DocumentCode :
10864
Title :
Rotating Magnetic Miniature Swimming Robots With Multiple Flexible Flagella
Author :
Zhou Ye ; Regnier, Stephane ; Sitti, Metin
Author_Institution :
Dept. of Mech. Eng., Carnegie Mellon Univ., Pittsburgh, PA, USA
Volume :
30
Issue :
1
fYear :
2014
fDate :
Feb. 2014
Firstpage :
3
Lastpage :
13
Abstract :
Recent studies have been carried out for rotating single flexible flagellum: a possible propelling mechanism that has been adopted by several artificial microswimmers due to its relatively simple structure yet considerable propulsive force generation. In this paper, we introduce a miniature swimming robot design with multiple flexible artificial flagella that benefits from the increased number of flagella. The characteristic length of the robot body is less than 1 mm. Experimental characterization of swimming of the robot shows that swimming speed can be linearly improved solely by increasing the number of attached flagella, suggesting a new way for speed enhancement besides flagellum geometry optimization. In addition, a numerical model modified from the single, straight flexible flagellum case is further established to study propulsive force generation by nonstraight, flexible flagellum. A robot with multiple, sinusoidal flagella design is fabricated to demonstrate the capability of the proposed two-step photolithography-based microfabrication method to handle more complex flagella designs, which may enhance swimming performance.
Keywords :
autonomous underwater vehicles; control system synthesis; force control; geometry; marine control; marine propulsion; microfabrication; microrobots; optimisation; photolithography; velocity control; artificial microswimmers; flagellum geometry optimization; flexible artificial flagella; miniature swimming robot design; numerical model; propelling mechanism; propulsive force generation; robot body; rotating magnetic miniature swimming robots; rotating single flexible flagellum; sinusoidal flagella design; speed enhancement; swimming performance; swimming speed; two-step photolithography-based microfabrication method; Drag; Force; Hydrodynamics; Optimization; Propulsion; Robots; Torque; Magnetic actuation; microrobotics; multiple artificial flagella; swimming robot;
fLanguage :
English
Journal_Title :
Robotics, IEEE Transactions on
Publisher :
ieee
ISSN :
1552-3098
Type :
jour
DOI :
10.1109/TRO.2013.2280058
Filename :
6600934
Link To Document :
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