Cao Chongjing, Burgess Stuart, Conn Andrew T
Bristol Robotics Laboratory, Bristol, United Kingdom.
Department of Aerospace Engineering, University of Bristol, Bristol, United Kingdom.
Front Robot AI. 2019 Jan 23;5:137. doi: 10.3389/frobt.2018.00137. eCollection 2018.
In the last two decades, insect-inspired flapping wing micro air vehicles (MAVs) have attracted great attention for their potential for highly agile flight. Insects flap their wings at the resonant frequencies of their flapping mechanisms. Resonant actuation is highly advantageous as it amplifies the flapping amplitude and reduces the inertial power demand. Emerging soft actuators, such as dielectric elastomer actuators (DEAs) have large actuation strains and thanks to their inherent elasticity, DEAs have been shown a promising candidate for resonant actuation. In this work a double cone DEA configuration is presented, a mathematic model is developed to characterize its quasi-static and dynamic performance. We compare the high frequency performance of two most common dielectric elastomers: silicone elastomer and polyacrylate tape VHB. The mechanical power output of the DEA is experimentally analyzed as a DEA-mass oscillator. Then a flapping wing mechanism actuated by this elastic actuator is demonstrated, this design is able to provide a peak flapping amplitude of 63° at the frequency of 18 Hz.
在过去二十年中,受昆虫启发的扑翼微型飞行器(MAV)因其具备实现高敏捷飞行的潜力而备受关注。昆虫以其扑翼机构的共振频率来扑动翅膀。共振驱动具有很大优势,因为它能放大扑翼幅度并降低惯性功率需求。新兴的软驱动器,如介电弹性体驱动器(DEA),具有较大的驱动应变,并且由于其固有的弹性,DEA已被证明是共振驱动的一个有前景的候选者。在这项工作中,提出了一种双锥DEA配置,建立了一个数学模型来表征其准静态和动态性能。我们比较了两种最常见的介电弹性体——硅橡胶弹性体和聚丙烯酸酯胶带VHB的高频性能。作为一个DEA - 质量振荡器,对DEA的机械功率输出进行了实验分析。然后展示了一种由这种弹性驱动器驱动的扑翼机构,该设计能够在18Hz的频率下提供63°的峰值扑翼幅度。