Flexible and wearable fibers for motion sensing

In recent years, smart wearable technology has become an emerging data flow portal by integrating technologies in the information field and material field. Sensors, as the core of wearable technology devices, can convert physiological signals of the human body or external environmental signals into...

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Main Author: Guan, Xing
Other Authors: Wei Lei
Format: Thesis-Master by Coursework
Language:English
Published: Nanyang Technological University 2021
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Online Access:https://hdl.handle.net/10356/154251
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-1542512023-07-04T15:18:01Z Flexible and wearable fibers for motion sensing Guan, Xing Wei Lei School of Electrical and Electronic Engineering Centre for Optical Fibre Technology wei.lei@ntu.edu.sg Engineering::Electrical and electronic engineering In recent years, smart wearable technology has become an emerging data flow portal by integrating technologies in the information field and material field. Sensors, as the core of wearable technology devices, can convert physiological signals of the human body or external environmental signals into electrical signals, thereby providing an interface for information transmission between the human body and electronic information systems. However, traditional sensors are large in size, rigid, and highly dependent on external power sources, which reduce the flexibility, comfort, and bio-compatibility of wearable devices. Therefore, designing a self-powered flexible sensor has become one of the research hot spots. The triboelectric nanogenerator (TENG) can continuously convert the small, low-frequency mechanical energy produced by the human action into electrical energy to supply electricity for itself. It has advantages of simple preparation, high efficiency, environmental friendliness, wide material sources, and linear correlation between pressure and output voltage. So it could be used as a pressure sensor for practical applications to get rid of the shackles of traditional batteries and truly realize passive sensing. The triboelectric sensor combined with textile substrate possesses both the excellent flexibility of the textile and the self-driving performance of the triboelectric nanogenerator. It can meet the requirements of light-weight, soft, and comfortable wearable devices. In this paper, PVDF and CPE are used to prepare the cladding and core of the fiber. To achieve uniformity and toughness, thermal-drawing technique is used for the production until we get sufficient samples. According to the diameter of the fibers, they are divided into three groups for further experiment, and the encapsulation process was adopted to ensure a reliable result. To study the output behavior of the triboelectric nanogenerator operating in single-electrode(SE) mode, fibers were arranged in a cluster (1,2,4,8 strands) and weaved into a crossed structure. The output rules of this single electrode TENG were studied and the touchpoint detection function of knitted TENG was verified. Master of Science (Electronics) 2021-12-20T02:43:01Z 2021-12-20T02:43:01Z 2021 Thesis-Master by Coursework Guan, X. (2021). Flexible and wearable fibers for motion sensing. Master's thesis, Nanyang Technological University, Singapore. https://hdl.handle.net/10356/154251 https://hdl.handle.net/10356/154251 en ISM- DISS- 01679 application/pdf Nanyang Technological University
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Engineering::Electrical and electronic engineering
spellingShingle Engineering::Electrical and electronic engineering
Guan, Xing
Flexible and wearable fibers for motion sensing
description In recent years, smart wearable technology has become an emerging data flow portal by integrating technologies in the information field and material field. Sensors, as the core of wearable technology devices, can convert physiological signals of the human body or external environmental signals into electrical signals, thereby providing an interface for information transmission between the human body and electronic information systems. However, traditional sensors are large in size, rigid, and highly dependent on external power sources, which reduce the flexibility, comfort, and bio-compatibility of wearable devices. Therefore, designing a self-powered flexible sensor has become one of the research hot spots. The triboelectric nanogenerator (TENG) can continuously convert the small, low-frequency mechanical energy produced by the human action into electrical energy to supply electricity for itself. It has advantages of simple preparation, high efficiency, environmental friendliness, wide material sources, and linear correlation between pressure and output voltage. So it could be used as a pressure sensor for practical applications to get rid of the shackles of traditional batteries and truly realize passive sensing. The triboelectric sensor combined with textile substrate possesses both the excellent flexibility of the textile and the self-driving performance of the triboelectric nanogenerator. It can meet the requirements of light-weight, soft, and comfortable wearable devices. In this paper, PVDF and CPE are used to prepare the cladding and core of the fiber. To achieve uniformity and toughness, thermal-drawing technique is used for the production until we get sufficient samples. According to the diameter of the fibers, they are divided into three groups for further experiment, and the encapsulation process was adopted to ensure a reliable result. To study the output behavior of the triboelectric nanogenerator operating in single-electrode(SE) mode, fibers were arranged in a cluster (1,2,4,8 strands) and weaved into a crossed structure. The output rules of this single electrode TENG were studied and the touchpoint detection function of knitted TENG was verified.
author2 Wei Lei
author_facet Wei Lei
Guan, Xing
format Thesis-Master by Coursework
author Guan, Xing
author_sort Guan, Xing
title Flexible and wearable fibers for motion sensing
title_short Flexible and wearable fibers for motion sensing
title_full Flexible and wearable fibers for motion sensing
title_fullStr Flexible and wearable fibers for motion sensing
title_full_unstemmed Flexible and wearable fibers for motion sensing
title_sort flexible and wearable fibers for motion sensing
publisher Nanyang Technological University
publishDate 2021
url https://hdl.handle.net/10356/154251
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