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控制能量储存和返回原型假肢对胫骨截肢者步行的影响。

The effects of a controlled energy storage and return prototype prosthetic foot on transtibial amputee ambulation.

机构信息

Department of Veterans Affairs, RR&D Center, Seattle, WA, USA.

出版信息

Hum Mov Sci. 2012 Aug;31(4):918-31. doi: 10.1016/j.humov.2011.08.005. Epub 2011 Nov 17.

Abstract

The lack of functional ankle musculature in lower limb amputees contributes to the reduced prosthetic ankle push-off, compensations at other joints and more energetically costly gait commonly observed in comparison to non-amputees. A variety of energy storing and return prosthetic feet have been developed to address these issues but have not been shown to sufficiently improve amputee biomechanics and energetic cost, perhaps because the timing and magnitude of energy return is not controlled. The goal of this study was to examine how a prototype microprocessor-controlled prosthetic foot designed to store some of the energy during loading and return it during push-off affects amputee gait. Unilateral transtibial amputees wore the Controlled Energy Storage and Return prosthetic foot (CESR), a conventional foot (CONV), and their previously prescribed foot (PRES) in random order. Three-dimensional gait analysis and net oxygen consumption were collected as participants walked at constant speed. The CESR foot demonstrated increased energy storage during early stance, increased prosthetic foot peak push-off power and work, increased prosthetic limb center of mass (COM) push-off work and decreased intact limb COM collision work compared to CONV and PRES. The biological contribution of the positive COM work for CESR was reduced compared to CONV and PRES. However, the net metabolic cost for CESR did not change compared to CONV and increased compared to PRES, which may partially reflect the greater weight, lack of individualized size and stiffness and relatively less familiarity for CESR and CONV. Controlled energy storage and return enhanced prosthetic push-off, but requires further design modifications to improve amputee walking economy.

摘要

下肢截肢者缺乏功能性踝关节肌肉会导致假肢踝关节的推动力减小,与非截肢者相比,其他关节代偿更多,步态的能量消耗更高。为了解决这些问题,已经开发出了各种储能和回弹假肢脚,但并没有充分改善截肢者的生物力学和能量消耗,这可能是因为能量返回的时机和幅度不受控制。本研究的目的是研究一种设计用来在负荷过程中储存部分能量并在蹬离过程中返回能量的原型微处理器控制假肢脚如何影响截肢者的步态。单侧胫骨截肢者随机穿着控制能量存储和回弹假肢脚 (CESR)、传统假肢脚 (CONV) 和他们之前规定的假肢脚 (PRES)。参与者以恒定速度行走时,收集三维步态分析和净耗氧量。与 CONV 和 PRES 相比,CESR 脚在早期站立时表现出更多的能量储存,假肢脚峰值蹬离功率和功增加,假肢肢体质心 (COM) 蹬离功增加,完好肢体 COM 碰撞功减少。与 CONV 和 PRES 相比,CESR 的正 COM 功的生物学贡献降低。然而,与 CONV 相比,CESR 的净代谢成本没有变化,与 PRES 相比,CESR 的净代谢成本增加,这可能部分反映了 CESR 和 CONV 相对较大的重量、缺乏个性化的尺寸和刚度以及相对较少的熟悉程度。控制能量存储和回弹可增强假肢蹬离,但需要进一步改进设计,以提高截肢者的步行经济性。

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