Back to results

University of Tennessee Health Science Center

A Virtual Model of the Human Cervical Spine for Physics-based Simulation and Applications

Abstract

dc:description.abstract

<p>Utilizing recent advances in computer technology, Our Biomechanics Laboratory have made an effort to integrate computer animation and engineering analysis software into biomedical research, specifically towards simulation and animation of in vitro experimentation of the human cervical spine in the virtual world. The objectives of this study were to develop a virtual model of the human cervical spine for physics-based simulation and to apply the virtual model to studies of different surgical procedures and instrumentation.</p> <p>A process for creating an accurate virtual model of the human cervical spine was developed. The model consisted of seven vertebrae (C2-T1) connected with soft tissue components: intervertebral joint, facet joints, and ligaments. The soft tissue components were assigned nonlinear viscoelastic properties. The evaluation of the model included the percent contribution of rotation relative to global rotation, coupling behaviors, helical axes of motion pattern, global rotational stiffness curves, and animations of the disc and facet forces. This model was used to evaluate different mounting configurations for axial rotation testing and to identify a set of end constraint conditions that produced physiologic responses during axial rotational loading. This model was also used to simulate the biomechanical responses of single-level cervical fusion.</p> <p>The single-level fusion was found to produce increased motion compensation at the adjacent segments during flexion and extension. Greater increases in the disc forces were found in the spinal level superior to the fusion during flexion and inferior to the fusion during flexion extension. This model was also used to study of the biomechanical effects of different design features for cervical disc arthroplasty. A constrained spherical joint placed at the disc level significantly increased facet loads during extension. Lowering the rotational axis of the spherical joint into the subjacent body also caused a marginal increase in facet loading during flexion, extension, and lateral bending. Un-constraining the spherical joint to a plane at the disc level minimized facet load build up.</p> <p>The virtual model bridges the gap between the cadaveric-based in vitro tests and clinicalbased experimental studies to further the research and educational knowledge of cervical spine biomechanics.</p>

Degree

thesis:*
Name thesis:degree_name
Doctor of Philosophy (Medical Science)
Level thesis:degree_level
Thesis
Discipline thesis:degree_discipline
Biomedical Engineering
Year dc:date.available
2005

Author and committee

dc:creator, dc:contributor.*
Author dc:creator
  • Ahn, Hyung Soo
Contributors dc:contributor
  • Denis DiAngelo, Ph.D.

Subjects

dc:subject × 14

Identifiers

dc:identifier.*
Repository record dc:identifier
https://dc.uthsc.edu/dissertations/7
OAI identifier oai:identifier
oai:dc.uthsc.edu:dissertations-1010

Chain of custody

source
Harvested from
University of Tennessee Health Science Center
Base URL
dc.uthsc.edu/do/oai/
Last updated
2026-07-24
Source record
OAI-PMH GetRecord
citation

Ahn, Hyung Soo. A Virtual Model of the Human Cervical Spine for Physics-based Simulation and Applications. Thesis thesis, 2005. https://dc.uthsc.edu/dissertations/7