CFD study of propeller tip vortex cavitation

IF 3.6 2区 工程技术 Q1 MECHANICS
Yu-Xin Zhang , Yue-Xing Zhu , Lei Zhang , Zheng-Tong Yang , Yu-Long Li
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Abstract

Tip vortex cavitation (TVC) caused by a marine propeller is a complex cavitating flow phenomenon, often featured by long helical trajectories making it challenging to simulate numerically. This paper presents a study on the CFD simulation of TVC with the focus on four key influence factors: mesh size, turbulence modeling, gas content, and Reynolds number. For the effect of mesh size, the simulations with different mesh refinement strategies show that the TVC is highly sensitive to mesh sizes and it is crucial to refine the mesh in the propeller wake. The adaptive mesh refinement method used in this study is shown to be effective in refining the mesh where the tip vortex locates. Compared with RANS (Reynolds averaged Navier-Stokes equations) method, IDDES (Improved Delayed Detached Eddy Simulation) method produces a noticeably better result since the dissipation of the tip vortex in the IDDES simulation is weaker. To suppress the dissipation of the tip vortices, vorticity confinement (VC) method is applied. The VC method significantly improved the TVC trajectory prediction for IDDES simulation, even with a less refined mesh, but it is not effective for RANS simulation. The effect of gas nuclei in water is considered by utilizing an Euler-Lagrangian method combined with a modified Schnarr-Sauer cavitation model in which a group of Lagrangian gas bubbles are used to model the non-condensable gas. The improvement on the TVC trajectory is notable by considering the air bubble effect. The effect of Reynolds number on TVC simulation is discussed by modifying the propeller's rotational speeds. Results show that the high Reynolds number gives a stronger tip vortex thus resulting in a longer TVC trajectory, but the improvement is limited compared with the effect of the other three influence factors.

Abstract Image

螺旋桨叶尖涡流空化的 CFD 研究
船用螺旋桨引起的桨尖涡旋气蚀(TVC)是一种复杂的气蚀流动现象,通常具有长螺旋轨迹,因此对其进行数值模拟极具挑战性。本文对 TVC 的 CFD 仿真进行了研究,重点关注四个关键影响因素:网格尺寸、湍流建模、气体含量和雷诺数。对于网格尺寸的影响,不同网格细化策略的模拟结果表明,TVC 对网格尺寸高度敏感,因此在螺旋桨尾流中细化网格至关重要。本研究采用的自适应网格细化方法可有效细化尖端涡流所在的网格。与 RANS(雷诺平均纳维-斯托克斯方程)方法相比,IDDES(改进的延迟分离涡模拟)方法的结果明显更好,因为 IDDES 模拟中尖端涡的耗散较弱。为了抑制尖端涡的耗散,采用了涡度限制(VC)方法。VC 方法明显改善了 IDDES 模拟的 TVC 轨迹预测,即使网格细化程度较低,但对 RANS 模拟无效。利用欧拉-拉格朗日方法结合改进的 Schnarr-Sauer 空化模型,考虑了水中气体核的影响。考虑到气泡效应,TVC轨迹得到显著改善。通过修改螺旋桨的转速,讨论了雷诺数对 TVC 模拟的影响。结果表明,高雷诺数会产生更强的尖端涡流,从而导致更长的 TVC 轨迹,但与其他三个影响因素的效果相比,改善有限。
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来源期刊
CiteScore
7.30
自引率
10.50%
发文量
244
审稿时长
4 months
期刊介绍: The International Journal of Multiphase Flow publishes analytical, numerical and experimental articles of lasting interest. The scope of the journal includes all aspects of mass, momentum and energy exchange phenomena among different phases such as occur in disperse flows, gas–liquid and liquid–liquid flows, flows in porous media, boiling, granular flows and others. The journal publishes full papers, brief communications and conference announcements.
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