Material remodeling and unconventional gaits facilitate locomotion of a robophysical rover over granular terrain

Autonomous robots and vehicles must occasionally recover from locomotion failure in loosely consolidated granular terrain. Recent mobility challenges led NASA Johnson Space Center to develop a prototype robotic lunar rover Resource Prospector 15 (RP15) capable of wheeled, legged, and crawling behavi...

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Vydané v:Science robotics Ročník 5; číslo 42
Hlavní autori: Shrivastava, Siddharth, Karsai, Andras, Aydin, Yasemin Ozkan, Pettinger, Ross, Bluethmann, William, Ambrose, Robert O, Goldman, Daniel I
Médium: Journal Article
Jazyk:English
Vydavateľské údaje: United States 13.05.2020
ISSN:2470-9476, 2470-9476
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Shrnutí:Autonomous robots and vehicles must occasionally recover from locomotion failure in loosely consolidated granular terrain. Recent mobility challenges led NASA Johnson Space Center to develop a prototype robotic lunar rover Resource Prospector 15 (RP15) capable of wheeled, legged, and crawling behavior. To systematically understand the terradynamic performance of such a device, we developed a scaled-down rover robot and studied its locomotion on slopes of dry and wet granular media. Addition of a cyclic-legged gait to the robot's wheel spinning action changes the robot dynamics from that of a wheeled vehicle to a locomotor paddling through frictional fluid. Granular drag force measurements and modified resistive force theory facilitate modeling of such dynamics. A peculiar gait strategy that agitates and cyclically reflows grains under the robot allows it to "swim" up loosely consolidated hills. Whereas substrate disturbance typically hinders locomotion in granular media, the multimode design of RP15 and a diversity of possible gaits facilitate formation of self-organized localized frictional fluids that enable effective robust transport.
Bibliografia:ObjectType-Article-1
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ISSN:2470-9476
2470-9476
DOI:10.1126/scirobotics.aba3499