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稳态光照下液晶弹性体气球的自跳跃

Self-Jumping of a Liquid Crystal Elastomer Balloon under Steady Illumination.

作者信息

Ge Dali, Jin Jielin, Dai Yuntong, Xu Peibao, Li Kai

机构信息

School of Civil Engineering, Anhui Jianzhu University, Hefei 230601, China.

Institute of Advanced Technology, University of Science and Technology of China, Hefei 230001, China.

出版信息

Polymers (Basel). 2022 Jul 6;14(14):2770. doi: 10.3390/polym14142770.

Abstract

Self-oscillation capable of maintaining periodic motion upon constant stimulus has potential applications in the fields of autonomous robotics, energy-generation devices, mechano-logistic devices, sensors, and so on. Inspired by the active jumping of kangaroos and frogs in nature, we proposed a self-jumping liquid crystal elastomer (LCE) balloon under steady illumination. Based on the balloon contact model and dynamic LCE model, a nonlinear dynamic model of a self-jumping LCE balloon under steady illumination was formulated and numerically calculated by the Runge-Kutta method. The results indicated that there exist two typical motion regimes for LCE balloon under steady illumination: the static regime and the self-jumping regime. The self-jumping of LCE balloon originates from its expansion during contact with a rigid surface, and the self-jumping can be maintained by absorbing light energy to compensate for the damping dissipation. In addition, the critical conditions for triggering self-jumping and the effects of several key system parameters on its frequency and amplitude were investigated in detail. The self-jumping LCE hollow balloon with larger internal space has greater potential to carry goods or equipment, and may open a new insight into the development of mobile robotics, soft robotics, sensors, controlled drug delivery, and other miniature device applications.

摘要

能够在恒定刺激下维持周期性运动的自振荡在自主机器人技术、能量产生装置、机械物流装置、传感器等领域具有潜在应用。受自然界中袋鼠和青蛙主动跳跃的启发,我们提出了一种在稳定光照下的自跳跃液晶弹性体(LCE)气球。基于气球接触模型和动态LCE模型,建立了稳定光照下自跳跃LCE气球的非线性动力学模型,并采用龙格 - 库塔方法进行了数值计算。结果表明,稳定光照下LCE气球存在两种典型运动状态:静态状态和自跳跃状态。LCE气球的自跳跃源于其与刚性表面接触时的膨胀,并且可以通过吸收光能来补偿阻尼耗散从而维持自跳跃。此外,详细研究了触发自跳跃的临界条件以及几个关键系统参数对其频率和振幅的影响。具有较大内部空间的自跳跃LCE空心气球在承载货物或设备方面具有更大潜力,并且可能为移动机器人技术、软体机器人技术、传感器、可控药物递送以及其他微型设备应用的发展开辟新的思路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6ad3/9319439/4a1f06b60098/polymers-14-02770-g001.jpg

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