Abstract
AbstractThe polymer gels with the properties of high strength and low friction show promise as the ideal materials for a living body-like soft robot joint. To date, the relationship between contact area and friction behavior of hydrogels has been revealed from the observation of flat frictional surface. Here, we designed the microscopic observation system for the friction surface of soft materials under deformation condition. A specially arranged ball-on-disk measuring part was combined with inverted microscope to observe the frictional interface during the friction. Both of transparent glass ball and moving glass stage were employed in this instrument and the microscope camera was thereby able to take the moving picture of frictional interface imaged by the refractive index differences between a soda-lime glass ball, transparent hydrogels and air. By using this customized measuring instrument, when water was not rich on the friction surface, the moving pictures of the frictional interface between glass ball and transparent polymer gels were observed while measuring the frictional force. The visualized frictional contact area due to the differences of refractive index and the frictional measurement data indicated that the local deformation by adhesion between gels and counter sample cause high friction resistant as a static friction coefficient.
Funder
Japan Society for the Promotion of Science
Japan Science and Technology Agency
Cabinet Office, Government of Japan
Ministry of Education, Culture, Sports, Science and Technology
Publisher
Springer Science and Business Media LLC
Subject
Electrical and Electronic Engineering,Hardware and Architecture,Condensed Matter Physics,Electronic, Optical and Magnetic Materials
Reference24 articles.
1. Gong JP, Higa M, Iwasaki Y, Katsuyama Y, Osada Y (1997) Friction of gels. J Phys Chem B 101:5487–5489
2. Gong JP, Kagata G, Iwasaki Y, Osada Y (2001) Surface friction of polymer gels 1. Effect of interfacial interaction. Wear 251:1183–1187
3. Gong JP, Katsuyama Y, Kurokawa T, Osada Y (2003) Double network hydrogels with extremely high mechanical strength. Adv Mater 15(14):1155–1158
4. Green JJ, Elisseeff JH (2015) Mimicking biological functionality with polymers for biomedical applications. Nature 540(7633):386–394
5. Grosch KA (1963) The relation between the friction and viscoelastic properties of rubber. Proc R Soc Lond Ser A Math Phys 274(1356):21–39