Is larger eccentric utilization ratio associated with poorer rate of force development in squat jump? An exploratory study

Q2 Medicine
Ž. Kozinc, Darjan Smajla, N. Šarabon
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引用次数: 0

Abstract

ABSTRACT This exploratory study examines the relationship between the eccentric utilization ratio (EUR) and the rate of force development (RFD) in squat jumps (SJ). EUR, a key metric in sports science, compares performance in countermovement jumps (CMJ) and squat jumps (SJ). The study hypothesizes that a higher EUR is associated with a poorer RFD in SJ. Basketball and soccer players, long-distance runners, alongside physical education students (209 men; age: 23.2 ± 4.95 years and 104 women; age: 22.7 ± 4.42 years) participated. The EUR was calculated from jump height, peak force and peak power. The results indicated a small to moderate but significant negative correlation between EUR based on peak force or peak power and RFD in SJ (r = –.41 and −.27), suggesting that a higher EUR might be linked to a diminished ability to rapidly develop force in SJ. Thus, a higher EUR may not indicate superior athletic performance.
较大的偏心利用率是否与较差的深蹲跳力量发展速度有关?一项探索性研究
摘要 本探索性研究探讨了深蹲跳(SJ)中偏心利用率(EUR)与力量发展率(RFD)之间的关系。EUR是运动科学中的一个关键指标,用于比较反向运动跳(CMJ)和蹲跳(SJ)的成绩。研究假设,EUR 越高,SJ 的 RFD 越低。篮球和足球运动员、长跑运动员以及体育专业学生(209 名男性;年龄:23.2 ± 4.95 岁;104 名女性;年龄:22.7 ± 4.42 岁)参加了这项研究。根据跳高高度、峰值力量和峰值功率计算出欧元。结果表明,根据峰值力或峰值功率计算的EUR与SJ的RFD之间存在小到中等但显著的负相关(r = -.41 和 -.27),这表明较高的EUR可能与SJ快速发力的能力减弱有关。因此,EUR 越高可能并不代表运动成绩越好。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
International Biomechanics
International Biomechanics Medicine-Rehabilitation
CiteScore
1.90
自引率
0.00%
发文量
2
审稿时长
17 weeks
期刊介绍: International Biomechanics is a fully Open Access biomechanics journal that aims to foster innovation, debate and collaboration across the full spectrum of biomechanics. We publish original articles, reviews, and short communications in all areas of biomechanics and welcome papers that explore: Bio-fluid mechanics, Continuum Biomechanics, Biotribology, Cellular Biomechanics, Mechanobiology, Mechano-transduction, Tissue Mechanics, Comparative Biomechanics and Functional Anatomy, Allometry, Animal locomotion in biomechanics, Gait analysis in biomechanics, Musculoskeletal and Orthopaedic Biomechanics, Cardiovascular Biomechanics, Plant Biomechanics, Injury Biomechanics, Impact Biomechanics, Sport and Exercise Biomechanics, Kinesiology, Rehabilitation in biomechanics, Quantitative Ergonomics, Human Factors engineering, Occupational Biomechanics, Developmental Biomechanics.
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