bioRxiv · 10.1101/2020.06.09.141259
A Mesoscale Finite Element Modelling Approach for Understanding Brain Morphology and Material Heterogeneity Effects in Chronic Traumatic Encephalopathy
Abstract
Chronic Traumatic Encephalopathy (CTE) affects a significant portion of athletes in contact sports but is difficult to quantify using clinical examinations and modelling approaches. We use an in silico approach to quantify CTE biomechanics using mesoscale Finite Element (FE) analysis that bridges with macroscale whole head FE analysis. The sulci geometry produces complex stress waves that interact with each another to create increased shear stresses at the sulci depth that are significantly larger than in analyses without sulci (from 0.5 kPa to 18.0 kPa). Also, Peak sulci stresses are located where CTE has been experimentally observed in the literature. Highlights3 to 5 bullet points 85 characters max O_LISulci introduce stress localizations at their depth in the gray matter C_LIO_LISulci stress fields interact to produce stress concentration sites in white matter C_LIO_LIDifferentiating brain tissue properties did not significantly affect peak stresses C_LI
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Bakhtiarydavijani, A., Khalid, G. A., Murphy, M. a., Johnson, K. L., Peterson, L. E., Dobbins, A. C., Horstemeyer, M. F., Jones, M., Prabhu, R. K.. 2020-06-11. A Mesoscale Finite Element Modelling Approach for Understanding Brain Morphology and Material Heterogeneity Effects in Chronic Traumatic Encephalopathy. https://doi.org/10.1101/2020.06.09.141259
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