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Case Report

Adjusting Seat and Backrest Angle Improves Performance in an Elite Paralympic Rower

Datos Bibliográficos

ID5285643
AutoresAnna C Severin (0000-0003-0404-1072, Norwegian University of Science and Technology, autor de correspondencia), Jørgen Danielsen (0000-0003-4362-0384, Norwegian University of Science and Technology), Jørgen Falck Erichsen, Jörgen Erichsen (0000-0001-5876-7157, Norwegian University of Science and Technology), Sindre W Eikevåg (0000-0001-6336-3202, Norwegian University of Science and Technology), Martin Steinert (0000-0002-8366-0201, Norwegian University of Science and Technology), Gertjan Ettema (0000-0002-3370-0957, Norwegian University of Science and Technology), Julia Kathrin Baumgart (0000-0001-5628-6050, Norwegian University of Science and Technology)
Año2021
Volumen3
Páginas625656-625656
Fecha de publicación2021-02-11
Peer ReviewedSí
Open AccessSí
TipoARTICLE
RevistaFrontiers in Sports and Active Living (JOURNAL)
Identificadores de la revistaISSN: 2624-9367 • E-ISSN: 2624-9367
EditorialFrontiers Media SA (PUBLISHER • CH)
DOI10.3389/fspor.2021.625656
PMID33644753
OpenAlexW3127585423
IdiomaEN
Citas recibidas4
Referencias citadas16

Paralympic rowers with functional impairments of the legs and trunk rely on appropriate seat configurations for performance. We compared performance, physiology, and biomechanics of an elite Paralympic rower competing in the PR1 class during ergometer rowing in a seat with three different seat and backrest inclination configurations. Unlike able-bodied rowers, PR1 rowers are required to use a seat with a backrest. For this study, we examined the following seat/backrest configurations: conA: 7.5°/25°, conB: 0°/25°, and conC: 0°/5° (usually used by the participant). All data was collected on a single day, i.e., in each configuration, one 4-min submaximal (100 W) and one maximal (all-out) stage was performed. The rowing ergometer provided the average power and (virtual) distance of each stage, while motion capture provided kinematic data, a load cell measured the force exerted on the ergometer chain, and an ergospirometer measured oxygen uptake (V ̇O2). Where appropriate, a Friedman's test with post-hoc comparisons performed with Wilcoxon signed-ranked tests identified differences between the configurations. Despite similar distances covered during the submaximal intensity (conA: 793, conB: 793, conC: 787 m), the peak force was lower in conC (conA: 509, conB: 458, conC: 312 N) while the stroke rate (conA: 27 conB: 31, conC: 49 strokes·min−1) and V ̇O2 (conA: 34.4, conB: 35.4, conC: 39.6 mL·kg−1·min−1) were higher. During the maximal stage, the virtual distances were 7-9% longer in conA and conB, with higher peak forces (conA: 934 m, 408 N, conB: 918 m, 418 N, conC: 856 m, 331 N), and lower stroke rates (conA: 51, conB: 54, conC: 56 strokes·min−1), though there was no difference in V ̇O2peak (~47 ml−1·kg−1·min−1). At both intensities, trunk range of motion was significantly larger in configurations conA and conB. Although fatigue may have accumulated during the test day, this study showed that a more inclined seat and backrest during ergometer rowing improved the performance of a successful Paralympic PR1 rower. The considerable increase in ergometer rowing performance in one of the top Paralympic rowers in the world is astonishing and highlights the importance of designing equipment that can be adjusted to match the individual needs of Paralympic athletes

Kinematics · Physics · Rowing · Cardiovascular and Diving-Related Complications · Computer Science · Mathematics · Muscle activation and electromyography studies · Spinal Cord Injury Research

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Obras citantes distintas4
Citas por año1,33
Intervalo de citas2023 - 2026 (4)
Velocidad de citacióncurrent
Altamente citadoNo
Tipos de citaNeutras: 4
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