Analysis of craniocerebral injury in facial collision accidents.

Considering that the Pc-Crash multibody dynamics software can reproduce the accident process accurately and obtain the collision parameters of pedestrian heads at the moment of head landing, the finite element analysis method can accurately analyze the injury of the pedestrian head when the boundary...

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Main Authors: Jie Tian, Chuntao Zhang, Qun Wang
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2020-01-01
Series:PLoS ONE
Online Access:https://doi.org/10.1371/journal.pone.0240359
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spelling doaj-7918f895b92047038fb1d610d11d3c362021-03-04T11:09:06ZengPublic Library of Science (PLoS)PLoS ONE1932-62032020-01-011510e024035910.1371/journal.pone.0240359Analysis of craniocerebral injury in facial collision accidents.Jie TianChuntao ZhangQun WangConsidering that the Pc-Crash multibody dynamics software can reproduce the accident process accurately and obtain the collision parameters of pedestrian heads at the moment of head landing, the finite element analysis method can accurately analyze the injury of the pedestrian head when the boundary conditions are known. This paper combines the accident reconstruction method with the finite element analysis method to study the injury mechanism of pedestrian head impact on the ground in vehicle pedestrian collision accidents to provide a theoretical basis for pedestrian protection and the improvement of vehicle shapes. First, a real-life vehicle pedestrian collision is reproduced by Pc-Crash. The simulation results show that the rigid multibody model can accurately simulate the scene of the accident, then the speed and angle of the pedestrian head landing moment can be obtained at the same time. Second, the finite element model of human heads with a detailed facial structure is established and verified. Finally, the collision parameters obtained from the accident reconstruction are used as the boundary conditions to analyze the collision between the pedestrian head and the ground, and the biomechanical parameters, such as intracranial pressure, von Mises stress, shear stress and strain, can be determined. The results show that the stress wave will propagate inside and outside the skull and cause stress concentration in the skull and the brain tissue to varying degrees after the pedestrian head strikes the ground. When the stress exceeds a certain limit, it will cause different degrees of brain tissue injury.https://doi.org/10.1371/journal.pone.0240359
collection DOAJ
language English
format Article
sources DOAJ
author Jie Tian
Chuntao Zhang
Qun Wang
spellingShingle Jie Tian
Chuntao Zhang
Qun Wang
Analysis of craniocerebral injury in facial collision accidents.
PLoS ONE
author_facet Jie Tian
Chuntao Zhang
Qun Wang
author_sort Jie Tian
title Analysis of craniocerebral injury in facial collision accidents.
title_short Analysis of craniocerebral injury in facial collision accidents.
title_full Analysis of craniocerebral injury in facial collision accidents.
title_fullStr Analysis of craniocerebral injury in facial collision accidents.
title_full_unstemmed Analysis of craniocerebral injury in facial collision accidents.
title_sort analysis of craniocerebral injury in facial collision accidents.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2020-01-01
description Considering that the Pc-Crash multibody dynamics software can reproduce the accident process accurately and obtain the collision parameters of pedestrian heads at the moment of head landing, the finite element analysis method can accurately analyze the injury of the pedestrian head when the boundary conditions are known. This paper combines the accident reconstruction method with the finite element analysis method to study the injury mechanism of pedestrian head impact on the ground in vehicle pedestrian collision accidents to provide a theoretical basis for pedestrian protection and the improvement of vehicle shapes. First, a real-life vehicle pedestrian collision is reproduced by Pc-Crash. The simulation results show that the rigid multibody model can accurately simulate the scene of the accident, then the speed and angle of the pedestrian head landing moment can be obtained at the same time. Second, the finite element model of human heads with a detailed facial structure is established and verified. Finally, the collision parameters obtained from the accident reconstruction are used as the boundary conditions to analyze the collision between the pedestrian head and the ground, and the biomechanical parameters, such as intracranial pressure, von Mises stress, shear stress and strain, can be determined. The results show that the stress wave will propagate inside and outside the skull and cause stress concentration in the skull and the brain tissue to varying degrees after the pedestrian head strikes the ground. When the stress exceeds a certain limit, it will cause different degrees of brain tissue injury.
url https://doi.org/10.1371/journal.pone.0240359
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AT chuntaozhang analysisofcraniocerebralinjuryinfacialcollisionaccidents
AT qunwang analysisofcraniocerebralinjuryinfacialcollisionaccidents
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