Effect of wall roughness on the hydrodynamic cavitation phenomena in a circular venturi using RANS numerical simulations

被引:8
作者
Dutta, Nilanjan [1 ]
Nirmalkar, Neelkanth [1 ]
机构
[1] Indian Inst Technol, Dept Chem Engn, Ropar 140001, India
关键词
Hydrodynamic cavitation; Nanoparticle synthesis; Mineral processing; Venturi; Roughness height;
D O I
10.1016/j.matpr.2021.12.354
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Hydrodynamic cavitation is the recent advanced oxidation technique that finds applications in wastewater treatment, nanoparticle synthesis, mineral processing, sterilization, chemical synthesis. Owing to such overwhelming industrial applications, it has received a considerable attention in the recent past. Venturi and orifice geometries are linear flow devices for hydrodynamic cavitation, whilst vortex diode type geometries are often terms as rotating flow devices. In this work, RANS numerical simulations were conducted in a venturi over a wide range of geometrical parameters, such as 10 degrees <= alpha <= 30 degrees (Half convergent angle), 4 degrees <= beta <= 12 degrees (Half divergent angle), 0 <= L/d <= 2(Throat length to throat diameter ratio). The pressure inlet condition is employed with a pressure drop of 400 kPa and wall roughness height (K-S) of 1 mm. Cavitation phenomenon is explained in detail by presenting numerical results on vapor volume fraction contours, pressure, velocity and turbulent kinetic energy profile along venturi axis length. All else being equal, the numerical simulations revealed that the inclusion of surface roughness indeed enhances the intensity of cavitation. Copyright (C) 2022 Elsevier Ltd. All rights reserved. Selection and peer-review under responsibility of the scientific committee of the International Chemical Engineering Conference 2021 (100 Glorious Years of Chemical Engineering & Technology).
引用
收藏
页码:1719 / 1723
页数:5
相关论文
共 10 条
[1]   Single and multiphase CFD simulations for designing cavitating venturi [J].
Dastane, Gaurav G. ;
Thakkar, Harsh ;
Shah, Rushabh ;
Perala, Sivaramakrishna ;
Raut, Janhaui ;
Pandit, A. B. .
CHEMICAL ENGINEERING RESEARCH & DESIGN, 2019, 149 :1-12
[2]   Combination of hydrodynamic cavitation and SR-AOPs for simultaneous degradation of BTEX in water [J].
Fedorov, Kirill ;
Sun, Xun ;
Boczkaj, Grzegorz .
CHEMICAL ENGINEERING JOURNAL, 2021, 417
[3]   Review of numerical models of cavitating flows with the use of the homogeneous approach [J].
Niedzwiedzka, Agnieszka ;
Schnerr, Guenter H. ;
Sobieski, Wojciech .
ARCHIVES OF THERMODYNAMICS, 2016, 37 (02) :71-88
[4]  
Schnerr G., 2001, 4 INT C MULT FLOW NE, P1
[5]   Experimental and numerical study of cavitation flows in venturi tubes: From CFD to an empirical model [J].
Shi, Hongbo ;
Li, Mingda ;
Nikrityuk, Petr ;
Liu, Qingxia .
CHEMICAL ENGINEERING SCIENCE, 2019, 207 :672-687
[6]   110th Anniversary: Comparison of Cavitation Devices Based on Linear and Swirling Flows: Hydrodynamic Characteristics [J].
Simpson, Alister ;
Ranade, Vivek V. .
INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2019, 58 (31) :14488-14509
[7]   Modeling hydrodynamic cavitation in venturi: influence of venturi configuration on inception and extent of cavitation [J].
Simpson, Alister ;
Ranade, Vivek V. .
AICHE JOURNAL, 2019, 65 (01) :421-433
[8]   Mathematical basis and validation of the full cavitation model [J].
Singhal, AK ;
Athavale, MM ;
Li, HY ;
Jiang, Y .
JOURNAL OF FLUIDS ENGINEERING-TRANSACTIONS OF THE ASME, 2002, 124 (03) :617-624
[9]   Effect of the cavitation generation unit structure on the performance of an advanced hydrodynamic cavitation reactor for process intensifications [J].
Sun, Xun ;
You, Weibin ;
Xuan, Xiaoxu ;
Ji, Li ;
Xu, Xingtao ;
Wang, Guichao ;
Zhao, Shan ;
Boczkaj, Grzegorz ;
Yoon, Joon Yong ;
Chen, Songying .
CHEMICAL ENGINEERING JOURNAL, 2021, 412
[10]  
Zwart P. J., 2004, 5 INT C MULT FLOW IC