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Supervised by Ministry of Industry and Information Technology of The People's Republic of China Sponsored by Harbin Institute of Technology Editor-in-chief Yu Zhou ISSNISSN 1005-9113 CNCN 23-1378/T

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Related citation:WANG Mo-nan.A novel progress of leg tissue properties modeling based on biomechanics[J].Journal of Harbin Institute Of Technology(New Series),2009,16(1):57-60.DOI:10.11916/j.issn.1005-9113.2009.01.012.
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A novel progress of leg tissue properties modeling based on biomechanics
Author NameAffiliation
WANG Mo-nan School of Mechanical and Electric Engineering, Harbin University of Science and Technology, Harbin 150080, China 
Abstract:
To describe strategies for addressing technical aspects of computational modeling of leg tissue with the finite element (FE) method,a patient’s leg sample was selected and scanned by CT at the direction parallel to the Frankfort Horizontal plane. A three-dimensional (3D) finite element model of the human leg was developed using the actual geometry of the leg skeleton and soft tissues, which were obtained from 3D reconstruction of CT images. All joints were defined as contact surfaces, which allow relative articulating movement. The major ligaments were simulated using tension-only truss elements by connecting the corresponding attachment points on the bone surfaces. The bony and ligamentous structures were embedded in a volume of soft tissues. The muscles were defined as non-linear viscoelastic material, and the skin, ligaments and tendons were defined as hyperelastic, while the bony structures were assumed to be linearly elastic. The multilayer FEM model containing thighbone, tibia, fibula, kneecap, soft tissue was formed after meshing. Diverse forces were imposed on the FEM model. The results show that the multilayer FEM model can represent tissue deformation more accurately.
Key words:  virtual reality  tissue properties model  3D reconstruction  finite element method  surgery simulation
DOI:10.11916/j.issn.1005-9113.2009.01.012
Clc Number:TP391.41
Fund:

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