DocumentCode
2566831
Title
Swimming of onboard-powered autonomous robots in viscous fluid filled channels
Author
Erman, A.G. ; Yesilyurt, Serhat
Author_Institution
Mechatron. Program, Sabanci Univ., Istanbul, Turkey
fYear
2011
fDate
13-15 April 2011
Firstpage
348
Lastpage
353
Abstract
Microrobots can make a great impact in medical applications such as minimally-invasive surgery, screening and diagnosis of diseases, targeted therapy and drug delivery. Small-sized bio-inspired robots can mimic flagellar propulsion mechanisms of microorganisms for actuation in microfluidic environments, which are dominated by viscous forces. Microorganisms propel themselves by means of the motion of their flagella such as rotation of rigid helices or travelling planar waves on flexible tails similar to whipping motion. Here, we present characterization of swimming of onboard-powered autonomous robots inside cylindrical tubes. Robots consist of two links, head and tail, connected with a revolute joint. Rigid helical tails of the swimmer robots are made of steel wires with 12 different configurations of helical radius and pitch. From experiments forward linear velocity of robots and angular velocities of the links are measured, and compared with the mathematical model, which is based on the resistive force theory. Results indicate that the motion of the swimmer inside channels can be predicted by means of the resistive force theory reasonably well.
Keywords
medical robotics; microfluidics; microorganisms; microrobots; patient diagnosis; angular velocities; cylindrical tubes; disease diagnosis; disease screening; drug delivery; flagellar propulsion mechanisms; flexible tails; forward linear velocity; helical pitch; helical radius; medical applications; microfluidic environments; microorganisms; microrobots; minimally-invasive surgery; onboard-powered autonomous robots; resistive force theory; revolute joint; rigid helical tails; small-sized bio-inspired robots; steel wires; travelling planar waves; viscous fluid filled channels; whipping motion; Robots; Stokes flow; autonomous; helical wave propagation; micro swimmer; resistive force theory;
fLanguage
English
Publisher
ieee
Conference_Titel
Mechatronics (ICM), 2011 IEEE International Conference on
Conference_Location
Istanbul
Print_ISBN
978-1-61284-982-9
Type
conf
DOI
10.1109/ICMECH.2011.5971308
Filename
5971308
Link To Document