Jiang Ziwang, Xu Jian
School of Aerospace Engineering and Applied Mechanics, Tongji University, Shanghai 200092, China.
Department of Aeronautics and Astronautics, Fudan University, 220 Handan Road, Shanghai 200433, China.
Micromachines (Basel). 2017 Dec 16;8(12):364. doi: 10.3390/mi8120364.
Worm-like locomotion at small scales induced by propagating a series of extensive or contraction waves has exhibited enormous possibilities in reproducing artificial mobile soft robotics. However, the optimal relation between locomotion performance and some important parameters, such as the distance between two adjacent waves, wave width, and body length, is still not clear. To solve this problem, this paper studies the optimal problem of a worm's motion induced by two peristalsis waves in a viscous medium. Inspired by a worm's motion, we consider that its body consists of two segments which can perform the respective shape change. Next, a quasi-static model describing the worm-like locomotion is used to investigate the relationship between its average velocity over the period and these parameters. Through the analysis of the relationship among these parameters, we find that there exist four different cases which should be addressed. Correspondingly, the average velocity in each case can be approximately derived. After that, optimization is carried out on each case to maximize the average velocity according to the Kuhn⁻Tucker Conditions. As a result, the optimal conditions of all of the cases are obtained. Finally, numerical and experimental verifications are carried out to demonstrate the correctness of the obtained results.
通过传播一系列伸展或收缩波在小尺度上实现的蠕虫状运动,在人造可移动软体机器人的再现方面展现出了巨大潜力。然而,运动性能与一些重要参数(如相邻两波之间的距离、波宽和体长)之间的最佳关系仍不明确。为解决这一问题,本文研究了粘性介质中由两个蠕动波引起的蠕虫运动的最优问题。受蠕虫运动的启发,我们认为其身体由两个可各自进行形状变化的部分组成。接下来,使用一个描述蠕虫状运动的准静态模型来研究其在一段时间内的平均速度与这些参数之间的关系。通过对这些参数之间关系的分析,我们发现存在四种不同情况需要处理。相应地,可以近似推导出每种情况下的平均速度。之后,根据库恩 - 塔克条件对每种情况进行优化,以使平均速度最大化。结果,得到了所有情况的最优条件。最后,进行了数值和实验验证,以证明所得结果的正确性。