Allocation for Omnidirectional Aerial Robots: Incorporating Power Dynamics

Fuente: arXiv
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Main Authors: Cuniato, Eugenio, Allenspach, Mike, Stastny, Thomas, Oleynikova, Helen, Siegwart, Roland, Pantic, Michael
Format: Preprint
Published: 2024
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author Cuniato, Eugenio
Allenspach, Mike
Stastny, Thomas
Oleynikova, Helen
Siegwart, Roland
Pantic, Michael
author_facet Cuniato, Eugenio
Allenspach, Mike
Stastny, Thomas
Oleynikova, Helen
Siegwart, Roland
Pantic, Michael
contents Tilt-rotor aerial robots are more dynamic and versatile than fixed-rotor platforms, since the thrust vector and body orientation are decoupled. However, the coordination of servos and propellers (the allocation problem) is not trivial, especially accounting for overactuation and actuator dynamics. We incrementally build and present three novel allocation methods for tilt-rotor aerial robots, comparing them to state-of-the-art methods on a real system performing dynamic maneuvers. We extend the state-of-the-art geometric allocation into a differential allocation, which uses the platform's redundancy and does not suffer from singularities. We expand it by incorporating actuator dynamics and propeller power dynamics. These allow us to model dynamic propeller acceleration limits, bringing two main advantages: balancing propeller speed without the need for nullspace goals and allowing the platform to selectively turn off propellers during flight, opening the door to new manipulation possibilities. We also use actuator dynamics and limits to normalize the allocation problem, making it easier to tune and allowing it to track 70% faster trajectories than a geometric allocation.
format Preprint
id arxiv_https___arxiv_org_abs_2412_16107
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Allocation for Omnidirectional Aerial Robots: Incorporating Power Dynamics
Cuniato, Eugenio
Allenspach, Mike
Stastny, Thomas
Oleynikova, Helen
Siegwart, Roland
Pantic, Michael
Robotics
Tilt-rotor aerial robots are more dynamic and versatile than fixed-rotor platforms, since the thrust vector and body orientation are decoupled. However, the coordination of servos and propellers (the allocation problem) is not trivial, especially accounting for overactuation and actuator dynamics. We incrementally build and present three novel allocation methods for tilt-rotor aerial robots, comparing them to state-of-the-art methods on a real system performing dynamic maneuvers. We extend the state-of-the-art geometric allocation into a differential allocation, which uses the platform's redundancy and does not suffer from singularities. We expand it by incorporating actuator dynamics and propeller power dynamics. These allow us to model dynamic propeller acceleration limits, bringing two main advantages: balancing propeller speed without the need for nullspace goals and allowing the platform to selectively turn off propellers during flight, opening the door to new manipulation possibilities. We also use actuator dynamics and limits to normalize the allocation problem, making it easier to tune and allowing it to track 70% faster trajectories than a geometric allocation.
title Allocation for Omnidirectional Aerial Robots: Incorporating Power Dynamics
topic Robotics
url https://arxiv.org/abs/2412.16107