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Quasi-steady aerodynamic model of clap-and-fling flapping MAV and validation using free-flight data
- Publication Year :
- 2016
- Publisher :
- IOP Publishing, 2016.
-
Abstract
- Flapping-wing aerodynamic models that are accurate, computationally efficient and physically meaningful, are challenging to obtain. Such models are essential to design flapping-wing micro air vehicles and to develop advanced controllers enhancing the autonomy of such vehicles. In this work, a phenomenological model is developed for the time-resolved aerodynamic forces on clap-and-fling ornithopters. The model is based on quasi-steady theory and accounts for inertial, circulatory, added mass and viscous forces. It extends existing quasi-steady approaches by: including a fling circulation factor to account for unsteady wing-wing interaction, considering real platform-specific wing kinematics and different flight regimes. The model parameters are estimated from wind tunnel measurements conducted on a real test platform. Comparison to wind tunnel data shows that the model predicts the lift forces on the test platform accurately, and accounts for wing-wing interaction effectively. Additionally, validation tests with real free-flight data show that lift forces can be predicted with considerable accuracy in different flight regimes. The complete parameter-varying model represents a wide range of flight conditions, is computationally simple, physically meaningful and requires few measurements. It is therefore potentially useful for both control design and preliminary conceptual studies for developing new platforms.
- Subjects :
- DYNAMICS
Technology
Physiology
wind tunnel
02 engineering and technology
Kinematics
01 natural sciences
Biochemistry
09 Engineering
010305 fluids & plasmas
HOVERING INSECT FLIGHT
Engineering
0203 mechanical engineering
Biomimetic Materials
Wings, Animal
Wind tunnel
Added mass
020301 aerospace & aeronautics
Materials Science, Biomaterials
VEHICLE
02 Physical Sciences
flapping-wing micro air vehicle
clap-and-fling
Aerodynamics
Equipment Design
Robotics
unsteady forces
Biomechanical Phenomena
Aerodynamic force
Molecular Medicine
Flapping
Free flight
Butterflies
Biotechnology
quasi-steady aerodynamics
WEIS-FOGH CLAP
Materials Science
Biophysics
Engineering, Multidisciplinary
Models, Biological
WING ROTATION
MECHANISMS
0103 physical sciences
Animals
KINEMATICS
Aerospace engineering
Engineering (miscellaneous)
system identification
LIFT
Science & Technology
free flight
IDENTIFICATION
business.industry
System identification
06 Biological Sciences
Flight, Animal
business
GENERATION
Subjects
Details
- Language :
- English
- Database :
- OpenAIRE
- Accession number :
- edsair.doi.dedup.....53784e4420f51afee94ab41b601a9ebb