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Experimental flexibility measurements for the development of a computational head-neck model validated for near-vertex head impact

Publication ,  Journal Article
Camacho, DL; Nightingale, RW; Robinette, JJ; Vanguri, SK; Coates, DJ; Myers, BS
Published in: SAE Technical Papers
January 1, 1997

A computational head-neck model was developed to more efficiently study dynamic responses of the head and neck to near-vertex head impact. The model consisted of rigid vertebrae interconnected by assemblies of nonlinear springs and dashpots, and a finite element shell model of the skull. Quasi-static flexion-extension characteristics of ten human cadaveric cervical spines were measured using a test frame capable of applying pure moments. The cadaveric motion segments demonstrated a nonlinear stiffening response without a no-load neutral zone. Computational model parameters were based upon these measurements and existing data reported in the literature. Geometric and inertial characteristics were derived from three-dimensional reconstructions of skull and vertebral CT images. The model reproduced the shape and timing of the cervical spine buckling deformations observed in high speed video of cadaveric studies of near-vertex head impact [1]. Head and neck force histories and head acceleration histories agreed with those reported in the cadaveric studies. A sensitivity analysis of the model parameters revealed that head and neck responses were most sensitive to changes in head stiffness, head mass, and flexion-extension properties, suggesting that an appropriately configured deformable head and accurate experimental characterization of motion segment flexion-extension behavior are critical to reliable model predictions. This validated, computationally efficient model is well suited for large-scale parametric studies of the role of impact surface properties on injury risk. It also serves as a foundation for future model enhancements such as the incorporation of the cervical musculature. © Copyright 1997 Society of Automotive Engineers, Inc.

Duke Scholars

Published In

SAE Technical Papers

DOI

EISSN

2688-3627

ISSN

0148-7191

Publication Date

January 1, 1997

Related Subject Headings

  • 4014 Manufacturing engineering
  • 4002 Automotive engineering
  • 0910 Manufacturing Engineering
  • 0902 Automotive Engineering
 

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Camacho, D. L., Nightingale, R. W., Robinette, J. J., Vanguri, S. K., Coates, D. J., & Myers, B. S. (1997). Experimental flexibility measurements for the development of a computational head-neck model validated for near-vertex head impact. SAE Technical Papers. https://doi.org/10.4271/973345
Camacho, D. L., R. W. Nightingale, J. J. Robinette, S. K. Vanguri, D. J. Coates, and B. S. Myers. “Experimental flexibility measurements for the development of a computational head-neck model validated for near-vertex head impact.” SAE Technical Papers, January 1, 1997. https://doi.org/10.4271/973345.
Camacho DL, Nightingale RW, Robinette JJ, Vanguri SK, Coates DJ, Myers BS. Experimental flexibility measurements for the development of a computational head-neck model validated for near-vertex head impact. SAE Technical Papers. 1997 Jan 1;
Camacho, D. L., et al. “Experimental flexibility measurements for the development of a computational head-neck model validated for near-vertex head impact.” SAE Technical Papers, Jan. 1997. Scopus, doi:10.4271/973345.
Camacho DL, Nightingale RW, Robinette JJ, Vanguri SK, Coates DJ, Myers BS. Experimental flexibility measurements for the development of a computational head-neck model validated for near-vertex head impact. SAE Technical Papers. 1997 Jan 1;

Published In

SAE Technical Papers

DOI

EISSN

2688-3627

ISSN

0148-7191

Publication Date

January 1, 1997

Related Subject Headings

  • 4014 Manufacturing engineering
  • 4002 Automotive engineering
  • 0910 Manufacturing Engineering
  • 0902 Automotive Engineering