Bang-Bang Control Of A Tail-less Morphing Wing Flight

05/12/2022
by   Eric Sihite, et al.
1

Bats' dynamic morphing wings are known to be extremely high-dimensional, and they employ the combination of inertial dynamics and aerodynamics manipulations to showcase extremely agile maneuvers. Bats heavily rely on their highly flexible wings and are capable of dynamically morphing their wings to adjust aerodynamic and inertial forces applied to their wing and perform sharp banking turns. There are technical hardware and control challenges in copying the morphing wing flight capabilities of flying animals. This work is majorly focused on the modeling and control aspects of stable, tail-less, morphing wing flight. A classical control approach using bang-bang control is proposed to stabilize a bio-inspired morphing wing robot called Aerobat. Robot-environment interactions based on horseshoe vortex shedding and Wagner functions is derived to realistically evaluate the feasibility of the bang-bang control, which is then implemented on the robot in experiments to demonstrate first-time closed-loop stable flights of Aerobat.

READ FULL TEXT

page 1

page 3

page 5

research
07/31/2023

Hovering Control of Flapping Wings in Tandem with Multi-Rotors

This work briefly covers our efforts to stabilize the flight dynamics of...
research
09/30/2022

Towards Safe Landing of Falling Quadruped Robots Using a 3-DoF Morphable Inertial Tail

Falling cat problem is well-known where cats show their super aerial reo...
research
10/12/2020

Implementation of a neural network for non-linearities estimation in a tail-sitter aircraft

The control of a tail-sitter aircraft is a challenging task, especially ...
research
12/10/2022

Aerobat, A Bioinspired Drone to Test High-DOF Actuation and Embodied Aerial Locomotion

This work presents an actuation framework for a bioinspired flapping dro...
research
05/11/2020

Towards biomimicry of a bat-style perching maneuver on structures: the manipulation of inertial dynamics

The flight characteristics of bats remarkably have been overlooked in ae...
research
11/18/2015

Comparative Design, Scaling, and Control of Appendages for Inertial Reorientation

This paper develops a comparative framework for the design of actuated i...
research
06/07/2022

Physics-Inspired Temporal Learning of Quadrotor Dynamics for Accurate Model Predictive Trajectory Tracking

Accurately modeling quadrotor's system dynamics is critical for guarante...

Please sign up or login with your details

Forgot password? Click here to reset