Swimmers’ Effective Actions during the Backstroke Start Technique

Author:

de Jesus Karla12ORCID,de Jesus Kelly12,Mourão Luís13,Roesler Hélio14,Fernandes Ricardo J.15ORCID,Vaz Mário A. P.56ORCID,Vilas-Boas João Paulo15ORCID,Machado Leandro J.15ORCID

Affiliation:

1. Centre of Research, Education, Innovation and Intervention in Sport, Faculty of Sport, University of Porto, 4200-450 Porto, Portugal

2. Human Studies Development Laboratory, Faculty of Physical Education and Physiotherapy, Federal University of Amazonas, Manaus 69077-000, AM, Brazil

3. Polytechnic Institute of Porto School of Engineering, 4249-015 Porto, Portugal

4. Aquatic Biomechanics Research Laboratory, Health and Sports Science Centre, University of the State of Santa Catarina, Florianópolis 88080-350, SC, Brazil

5. Porto Biomechanics Laboratory, University of Porto, 4200-450 Porto, Portugal

6. Institute of Mechanical Engineering and Industrial Management, Faculty of Engineering, University of Porto, 4200-465 Porto, Portugal

Abstract

The analysis of the external forces of swimming starts has revealed how swimmers propel themselves out of the block, but data should be properly interpreted to fully understand force-generation mechanisms. This study aimed to assess horizontal and vertical forces in the backstroke start based on swimmers’ structural and propulsive actions. Firstly, a simulated structural force was estimated by two transient backstroke-start inter-segmental realistic body positions: a maximally tucked position and an extended one (just before the hands-off and the take-off, respectively). Secondly, 10 competitive backstroke swimmers performed four 15 m maximal backstroke starts with the external forces estimated. Thirdly, the simulated structural force was subtracted from raw horizontal and vertical force data, measured between hands-off and take-off instants, resulting in the propulsive forces. The application of the algorithm has evidenced that backstrokers’ horizontal and vertical simulated-structural-force components contributed to ~40% of total force during start propulsion (~0.2–0.12 s before the take-off), followed by the propulsive horizontal force increment and a progressive vertical component reduction (~0.05 s) with ~20° take-off angle. Based on these findings, researchers and coaches can better guide swimmers as to the proper mechanical strategies to achieve effectiveness in the backstroke start, and to improve direct transfer of resistance training programs.

Funder

Coordination for the Improvement of Higher Education Personnel Foundation—CAPES

the Foundation for Science and Technology—FCT

CAPES-FCT

SANTADER

Publisher

MDPI AG

Subject

Electrical and Electronic Engineering,Biochemistry,Instrumentation,Atomic and Molecular Physics, and Optics,Analytical Chemistry

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