Evaluating the Biomechanical Effects and Real-World Usability of a Novel Ankle Exo for Runners.

IF 1.7 4区 医学 Q4 BIOPHYSICS
Cameron A Nurse, Derek N Wolf, Katherine M Rodzak, Rachel H Teater, Chad C Ice, Shimra J Fine, Elisa C Holtzman, Karl E Zelik
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Abstract

Achilles tendon overuse injuries are common for long-distance runners. Ankle exos (exoskeletons and exosuits) are wearable devices that can reduce Achilles tendon loading and could potentially aid in the rehabilitation or prevention of these injuries by helping to mitigate and control tissue loading. However, most ankle exos are confined to controlled lab testing and are not practical to use in real-world running. Here, we present the design of an unpowered ankle exo aimed at reducing the load on the Achilles tendon during running while also overcoming key usability challenges for runners outside the lab. We fabricated a 500-gram ankle exo prototype that attaches to the outside of a running shoe. We then evaluated the reliability, acceptability, transparency during swing phase, and offloading assistance provided during treadmill and outdoor running tests. We found that the exo prototype reliably assisted 95-99% of running steps during indoor and outdoor tests, was deemed acceptable by more than 80% of runners in terms of comfort and feel, and did not impede natural ankle dorsiflexion during leg swing for 86% of runners. During indoor tests, the exo reduced peak Achilles tendon loads for most participants during running; however, reductions varied considerably, between near zero and 12%, depending on the participant, condition (speed and slope) and the precise tendon load metric used. This next-generation ankle exo concept could open new possibilities for longitudinal and real-world research on runners, or when transitioning into the return-to-sport phase after an Achilles tendon injury.

评估一种新型跑鞋踝关节外套的生物力学效果和实际可用性。
对于长跑运动员来说,跟腱过度使用损伤是很常见的。踝关节外骨骼(外骨骼和外骨骼)是一种可穿戴设备,可以减少跟腱负荷,并可能通过帮助减轻和控制组织负荷来帮助康复或预防这些损伤。然而,大多数脚踝外显器都局限于受控的实验室测试,不适合在现实世界的跑步中使用。在这里,我们提出了一种无动力脚踝外骨骼的设计,旨在减少跑步时跟腱的负荷,同时也克服了实验室外跑步者的关键可用性挑战。我们制作了一个重达500克的踝关节外骨骼原型,可以附着在跑鞋的外侧。然后,我们评估了可靠性、可接受性、摇摆阶段的透明度,以及在跑步机和户外跑步测试中提供的卸载辅助。我们发现exo原型在室内和室外测试中可靠地辅助了95-99%的跑步步骤,超过80%的跑步者认为在舒适性和感觉方面可以接受,并且86%的跑步者在摆动腿时不会阻碍脚踝的自然背屈。在室内测试中,exo减少了大多数参与者在跑步时的跟腱负荷;然而,根据参与者、条件(速度和坡度)和使用的精确肌腱载荷度量,减少幅度在接近零到12%之间变化很大。这种新一代踝关节外展概念可以为跑步者的纵向和现实世界研究开辟新的可能性,或者在跟腱受伤后过渡到恢复运动阶段。
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
CiteScore
3.40
自引率
5.90%
发文量
169
审稿时长
4-8 weeks
期刊介绍: Artificial Organs and Prostheses; Bioinstrumentation and Measurements; Bioheat Transfer; Biomaterials; Biomechanics; Bioprocess Engineering; Cellular Mechanics; Design and Control of Biological Systems; Physiological Systems.
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