Author:
Zhou Zhou,Li Xiaogai,Kleiven Svein
Abstract
AbstractFinite element (FE) models of the human head are important injury assessment tools but developing a high-quality, hexahedral-meshed FE head model without compromising geometric accuracy is a challenging task. Important brain features, such as the cortical folds and ventricles, were captured only in a handful of FE head models that were primarily developed from two meshing techniques, i.e., surface-based meshing with conforming elements to capture the interfacial boundaries and voxel-based meshing by converting the segmented voxels into elements with and without meshing smoothing. Despite these advancements, little knowledge existed of how similar the strain responses were between surface- and voxel-based FE head models. To address this, a previously developed surface-based head model with conforming meshes to capture the cortical folds-subarachnoid cerebrospinal fluid and brain-ventricle interfaces was reused, and two voxel-based models with and without mesh smoothing were newly created here. These three models were employed to simulate head impacts. The results showed remarkable similarities in the strain responses between the surface- and the voxel-based models. When calculating commonly used injury metrics, including the percentile strains below the maximum (e.g., 95 percentile strain) and the volume of brain element with the strain over certain thresholds, the responses of the three models were virtually identical. When examining the strain distribution, the three models showed different patterns at the interfacial boundary (e.g., sulci and gyri in the cortex, regions adjacent to the falx and tentorium) with strain differences exceeding 0.1. The mesh smoothing procedure in the voxel-based models marginally reduced the strain discrepancies compared to the surface-based model. This study yielded new quantitative insights into the general similarity in the strain responses between the surface- and voxel-based FE head models and underscored that caution should be exercised when using the strain at the interface to predict injury.
Publisher
Cold Spring Harbor Laboratory