Flagellar/Ciliary Intrinsic Driven Mechanism Inspired All-in-One Tubular Robotic Actuator

Jiaqi Miao, Tieshan Zhang, Gen Li, Dong Guo, Siqi Sun, Rong Tan, Jiahai Shi, Yajing Shen*

*Corresponding author for this work

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

14 Citations (Scopus)
62 Downloads (CityUHK Scholars)

Abstract

The unique motion styles of flagella and cilia (i.e., planar/helical waveform propulsion of flagella and two-dimensional (2D)/three-dimensional (3D) asymmetric ciliary beating), play a key role in many biological activities and inspire lots of bionic designs, especially miniature robotic systems. However, quite different to the fact in nature that microorganisms can evolve diverse motions from the homologous bio-structure (9 + 2 axoneme structure), current bionics can still not find an effective engineering solution to achieve such wisdom. Herein, by investigating the inner structure of flagella/cilia and their intrinsic driven mechanisms, we derive a unified physical model to describe the microtubules’ bending and the constructed external motions. Then, we propose a three-channel based tubular actuation concept and correspondingly fabricate an actuator via a rod-embedded casting process. By sequencing the actuation of each channel, our design can not only reproduce the diverse 2D/3D flagellar/ciliary motility in nature, but also extrapolate a variety of symmetry-breaking ciliary beating modes for effective propulsion at low Reynolds number. This study deepens our understanding of the propulsion mechanism of microorganisms and provides new inspirations for the design of biomimetic systems, which may find significant applications in a wide spectrum of engineering fields. © 2023 THE AUTHORS.
Original languageEnglish
Pages (from-to)170-180
JournalEngineering
Volume23
Online published8 Feb 2023
DOIs
Publication statusPublished - Apr 2023

Funding

This work was support by the Shenzhen–Hong Kong–Macao Science and Technology Project (Category C) sponsored by the Science Technology and Innovation Committee of Shenzhen Municipality (SGDX20201103093003017), Shenzhen Key Basic Research Project (JCYJ20200109114827177), and Hong Kong RGC General Research Fund (CityU 11216421).

Research Keywords

  • 9 + 2 structure
  • Artificial cilia
  • Biomimetic systems
  • Low Reynolds number
  • Soft actuators

Publisher's Copyright Statement

  • This full text is made available under CC-BY-NC-ND 4.0. https://creativecommons.org/licenses/by-nc-nd/4.0/

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