基于提升速度监测的阻力训练强度处方方法。

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS
ACS Applied Bio Materials Pub Date : 2024-04-01 Epub Date: 2023-08-22 DOI:10.1055/a-2158-3848
Amador García Ramos
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引用次数: 0

摘要

阻力训练强度通常被量化为相对于个人最大动态力量的负荷。这种方法被称为基于百分比的训练,需要评估阻力训练计划中核心练习的最大重复次数(1RM)。然而,基于百分比的严格训练的一个主要限制在于从技术、身体和心理角度直接测试1RM的要求很高。在过去二十年中,一种潜在的解决方案越来越受欢迎,以促进基于百分比的训练的实施,该解决方案涉及通过记录次最大载荷的提升速度来估计1RM。这篇综述考察了基于提升速度监测来规定相对载荷(%1RM)的三种主要方法:(i)速度区域,(ii)广义载荷-速度关系,和(iii)个性化载荷-速率关系。文章最后讨论了在保持个体化L-V关系的准确性的同时简化测试程序以预测1RM并建立由此产生的个体化%1RM速度关系应考虑的许多因素:(i)运动选择,(ii)速度变量的类型,(iii)回归模型,(iv)负荷数量,(v)负载-速度关系上的实验点的位置,(vi)最小速度阈值,(vii)速度反馈的提供,以及(viii)速度监测装置。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Resistance Training Intensity Prescription Methods Based on Lifting Velocity Monitoring.

Resistance training intensity is commonly quantified as the load lifted relative to an individual's maximal dynamic strength. This approach, known as percent-based training, necessitates evaluating the one-repetition maximum (1RM) for the core exercises incorporated in a resistance training program. However, a major limitation of rigid percent-based training lies in the demanding nature of directly testing the 1RM from technical, physical, and psychological perspectives. A potential solution that has gained popularity in the last two decades to facilitate the implementation of percent-based training involves the estimation of the 1RM by recording the lifting velocity against submaximal loads. This review examines the three main methods for prescribing relative loads (%1RM) based on lifting velocity monitoring: (i) velocity zones, (ii) generalized load-velocity relationships, and (iii) individualized load-velocity relationships. The article concludes by discussing a number of factors that should be considered for simplifying the testing procedures while maintaining the accuracy of individualized L-V relationships to predict the 1RM and establish the resultant individualized %1RM-velocity relationship: (i) exercise selection, (ii) type of velocity variable, (iii) regression model, (iv) number of loads, (v) location of experimental points on the load-velocity relationship, (vi) minimal velocity threshold, (vii) provision of velocity feedback, and (viii) velocity monitoring device.

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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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