A Biomimetic Flexible Sliding Suction Cup Suitable for Curved Surfaces.

IF 3.4 3区 医学 Q1 ENGINEERING, MULTIDISCIPLINARY
Enhua Cui, Xiangcong Zhou, Yanqiang Liu, Jixiao Xue, Siyuan Xiong, Deyuan Zhang
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Abstract

The sliding suction robots designed for wall-climbing functions could have accuracy defects due to suction cup sealing, friction interference, and surface adaptability. Hence, this work develops a biomimetic, flexible, sliding suction cup suitable for crawling on curved surfaces. Inspired by the hypostomus plecostomus's mouth, we designed a biomimetic low-contact force flow channel structure and a matrix of friction-reducing protrusions along the lip edge of the sliding suction cup. This design reduces frictional resistance on the sliding interface and the flexible nature of the suction cup, allowing it to be used on curved or vertical surfaces of different materials. Several simulation-based optimization analyses and experimental tests are conducted on the biomimetic low-contact force flow channel structure, and various structural design principles are explored for achieving high adhesion and low-contact force. Additionally, a friction reduction model for the matrix structure is designed to verify the effects of parameters such as load, protrusion size, and quantity on the friction coefficient of the matrix structure surface through friction tests. The sliding suction cup prototype presents an average crawling speed of about 0.4 m/s on a horizontal plane and 0.7 m/s for crawling on vertical walls and the inner surface of a cylindrical rail.

由于吸盘密封、摩擦干扰和表面适应性等原因,为爬墙功能设计的滑动吸盘机器人可能存在精度缺陷。因此,本研究开发了一种适合在曲面上爬行的仿生柔性滑动吸盘。受褶皱颚蛛嘴的启发,我们设计了仿生低接触力流道结构,并在滑动吸盘的唇边设计了减摩突起矩阵。这种设计减少了滑动界面上的摩擦阻力,同时也降低了吸盘的柔韧性,使其可以在不同材料的弯曲或垂直表面上使用。对仿生低接触力流道结构进行了多项基于仿真的优化分析和实验测试,并探索了实现高粘附力和低接触力的各种结构设计原则。此外,还设计了矩阵结构的减摩模型,通过摩擦试验验证载荷、突起尺寸和数量等参数对矩阵结构表面摩擦系数的影响。滑动吸盘原型在水平面上的平均爬行速度约为 0.4 米/秒,在垂直墙壁和圆柱形导轨内表面上的平均爬行速度为 0.7 米/秒。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Biomimetics
Biomimetics Biochemistry, Genetics and Molecular Biology-Biotechnology
CiteScore
3.50
自引率
11.10%
发文量
189
审稿时长
11 weeks
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