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Mechanical energy and effective foot mass during impact loading of walking and running.

Publication ,  Journal Article
Chi, K-J; Schmitt, D
Published in: Journal of biomechanics
July 2005

The human heel pad is considered an important structure for attenuation of the transient force caused by heel-strike. Although the mechanical properties of heel pads are relatively well understood, the mechanical energy (Etot) absorbed by the heel pad during the impact phase has never been documented directly because data on the effective foot mass (Meff) was previously unavailable during normal forward locomotion. In this study, we use the impulse-momentum method (IMM) for calculating Meff from moving subjects. Mass-spring-damper models were developed to evaluate errors and to examine the effects of pad property, upper body mass, and effective leg spring on Meff. We simultaneously collected ground reaction forces, pad deformation, and lower limb kinematics during impact phase of barefoot walking, running, and crouched walking. The latter was included to examine the effect of knee angle on Meff. The magnitude of Meff as a percentage of body mass (M(B)) varies with knee angle at impact and significantly differs among gaits: 6.3%M(B) in walking, 5.3%M(B) in running, and 3.7%M(B) in crouched walking. Our modeling results suggested that Meff is insensitive to heel pad resilience and effective leg stiffness. At the instant prior to heel strike, Etot ranges from 0.24 to 3.99 J. The combination of video and forceplate data used in this study allows analyses of Etot and Etot as a function of heel-strike kinematics during normal locomotion. Relationship between Meff and knee angle provides insights into how changes in posture moderate impact transients at different gaits.

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Published In

Journal of biomechanics

DOI

EISSN

1873-2380

ISSN

0021-9290

Publication Date

July 2005

Volume

38

Issue

7

Start / End Page

1387 / 1395

Related Subject Headings

  • Walking
  • Stress, Mechanical
  • Running
  • Posture
  • Models, Biological
  • Humans
  • Heel
  • Gait
  • Foot
  • Energy Transfer
 

Citation

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ICMJE
MLA
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Chi, K.-J., & Schmitt, D. (2005). Mechanical energy and effective foot mass during impact loading of walking and running. Journal of Biomechanics, 38(7), 1387–1395. https://doi.org/10.1016/j.jbiomech.2004.06.020
Chi, Kai-Jung, and Daniel Schmitt. “Mechanical energy and effective foot mass during impact loading of walking and running.Journal of Biomechanics 38, no. 7 (July 2005): 1387–95. https://doi.org/10.1016/j.jbiomech.2004.06.020.
Chi K-J, Schmitt D. Mechanical energy and effective foot mass during impact loading of walking and running. Journal of biomechanics. 2005 Jul;38(7):1387–95.
Chi, Kai-Jung, and Daniel Schmitt. “Mechanical energy and effective foot mass during impact loading of walking and running.Journal of Biomechanics, vol. 38, no. 7, July 2005, pp. 1387–95. Epmc, doi:10.1016/j.jbiomech.2004.06.020.
Chi K-J, Schmitt D. Mechanical energy and effective foot mass during impact loading of walking and running. Journal of biomechanics. 2005 Jul;38(7):1387–1395.
Journal cover image

Published In

Journal of biomechanics

DOI

EISSN

1873-2380

ISSN

0021-9290

Publication Date

July 2005

Volume

38

Issue

7

Start / End Page

1387 / 1395

Related Subject Headings

  • Walking
  • Stress, Mechanical
  • Running
  • Posture
  • Models, Biological
  • Humans
  • Heel
  • Gait
  • Foot
  • Energy Transfer