OCEAN ENGINEERING | 卷:238 |
Three-dimensional propulsion characteristics of counter-phase oscillating dual-foil propulsor | |
Article | |
Wang, Jiadong1  Liu, Pengfei2  Chin, Christopher1  He, Guanghua3  Mo, Weijie3  | |
[1] Univ Tasmania, Australian Maritime Coll, Launceston, Tas 7250, Australia | |
[2] Newcastle Univ, Sch Engn, Newcastle Upon Tyne NE1 7RU, Tyne & Wear, England | |
[3] Harbin Inst Technol, Sch Ocean Engn, Weihai 264209, Peoples R China | |
关键词: Marine propulsion; Three-dimensional effect; Wing-in-ground effect; Oscillating foils; Hydro-elasticity; | |
DOI : 10.1016/j.oceaneng.2021.109761 | |
来源: Elsevier | |
【 摘 要 】
A three-dimensional computational study was conducted on the propulsive performance of auto-pitch wing-inground effect oscillating foil propulsors (APWIGs) using an unsteady Reynolds Averaged Navier-Stokes solver. This novel propulsor is characterized as the combination of dual-foil configuration and spring-based pitching motion. Both the counter-phase oscillating dual-foil arrangement with produced wing-in-ground (WIG) effect and the auto-pitch mechanism based on attached torsional springs are expected to be favorable for performance improvement. To clearly identify the role of two concerned parameters for APWIGs, the study was divided into two parts of simulations to examine aspect ratio and torsional spring stiffness separately. Firstly, the effect of aspect ratio on the hydrodynamic characteristics was investigated by a fully prescribed oscillating dual-foil configuration. The current computations covering a wide range of aspect ratio from 1 to 10 indicated that the three-dimensional effect tends to dominate the propulsion hydrodynamics with a value of lower than 2. The maximum drop of 14.85% in propulsive efficiency due to the finite-span effect was found at the aspect ratio of 1, while a moderate aspect ratio of 4 leads to an acceptable efficiency loss of 3.22%. Secondly, the threedimensional hydro-elasticity characteristics of APWIGs as a function of spring stiffness were studied by employing a fixed aspect ratio. A relatively low aspect ratio in which the finite-span effect is still dominant was selected to compare the three-dimensional simulations with two-dimensional predictions. It was observed that the torsional spring stiffness has a significant influence on both hydrodynamic performance and vortex structures of finite-span APWIGs. There exists an optimum spring stiffness for finite-span APWIGs corresponding to the highest efficiency, which resembles the hydro-elasticity characteristics of two-dimensional cases. An averaged efficiency loss of around 10% was reported owing to the low-aspect-ratio effect for three-dimensional APWIGs.
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