DocumentCode
1521381
Title
Design and Fabrication of Soft Artificial Skin Using Embedded Microchannels and Liquid Conductors
Author
Park, Yong-Lae ; Chen, Bor-Rong ; Wood, Robert J.
Author_Institution
Wyss Inst. for Biologically Inspired Eng., Harvard Univ., Boston, MA, USA
Volume
12
Issue
8
fYear
2012
Firstpage
2711
Lastpage
2718
Abstract
We describe the design, fabrication, and calibration of a highly compliant artificial skin sensor. The sensor consists of multilayered mircochannels in an elastomer matrix filled with a conductive liquid, capable of detecting multiaxis strains and contact pressure. A novel manufacturing method comprised of layered molding and casting processes is demonstrated to fabricate the multilayered soft sensor circuit. Silicone rubber layers with channel patterns, cast with 3-D printed molds, are bonded to create embedded microchannels, and a conductive liquid is injected into the microchannels. The channel dimensions are 200 μm (width) × 300 μm (height). The size of the sensor is 25 mm × 25 mm, and the thickness is approximately 3.5 mm. The prototype is tested with a materials tester and showed linearity in strain sensing and nonlinearity in pressure sensing. The sensor signal is repeatable in both cases. The characteristic modulus of the skin prototype is approximately 63 kPa. The sensor is functional up to strains of approximately 250%.
Keywords
calibration; casting; elastomers; intelligent sensors; layered manufacturing; materials testing; matrix algebra; microchannel flow; pressure sensors; silicone rubber; skin; strain sensors; 3D printed mold; artificial skin sensor; calibration; casting process; channel pattern; conductive liquid; contact pressure detection; elastomer matrix; embedded sensor; fabrication; layered molding; manufacturing method; materials tester; multiaxis strain detection; multilayered mircochannel; multilayered soft sensor circuit; pressure sensor; silicone rubber layer; size 200 mum; size 25 mm; size 3.5 mm; size 300 mum; skin prototype; strain sensor; Materials; Microchannel; Prototypes; Robot sensing systems; Skin; Strain; Artificial skin; eutectic gallium indium (EGaIn); pressure sensing; soft sensors; strain sensing;
fLanguage
English
Journal_Title
Sensors Journal, IEEE
Publisher
ieee
ISSN
1530-437X
Type
jour
DOI
10.1109/JSEN.2012.2200790
Filename
6203551
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