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练习开始后120分钟内轮椅生物力学的变化:时空参数、手轮力、动力、滚动阻力和前后稳定性。

Changes in wheelchair biomechanics within the first 120 minutes of practice: spatiotemporal parameters, handrim forces, motor force, rolling resistance and fore-aft stability.

作者信息

Eydieux Nicolas, Hybois Samuel, Siegel Alice, Bascou Joseph, Vaslin Philippe, Pillet Hélène, Fodé Pascale, Sauret Christophe

机构信息

Institut de Biomécanique Humaine Georges Charpak, Arts et Métiers ParisTech, Paris, France.

Centre d'Études et de Recherche sur l'Appareillage des Handicapés Institution Nationale des Invalides, Woippy, France.

出版信息

Disabil Rehabil Assist Technol. 2020 Apr;15(3):305-313. doi: 10.1080/17483107.2019.1571117. Epub 2019 Feb 20.

Abstract

During manual wheelchair (MWC) skill acquisition, users adapt their propulsion technique through changes in biomechanical parameters. This evolution is assumed to be driven towards a more efficient behavior. However, when no specific training protocol is provided to users, little is known about how they spontaneously adapt during overground MWC locomotion. For that purpose, we investigated this biomechanical spontaneous adaptation within the initial phase of low-intensity uninstructed training. Eighteen novice able-bodied subjects were enrolled to perform 120 min of uninstructed practice with a field MWC, distributed over 4 weeks. Subjects were tested during the very first minutes of the program, and after completion of the entire training protocol. Spatiotemporal parameters, handrim forces, motor force, rolling resistance and fore-aft stability were investigated using an instrumented field wheelchair. Participants rapidly increased linear velocity of the MWC, thanks to a higher propulsive force. This was achieved thanks to higher handrim forces, combined with an improved fraction of effective force for startup but not for propulsion. Despite changes in mechanical actions exerted by the user on the MWC, rolling resistance remained constant but the stability index was noticeably altered. Even if no indication is given, novice MWC users rapidly change their propulsion technique and increase their linear speed. Such improvements in MWC mobility are allowed by a mastering of the whole range of stability offered by the MWC, which raises the issue of safety on the MWC.Implications for rehabilitationThe learning process of manual wheelchair locomotion induces adaptations for novice users, who change their propulsion technique to improve their mobility.Several wheelchair biomechanical parameters change during the learning process, especially wheelchair speed, handrim forces, motor force, rolling resistance and fore-aft stability.Fore-aft stability on the wheelchair rapidly reached the tipping limits for users. Technical solutions that preserve stability but do not hinder mobility have to beimplemented, for instance by adding anti-tipping wheels rather than moving the seat forwards with respect to the rear wheels axle.

摘要

在手动轮椅(MWC)技能习得过程中,使用者通过生物力学参数的变化来调整其推进技术。这种演变被认为是朝着更高效的行为发展。然而,当没有向使用者提供特定的训练方案时,对于他们在地面MWC移动过程中如何自发调整知之甚少。为此,我们在低强度无指导训练的初始阶段研究了这种生物力学自发调整。招募了18名身体健全的新手受试者,使用野外MWC进行120分钟的无指导练习,分4周进行。在项目开始的最初几分钟以及整个训练方案完成后对受试者进行测试。使用配备仪器的野外轮椅研究时空参数、手轮力、动力、滚动阻力和前后稳定性。由于推进力增加,参与者迅速提高了MWC的线速度。这得益于更高的手轮力,以及启动时有效力比例的提高,但推进时并非如此。尽管使用者对MWC施加的机械动作发生了变化,但滚动阻力保持不变,而稳定性指数明显改变。即使没有给出指示,新手MWC使用者也会迅速改变其推进技术并提高线速度。MWC机动性的这种改善得益于对MWC提供的整个稳定性范围的掌握,这就提出了MWC上的安全问题。

对康复的启示

手动轮椅移动的学习过程会促使新手使用者产生适应性变化,他们会改变推进技术以提高机动性。

在学习过程中,几个轮椅生物力学参数会发生变化,特别是轮椅速度、手轮力、动力、滚动阻力和前后稳定性。

轮椅上的前后稳定性很快就达到了使用者的倾翻极限。必须实施既能保持稳定性又不妨碍机动性的技术解决方案,例如通过增加防倾翻轮,而不是相对于后轮轴向前移动座椅。

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