Investigation of cavitation and vapor shedding mechanisms in a Venturi nozzle

被引:59
作者
Brunhart, Maxwell [1 ]
Soteriou, Celia [1 ]
Gavaises, Manolis [2 ]
Karathanassis, Ioannis [2 ]
Koukouvinis, Phoevos [2 ]
Jahangir, Saad [3 ]
Poelma, Christian [3 ]
机构
[1] Delphi Technol, Gillingham ME8 0RU, England
[2] City Univ London, London EC1V 0HB, England
[3] Delft Univ Technol, NL-2628 CD Delft, Netherlands
关键词
NUMERICAL-SIMULATION; CLOUD CAVITATION; SHOCK-WAVES; PART; SHEET; FLOW; TRANSITION; DYNAMICS;
D O I
10.1063/5.0015487
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
Cavitating flow dynamics are investigated in an axisymmetric converging-diverging Venturi nozzle. Computational Fluid Dynamics (CFD) results are compared with those from previous experiments. New analysis performed on the quantitative results from both datasets reveals a coherent trend and shows that the simulations and experiments agree well. The CFD results have confirmed the interpretation of the high-speed images of the Venturi flow, which indicated that there are two vapor shedding mechanisms that exist under different running conditions: re-entrant jet and condensation shock. Moreover, they provide further details of the flow mechanisms that cannot be extracted from the experiments. For the first time with this cavitating Venturi nozzle, the re-entrant jet shedding mechanism is reliably achieved in CFD simulations. The condensation shock shedding mechanism is also confirmed, and details of the process are presented. These CFD results compare well with the experimental shadowgraphs, space-time plots, and time-averaged reconstructed computed tomography slices of vapor fraction.
引用
收藏
页数:13
相关论文
共 50 条
[1]  
[Anonymous], 2015, ATOMIZATION SPRAY, DOI DOI 10.1615/ATOMIZSPR.2015011556
[2]  
[Anonymous], 1955, T AM SOC MECH ENG, DOI DOI 10.1115/1.4014586
[3]  
Ansys Inc, 2013, ANSYS FLUENT THEOR G
[4]   Numerical and experimental investigation of shedding mechanisms from leading-edge cavitation [J].
Arabnejad, Mohammad Hossein ;
Amini, Ali ;
Farhat, Mohamed ;
Bensow, Rickard E. .
INTERNATIONAL JOURNAL OF MULTIPHASE FLOW, 2019, 119 :123-143
[5]  
Arndt R., 2000, 23 S NAV HYDR VAL RE
[6]   High-speed x-ray CT imaging of a strongly cavitating nozzle flow [J].
Bauer, D. ;
Barthel, F. ;
Hampel, U. .
JOURNAL OF PHYSICS COMMUNICATIONS, 2018, 2 (07)
[7]  
Bergwerk W., 1959, P I MECH ENG, V173, P655, DOI [10.1243/PIME_PROC_1959_173_054_02, DOI 10.1243/PIME_PROC_1959_173_054_02]
[8]  
Brennen CE, 2014, CAVITATION AND BUBBLE DYNAMICS, P1
[9]  
Brunhart M., 2018, IMECHE FUEL SYSTEMS
[10]   Numerical simulation and analysis of condensation shocks in cavitating flow [J].
Budich, Bernd ;
Schmidt, S. J. ;
Adams, N. A. .
JOURNAL OF FLUID MECHANICS, 2018, 838 :759-813