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Nonlinear model predictive control for hybrid flapping-rotor micro aerial vehicles

dc.contributor.authorHuang, Xun
dc.contributor.authorLu, Linghai
dc.contributor.authorWhidborne, James F.
dc.contributor.authorPavel, Marilena
dc.date.accessioned2026-07-21T11:41:46Z
dc.date.available2026-07-21T11:41:46Z
dc.date.freetoread2026-07-21
dc.date.issued2026-12-31
dc.date.pubOnline2026-05-31
dc.description.abstractTo enhance the aerodynamic efficiency of micro aerial vehicles (MAVs) with rotary wings, a bio-inspired hybrid flapping-wing rotor (HFWR) configuration can be designed that achieves a power efficiency more than twice that of conventional rotors. Nevertheless, up to the present, the controllable flight of HFWR has so far eluded realization due to severe flapping-induced structural vibrations and nonlinear coupling between aerodynamic and elastic dynamics. This paper provides a practical step toward stable, controllable HFWR flight through two key innovations: a thrust-vectoring gimbal architecture that delivers continuous control moments under strong oscillations, and an enhanced nonlinear model predictive control (E-MPC) framework implemented as a distributed two-layer architecture. In this architecture, the outer layer consists of a lower-rate offboard MPC that generates constraint-aware attitude trim and bias commands, while the inner layer is a high-rate onboard proportional angular-rate loop that provides rapid damping of high-frequency perturbations caused by flapping-induced vibrations and communication or optimization latency. Hover and yaw flight tests demonstrate that the integrated architecture improves attitude stability compared with cascade PID and a baseline offboard MPC without the onboard rate loop, reducing peak deviation, overshoot, and steady-state error by up to 83%, 92%, and 80%, respectively, while substantially lowering control energy. These results demonstrate a practical pathway toward stable control of flapping-rotor MAVs for the first time, bridging the gap between bio-inspired aerodynamic efficiency and flight controllability.
dc.description.journalNameJournal of Guidance, Control, and Dynamics
dc.format.extentpp. xx-xx
dc.identifier.citationHuang X, Lu L, Whidborne J, Pavel M. (2026) Nonlinear model predictive control for hybrid flapping-rotor micro aerial vehicles. Journal of Guidance, Control, and Dynamics, Available online 31 May 2026en_UK
dc.identifier.eissn1533-3884
dc.identifier.elementsID870866
dc.identifier.issn0731-5090
dc.identifier.urihttps://doi.org/10.2514/1.g009744
dc.identifier.urihttps://dspace.lib.cranfield.ac.uk/handle/1826/25439
dc.languageEnglish
dc.language.isoen
dc.publisherAmerican Institute of Aeronautics and Astronautics (AIAA)en_UK
dc.publisher.urihttps://arc.aiaa.org/doi/10.2514/1.G009744
dc.rightsAttribution 4.0 Internationalen
dc.rights.urihttp://creativecommons.org/licenses/by/4.0/
dc.subjectUnmanned Aerial Vehicleen_UK
dc.subjectNonlinear Model Predictive Controlen_UK
dc.subjectFlight Testingen_UK
dc.subjectAttitude Stabilizationen_UK
dc.subjectAircraft Wing Designen_UK
dc.subjectRotary Wing Aircraften_UK
dc.subjectAerodynamic Performanceen_UK
dc.subjectModel Predictive Controlen_UK
dc.subjectMicro Aerial Vehiclesen_UK
dc.subjectFlapping-Wing Rotoren_UK
dc.subject4012 Fluid Mechanics and Thermal Engineeringen_UK
dc.subject40 Engineeringen_UK
dc.subject7 Affordable and Clean Energyen_UK
dc.subjectAerospace & Aeronauticsen_UK
dc.subject4001 Aerospace engineeringen_UK
dc.subject4007 Control engineering, mechatronics and roboticsen_UK
dc.subject4017 Mechanical engineeringen_UK
dc.titleNonlinear model predictive control for hybrid flapping-rotor micro aerial vehiclesen_UK
dc.typeArticle
dcterms.dateAccepted2026-05-01

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