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Self-Vibration of a Liquid Crystal Elastomer Fiber-Cantilever System under Steady Illumination

A new type of self-oscillating system has been developed with the potential to expand its applications in fields such as biomedical engineering, advanced robotics, rescue operations, and military industries. This system is capable of sustaining its own motion by absorbing energy from the stable exte...

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Autores principales: Li, Kai, Liu, Yufeng, Dai, Yuntong, Yu, Yong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10458184/
https://www.ncbi.nlm.nih.gov/pubmed/37631454
http://dx.doi.org/10.3390/polym15163397
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author Li, Kai
Liu, Yufeng
Dai, Yuntong
Yu, Yong
author_facet Li, Kai
Liu, Yufeng
Dai, Yuntong
Yu, Yong
author_sort Li, Kai
collection PubMed
description A new type of self-oscillating system has been developed with the potential to expand its applications in fields such as biomedical engineering, advanced robotics, rescue operations, and military industries. This system is capable of sustaining its own motion by absorbing energy from the stable external environment without the need for an additional controller. The existing self-sustained oscillatory systems are relatively complex in structure and difficult to fabricate and control, thus limited in their implementation in practical and complex scenarios. In this paper, we creatively propose a novel light-powered liquid crystal elastomer (LCE) fiber-cantilever system that can perform self-sustained oscillation under steady illumination. Considering the well-established LCE dynamic model, beam theory, and deflection formula, the control equations for the self-oscillating system are derived to theoretically study the dynamics of self-vibration. The LCE fiber-cantilever system under steady illumination is found to exhibit two motion regimes, namely, the static and self-vibration regimes. The positive work done by the tension of the light-powered LCE fiber provides some compensation against the structural resistance from cantilever and the air damping. In addition, the influences of system parameters on self-vibration amplitude and frequency are also studied. The newly constructed light-powered LCE fiber-cantilever system in this paper has a simple structure, easy assembly/disassembly, easy preparation, and strong expandability as a one-dimensional fiber-based system. It is expected to meet the application requirements of practical complex scenarios and has important application value in fields such as autonomous robots, energy harvesters, autonomous separators, sensors, mechanical logic devices, and biomimetic design.
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spelling pubmed-104581842023-08-27 Self-Vibration of a Liquid Crystal Elastomer Fiber-Cantilever System under Steady Illumination Li, Kai Liu, Yufeng Dai, Yuntong Yu, Yong Polymers (Basel) Article A new type of self-oscillating system has been developed with the potential to expand its applications in fields such as biomedical engineering, advanced robotics, rescue operations, and military industries. This system is capable of sustaining its own motion by absorbing energy from the stable external environment without the need for an additional controller. The existing self-sustained oscillatory systems are relatively complex in structure and difficult to fabricate and control, thus limited in their implementation in practical and complex scenarios. In this paper, we creatively propose a novel light-powered liquid crystal elastomer (LCE) fiber-cantilever system that can perform self-sustained oscillation under steady illumination. Considering the well-established LCE dynamic model, beam theory, and deflection formula, the control equations for the self-oscillating system are derived to theoretically study the dynamics of self-vibration. The LCE fiber-cantilever system under steady illumination is found to exhibit two motion regimes, namely, the static and self-vibration regimes. The positive work done by the tension of the light-powered LCE fiber provides some compensation against the structural resistance from cantilever and the air damping. In addition, the influences of system parameters on self-vibration amplitude and frequency are also studied. The newly constructed light-powered LCE fiber-cantilever system in this paper has a simple structure, easy assembly/disassembly, easy preparation, and strong expandability as a one-dimensional fiber-based system. It is expected to meet the application requirements of practical complex scenarios and has important application value in fields such as autonomous robots, energy harvesters, autonomous separators, sensors, mechanical logic devices, and biomimetic design. MDPI 2023-08-13 /pmc/articles/PMC10458184/ /pubmed/37631454 http://dx.doi.org/10.3390/polym15163397 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Li, Kai
Liu, Yufeng
Dai, Yuntong
Yu, Yong
Self-Vibration of a Liquid Crystal Elastomer Fiber-Cantilever System under Steady Illumination
title Self-Vibration of a Liquid Crystal Elastomer Fiber-Cantilever System under Steady Illumination
title_full Self-Vibration of a Liquid Crystal Elastomer Fiber-Cantilever System under Steady Illumination
title_fullStr Self-Vibration of a Liquid Crystal Elastomer Fiber-Cantilever System under Steady Illumination
title_full_unstemmed Self-Vibration of a Liquid Crystal Elastomer Fiber-Cantilever System under Steady Illumination
title_short Self-Vibration of a Liquid Crystal Elastomer Fiber-Cantilever System under Steady Illumination
title_sort self-vibration of a liquid crystal elastomer fiber-cantilever system under steady illumination
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10458184/
https://www.ncbi.nlm.nih.gov/pubmed/37631454
http://dx.doi.org/10.3390/polym15163397
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