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Journal of Zhejiang University SCIENCE A

ISSN 1673-565X(Print), 1862-1775(Online), Monthly

Multi-scale analysis of the self-vibration of a liquid crystal elastomer fiber-spring system exposed to constant-gradient light

Abstract: Self-vibrating systems comprised of active materials have great potential for application in the fields of energy harvesting, actuation, bionic instrumentation, and autonomous robotics. However, it is challenging to obtain analytical solutions describing these systems, which hinders analysis and design. In this work, we propose a self-vibrating liquid crystal elastomer (LCE) fiber-spring system exposed to spatially-constant gradient light, and determine analytical solutions for its amplitude and period. First, using a dynamic model of LCE, we obtain the equations governing the self-vibration. Then, we analyze two different motion states and elucidate the mechanism of self-vibration. Subsequently, we derive analytical solutions for the amplitude and frequency using the multi-scale method, and compare the solutions with numerical results. The analytical outcomes are shown to be consistent with the numerical calculations, while taking far less computational time. Our findings reveal the utility of the multi-scale method in describing self-vibration, which may contribute to more efficient and accurate analyses of self-vibrating systems.

Key words: Self-vibration; Constant-gradient light; Liquid crystal elastomer (LCE); Multi-scale method; Fiber; Spring oscillator

Chinese Summary  <3> 恒定梯度光下液晶弹性体纤维-弹簧自振系统的多尺度分析

作者:吴海洋,娄江风,戴云彤,张彪,李凯
机构:安徽建筑大学,土木工程学院,中国合肥,230601
目的:目前基于主动材料的自振动系统的解析解难以获得,阻碍该类自振动系统的设计与应用。本文旨在加深对液晶弹性体纤维弹簧系统的理解,并得到液晶弹性体纤维弹簧系统的自振动解析解和稳定性判据。
创新点:1.推导出液晶弹性体纤维-弹簧自振动系统稳定性判据;2.推导出液晶弹性体纤维-弹簧自振动系统的幅度和频率解析解。
方法:1.提出一种空间线性光场下的液晶弹性体纤维-弹簧自振动系统;2.通过数值计算确定两种不同的运动模式,并阐明自振动的机制;3.将控制方程线性化处理,并使用Hurwitz准则进行分岔分析;4.使用多尺度方法对控制方程进行分析,确定振幅和周期的解析解。
结论:1.系统的自振动模式和振幅及频率可由系统参数调节;2.运用多尺度方法对液晶弹性体纤维-弹簧自振动系统进行分析求解,得到的振幅和频率结果与数值结果一致,且计算效率大幅提升。

关键词组:自振动;恒定梯度光;液晶弹性体;多尺度法;纤维;弹簧振子


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DOI:

10.1631/jzus.A2400194

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On-line Access:

2025-07-29

Received:

2024-04-16

Revision Accepted:

2024-07-01

Crosschecked:

2025-07-29

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