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Appearance and conductivity of weft-knitted unibody positioning flexible sensor

Fei Sun (Engineering Research Center for Knitting Technology, Ministry of Education, Jiangnan University, Wuxi, China)
Haisang Liu (Engineering Research Center for Knitting Technology, Ministry of Education, Jiangnan University, Wuxi, China)
Yuqin Din (Engineering Research Center for Knitting Technology, Ministry of Education, Jiangnan University, Wuxi, China)
Honglian Cong (Engineering Research Center for Knitting Technology, Ministry of Education, Jiangnan University, Wuxi, China)
Zhijia Dong (Engineering Research Center for Knitting Technology, Ministry of Education, Jiangnan University, Wuxi, China)

International Journal of Clothing Science and Technology

ISSN: 0955-6222

Article publication date: 1 September 2022

Issue publication date: 10 July 2023

161

Abstract

Purpose

The purpose of this research is to propose a flexible sensor with a weft-knitted float stitch structure and to explore knitting techniques that allow conductive yarns to be skin-tight and less exposed, reducing production processes and increasing productivity. Study its electrical conductivity in different yarn materials, knit processes and deformation ranges. The analysis is compared to provide some basis for the design of the electrodes.

Design/methodology/approach

The method includes five operations: (1) Analysis of the morphological appearance, tensile variation, fiber material properties and electrical conductivity of high-elastic and filament silver-plated conductive yarns. (2) Based on the knitting process of the floating yarn structure, three-dimensional modeling of the flexible sensor was carried out to explore the influence of knitting process changes on appearance characteristics. (3) The fabric samples are knitted by different silver-plated conductive yarns with different structures. Processing of experimental samples to finished size by advance shrinkage. (4) Measure the resistance of the experimental sample after the machine has been lowered and after pre-shrinking. Use the stretching machine to simulate a wearing experiment and measure the change in resistance of the sample in the 0–15% stretching range. (5) Analyze the influence factors on the conductive performance of the flexible sensor to determine whether it is suitable for textile flexible sensors.

Findings

For the float knitted flexible sensors, the floating wire projection is influenced by the elasticity of the fabric and the length of the floating wire. Compared to the plain knitted flexible sensors, it has less resistance variation and better electrical properties, making it suitable for making electrodes for textile structures. In addition, the knitting method is integrated with the intelligent monitoring clothing, which saves the process for the integration of the flexible sensor, realizes positioning and fixed-point knitting.

Practical implications

The sensor technology of the designed weft-knitted float structure is varied and can be freely combined and designed in a wide range. Within the good electrical conductivity, the flexible sensor can realize integrated knitting, positioning monitoring, integrating into the appearance of clothing. It can also focus on the wearing experience of wearable products so that the appearance of the monitoring clothing is close to the clothes we wear in our daily life.

Originality/value

In this paper, an integrated positioning knitting flexible sensor based on the weft knitting float structure is studied. The improved knitting process allows the sensing contact surface to be close to the skin and reduces the integration process. The relationship between the exposure of the silver-plated yarn on the clothing surface and the electrical conductivity is analyzed. Within a certain conductive performance, reduces the exposed area of the conductive yarn on the clothing surface and proposes a design reference for the flexible sensor appearance.

Keywords

Acknowledgements

Funding: This research was supported by National Nature Science Foundation of China (No. 6192150).

Citation

Sun, F., Liu, H., Din, Y., Cong, H. and Dong, Z. (2023), "Appearance and conductivity of weft-knitted unibody positioning flexible sensor", International Journal of Clothing Science and Technology, Vol. 35 No. 4, pp. 509-525. https://doi.org/10.1108/IJCST-03-2022-0039

Publisher

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Emerald Publishing Limited

Copyright © 2022, Emerald Publishing Limited

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