In order to monitor the movement state of the human body and fully collect the energy generated by human body motion, taking a fully flexible integrated friction nanogenerator as an example, the application of clothing friction nanopower generators in human motion energy acquisition is researched. The fully flexible integrated friction nanogenerator is prepared by vulcanizing silica gel, high-temperature-vulcanized silica gel and silver-plated glass powder, and the friction nanogenerator is used to collect the energy generated by human motion. The experimental results show that when the fully flexible integrated friction nanogenerator is placed on the elbows, underarms, knees and soles of the feet, it can collect the energy generated by the movements of the human body, such as walking, tapping and swinging of arms. The corresponding short-circuit current is output, and the mechanical energy generated by human motion is converted into electrical energy. The current performance of the friction nanogenerator is stable in the optimal frequency range, and human motion energy in the low-frequency band can be efficiently collected, and the human motion posture is monitored by the current output values in different states.
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1 December 2020
Research Article|
September 11 2020
Application of clothing friction nanopower generators in human motion energy acquisition Available to Purchase
Jing Lin;
Department of Physical Education Institute, Gannan Normal University, Ganzhou, China
(corresponding author: linjing0921@126.com)
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Xingyu Huang
Xingyu Huang
Faculty of Associated Medical Sciences, Khon Kaen University, Khon Kaen, Thailand
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(corresponding author: linjing0921@126.com)
Publisher: Emerald Publishing
Received:
December 27 2019
Accepted:
August 05 2020
Online ISSN: 2045-984X
Print ISSN: 2045-9831
ICE Publishing: All rights reserved
2020
Nanomaterials and Energy (2020) 9 (2): 163–172.
Article history
Received:
December 27 2019
Accepted:
August 05 2020
Citation
Lin J, Huang X (2020), "Application of clothing friction nanopower generators in human motion energy acquisition". Nanomaterials and Energy, Vol. 9 No. 2 pp. 163–172, doi: https://doi.org/10.1680/jnaen.20.00031
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