Contact surface and material nonlinearity modeling of human lungs
- 19 December 2007
- journal article
- Published by IOP Publishing in Physics in Medicine & Biology
- Vol. 53 (1) , 305-317
- https://doi.org/10.1088/0031-9155/53/1/022
Abstract
A finite element model has been developed to investigate the effect of contact surfaces and hyperelastic material properties on the mechanical behavior of human lungs of one lung cancer patient. The three-dimensional model consists of four parts, namely the left lung, right lung, tumor in the left lung and chest wall. The interaction between the lungs and chest wall was modeled using frictionless surface-based contact. Hyperelastic material properties of the lungs are used in the model. The effect of the two parameters is investigated by tracking the tumor movement, and by comparing the analytical results to the patient bifurcation points: 45 points in each lung and 18 points around the tumor. The accuracy of the model is improved by including the contact surface and hyperelastic material properties. The average error and the standard deviation (SD) in modeling the displacement in the SI direction are reduced from 0.68 (SD = 0.34) cm in the elastic model to 0.09 (0.21) cm in the contact-hyperelastic model. Similarly, the average error (SD) of tumor location decreases from 0.71 (0.21) cm in the elastic material without contact to −0.03 (0.24) cm in the hyperelastic material with contact model.Keywords
This publication has 27 references indexed in Scilit:
- Image-Guided Radiation Therapy: Part 3—Stereotactic Body Radiation TherapyMedical Dosimetry, 2007
- A model of non-uniform lung parenchyma distortionJournal of Biomechanics, 2006
- Lubrication regimes in mesothelial slidingJournal of Biomechanics, 2005
- Friction and lubrication of pleural tissuesRespiratory Physiology & Neurobiology, 2004
- Medical image registrationPhysics in Medicine & Biology, 2001
- Deformable models in medical image analysis: a surveyMedical Image Analysis, 1996
- Constitutive Equation of Lung Tissue ElasticityJournal of Biomechanical Engineering, 1979
- Finite element analysis of the human thoraxJournal of Biomechanics, 1977
- A Theory of Elasticity of the LungJournal of Applied Mechanics, 1974
- Finite element displacement analysis of a lungJournal of Biomechanics, 1972