Numerical simulation of tip clearance impact on a pumpjet propulsor

被引:46
作者
Lu, Lin [1 ]
Pan, Guang [1 ]
Wei, Jing [1 ]
Pan, Yipeng [2 ]
机构
[1] Northwestern Polytech Univ, Inst Underwater Vehicle, Sch Marine Sci & Technol, Xian 710072, Peoples R China
[2] Florida Inst Technol, Dept Marine & Environm Syst, Melbourne, FL 32901 USA
基金
中国国家自然科学基金;
关键词
Computational Fluid Dynamics (CFD); Pumpjet propulsor; Tip leakage vortex; Tip clearance; PROPELLER CAVITATION; PERFORMANCE; FLOWS; COMPUTATION;
D O I
10.1016/j.ijnaoe.2016.02.003
中图分类号
U6 [水路运输]; P75 [海洋工程];
学科分类号
0814 ; 081505 ; 0824 ; 082401 ;
摘要
Numerical simulation based on the Reynolds Averaged Navier-Stokes (RAMS) Computational Fluid Dynamics (CFD) method had been carried out with the commercial code ANSYS CFX. The structured grid and SST k-omega turbulence model had been adopted. The impact of non condensable gas (NCG) on cavitation performance had been introduced into the Schnerr and Sauer cavitation model. The numerical investigation of cavitating flow of marine propeller E779A was carried out with different advance ratios and cavitation numbers to verify the numerical simulation method. Tip clearance effects on the performance of pumpjet propulsor had been investigated. Results showed that the structure and characteristics of the tip leakage vortex and the efficiency of the propulsor dropped more sharply with the increase of the tip clearance size. Furthermore, the numerical simulation of tip clearance cavitation of pumpjet propulsor had been presented with different rotational speed and tip clearance size. The mechanism of tip clearance cavitation causing a further loss of the efficiency had been studied. The influence of rotational speed and tip clearance size on tip clearance cavitation had been investigated. Copyright (C) 2016 Society of Naval Architects of Korea. Production and hosting by Elsevier B.V. This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
引用
收藏
页码:219 / 227
页数:9
相关论文
共 18 条
[1]  
[Anonymous], POLISH MARITIME RES
[2]  
ANSYS, 2012, ANSYS CFX ICEM REL 1
[3]   Numerical investigation of tip clearance effects on the performance of ducted propeller [J].
Ding Yongle ;
Song Baowei ;
Wang Peng .
INTERNATIONAL JOURNAL OF NAVAL ARCHITECTURE AND OCEAN ENGINEERING, 2015, 7 (05) :795-804
[4]   Experimental evaluation of numerical simulation of cavitating flow around hydrofoil [J].
Dular, M ;
Bachert, R ;
Stoffel, B ;
Sirok, B .
EUROPEAN JOURNAL OF MECHANICS B-FLUIDS, 2005, 24 (04) :522-538
[5]   Numerical investigation of unsteady cavitating turbulent flow around a full scale marine propeller [J].
Ji, Bin ;
Luo, Xian-wu ;
Wu, Yu-lin ;
Liu, Shu-hong ;
Xu, Hong-yuan ;
Oshima, Akira .
JOURNAL OF HYDRODYNAMICS, 2010, 22 (05) :705-710
[6]   A preconditioned Navier-Stokes method for two-phase flows with application to cavitation prediction [J].
Kunz, RF ;
Boger, DA ;
Stinebring, DR ;
Chyczewski, TS ;
Lindau, JW ;
Gibeling, HJ ;
Venkateswaran, S ;
Govindan, TR .
COMPUTERS & FLUIDS, 2000, 29 (08) :849-875
[7]   Propeller cavitation breakdown analysis [J].
Lindau, JW ;
Boger, DA ;
Medvitz, RB ;
Kunz, RF .
JOURNAL OF FLUIDS ENGINEERING-TRANSACTIONS OF THE ASME, 2005, 127 (05) :995-1002
[8]   URANS COMPUTATION OF CAVITATING FLOWS AROUND SKEWED PROPELLERS [J].
Liu Yan ;
Zhao Peng-fei ;
Wang Qiang ;
Chen Zhao-hui .
JOURNAL OF HYDRODYNAMICS, 2012, 24 (03) :339-346
[9]  
Olsson M, 2008, THESIS
[10]   Numerical simulation of unsteady cavitating flows of pumpjet propulsor [J].
Pan, Guang ;
Lu, Lin ;
Sahoo, Prasanta K. .
SHIPS AND OFFSHORE STRUCTURES, 2016, 11 (01) :64-74