Browse > Article

Biomechanical Analysis and Evaluation Technology Using Human Multi-Body Dynamic Model  

Kim, Yoon-Hyuk (Department of Mechanical Engineering, School of Engineering, Engineering, Kyung Hee University)
Shin, June-Ho (Department of Mechanical Engineering, School of Engineering, Engineering, Kyung Hee University)
Khurelbaatar, Tsolmonbaatar (Department of Mechanical Engineering, School of Engineering, Engineering, Kyung Hee University)
Publication Information
Abstract
This paper presents the biomechanical analysis and evaluation technology of musculoskeletal system by multi-body human dynamic model and 3-D motion capture data. First, medical image based geometric model and material properties of tissue were used to develop the human dynamic model and 3-D motion capture data based motion analysis techniques were develop to quantify the in-vivo joint kinematics, joint moment, joint force, and muscle force. Walking and push-up motion was investigated using the developed model. The present model and technologies would be useful to apply the biomechanical analysis and evaluation of human activities.
Keywords
Biomechanics; Multi-Body Dynamics; Musculo-Skeletal System; Motion Analysis; Joint Kinematics; Joint Momont; Muscle force;
Citations & Related Records
연도 인용수 순위
  • Reference
1 W. Herzog and T. R. Leonard, "Validation of optimization models that estimate the forces exerted by synergistic muscles," J. Biomech., Vol. 24, No. 1, pp. 31-39 (1991)   DOI
2 T. M. Kepple, H. J. Sommer, K. L. Siegel, and S. J. Stanhope, "A three-dimensional musculoskeletal database for the lower extremities," J. Biomech., Vol. 31, No. 1, pp. 77-80 (1997)   DOI   ScienceOn
3 L. Ren, R. K. Jones and D. Howard, "Whole body inverse dynamics over a complete gait cycle based only on measured kinematics," J. Biomech., Vol. 41, pp. 2850-2759 (2008)   DOI   ScienceOn
4 G. Li, K. R. Kaufman, E. Y. S. Chao and H. E. Rubash, "Prediction of antogonistic muscle forces using inverse dynamic optimization," J. Biomech. Eng., Vol. 121, pp. 306-322 (1999)
5 OpenSimm, http://www.simtk.org
6 Y. H. Kim, W .M. Park and P. Phuong, "Determination of in-vivo joint contact forces during walking for different joint center location," 2010 ASME Summer Bioeng. Conf., Naples Florida, USA (2010)
7 H. J. Kim, J. W. Fernandez, M. Akbarshahi, J. P. Walter, B. J. Fregly and M. G. Pandy, "Evaluation of predicted knee-joint muscle forces during gait using an instrumented knee implant," J. Orthop. Res., Vol. 27, pp. 1326-1331 (2009)   DOI   ScienceOn
8 I. Jonkers, A. Spaepen, G. Papaioannou and C. Stewart, "An EMG-based, muscle driven forward simulation of single support phase of gait," J. Biomech., Vol. 35, pp. 609-619 (2002)   DOI   ScienceOn
9 Y. Xiang, J. Arora and K. Abdel-Malek, "Physics-based modeling and simulation of human walking: A review of optimization-based and other approaches," Struct. Multidiscip. Optimi., Vol. 42, No. 1, pp. 1-23 (2010)   DOI   ScienceOn
10 W. Maurel and D. Thalmann, "A case study on human upper limb modelling for dynamic simulation," Comput. Meth. Biomech. Biomed. Eng, Vol. 1, No. 2, pp. 65-82 (1999)
11 D. A. Winter, "Biomechanics and Motor Control of Human Movemen," Toronto, John Wiely and Sons (1990)
12 S. L. Delp, F. C. Anderson, A. S. Arnold, P. Loan, A. Habib, C. T. John, E. Guendelman, and D. G. Thelen, "Opensim: open-source software to create and analyze dynamic simulations of movement," IEEE Trans.- Biomed. Eng., Vol. 55, No. 11, pp. 1940-1950 (2007)
13 C. Hogfors, B. Peterson, G. Sigholm and P. Herberts, "Biomechanical model of the human shoulder joint-II. The shoulder rhythm," J. Biomech., Vol. 24, No. 8, pp. 699-709 (1999)
14 V. M. Zatsiorsky, "Kinetics of Human Movement, Champaign, Human Kinetics," (2002)
15 M. G. Hoy, F. E. Zajac and M. E. Gordon, "A musculoskeletal model of human lower extremity: The effect of muscle, tendon, and moment arm on the moment angle relationship of musculotendon actuators at the hip, knee and ankle," J. Biomech., Vol. 23, No. 2, pp. 157-169 (1998)
16 E. Y. S. Chao, "Graphic-based musculoskeletal model for biomechanical analyses and animation," Med. Eng., & Phys, Vol. 25, pp. 201-212 (2003)   DOI   ScienceOn