Estimation of mechanical power and energy cost in elite wheelchair racing by analytical procedures and numerical simulations

The aim was to compare the mechanical power and energy cost of an elite wheelchair sprinter in the key-moments of the stroke cycle. The wheelchair-athlete system was 3D scanned and then computational fluid dynamics was used to estimate the drag force. Mechanical power and energy cost were derived from a set of formulae. The effective area in the catch, release and recovery phases were 0.41 m2, 0.33 m2 and 0.24 m2, respectively. Drag increased with speed and varied across the key-moments. The catch required the highest total power (range: 62.76-423.46 W), followed-up by the release (61.50-407.85 W) and the recovery (60.09-363.89 W).
© Copyright 2018 Computer Methods in Biomechanics and Biomedical Engineering. Taylor & Francis. All rights reserved.

Bibliographic Details
Subjects:
Notations:sports for the handicapped technical and natural sciences
Tagging:Computational Fluid Dynamics Windschatten
Published in:Computer Methods in Biomechanics and Biomedical Engineering
Language:English
Published: 2018
Online Access:https://doi.org/10.1080/10255842.2018.1502277
Volume:21
Issue:10
Pages:585-592
Document types:article
Level:advanced