DocumentCode :
2915434
Title :
Hydrodynamic characteristics of two oscillating fins in series with heave-pitch coupled motions
Author :
Chiu, Forng-Chen ; Chien, Yi-Ting ; Tiao, Wen-Chuan
Author_Institution :
Dept. of Eng. Sci. & Ocean Eng., Nat. Taiwan Univ., Taipei, Taiwan
fYear :
2012
fDate :
21-24 May 2012
Firstpage :
1
Lastpage :
7
Abstract :
Autonomous underwater gliders have rapidly become mature technologies in recent years. They have also been proved to be a successful tool for ocean sampling with an even wider range of future possibilities. An underwater glider is propelled by a buoyancy engine to adjust the difference between buoyancy and weight, combining with the lift induced by the wing. In general, an underwater glider can ascend and descend obliquely on a sawtooth trajectory but it lacks capability to move horizontally. Due to this reason, a concept design of biomimetic propulsor with two serial oscillating fins for enhancing the horizontal mobility of an underwater glider was proposed. The propulsor consists of a flapping fore fin acting as a leading edge vortex generator, and a flapping rear fin acting as a vortex manipulator. It was found in the previous paper that both thrust and efficiency can be improved significantly in comparing with the single fin model. However, the propulsion efficiency of the serial fins oscillating with only pitch motion is still not sufficient for practical use; even it has been enhanced by an added fore fin. Two oscillating fins in series with heave-pitch coupled motions are expected to have much higher propulsion efficiency. The investigations on its hydrodynamic characteristics via CFD simulations are conducted in the present paper. The rear-fin effects and the fore-fin contributions on propulsive performance are clarified. The optimal oscillating modes of the fore fin on enhancing the propulsion efficiency are discussed and their corresponding wake mechanisms are demonstrated. It is known that the optimal thrust coefficient and efficiency of the present two-fin model increase approximately 26% and 20% higher than the single fin model and their magnitudes reach 1.26 and 79.52%, respectively.
Keywords :
aerospace components; autonomous underwater vehicles; biomimetics; computational fluid dynamics; engines; hydrodynamics; marine propulsion; oceanographic techniques; vortices; CFD; autonomous underwater glider; biomimetic propulsor; buoyancy engine; edge vortex generator; fore-fin effect; heave pitch coupled motion; hydrodynamic characteristics; ocean sampling; oscillating fins; rear-fin effect; sawtooth trajectory; thrust coefficient; vortex manipulator; wing; Equations; Hydrodynamics; Marine animals; Mathematical model; Numerical models; Oceans; Propulsion; heave-pitch coupled motions; hydrodynamic characteristics; oscillating fin; underwater glider;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
OCEANS, 2012 - Yeosu
Conference_Location :
Yeosu
Print_ISBN :
978-1-4577-2089-5
Type :
conf
DOI :
10.1109/OCEANS-Yeosu.2012.6263528
Filename :
6263528
Link To Document :
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