EMG Driven Musculoskeletal Simulation of the Human Lower Body

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Details

Predictive musculoskeletal models have the potential to positively influence the orthopaedic management of movement pathologies. A scalable geometric model of the lower-body was defined from an adult database. A Hill-type EMG driven dynamic computational muscle model was developed and validated against published and new experimental data. A lower-body simulation model was constructed incorporating skeletal joint definitions, musculotendon actuators, passive joint dynamics and ground reactions forces. A 13-muscle EMG driven inverse-kinetic simulation model of knee flexion-extension contraction was developed and evaluated using dynamometric data covering a wide- range of contraction speeds and modes (isokinetic, isotonic, eccentric, and isometric) for five able- bodied adult male subjects. Both shape and transfer function based Hill-type muscle models were evaluated. For the transfer function-based model, across all subjects the average correlations ranged between r = 0.61-0.77 and average RMS error = 21- 29%. For the shape function-based model, the average correlations ranged between r = 0.76-0.92 and an average RMS error = 25-31%.

Autorentext

Alan Morris (Ph.D., P.Eng.) is a Biomedical/Biomechanical/Forensic Engineer based in Toronto, Canada with significant experience in the fields of Rehabilitation Engineering and Orthopaedic Biomechanics in areas such as prosthetics, electromyography, joint/muscle/tissue biomechanics, gait analysis, spasticity, and computer simulation.

Weitere Informationen

  • Allgemeine Informationen
    • GTIN 09783838304946
    • Sprache Englisch
    • Genre Maschinenbau
    • Anzahl Seiten 248
    • Größe H220mm x B150mm x T16mm
    • Jahr 2010
    • EAN 9783838304946
    • Format Kartonierter Einband
    • ISBN 3838304942
    • Veröffentlichung 30.05.2010
    • Titel EMG Driven Musculoskeletal Simulation of the Human Lower Body
    • Autor Alan Morris
    • Untertitel A Biomechanical and Electromyographyic Study
    • Gewicht 387g
    • Herausgeber LAP LAMBERT Academic Publishing

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