Li Kai, Liu Yufeng, Dai Yuntong, Yu Yong
School of Civil Engineering, Anhui Jianzhu University, Hefei 230601, China.
Polymers (Basel). 2023 Aug 13;15(16):3397. doi: 10.3390/polym15163397.
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.
一种新型的自振荡系统已被开发出来,它有潜力在生物医学工程、先进机器人技术、救援行动和军事工业等领域扩大其应用。该系统能够通过从稳定的外部环境吸收能量来维持自身运动,而无需额外的控制器。现有的自持振荡系统结构相对复杂,制造和控制困难,因此在实际复杂场景中的应用受到限制。在本文中,我们创造性地提出了一种新型的光驱动液晶弹性体(LCE)纤维悬臂系统,该系统在稳定光照下能进行自持振荡。考虑到成熟的LCE动力学模型、梁理论和挠度公式,推导了自振荡系统的控制方程,以从理论上研究自振动的动力学。发现稳定光照下的LCE纤维悬臂系统呈现出两种运动状态,即静态和自振动状态。光驱动LCE纤维的张力所做的正功为抵抗来自悬臂的结构阻力和空气阻尼提供了一些补偿。此外,还研究了系统参数对自振动幅度和频率的影响。本文新构建的光驱动LCE纤维悬臂系统作为一种基于一维纤维的系统,结构简单,易于组装/拆卸,制备容易,扩展性强。预计能满足实际复杂场景的应用需求,在自主机器人、能量收集器、自主分离器、传感器、机械逻辑装置和仿生设计等领域具有重要的应用价值。