RHex: A Simple and Highly Mobile Hexapod Robot

RHex: простой и высокомобильный шестиногий робот
Uluc̣ Saranlı, M. Buehler, Daniel E. Koditschek
2001-07-01

RHexclock-driven open-loop tripod gaitcompliant-legged locomotionhexapod robotintrinsic mobility
In this paper, the authors describe the design and control of RHex, a power autonomous, untethered, compliant-legged hexapod robot. RHex has only six actuators—one motor located at each hip— achieving mechanical simplicity that promotes reliable and robust operation in real-world tasks. Empirically stable and highly maneuverable locomotion arises from a very simple clock-driven, open-loop tripod gait. The legs rotate full circle, thereby preventing the common problem of toe stubbing in the protraction (swing) phase. An extensive suite of experimental results documents the robot’s significant “intrinsic mobility”—the traversal of rugged, broken, and obstacle-ridden ground without any terrain sensing or actively controlled adaptation. RHex achieves fast and robust forward locomotion traveling at speeds up to one body length per second and traversing height variations well exceeding its body clearance.
1
A very simple clock-driven, open-loop tripod gait produces empirically stable and highly maneuverable locomotion without complex control.
2
Legs rotate full circle, eliminating toe stubbing during the protraction (swing) phase.
3
RHex attains forward speeds up to one body length per second and can traverse height variations well exceeding its body clearance.
4
RHex exhibits significant intrinsic mobility: it traverses rugged, broken, and obstacle-ridden terrain without terrain sensing or active adaptation.
5
RHex is a power-autonomous, untethered hexapod robot with only six actuators (one motor per hip), achieving mechanical simplicity and robustness.

RHex power-autonomous, untethered compliant-legged hexapod robot

Design and control leading to simple, reliable, highly mobile locomotion (clock-driven open-loop tripod gait, single-hip actuators, full-rotation legs) and the robot's intrinsic mobility over rugged, obstacle-ridden terrain without sensing

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2001-07-01
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Authors
Uluc̣ Saranlı
M. Buehler
Daniel E. Koditschek
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