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Modulation of Flight Muscle Recruitment and Wing Rotation Enables Hummingbirds to Mitigate Aerial Roll Perturbations.
Ravi, Sridhar; Noda, Ryusuke; Gagliardi, Susie; Kolomenskiy, Dmitry; Combes, Stacey; Liu, Hao; Biewener, Andrew A; Konow, Nicolai.
Affiliation
  • Ravi S; School of Engineering and Information Technology and Australian Defense Force Academy, University of New South Wales, Canberra, Northcott Drive, Campbell, Canberra 2612, Australia.
  • Noda R; Department of Mechanical Engineering, Kanto Gakuin University, 1 Chome-50-1 Mutsuurahigashi, Kanazawa Ward, Yokohama, Kanagawa 236-8501, Japan.
  • Gagliardi S; Department of Neurobiology, Physiology and Behavior, University of California, Davis, 155A Hutchison Hall, Davis, CA 95616, USA.
  • Kolomenskiy D; Japan Agency for Marine-Earth Science and Technology (JAMSTEC), 2-15, Natsushimacho, Yokosuka, Kanagawa 237-0061, Japan.
  • Combes S; Department of Neurobiology, Physiology and Behavior, University of California, Davis, 155A Hutchison Hall, Davis, CA 95616, USA.
  • Liu H; Graduate School of Engineering, Chiba University, 1-33 Yayoicho, Inage Ward, Chiba 263-8522, Japan.
  • Biewener AA; Department of Organismic and Evolutionary Biology, Harvard University, 26 Oxford Street, Cambridge, MA 02138, USA.
  • Konow N; Department of Organismic and Evolutionary Biology, Harvard University, 26 Oxford Street, Cambridge, MA 02138, USA; Department of Biological Sciences, UMass Lowell, Lowell, MA 01854, USA. Electronic address: nicolai_konow@uml.edu.
Curr Biol ; 30(2): 187-195.e4, 2020 01 20.
Article in En | MEDLINE | ID: mdl-31902723
Both biological and artificial fliers must contend with aerial perturbations that are ubiquitous in the outdoor environment. Flapping fliers are generally least stable but also most maneuverable around the roll axis, yet our knowledge of roll control in biological fliers remains limited. Hummingbirds are suitable models for linking aerodynamic perturbations to flight control strategies, as these small, powerful fliers are capable of remaining airborne even in adverse wind conditions. We challenged hummingbirds to fly within a steady, longitudinally (streamwise) oriented vortex that imposed a continuous roll perturbation, measured wing kinematics and neuromotor activation of the flight muscles with synchronized high-speed video and electromyography and used computational fluid dynamics (CFD) to estimate the aerodynamic forces generated by observed wing motions. Hummingbirds responded to the perturbation with bilateral differences in activation of the main flight muscles while maintaining symmetry in most major aspects of wing motion, including stroke amplitude, stroke plane angle, and flapping frequency. Hummingbirds did display consistent bilateral differences in subtler wing kinematic traits, including wing rotation and elevation. CFD modeling revealed that asymmetric wing rotation was critical for attenuating the effects of the perturbation. The birds also augmented flight stabilization by adjusting body and tail posture to expose greater surface area to upwash than to the undesirable downwash. Our results provide insight into the remarkable capacity of hummingbirds to maintain flight control, as well as bio-inspiration for simple yet effective control strategies that could allow robotic fliers to contend with unfamiliar and challenging real-world aerial conditions.
Subject(s)

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Wings, Animal / Birds / Muscle, Skeletal / Flight, Animal Limits: Animals Language: En Journal: Curr Biol Journal subject: BIOLOGIA Year: 2020 Document type: Article Affiliation country: Australia Country of publication: United kingdom

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Wings, Animal / Birds / Muscle, Skeletal / Flight, Animal Limits: Animals Language: En Journal: Curr Biol Journal subject: BIOLOGIA Year: 2020 Document type: Article Affiliation country: Australia Country of publication: United kingdom