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Quadrupedal Locomotion Control On Inclined Surfaces Using Collocation Method
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Inspired by Chukars wing-assisted incline running (WAIR), in this work, we employ a high-fidelity model of our Husky Carbon quadrupedal-legged robot to walk over steep slopes of up to 45 degrees. Chukars use the aerodynamic forces generated by their flapping wings to manipulate ground contact forces and traverse steep slopes and even overhangs. By exploiting the thrusters on Husky, we employed a collocation approach to rapidly resolving the joint and thruster actions. Our approach uses a polynomial approximation of the reduced-order dynamics of Husky, called HROM, to quickly and efficiently find optimal control actions that permit high-slope walking without violating friction cone conditions.
Forward citations
Cited by 4 Pith papers
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Quadratic Programming-Based Posture Manipulation and Thrust-vectoring for Agile Dynamic Walking on Narrow Pathways
A centroidal-dynamics MPC controller with thrust-vectoring enables a simulated quadruped to walk on a narrow beam and reject lateral pushes.
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Analysis of Harpy's Constrained Trotting and Jumping Maneuver
The provided manuscript text does not contain the claimed analysis of the Harpy robot, making the abstract's conclusions unverifiable from this document.
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Enabling steep slope walking on Husky using reduced order modeling and quadratic programming
A simulation demonstrates that a variable-length inverted pendulum model with thruster forces and a quadratic-programming controller can track a 40-degree slope reference motion, but hardware transfer is unproven.
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Optimization free control and ground force estimation with momentum observer for a multimodal legged aerial robot
An Explicit Reference Governor plus a conjugate momentum observer estimates ground reaction forces and prevents foot slip in a simulated thruster-assisted legged robot.
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