A novel method for optimization of slit Venturi dimensions through CFD simulation and RSM design

被引:35
作者
Abbasi, Elahe [1 ]
Saadat, Solmaz [1 ]
Jashni, Ayoub Karimi [1 ]
Shafaei, Mohammad Hadi [2 ]
机构
[1] Shiraz Univ, Sch Engn, Dept Civil & Environm Engn, Shiraz 7134851156, Fars, Iran
[2] Shiraz Univ, Sch Mech Engn, Dept Aerosp Engn & Energy, Shiraz, Fars, Iran
关键词
Hydrodynamic cavitation; Slit Venturi; Discharge coefficient; RSM design; CFD simulation; Optimal design; ACTIVATED-SLUDGE SOLUBILIZATION; JET-INDUCED CAVITATION; HYDRODYNAMIC CAVITATION; CELL DISRUPTION; WASTE-WATER; DEGRADATION; PRETREATMENT; COMBINATION; PARAMETERS; OXIDATION;
D O I
10.1016/j.ultsonch.2020.105088
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
This research presents a novel comprehensive method for optimizing the design of cavitating slit Venturi for a given cavitation intensity. This method is applicable to any cavitation number and can be used to provide the Venturi geometry that is suitable for a specific application. In this paper, cavitating Venturi design process is represented in seven steps. As an example, for the cavitation number of 0.2, geometrical and operational parameters of the Venturi were determined using the proposed seven steps. During the design process, the Venturi discharge coefficient was calculated using computational fluid dynamics (CFD) simulations. Furthermore, Venturi parameters such as inlet pressure, throat area, width, length, height and divergence angle, were optimized by the combination of CFD and Response Surface Methodology (RSM). In addition to calculating the mentioned optimum parameters, other hydraulic parameters of Venturi including discharge coefficient, flowrate, throat velocity, cavitation volume and length were also determined. Finally, the proposed design method in this study was verified by conducting sets of laboratory experiments.
引用
收藏
页数:14
相关论文
共 48 条
[1]  
Abbasi E., 2018, THESIS
[2]   Optimization of a hydrodynamic cavitation reactor using salicylic acid dosimetry [J].
Amin, Lekhraj P. ;
Gogate, Parag R. ;
Burgess, Arthur E. ;
Bremner, David H. .
CHEMICAL ENGINEERING JOURNAL, 2010, 156 (01) :165-169
[3]   A theoretical study of hydrodynamic cavitation [J].
Arrojo, S. ;
Benito, Y. .
ULTRASONICS SONOCHEMISTRY, 2008, 15 (03) :203-211
[4]   Modeling the shear rate and pressure drop in a hydrodynamic cavitation reactor with experimental validation based on KI decomposition studies [J].
Badve, Mandar P. ;
Alpar, Tibor ;
Pandit, Aniruddha B. ;
Gogate, Parag R. ;
Csoka, Levente .
ULTRASONICS SONOCHEMISTRY, 2015, 22 :272-277
[5]   THE CFD DRIVEN OPTIMISATION OF A MODIFIED VENTURI FOR CAVITATIONAL ACTIVITY [J].
Bashir, Tausif A. ;
Soni, Advait G. ;
Mahulkar, Amit V. ;
Pandit, Aniruddha B. .
CANADIAN JOURNAL OF CHEMICAL ENGINEERING, 2011, 89 (06) :1366-1375
[6]   Hybrid treatment strategies for 2,4,6-trichlorophenol degradation based on combination of hydrodynamic cavitation and AOPs [J].
Batik, Arati J. ;
Gogate, Parag R. .
ULTRASONICS SONOCHEMISTRY, 2018, 40 :383-394
[7]   Effect of ultrasonic, thermal and ozone pre-treatments on waste activated sludge solubilisation and anaerobic biodegradability [J].
Bougrier, C. ;
Albasi, C. ;
Delgenes, J. P. ;
Carrere, H. .
CHEMICAL ENGINEERING AND PROCESSING-PROCESS INTENSIFICATION, 2006, 45 (08) :711-718
[8]  
Brennen CE, 2014, CAVITATION AND BUBBLE DYNAMICS, P1
[9]   Hydrodynamic cavitation of p-nitrophenol: A theoretical and experimental insight [J].
Capocelli, Mauro ;
Prisciandaro, Marina ;
Lancia, Amedeo ;
Musmarra, Dino .
CHEMICAL ENGINEERING JOURNAL, 2014, 254 :1-8
[10]   Low pressure hydrodynamic cavitating device for producing highly stable oil in water emulsion: Effect of geometry and cavitation number [J].
Carpenter, Jitendra ;
George, Suja ;
Saharan, Virendra Kumar .
CHEMICAL ENGINEERING AND PROCESSING-PROCESS INTENSIFICATION, 2017, 116 :97-104