Current finite element modeling techniques utilize geometrically inaccurate cartilage distribution representations in the lumbar spine. We hypothesize that this shortcoming severely limits the predictive fidelity of these simulations. Specifically, it is unclear how these anatomically inaccurate cartilage representations alter range of motion and facet contact predictions. In the current study, cadaveric vertebrae were serially sectioned, and images were taken of each slice in order to identify the osteochondral interface and the articulating surface. A series of custom-written algorithms were utilized in order to quantify each facet joint’s three-dimensional cartilage distribution using a previously developed methodology. These vertebrae-dependent thickness cartilage distributions were implemented on an L1 through L5 lumbar spine finite element model. Moments were applied in three principal planes of motion, and range of motion and facet contact predictions from the variable thickness and constant thickness distribution models were determined. Initial facet gap thickness dimensions were also parameterized. The data indicate that the mean and maximum cartilage thickness increased inferiorly from L1 to L5, with an overall mean thickness value of 0.57 mm. Cartilage distribution and initial facet joint gap thickness had little influence on the lumbar range of motion in any direction, whereas the mean contact pressure, total contact force, and total contact area predictions were altered considerably. The data indicate that range of motion predictions alone are insufficient to establish model validation intended to predict mechanical contact parameters. These data also emphasize the need for the careful consideration of the initial facet joint gap thickness with respect to the spinal condition being studied.
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e-mail: puttlitz@engr.colostate.edu
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June 2011
Research Papers
Finite Element Lumbar Spine Facet Contact Parameter Predictions are Affected by the Cartilage Thickness Distribution and Initial Joint Gap Size
Daniel J. Woldtvedt,
Daniel J. Woldtvedt
Orthopaedic Bioengineering Research Laboratory, Department of Mechanical Engineering and School of Biomedical Engineering,
Colorado State University
, 1374 Campus Delivery, Fort Collins, CO 80523-1374
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Wesley Womack,
Wesley Womack
Orthopaedic Bioengineering Research Laboratory, Department of Mechanical Engineering and School of Biomedical Engineering,
Colorado State University
, 1374 Campus Delivery, Fort Collins, CO 80523-1374
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Benjamin C. Gadomski,
Benjamin C. Gadomski
Orthopaedic Bioengineering Research Laboratory, Department of Mechanical Engineering and School of Biomedical Engineering,
Colorado State University
, 1374 Campus Delivery, Fort Collins, CO 80523-1374
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Dieter Schuldt,
Dieter Schuldt
Orthopaedic Bioengineering Research Laboratory, Department of Mechanical Engineering and School of Biomedical Engineering,
Colorado State University
, 1374 Campus Delivery, Fort Collins, CO 80523-1374
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Christian M. Puttlitz
Christian M. Puttlitz
Orthopaedic Bioengineering Research Laboratory, Department of Mechanical Engineering and School of Biomedical Engineering,
e-mail: puttlitz@engr.colostate.edu
Colorado State University
, 1374 Campus Delivery, Fort Collins, CO 80523-1374
Search for other works by this author on:
Daniel J. Woldtvedt
Orthopaedic Bioengineering Research Laboratory, Department of Mechanical Engineering and School of Biomedical Engineering,
Colorado State University
, 1374 Campus Delivery, Fort Collins, CO 80523-1374
Wesley Womack
Orthopaedic Bioengineering Research Laboratory, Department of Mechanical Engineering and School of Biomedical Engineering,
Colorado State University
, 1374 Campus Delivery, Fort Collins, CO 80523-1374
Benjamin C. Gadomski
Orthopaedic Bioengineering Research Laboratory, Department of Mechanical Engineering and School of Biomedical Engineering,
Colorado State University
, 1374 Campus Delivery, Fort Collins, CO 80523-1374
Dieter Schuldt
Orthopaedic Bioengineering Research Laboratory, Department of Mechanical Engineering and School of Biomedical Engineering,
Colorado State University
, 1374 Campus Delivery, Fort Collins, CO 80523-1374
Christian M. Puttlitz
Orthopaedic Bioengineering Research Laboratory, Department of Mechanical Engineering and School of Biomedical Engineering,
Colorado State University
, 1374 Campus Delivery, Fort Collins, CO 80523-1374e-mail: puttlitz@engr.colostate.edu
J Biomech Eng. Jun 2011, 133(6): 061009 (7 pages)
Published Online: July 5, 2011
Article history
Received:
November 30, 2010
Revised:
May 11, 2011
Posted:
May 25, 2011
Published:
July 5, 2011
Online:
July 5, 2011
Citation
Woldtvedt, D. J., Womack, W., Gadomski, B. C., Schuldt, D., and Puttlitz, C. M. (July 5, 2011). "Finite Element Lumbar Spine Facet Contact Parameter Predictions are Affected by the Cartilage Thickness Distribution and Initial Joint Gap Size." ASME. J Biomech Eng. June 2011; 133(6): 061009. https://doi.org/10.1115/1.4004287
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