
Journal title
Journal of the Mechanical Behavior of Biomedical Materials
Record number
1405905
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