Optimal mechanical force-velocity profile for sprint acceleration performance
- PMID: 34775654
- DOI: 10.1111/sms.14097
Optimal mechanical force-velocity profile for sprint acceleration performance
Abstract
The aim was to determine the respective influences of sprinting maximal power output ( ) and mechanical Force-velocity (F-v) profile (ie, ratio between horizontal force production capacities at low and high velocities) on sprint acceleration performance. A macroscopic biomechanical model using an inverse dynamics approach applied to the athlete's center of mass during running acceleration was developed to express the time to cover a given distance as a mathematical function of and F-v profile. Simulations showed that sprint acceleration performance depends mainly on , but also on the F-v profile, with the existence of an individual optimal F-v profile corresponding, for a given , to the best balance between force production capacities at low and high velocities. This individual optimal profile depends on and sprint distance: the lower the sprint distance, the more the optimal F-v profile is oriented to force capabilities and vice versa. When applying this model to the data of 231 athletes from very different sports, differences between optimal and actual F-v profile were observed and depend more on the variability in the optimal F-v profile between sprint distances than on the interindividual variability in F-v profiles. For a given sprint distance, acceleration performance (<30 m) mainly depends on and slightly on the difference between optimal and actual F-v profile, the weight of each variable changing with sprint distance. Sprint acceleration performance is determined by both maximization of the horizontal power output capabilities and the optimization of the mechanical F-v profile of sprint propulsion.
Keywords: all-out running; biomechanics; horizontal force production; maximal power output.
© 2021 John Wiley & Sons A/S. Published by John Wiley & Sons Ltd.
References
REFERENCES
-
- Seitz LB, Reyes A, Tran TT, Saez de Villarreal E, Haff GG. Increases in lower-body strength transfer positively to sprint performance: a systematic review with meta-analysis. Sports Med. 2014;44(12):1693-1702.
-
- Lockie RG, Murphy AJ, Knight TJ, Janse de Jonge XA. Factors that differentiate acceleration ability in field sport athletes. J Strength Cond Res. 2011;25(10):2704-2714.
-
- Wisloff U, Castagna C, Helgerud J, Jones R, Hoff J. Strong correlation of maximal squat strength with sprint performance and vertical jump height in elite soccer players. Br J Sports Med. 2004;38(3):285-288.
-
- Cavagna GA, Komarek L, Mazzoleni S. The mechanics of sprint running. J Physiol. 1971;217(3):709-721.
-
- Mero A, Komi PV, Gregor RJ. Biomechanics of sprint running. A review. Sports Med. 1992;13(6):376-392.
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