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Adaptive locomotion: Foot strike pattern and limb mechanical stiffness while running over an obstacle.

Publication ,  Journal Article
Larsen, RJ; Queen, RM; Schmitt, D
Published in: Journal of biomechanics
October 2022

Previous studies of level running suggest runners adjust foot strike to control leg stiffness. This study aimed to determine how runners adjusted mechanical stiffness and foot strike prior to, during, and after a drop in surface height. Ten healthy subjects (5 male, 5 female; 24.32 ± 5.0 years) were video recorded as they ran on an outdoor path with a single drop in surface height (12.5 cm). Foot strike was recorded, while subject velocity, duty factor (DF), normalized maximum ground reaction force (GRFbw), vertical hip displacement (Δy), leg compression (ΔL), vertical (Kvert) and leg stiffness (Kleg), touchdown (TD) and takeoff angle (TO), and flight (Tf) and contact time (Tc) were calculated. Compared to the step before the drop, Tf, GRFbw, Kvert, Kleg, and TO increased, while Tc, DF, Δy, ΔL, and TD decreased in the step after the drop. Across trials, runners had either consistent or variable foot strike patterns. Runners using a consistent pattern most often shifted from rear to fore-foot strike in the steps before and after the drop, while those with a variable pattern showed less dramatic shifts. All parameters, except TD, were significantly different (p < 0.04) based on foot strike pattern, and comparisons between steps before and after the drop (except TD) were significantly different (p < 0.004). Runners with a variable foot strike pattern experienced smaller shifts within mechanical parameters when traveling over the drop, suggesting these runners may be able to stabilize limb mechanics on interrupted surfaces.

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Published In

Journal of biomechanics

DOI

EISSN

1873-2380

ISSN

0021-9290

Publication Date

October 2022

Volume

143

Start / End Page

111283

Related Subject Headings

  • Running
  • Pressure
  • Male
  • Lower Extremity
  • Humans
  • Gait
  • Foot
  • Female
  • Biomedical Engineering
  • Biomechanical Phenomena
 

Citation

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Larsen, R. J., Queen, R. M., & Schmitt, D. (2022). Adaptive locomotion: Foot strike pattern and limb mechanical stiffness while running over an obstacle. Journal of Biomechanics, 143, 111283. https://doi.org/10.1016/j.jbiomech.2022.111283
Larsen, Roxanne J., Robin M. Queen, and Daniel Schmitt. “Adaptive locomotion: Foot strike pattern and limb mechanical stiffness while running over an obstacle.Journal of Biomechanics 143 (October 2022): 111283. https://doi.org/10.1016/j.jbiomech.2022.111283.
Larsen RJ, Queen RM, Schmitt D. Adaptive locomotion: Foot strike pattern and limb mechanical stiffness while running over an obstacle. Journal of biomechanics. 2022 Oct;143:111283.
Larsen, Roxanne J., et al. “Adaptive locomotion: Foot strike pattern and limb mechanical stiffness while running over an obstacle.Journal of Biomechanics, vol. 143, Oct. 2022, p. 111283. Epmc, doi:10.1016/j.jbiomech.2022.111283.
Larsen RJ, Queen RM, Schmitt D. Adaptive locomotion: Foot strike pattern and limb mechanical stiffness while running over an obstacle. Journal of biomechanics. 2022 Oct;143:111283.
Journal cover image

Published In

Journal of biomechanics

DOI

EISSN

1873-2380

ISSN

0021-9290

Publication Date

October 2022

Volume

143

Start / End Page

111283

Related Subject Headings

  • Running
  • Pressure
  • Male
  • Lower Extremity
  • Humans
  • Gait
  • Foot
  • Female
  • Biomedical Engineering
  • Biomechanical Phenomena