Abstract
Natural phenomena such as insect migration and the thermal soaring of birds in turbulent environments demonstrate animals’ abilities to exploit complex flow structures without knowledge of global velocity profiles. Similar energy-harvesting features can be observed in other natural phenomena such as particle transport in turbulent fluids. This paper presents a new feedback control approach inspired by experimental studies on particle transport that have recently illuminated particles’ ability to traverse homogeneous turbulence through the so-called fast-tracking effect. While in nature fast tracking is observed only in particles with inertial characteristics that match the flow parameters, the new fast-tracking feedback control approach presented in this paper employs available propulsion and actuation to allow the vehicle to respond to the surrounding flow in the same manner as ideal fast-tracking particles would. The resulting fast-tracking closed-loop controlled vehicle is then able to leverage homogeneous turbulent flow structures, such as sweeping eddies, to reduce travel time and energy consumption. The fast-tracking approach is shown to significantly outperform existing optimal control solutions, such as linear quadratic regulator and bang-bang control, and to be robust to changes in the vehicle characteristics and/or turbulent flow parameters.
Funder
Office of Naval Research
United States Air Force Office of Scientific Research
Subject
Molecular Medicine,Biomedical Engineering,Biochemistry,Biomaterials,Bioengineering,Biotechnology
Reference96 articles.
1. Thermal soaring flight of birds and unmanned aerial vehicles;Bioinspir. Biomim.,2010
2. Thermal soaring compared in three dissimilar tropical bird species, Fregata magnificens, Pelecanus occidentals and Coragyps atratus;J. Exp. Biol.,1983
3. Meteorological and environmental variables affect flight behaviour and decision-making of an obligate soaring bird, the California Condor Gymnogyps californianus;IBIS,2018
4. Deittert, M., Richards, A., Toomer, C., and Pipe, A. (2009, January 10–13). Dynamic soaring flight in turbulence. Proceedings of the AIAA Guidance, Navigation, and Control Conference, Chicago, IL, USA.
5. Panta, K., Gramignano, J., Moser, T., Cheng, B., and Eslam-Panah, A. (2021, January 21–23). The Interaction Between a Plunging Wing and Gusty Environment. Proceedings of the 74th Annual Meeting of the APS Division of Fluid Dynamics, Phoenix, AZ, USA.