Experimental and numerical study on unsteady entrainment behaviour of ventilated air mass in underwater vehicles

IF 1.3 4区 工程技术 Q3 MECHANICS Fluid Dynamics Research Pub Date : 2023-09-05 DOI:10.1088/1873-7005/acf6de
Zhaoyu Qu, N. Yang, Xiongliang Yao, Wenhua Wu, Guihui Ma
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Abstract

The hydrodynamic characteristics of underwater vehicles are significantly affected by the ventilated cavity covered by the vehicle surface. In this paper, the unsteady flow characteristics of this ventilated cavity are studied using experimental and numerical methods, and the unsteady entrainment behaviour of the ventilated air mass is emphasised. The flow pattern of the ventilated air mass is recorded using a high-speed camera. The large eddy simulation turbulence model is employed for the numerical simulations, and a good agreement is observed between the experimental and numerical results. In the early stage of the formation of the ventilated air mass, the internal structure exhibits a symmetric kidney vortex system, while the ventilated cavity below the vent hole has a continuous hairpin vortex structure. The ventilated air mass experiences a growth stage, an entrainment stage, and a shedding stage. The entrainment behaviour enables the ventilated air mass to quickly fill the ventilated cavity and modifies the surface pressure distribution of the vehicle. As the cavitation number decreases, the radial size of the ventilated cavity increases, and the contact area between the cavity and the water body increases, thus enhancing the vertical drag coefficient of the vehicle.
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水下航行器通风气团非定常夹带特性的实验与数值研究
水下航行器的水动力特性受到其表面覆盖的通气腔的显著影响。本文采用实验和数值方法研究了该通气腔的非定常流动特性,重点研究了通气气团的非定常流动特性。使用高速摄像机记录通风气团的流动模式。采用大涡模拟湍流模型进行数值模拟,实验结果与数值结果吻合较好。通气气团形成初期,内部结构呈对称肾涡系统,排气孔下方的通气腔呈连续的发夹涡结构。通风气团经历生长阶段、夹带阶段和脱落阶段。夹带行为使通风气团能够快速填充通风腔,并改变车辆的表面压力分布。随着空化数的减少,通风空腔径向尺寸增大,空腔与水体的接触面积增大,从而增强了车辆的垂直阻力系数。
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来源期刊
Fluid Dynamics Research
Fluid Dynamics Research 物理-力学
CiteScore
2.90
自引率
6.70%
发文量
37
审稿时长
5 months
期刊介绍: Fluid Dynamics Research publishes original and creative works in all fields of fluid dynamics. The scope includes theoretical, numerical and experimental studies that contribute to the fundamental understanding and/or application of fluid phenomena.
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