以电脑三维骨骼肌肉模型作生力学分析在运动科学及医学上的意义与应用.docxVIP

以电脑三维骨骼肌肉模型作生力学分析在运动科学及医学上的意义与应用.docx

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以电脑三维骨骼肌肉模型作生力学分析在运动科学及医学上的意义与应用

Journal of Medical Biomechanics, Vol. 23 No. 3, Jun. 2008 177 文章编号:1004-7220(2008)03-0177-16 ·专家 论坛 · Graphic musculoskeletal model for biomechanical analyses and animation in sport sciences and medicine Edmund Y.S. Chao (Mayo Clinic Foundation, Rochester, MN Johns Hopkins University, Baltimore) Abstract: The ability to combine physiology and engineering analyses with computer graphics has opened the door to the possibility of creating the “Virtual Human” reality. This paper presents a broad foundation for a full-featured biomechanical simulator for the human musculoskeletal system physiology. This simulation technology unites the expertise in biomechanical analysis and graphic modeling to investigate joint and connective tissue mechanics at the structural level and to visualize the results in both static and animated forms together with the model. Adaptable anatomical models including prosthetic implants, fracture fixation devices, rehab and exercise equipment and a robust computational platform for static, kinematic, kinetic, and stress analyses under varying boundary and loading conditions are incorporated in the utility software system and the database, the VIMS (Virtual Interactive Musculoskeletal System). In the database, long bone geometry, dimensions, connective tissue material properties and a library of skeletal joint system functional activities and loading conditions are also available and they can easily be modified, updated and expanded. Application software is available for the end-users to perform biomechanical analyses interactively. Examples using the graphic models and the computational algorithms in a virtual laboratory environment for: 1) biomechanical analysis of skeletal kinematics; 2) shoulder joint force and contact pressure distribution in overhead activities; 3) hip joint contact pressure distribution in activities of daily living; 4) ankle joint contact stress and ligament loading during gait; 5) ankle injury and therapeutic manag

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