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Title: | Prediction of Simulated 1,000 m Kayak Ergometer Performance in Young Athletes | Authors: | Coelho, André B. Nakamura, Fábio Y. Morgado, Micaela C. Alves, Francisco Di Baldassarre, Angela Flatt, Andrew Rama, Luís |
Keywords: | maturation; canoe sprint; young kayakers, 1,000 m; time-trial; VO2max; canoeing and kayaking; ventilatory threshhold | Issue Date: | 2020 | Publisher: | Frontiers Media S.A. | Project: | info:eu-repo/grantAgreement/FCT/6817 - DCRRNI ID/UID/DTP/04213/2019/PT/Centro de Investigação do Desporto e Actividade Física/Universidade de Coimbra | metadata.degois.publication.title: | Frontiers in Public Health | metadata.degois.publication.volume: | 8 | Abstract: | This study aimed to develop a predictive explanatory model for the 1,000-m time-trial (TT) performance in young national-level kayakers, from biomechanical and physiological parameters assessed in a maximal graded exercise test (GXT). Twelve young male flat-water kayakers (age 16.1 ± 1.1 years) participated in the study. The design consisted of 2 exercise protocols, separated by 48 h, on a kayak ergometer. The first protocol consisted of a GXT starting at 8 km.h-1 with increments in speed of 1 km.h-1 at each 2-min interval until exhaustion. The second protocol comprised the 1,000-m TT. Results: In the GXT, they reached an absolute V∙O2max of 3.5 ± 0.7 (L.min-1), a maximum aerobic power (MAP) of 138.5 ± 24.5 watts (W) and a maximum aerobic speed (MAS) of 12.8 ± 0.5 km/h. The TT had a mean duration of 292.3 ± 15 s, a power output of 132.6 ± 22.0 W and a V∙O2max of 3.5 ± 0.6 (L.min-1). The regression model [TT (s) = 413.378-0.433 × (MAP)-0.554 × (stroke rate at MAP)] presented an R2 = 84.5%. Conclusion: It was found that V∙O2max , stroke distance and stroke rate during the GXT were not different from the corresponding variables ( V∙O2peak , stroke distance and stroke rate) observed during the TT. The MAP and the corresponding stroke rate were strong predicting factors of 1,000 m TT performance. In conclusion, the TT can be useful for quantifying biomechanical parameters (stroke distance and stroke rate) and to monitor training induced changes in the cardiorespiratory fitness ( V∙O2max ). | URI: | https://hdl.handle.net/10316/104590 | ISSN: | 2296-2565 | DOI: | 10.3389/fpubh.2020.526477 | Rights: | openAccess |
Appears in Collections: | I&D CIDAF - Artigos em Revistas Internacionais |
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