The spine naturally has a nonlinear force-deflection characteristic which facilitates passive stability, and thus there is a need for spinal implants that duplicate this behavior to provide stabilization when the spine loses stiffness through injury, degeneration, or surgery. Additionally, due to the complexity and variability in the mechanics of spinal dysfunction, implants could potentially benefit from incorporating a customizable stiffness into their design. This paper presents a spinal implant with contact-aided inserts that provide a customizable nonlinear stiffness. An analytical model was utilized to optimize the device design, and the model was then verified using a finite element model. Validation was performed on physical prototypes, first in isolation using a tensile tester and then using cadaveric testing on an in-house spine tester. Testing confirmed the performance of the implant and it was observed that the device increased mechanical stability to the spinal segment in flexion-extension and lateral-bending.
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June 2012
Research Papers
Spinal Implant Development, Modeling, and Testing to Achieve Customizable and Nonlinear Stiffness
Eric Dodgen,
Eric Dodgen
Department of Mechanical Engineering,
Brigham Young University,
Provo, UT 84602
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Eric Stratton,
Eric Stratton
Department of Mechanical Engineering,
Brigham Young University,
Provo, UT 84602
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Anton Bowden,
Anton Bowden
Department of Mechanical Engineering,
Brigham Young University,
Provo, UT 84602
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Larry Howell
Larry Howell
Department of Mechanical Engineering,
lhowell@byu.edu
Brigham Young University,
Provo, UT 84602
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Eric Dodgen
Department of Mechanical Engineering,
Brigham Young University,
Provo, UT 84602
Eric Stratton
Department of Mechanical Engineering,
Brigham Young University,
Provo, UT 84602
Anton Bowden
Department of Mechanical Engineering,
Brigham Young University,
Provo, UT 84602
Larry Howell
J. Med. Devices. Jun 2012, 6(2): 021010 (8 pages)
Published Online: May 7, 2012
Article history
Received:
August 17, 2011
Revised:
February 21, 2012
Online:
May 7, 2012
Published:
May 7, 2012
Citation
Dodgen, E., Stratton, E., Bowden, A., and Howell, L. (May 7, 2012). "Spinal Implant Development, Modeling, and Testing to Achieve Customizable and Nonlinear Stiffness." ASME. J. Med. Devices. June 2012; 6(2): 021010. https://doi.org/10.1115/1.4006543
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