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Self-Oscillating Curling of a Liquid Crystal Elastomer Beam under Steady Light

Self-oscillation absorbs energy from a steady environment to maintain its own continuous motion, eliminating the need to carry a power supply and controller, which will make the system more lightweight and promising for applications in energy harvesting, soft robotics, and microdevices. In this pape...

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Detalles Bibliográficos
Autores principales: Liu, Junxiu, Zhao, Junjie, Wu, Haiyang, Dai, Yuntong, Li, Kai
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9863816/
https://www.ncbi.nlm.nih.gov/pubmed/36679225
http://dx.doi.org/10.3390/polym15020344
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author Liu, Junxiu
Zhao, Junjie
Wu, Haiyang
Dai, Yuntong
Li, Kai
author_facet Liu, Junxiu
Zhao, Junjie
Wu, Haiyang
Dai, Yuntong
Li, Kai
author_sort Liu, Junxiu
collection PubMed
description Self-oscillation absorbs energy from a steady environment to maintain its own continuous motion, eliminating the need to carry a power supply and controller, which will make the system more lightweight and promising for applications in energy harvesting, soft robotics, and microdevices. In this paper, we present a self-oscillating curling liquid crystal elastomer (LCE) beam-mass system, which is placed on a table and can self-oscillate under steady light. Unlike other self-sustaining systems, the contact surface of the LCE beam with the tabletop exhibits a continuous change in size during self-sustaining curling, resulting in a dynamic boundary problem. Based on the dynamic LCE model, we establish a nonlinear dynamic model of the self-oscillating curling LCE beam considering the dynamic boundary conditions, and numerically calculate its dynamic behavior using the Runge-Kutta method. The existence of two motion patterns in the LCE beam-mass system under steady light are proven by numerical calculation, namely self-curling pattern and stationary pattern. When the energy input to the system exceeds the energy dissipated by air damping, the LCE beam undergoes self-oscillating curling. Furthermore, we investigate the effects of different dimensionless parameters on the critical conditions, the amplitude and the period of the self-curling of LCE beam. Results demonstrate that the light source height, curvature coefficient, light intensity, elastic modulus, damping factor, and gravitational acceleration can modulate the self-curling amplitude and period. The self-curling LCE beam system proposed in this study can be applied to autonomous robots, energy harvesters, and micro-instruments.
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spelling pubmed-98638162023-01-22 Self-Oscillating Curling of a Liquid Crystal Elastomer Beam under Steady Light Liu, Junxiu Zhao, Junjie Wu, Haiyang Dai, Yuntong Li, Kai Polymers (Basel) Article Self-oscillation absorbs energy from a steady environment to maintain its own continuous motion, eliminating the need to carry a power supply and controller, which will make the system more lightweight and promising for applications in energy harvesting, soft robotics, and microdevices. In this paper, we present a self-oscillating curling liquid crystal elastomer (LCE) beam-mass system, which is placed on a table and can self-oscillate under steady light. Unlike other self-sustaining systems, the contact surface of the LCE beam with the tabletop exhibits a continuous change in size during self-sustaining curling, resulting in a dynamic boundary problem. Based on the dynamic LCE model, we establish a nonlinear dynamic model of the self-oscillating curling LCE beam considering the dynamic boundary conditions, and numerically calculate its dynamic behavior using the Runge-Kutta method. The existence of two motion patterns in the LCE beam-mass system under steady light are proven by numerical calculation, namely self-curling pattern and stationary pattern. When the energy input to the system exceeds the energy dissipated by air damping, the LCE beam undergoes self-oscillating curling. Furthermore, we investigate the effects of different dimensionless parameters on the critical conditions, the amplitude and the period of the self-curling of LCE beam. Results demonstrate that the light source height, curvature coefficient, light intensity, elastic modulus, damping factor, and gravitational acceleration can modulate the self-curling amplitude and period. The self-curling LCE beam system proposed in this study can be applied to autonomous robots, energy harvesters, and micro-instruments. MDPI 2023-01-09 /pmc/articles/PMC9863816/ /pubmed/36679225 http://dx.doi.org/10.3390/polym15020344 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
Liu, Junxiu
Zhao, Junjie
Wu, Haiyang
Dai, Yuntong
Li, Kai
Self-Oscillating Curling of a Liquid Crystal Elastomer Beam under Steady Light
title Self-Oscillating Curling of a Liquid Crystal Elastomer Beam under Steady Light
title_full Self-Oscillating Curling of a Liquid Crystal Elastomer Beam under Steady Light
title_fullStr Self-Oscillating Curling of a Liquid Crystal Elastomer Beam under Steady Light
title_full_unstemmed Self-Oscillating Curling of a Liquid Crystal Elastomer Beam under Steady Light
title_short Self-Oscillating Curling of a Liquid Crystal Elastomer Beam under Steady Light
title_sort self-oscillating curling of a liquid crystal elastomer beam under steady light
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9863816/
https://www.ncbi.nlm.nih.gov/pubmed/36679225
http://dx.doi.org/10.3390/polym15020344
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