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Propulsive Performance Analysis of Underwater Flapping Multi-foil

机译:水下拍打多箔推进性能分析

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In recent years, with an increasing interest in the underwater wave glider, which is propelled by converting the ocean wave energy into forward thrust through flapping multi-foil, the flapping-foil aerodynamics has become an important and popular topic of research in the biomimetic field. However, due to the complex marine environment, the wave motion frequency is low and uncontrollable, and the wave amplitude and frequency are non-constant, which make the underwater multi-wing fluttering flow field of the aircraft unsteady. Therefore, it is crucial to study the propulsive characteristics of underwater flapping multi-foil under different conditions. In this paper, hydrodynamics calculation model is built based on the Reynolds-averaged Navier-Stokes (RANS) equation and Realizable model. Two dimensional (2D) NACA foils are applied to establish the hydrodynamic calculation model of flapping multi-foil. The foils are assumed to undergo a combined translational and rotational motion. The unstructured grid was generates by Ansys ICEM. CFD Commercial software Fluent is applied to solve the fluid dynamic characteristics of the flapping multi-foil under various conditions. The results show that flapping multi-foil can produce higher propulsion than a single flapping foil, the interaction of the multi-foil wake was found advantageous for propulsion, it can produce higher propulsion when the distance between the foils is shorter. In this paper, results also show the influence of different factors to the propulsion, which provides a meaningful reference for developing underwater flapping multi-foil vehicle.
机译:近年来,随着对水下波浪滑翔机的兴趣日益浓厚,其通过将襟翼多翼型转换为海浪能量转化为前推力,使得襟翼型空气动力学成为仿生领域研究的重要且受欢迎的课题。 。然而,由于复杂的海洋环境,波的运动频率低且不可控,波的振幅和频率不恒定,使得飞机的水下多翼扑动流场不稳定。因此,研究不同条件下水下拍打多箔的推进特性至关重要。本文基于雷诺平均Navier-Stokes(RANS)方程和Realizable模型,建立了水动力计算模型。应用二维(2D)NACA箔建立拍打多箔的流体力学计算模型。假设箔片经历了组合的平移和旋转运动。非结构化网格是由Ansys ICEM生成的。 CFD商业软件Fluent用于解决各种条件下拍打多箔的流体动力学特性。结果表明,拍打多箔比单拍打箔可以产生更高的推进力,发现多箔尾流的相互作用有利于推进,当箔片之间的距离更短时,它可以产生更高的推进力。本文的研究结果还表明了不同因素对推进力的影响,为开发水下扑翼多翼飞行器提供了有意义的参考。

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