使用顺应性搭扣式足弓的自卸载治疗鞋

IF 3.4 Q2 ENGINEERING, BIOMEDICAL Wearable technologies Pub Date : 2022-05-10 eCollection Date: 2022-01-01 DOI:10.1017/wtc.2022.2
Priyabrata Maharana, Jyoti Sonawane, Pavan Belehalli, Gondi Kondaiah Ananthasuresh
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引用次数: 0

摘要

在糖尿病周围神经病变中,使用静态卸载定制鞋垫或昂贵的传感器和执行器卸载高足底压力区域是常用的治疗方法。在这篇文章中,我们提出了动态自我卸载治疗鞋的概念,它可以在不使用传感器和执行器的情况下进行机械操作。我们通过使用一系列的快速拱来实现这一点。当施加高于定制值的载荷时,这些拱进入负刚度状态,并通过弯曲成不同的形状来卸载高压区域。当负荷消失时,它们又恢复到原来的形状。因此,它们既是传感器又是执行器,可以根据人的体重来执行。我们提出了一种分析方法来计算这种足弓的切换负荷和切换时间,并根据人的体重、步态速度和脚的大小来定制鞋子。我们从临床数据中识别出高压区域,并放置弓,这样这些高压区域就会被动态地卸载,压力就会被重新分配到其他区域。我们考虑200kpa作为限制压力,以防止高足底压力的长期影响。为了验证这一概念的有效性,研究人员测试了一个由热塑性聚氨酯制成的完整3d打印原型,并将其与临床机构招募的受试者赤脚和鞋内足底压力进行了比较。我们注意到,自我卸载鞋垫显示足底压力在所有足部区域减少,并且在前足区域观察到57%的显着卸载。
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Self-offloading therapeutic footwear using compliant snap-through arches.

In diabetic peripheral neuropathy, offloading high-plantar-pressure areas using statically offloaded customized insoles or expensive sensors and actuators are commonly-followed treatment procedures. In this article, we propose the concept of dynamically self-offloading therapeutic footwear that operates mechanically without using sensors and actuators. We achieve this by using an array of snapping arches. When a load higher than a bespoke value is applied, these arches enter negative-stiffness regime and offload the high-pressure region by snapping to a different shape. They again return to their initial shape when the load disappears. Thus, they serve as both sensors and actuators that get actuated by person's body weight. We present an analytical method to compute the switching load and the switchback time of such arches and use them to customize the footwear according to the person's body weight, gait speed, and foot size. We identify the high-pressure regions from the clinical data and place the arches such that these high-pressure regions get dynamically offloaded, and the pressure gets redistributed to other regions. We considered 200 kPa as a limiting pressure to prevent the prolonged effects of high plantar pressure. To check the efficacy of the concept, a complete 3D-printed prototype made of thermoplastic polyurethane was tested and compared with barefoot and in-shoe plantar pressure for subjects recruited at a clinical facility. We notice that the self-offloading insole shows the plantar pressure reduction at all the foot regions, and significant offloading of 57% is observed at the forefoot region.

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CiteScore
5.80
自引率
0.00%
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0
审稿时长
11 weeks
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