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contributor authorBarker, Jeffrey B.
contributor authorCronin, Duane S.
contributor authorNightingale, Roger W.
date accessioned2017-11-25T07:19:26Z
date available2017-11-25T07:19:26Z
date copyright2017/2/5
date issued2017
identifier issn0148-0731
identifier otherbio_139_06_061009.pdf
identifier urihttp://138.201.223.254:8080/yetl1/handle/yetl/4235820
description abstractAdvanced computational human body models (HBM) enabling enhanced safety require verification and validation at different levels or scales. Specifically, the motion segments, which are the building blocks of a detailed neck model, must be validated with representative experimental data to have confidence in segment and, ultimately, full neck model response. In this study, we introduce detailed finite element motion segment models and assess the models for quasi-static and dynamic loading scenarios. Finite element segment models at all levels in the lower human cervical spine were developed from scans of a 26-yr old male subject. Material properties were derived from the in vitro experimental data. The segment models were simulated in quasi-static loading in flexion, extension, lateral bending and axial rotation, and at dynamic rates in flexion and extension in comparison to previous experimental studies and new dynamic experimental data introduced in this study. Single-valued experimental data did not provide adequate information to assess the model biofidelity, while application of traditional corridor methods highlighted that data sets with higher variability could lead to an incorrect conclusion of improved model biofidelity. Data sets with continuous or multiple moment–rotation measurements enabled the use of cross-correlation for an objective assessment of the model and highlighted the importance of assessing all motion segments of the lower cervical spine to evaluate the model biofidelity. The presented new segment models of the lower cervical spine, assessed for range of motion and dynamic/traumatic loading scenarios, provide a foundation to construct a biofidelic model of the spine and neck, which can be used to understand and mitigate injury for improved human safety in the future.
publisherThe American Society of Mechanical Engineers (ASME)
titleLower Cervical Spine Motion Segment Computational Model Validation: Kinematic and Kinetic Response for Quasi-Static and Dynamic Loading
typeJournal Paper
journal volume139
journal issue6
journal titleJournal of Biomechanical Engineering
identifier doi10.1115/1.4036464
journal fristpage61009
journal lastpage061009-11
treeJournal of Biomechanical Engineering:;2017:;volume( 139 ):;issue: 006
contenttypeFulltext


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