An axonal strain injury criterion for traumatic brain injury

被引:0
作者
Rika M. Wright
K. T. Ramesh
机构
[1] Johns Hopkins University,Department of Mechanical Engineering
来源
Biomechanics and Modeling in Mechanobiology | 2012年 / 11卷
关键词
Diffuse axonal injury; Traumatic brain injury; Injury criteria; Finite element model; Diffusion tensor imaging; Anisotropic model; TBI; DAI;
D O I
暂无
中图分类号
学科分类号
摘要
Computational models are often used as tools to study traumatic brain injury. The fidelity of such models depends on the incorporation of an appropriate level of structural detail, the accurate representation of the material behavior, and the use of an appropriate measure of injury. In this study, an axonal strain injury criterion is used to estimate the probability of diffuse axonal injury (DAI), which accounts for a large percentage of deaths due to brain trauma and is characterized by damage to neural axons in the deep white matter regions of the brain. We present an analytical and computational model that treats the white matter as an anisotropic, hyperelastic material. Diffusion tensor imaging is used to incorporate the structural orientation of the neural axons into the model. It is shown that the degree of injury that is predicted in a computational model of DAI is highly dependent on the incorporation of the axonal orientation information and the inclusion of anisotropy into the constitutive model for white matter.
引用
收藏
页码:245 / 260
页数:15
相关论文
共 209 条
[1]  
Anderson RWG(2003)Impact mechanics and axonal injury in a sheep model J Neurotrauma 20 961-974
[2]  
Brown CJ(1998)Material characterization of the brainstem from oscillatory shear tests J Biomech 31 801-807
[3]  
Blumbergs PC(2000)Tissue-level thresholds for axonal damage in an experimental model of central nervous system white matter injury J Biomech Eng Trans Asme 122 615-622
[4]  
McLean AJ(2000)Biaxial mechanical properties of the native and glutaraldehyde-treated aortic valve cusp: Part ii–a structural constitutive model J Biomech Eng 122 327-335
[5]  
Jones NR(2001)Large strain behaviour of brain tissue in shear: some experimental data and differential constitutive model Biorheology 38 335-345
[6]  
Arbogast KB(2002)On the potential importance of non-linear viscoelastic material modeling for numerical prediction of brain tissue response: test and application Stapp Car Crash J 46 1-19
[7]  
Margulies SS(2005)Animal models of head trauma J Am Soc Exp Neuro Ther 2 410-422
[8]  
Bain AC(2008)Improved head injury criteria based on head fe model Int J Crashworthiness 13 667-678
[9]  
Meaney DF(2008)Biomechanics of traumatic brain injury Comput Methods Appl Mech Eng 197 4692-4701
[10]  
Billiar KL(2007)Region-specific tolerance criteria for the living brain Stapp Car Crash J 51 127-138