spanwise flexibility
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Author(s):  
Annika-verena Haecker ◽  
Gabriel N. Carryon ◽  
James L. Tangorra ◽  
Thomas Sattel

Abstract The ability to change the spatial distribution of a compliant foil’s flexural rigidity can enhance the foil’s swimming performance capabilities but pose challenges to neural-based control of these types of foils. The same property that makes these foil’s effective propulsors also makes them challenging to control with a neural oscillator, namely the variation in the mechanical properties will cause the amplitude and phase of the sensory feedback signal to vary depending upon the placement of the sensor. In this study we investigate the effect of sensor placement on the entrainment characteristics of a coupled-system consisting of a neural oscillator driving a series of compliant foils with spanwise flexibility (i.e. spatially varying mechanical properties in the dorsal-ventral direction). We find that acquiring sensory feedback from the foil’s stiff region produces a broader range of frequencies over which entrainment occurs compared to acquiring feedback from the compliant region of a foil. Additionally, we characterize the thrust and lift forces generated by spanwise foils as a function of the foil’s flapping frequency and flexural rigidity.


2018 ◽  
Vol 30 (5) ◽  
pp. 859-871 ◽  
Author(s):  
Dan Xia ◽  
Wei-shan Chen ◽  
Jun-kao Liu ◽  
Xiang Luo

2017 ◽  
Vol 14 (136) ◽  
pp. 20170725 ◽  
Author(s):  
Deepa Kodali ◽  
Cory Medina ◽  
Chang-kwon Kang ◽  
Hikaru Aono

Flying animals possess flexible wings that deform during flight. The chordwise flexibility alters the wing shape, affecting the effective angle of attack and hence the surrounding aerodynamics. However, the effects of spanwise flexibility on the locomotion are inadequately understood. Here, we present a two-way coupled aeroelastic model of a plunging spanwise flexible wing. The aerodynamics is modelled with a two-dimensional, unsteady, incompressible potential flow model, evaluated at each spanwise location of the wing. The two-way coupling is realized by considering the transverse displacement as the effective plunge under the dynamic balance of wing inertia, elastic restoring force and aerodynamic force. The thrust is a result of the competition between the enhancement due to wing deformation and induced drag. The results for a purely plunging spanwise flexible wing agree well with experimental and high-fidelity numerical results from the literature. Our analysis suggests that the wing aspect ratio of the abstracted passerine and goose models corresponds to the optimal aeroelastic response, generating the highest thrust while minimizing the power required to flap the wings. At these optimal aspect ratios, the flapping frequency is near the first spanwise natural frequency of the wing, suggesting that these birds may benefit from the resonance to generate thrust.


2013 ◽  
Vol 40 ◽  
pp. 86-104 ◽  
Author(s):  
Raymond E. Gordnier ◽  
Satish Kumar Chimakurthi ◽  
Carlos E.S. Cesnik ◽  
Peter J. Attar

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