A mathematical model of knee kinematics utilizing the principle of minimum energy

Approved for public release; distribution is unlimited === This thesis seeks to determine if the path of motion of the knee in passive flexion results from the minimization of potential energy in the joint ligaments. To investigate this hypothesis, a simulation modeling both collateral and cruciate...

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Main Author: Warren, Patricia F.
Other Authors: Kwon, Young L.
Language:en_US
Published: Monterey, California. Naval Postgraduate School 2012
Online Access:http://hdl.handle.net/10945/8656
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spelling ndltd-nps.edu-oai-calhoun.nps.edu-10945-86562015-06-25T15:59:27Z A mathematical model of knee kinematics utilizing the principle of minimum energy Warren, Patricia F. Kwon, Young L. Maier, William B., II Naval Postgraduate School Department of Physics Approved for public release; distribution is unlimited This thesis seeks to determine if the path of motion of the knee in passive flexion results from the minimization of potential energy in the joint ligaments. To investigate this hypothesis, a simulation modeling both collateral and cruciate ligaments was developed, with each cruciate ligament represented as two separate fibers. The model computed almost 8000 possible orientations of the femur during flexion through 1200, with the surfaces of the femur and tibia serving as a constraint to motion. Each orientation of the femur inherently provided the position of the individual ligament attachment points, from which the extension or contraction and the potential energy of the ligament were derived. The energy of the entire six-ligament system resulted from the summation of the potential energy of individual ligaments. For each 10 degrees of flexion, the femur position that produced the minimum energy of this six- ligament system was identified. Finally, the motion of the femur as it followed these positions was evaluated: it did not mirror known joint motion. There are several areas where further refinement of the simulation can be made before a complete evaluation of the hypothesis can be made. 2012-08-09T19:22:07Z 2012-08-09T19:22:07Z 1998-06-01 Thesis http://hdl.handle.net/10945/8656 en_US This publication is a work of the U.S. Government as defined in Title 17, United States Code, Section 101. As such, it is in the public domain, and under the provisions of Title 17, United States Code, Section 105, it may not be copyrighted Monterey, California. Naval Postgraduate School
collection NDLTD
language en_US
sources NDLTD
description Approved for public release; distribution is unlimited === This thesis seeks to determine if the path of motion of the knee in passive flexion results from the minimization of potential energy in the joint ligaments. To investigate this hypothesis, a simulation modeling both collateral and cruciate ligaments was developed, with each cruciate ligament represented as two separate fibers. The model computed almost 8000 possible orientations of the femur during flexion through 1200, with the surfaces of the femur and tibia serving as a constraint to motion. Each orientation of the femur inherently provided the position of the individual ligament attachment points, from which the extension or contraction and the potential energy of the ligament were derived. The energy of the entire six-ligament system resulted from the summation of the potential energy of individual ligaments. For each 10 degrees of flexion, the femur position that produced the minimum energy of this six- ligament system was identified. Finally, the motion of the femur as it followed these positions was evaluated: it did not mirror known joint motion. There are several areas where further refinement of the simulation can be made before a complete evaluation of the hypothesis can be made.
author2 Kwon, Young L.
author_facet Kwon, Young L.
Warren, Patricia F.
author Warren, Patricia F.
spellingShingle Warren, Patricia F.
A mathematical model of knee kinematics utilizing the principle of minimum energy
author_sort Warren, Patricia F.
title A mathematical model of knee kinematics utilizing the principle of minimum energy
title_short A mathematical model of knee kinematics utilizing the principle of minimum energy
title_full A mathematical model of knee kinematics utilizing the principle of minimum energy
title_fullStr A mathematical model of knee kinematics utilizing the principle of minimum energy
title_full_unstemmed A mathematical model of knee kinematics utilizing the principle of minimum energy
title_sort mathematical model of knee kinematics utilizing the principle of minimum energy
publisher Monterey, California. Naval Postgraduate School
publishDate 2012
url http://hdl.handle.net/10945/8656
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