DocumentCode
2389767
Title
Climbing rough vertical surfaces with hierarchical directional adhesion
Author
Asbeck, Alan ; Dastoor, Sanjay ; Parness, Aaron ; Fullerton, Laurel ; Esparza, Noe ; Soto, Daniel ; Heyneman, Barrett ; Cutkosky, Mark
Author_Institution
Stanford Univ., Stanford, CA, USA
fYear
2009
fDate
12-17 May 2009
Firstpage
2675
Lastpage
2680
Abstract
Prior research in biology and mechanics has shown the importance of hierarchy to the performance of dry adhesive systems on rough surfaces. The gecko utilizes several levels of hierarchy that operate on length scales from millimeters to 100s of nanometers in order to maneuver on smooth and rough vertical surfaces ranging from glass to rock. The gecko´s hierarchical system serves two main purposes: it permits conformation to the surface for a large effective area of contact, and it distributes the load evenly among contacting elements. We present a new two-tiered directional adhesive system that provides these capabilities for a gecko-inspired climbing robot. The distal features consist of wedge-shaped structures with a base width of 50 mum and a height of approximately 180 mum. The wedges are mounted atop angled cylindrical features, 380 mum in diameter by approximately 1 mm long. Together, the proximal and distal features bend preferentially in the direction of inclination when loaded with a tangential force, achieving a combination of directional adhesion and conformation to rough surfaces. Using this system, a four legged robot that was previously restricted to climbing smooth surfaces is able to climb vertical surfaces such as a wood panels, painted metals, and plastics. On rougher surfaces, the two-tiered system improves adhesion by a factor of five compared to the wedge features alone. The hierarchical system also improved alignment and performance for large patch sizes.
Keywords
adhesives; hierarchical systems; mobile robots; dry adhesive systems; gecko-inspired climbing robot; hierarchical directional adhesion; hierarchical system; rough vertical surfaces climbing; Adhesives; Climbing robots; Glass; Hierarchical systems; Manufacturing; Nanobioscience; Polymers; Rough surfaces; Surface roughness; Testing;
fLanguage
English
Publisher
ieee
Conference_Titel
Robotics and Automation, 2009. ICRA '09. IEEE International Conference on
Conference_Location
Kobe
ISSN
1050-4729
Print_ISBN
978-1-4244-2788-8
Electronic_ISBN
1050-4729
Type
conf
DOI
10.1109/ROBOT.2009.5152864
Filename
5152864
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