The oscillatory behavior of the CoM facilitates mechanical energy balance between push-off and heel strike

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Humans use equal push-off and heel strike work during the double support phase to minimize the mechanical work done on the center of mass (CoM) during the gait. Recently, a step-to-step transition was reported to occur over a period of time greater than that of the double support phase, which brings into question whether the energetic optimality is sensitive to the definition of the step-to-step transition. To answer this question, the ground reaction forces (GREs) of seven normal human subjects walking at four different speeds (1.1-2.4 m/s) were measured, and the push-off and heel strike work for three differently defined step-to-step transitions were computed based on the force, work, and velocity. To examine the optimality of the work and the impulse data, a hybrid theoretical-empirical analysis is presented using a dynamic walking model that allows finite time for step-to-step transitions and incorporates the effects of gravity within this period. The changes in the work and impulse were examined parametrically across a range of speeds. The results showed that the push-off work on the CoM was well balanced by the heel strike work for all three definitions of the step-to-step transition. The impulse data were well matched by the optimal impulse predictions (R-2 > 0.7) that minimized the mechanical work done on the CoM during the gait. The results suggest that the balance of push-off and heel strike energy is a consistent property arising from the overall gait dynamics, which implies an inherited oscillatory behavior of the CoM, possibly by spring-like leg mechanics. (C) 2011 Elsevier Ltd. All rights reserved.
Publisher
ELSEVIER SCI LTD
Issue Date
2012-01
Language
English
Article Type
Article
Keywords

TO-STEP TRANSITIONS; HUMAN WALKING; RUN TRANSITION; ANKLE PLANTAR; LEG BEHAVIOR; SPEED; MODEL; WORK; MASS; DETERMINANT

Citation

JOURNAL OF BIOMECHANICS, v.45, no.2, pp.326 - 333

ISSN
0021-9290
DOI
10.1016/j.jbiomech.2011.10.009
URI
http://hdl.handle.net/10203/97399
Appears in Collection
ME-Journal Papers(저널논문)
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