Author
Listed:
- Claysson Vimieiro
- Emanuel Andrada
- Hartmut Witte
- Marcos Pinotti
Abstract
Biomechanical models are important tools in the study of human motion. This work proposes a computational model to analyse the dynamics of lower limb motion using a kinematic chain to represent the body segments and rotational joints linked by viscoelastic elements. The model uses anthropometric parameters, ground reaction forces and joint Cardan angles from subjects to analyse lower limb motion during the gait. The model allows evaluating these data in each body plane. Six healthy subjects walked on a treadmill to record the kinematic and kinetic data. In addition, anthropometric parameters were recorded to construct the model. The viscoelastic parameter values were fitted for the model joints (hip, knee and ankle). The proposed model demonstrated that manipulating the viscoelastic parameters between the body segments could fit the amplitudes and frequencies of motion. The data collected in this work have viscoelastic parameter values that follow a normal distribution, indicating that these values are directly related to the gait pattern. To validate the model, we used the values of the joint angles to perform a comparison between the model results and previously published data. The model results show a same pattern and range of values found in the literature for the human gait motion.
Suggested Citation
Claysson Vimieiro & Emanuel Andrada & Hartmut Witte & Marcos Pinotti, 2015.
"A computational model for dynamic analysis of the human gait,"
Computer Methods in Biomechanics and Biomedical Engineering, Taylor & Francis Journals, vol. 18(7), pages 799-804, May.
Handle:
RePEc:taf:gcmbxx:v:18:y:2015:i:7:p:799-804
DOI: 10.1080/10255842.2013.848859
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