3D Modeling of a Tethered Autogyro with Articulated Rotors and Attitude Control using Differential Rotor Braking
Tasnia Noboni, Tuhin Das
Abstract
A tethered autogyro with articulated rotors can operate as an unmanned aerial vehicle capable of energy-efficient, long-duration deployment by utilizing ambient wind energy to sustain flight. This article presents a model-based attitude control technique for such a system using a full-fidelity dynamic model. Using Lagrangian approach combined with Blade Element Momentum Theory and catenary mechanics, a previously developed 2D hybrid model is extended to three dimensions. The new model describes the complete rigid-body motion of the frame, including roll and yaw dynamics, and is augmented with rotor speed and flapping degrees of freedom for each blade. Equilibrium characteristics are examined through steady-state responses and compared with the prior model. The resulting trends of equilibria are found to be consistent with those reported in the literature. A feedback control strategy based on regenerative differential rotor braking is developed to modulate all three attitude angles. Simulations demonstrate effective attitude regulation and stable flight.
Create a lesson
Related papers
"La Ola-MJO": a public-friendly nickname for the Madden-Julian Oscillation
Takeshi Izumo, Bastien Pagli, Claire Rocuet et al.
Disentangled Fingerprints suggest no historical weakening of Atlantic Overturning and Subpolar Gyre
Bahar Emirzade, Jade Ajagun-Brauns, Maya Ben-Yami et al.
How Much Hyperspectral Information Does Chlorophyll Retrieval Really Need?
Abed Hammoud, Xuerong Sun, Bianca Champenois et al.
Butterfly Effect and the Kinetic Energy Cascade in Probabilistic Machine Learning Weather Prediction Models
Jiakai Chen, Joel Oskarsson, Simon Driscoll et al.
Tropospheric Ozone Formation Potential and Related Design Considerations for Radiative Coolers
Jyothis Anand, Piero Di Carlo, Eleonora Aruffo et al.
Predictability-Guided Multiscale Probabilistic Forecasting of Wind Direction under Extreme Shear
Hailong Shu