Self-oscillation of a liquid crystal elastomer string-mass system under constant gradient temperature

Dali Ge, Haiyi Liang, Kai Li
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Abstract

Recent experiments have found that a fiber-mass system can self-oscillate along the vertical direction under a non-uniform temperature field, which necessitates significant vertical space. To address the challenge in adapting to situations with limited vertical space, the current work introduces a self-oscillating string-mass system, comprising of a mass ball and a thermos-responsive liquid crystal elastomer string exposed to a constant gradient temperature. By employing theoretical modeling and numerical simulation, we've identified two motion regimes of the system, namely, the static regime and the self-oscillation regime, and elucidated the mechanism of self-oscillation. Utilizing the analytical method, we derived the expressions for bifurcation point, amplitude and frequency of the self-oscillation, and investigated the impact of system parameters on these aspects, which were verified by numerical solutions. Compared to a fiber-mass system, the string-mass system has superior stability to deal with small horizontal disturbances, can amplify its amplitude and frequency limited by small thermal deformation of material, and saves a significant amount of vertical space. Given these attributes, such self-oscillating string-mass system presents novel possibilities for designing energy harvesters, active machinery and soft robots.
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恒定梯度温度下液晶弹性体弦-质量系统的自振荡
最近的实验发现,纤维-质量系统可以在非均匀温度场下沿垂直方向自振荡,而这需要很大的垂直空间。为了解决在垂直空间有限的情况下的适应挑战,目前的工作引入了一种自振荡串-质量系统,由质量球和暴露在恒定梯度温度下的热响应液晶弹性体串组成。通过理论建模和数值模拟,我们确定了系统的两种运动状态,即静态状态和自振状态,并阐明了自振的机理。利用分析方法,我们推导出了自振荡的分叉点、振幅和频率的表达式,并研究了系统参数对这些方面的影响,这些都得到了数值求解的验证。与纤维-质量系统相比,弦-质量系统在处理微小水平干扰时具有更高的稳定性,能在材料微小热变形的限制下放大振幅和频率,并能节省大量垂直空间。鉴于这些特性,这种自振弦-质量系统为设计能量收集器、主动机械和软机器人提供了新的可能性。
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