Literature DB >> 30273283

Power-Force-Velocity Profiling of Sprinting Athletes: Methodological and Practical Considerations When Using Timing Gates.

Thomas A Haugen1, Felix Breitschädel2, Pierre Samozino3.   

Abstract

Haugen, TA, Breitschädel, F, and Samozino, P. Power-force-velocity profiling of sprinting athletes: Methodological and practical considerations when using timing gates. J Strength Cond Res 34(6): 1769-1773, 2020-The aim of this study was to investigate the impact of timing gate setup on mechanical outputs in sprinting athletes. Twenty-five male and female team sport athletes (mean ± SD: 23 ± 4 years, 185 ± 11 cm, 85 ± 13 kg) performed two 40-m sprints with maximal effort. Dual-beamed timing gates covered the entire running course with 5-m intervals. Maximal horizontal force (F0), theoretical maximal velocity (v0), maximal horizontal power (Pmax), force-velocity slope (SFV), maximal ratio of force (RFmax), and index of force application technique (DRF) were computed using a validated biomechanical model and based on 12 varying split time combinations, ranging from 3 to 8 timing checkpoints. When no timing gates were located after the 20-m mark, F0 was overestimated (mean difference, ±90% confidence level: 0.16, ±0.25 to 0.33, ±0.28 N·kg; possibly to likely; small), in turn affecting SFV and DRF by small to moderate effects. Timing setups covering only the first 15 m displayed lower v0 than setups covering the first 30-40 m of the sprints (0.21, ±0.34 to 0.25, ±0.34 m·s; likely; small). Moreover, poorer reliability values were observed for timing setups covering the first 15-20 m vs. the first 25-40 m of the sprints. In conclusion, the present findings showed that the entire acceleration phase should be covered by timing gates to ensure acceptably valid and reliable sprint mechanical outputs. However, only 3 timing checkpoints (i.e., 10, 20, and 30 m) are required to ensure valid and reliable outputs for team sport athletes.

Mesh:

Year:  2020        PMID: 30273283     DOI: 10.1519/JSC.0000000000002890

Source DB:  PubMed          Journal:  J Strength Cond Res        ISSN: 1064-8011            Impact factor:   3.775


  6 in total

1.  Sprint mechanical variables in elite athletes: Are force-velocity profiles sport specific or individual?

Authors:  Thomas A Haugen; Felix Breitschädel; Stephen Seiler
Journal:  PLoS One       Date:  2019-07-24       Impact factor: 3.240

2.  Changes in sprint performance and sagittal plane kinematics after heavy resisted sprint training in professional soccer players.

Authors:  Johan Lahti; Toni Huuhka; Valentin Romero; Ian Bezodis; Jean-Benoit Morin; Keijo Häkkinen
Journal:  PeerJ       Date:  2020-12-15       Impact factor: 2.984

3.  The Training of Medium- to Long-Distance Sprint Performance in Football Code Athletes: A Systematic Review and Meta-analysis.

Authors:  Ben Nicholson; Alex Dinsdale; Ben Jones; Kevin Till
Journal:  Sports Med       Date:  2021-09-09       Impact factor: 11.136

4.  A Comparison of Sprint Mechanical Parameters Measured With Timing Gates and a Laser Gun.

Authors:  Roland van den Tillaar; Markus Estifanos Haugen; Hallvard Nygaard Falch
Journal:  Front Sports Act Living       Date:  2022-04-13

5.  Individual Sprint Force-Velocity Profile Adaptations to In-Season Assisted and Resisted Velocity-Based Training in Professional Rugby.

Authors:  Johan Lahti; Pedro Jiménez-Reyes; Matt R Cross; Pierre Samozino; Patrick Chassaing; Benjamin Simond-Cote; Juha Ahtiainen; Jean-Benoit Morin
Journal:  Sports (Basel)       Date:  2020-05-25

Review 6.  Crossing the Golden Training Divide: The Science and Practice of Training World-Class 800- and 1500-m Runners.

Authors:  Thomas Haugen; Øyvind Sandbakk; Eystein Enoksen; Stephen Seiler; Espen Tønnessen
Journal:  Sports Med       Date:  2021-05-21       Impact factor: 11.136

  6 in total

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