基于碳纳米管的新型纺织鞋垫压力传感器估算地面反作用力。

IF 3.4 Q2 ENGINEERING, BIOMEDICAL
Kaleb Burch, Sagar Doshi, Amit Chaudhari, Erik Thostenson, Jill Higginson
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引用次数: 5

摘要

本研究提出了一种新型可穿戴鞋垫压力传感器(IPS),该传感器由涂有碳纳米管基复合薄膜的织物组成,并验证了其用于量化人类行走过程中的地面反作用力(GRFs)的用途。健康的年轻人(n = 7)在跑步机上以三种不同的速度行走,同时记录IPS和力板(FP)的数据。将IPS与FP进行比较,评估两种仪器在两种不同评估下的差异:(1)比较重量接受和推离时的两个峰值力(2PK)和(2)比较每个步态周期的绝对最大值(MAX)。使用Bland-Altman方法评估两个系统之间的一致性。在2PK评估中,组平均差异(MoD)为-1.3±4.3%体重(BW), MoD与一致限(2S)之间的距离为25.4±11.1%体重(BW)。在MAX评估中,受试者平均MoD为1.9±3.0% BW, 2S为15.8±9.3% BW。这项研究的结果表明,该传感器技术可用于通过基本校准获得峰值行走力的精确测量,从而为实验室以外的GRF监测开辟了新的机会。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Estimating ground reaction force with novel carbon nanotube-based textile insole pressure sensors.

Estimating ground reaction force with novel carbon nanotube-based textile insole pressure sensors.

Estimating ground reaction force with novel carbon nanotube-based textile insole pressure sensors.

Estimating ground reaction force with novel carbon nanotube-based textile insole pressure sensors.

This study presents a new wearable insole pressure sensor (IPS), composed of fabric coated in a carbon nanotube-based composite thin film, and validates its use for quantifying ground reaction forces (GRFs) during human walking. Healthy young adults (n = 7) walked on a treadmill at three different speeds while data were recorded simultaneously from the IPS and a force plate (FP). The IPS was compared against the FP by evaluating differences between the two instruments under two different assessments: (1) comparing the two peak forces at weight acceptance and push-off (2PK) and (2) comparing the absolute maximum (MAX) of each gait cycle. Agreement between the two systems was evaluated using the Bland-Altman method. For the 2PK assessment, the group mean of differences (MoD) was -1.3 ± 4.3% body weight (BW) and the distance between the MoD and the limits of agreement (2S) was 25.4 ± 11.1% BW. For the MAX assessment, the average MoD across subjects was 1.9 ± 3.0% BW, and 2S was 15.8 ± 9.3% BW. The results of this study show that this sensor technology can be used to obtain accurate measurements of peak walking forces with a basic calibration and consequently open new opportunities to monitor GRF outside of the laboratory.

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来源期刊
CiteScore
5.80
自引率
0.00%
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审稿时长
11 weeks
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