Image - based Finite Element Analysis of Head Injuries and Helmet Design

Biofidelity of finite element head model (FEHM) includes geometric and material aspects. A FEHM with inhomogeneous material properties was proposed to improve material biofidelity. The proposed FEHM was validated against experimental data and good agreements were observed. The capability of the prop...

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Main Author: Liang, Zhaoyang
Other Authors: Luo, Yunhua (Mechanical and Manufacturing Engineering)
Published: 2012
Subjects:
Online Access:http://hdl.handle.net/1993/5202
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spelling ndltd-MANITOBA-oai-mspace.lib.umanitoba.ca-1993-52022014-10-22T03:53:00Z Image - based Finite Element Analysis of Head Injuries and Helmet Design Liang, Zhaoyang Luo, Yunhua (Mechanical and Manufacturing Engineering) Wang, Quan (Mechanical and Manufacturing Engineering) Zhang, Qiang (Biosystems Engineering) Head injury Finite element analysis Hounsfield Unit CT images inhomogeneous material Biofidelity of finite element head model (FEHM) includes geometric and material aspects. A FEHM with inhomogeneous material properties was proposed to improve material biofidelity. The proposed FEHM was validated against experimental data and good agreements were observed. The capability of the proposed model in simulating large tissue deformation was also demonstrated. Influences of inhomogeneous material properties on the mechanical responses of head were investigated by comparing with homogeneous material model. The inhomogeneous material properties induce large peak strains in head constituents, which are probably the cause of various brain injuries. Helmets are effective in preventing head injuries. Parametric studies were conducted to investigate how changes in helmet shell stiffness, foam density and pad thickness influence the performance of a helmet in protecting the brain. Results showed that strain energy absorbed by foam component, contact stress on the interfaces and intracranial responses are significantly affected by foam density and pad thickness. 2012-03-22T13:46:10Z 2012-03-22T13:46:10Z 2012-03-22 http://hdl.handle.net/1993/5202
collection NDLTD
sources NDLTD
topic Head injury
Finite element analysis
Hounsfield Unit
CT images
inhomogeneous material
spellingShingle Head injury
Finite element analysis
Hounsfield Unit
CT images
inhomogeneous material
Liang, Zhaoyang
Image - based Finite Element Analysis of Head Injuries and Helmet Design
description Biofidelity of finite element head model (FEHM) includes geometric and material aspects. A FEHM with inhomogeneous material properties was proposed to improve material biofidelity. The proposed FEHM was validated against experimental data and good agreements were observed. The capability of the proposed model in simulating large tissue deformation was also demonstrated. Influences of inhomogeneous material properties on the mechanical responses of head were investigated by comparing with homogeneous material model. The inhomogeneous material properties induce large peak strains in head constituents, which are probably the cause of various brain injuries. Helmets are effective in preventing head injuries. Parametric studies were conducted to investigate how changes in helmet shell stiffness, foam density and pad thickness influence the performance of a helmet in protecting the brain. Results showed that strain energy absorbed by foam component, contact stress on the interfaces and intracranial responses are significantly affected by foam density and pad thickness.
author2 Luo, Yunhua (Mechanical and Manufacturing Engineering)
author_facet Luo, Yunhua (Mechanical and Manufacturing Engineering)
Liang, Zhaoyang
author Liang, Zhaoyang
author_sort Liang, Zhaoyang
title Image - based Finite Element Analysis of Head Injuries and Helmet Design
title_short Image - based Finite Element Analysis of Head Injuries and Helmet Design
title_full Image - based Finite Element Analysis of Head Injuries and Helmet Design
title_fullStr Image - based Finite Element Analysis of Head Injuries and Helmet Design
title_full_unstemmed Image - based Finite Element Analysis of Head Injuries and Helmet Design
title_sort image - based finite element analysis of head injuries and helmet design
publishDate 2012
url http://hdl.handle.net/1993/5202
work_keys_str_mv AT liangzhaoyang imagebasedfiniteelementanalysisofheadinjuriesandhelmetdesign
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