Performance enhancement of axial concurrent liquid-liquid hydrocyclone separator through optimization of the swirler vane angle

被引:18
作者
Al-Kayiem, Hussain H. [1 ]
Hamza, Jaseer E. [1 ]
Lemmu, Tamiru A. [1 ]
机构
[1] Univ Teknol Petronas, Mech Engn Dept, Bandar Seri Iskandar 32610, Malaysia
关键词
Produced water separation; Deoiling; Design of experiment; Hydrocyclone separator; Response surface methodology; Swirl generator; FLOW; OIL;
D O I
10.1007/s13202-020-00903-7
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Vane angle configuration is considerably affecting the internal flow behavior and separation performance of a concurrent axial inlet liquid-liquid hydrocyclone. This study was carried out to improve the design of the swirl generator by optimizing the vane's deflection angle in an oil/water axial inlet hydrocyclone separator. Angles ranging from 37 degrees to 75 degrees were examined at various operational conditions, including mixture temperature, mixture flow rate, and water-to-oil ratio. Two analysis techniques have been coupled to achieve the aim. First, design of experiment by the response surface method was utilized to generate a combination of run/boundary conditions of swirler vane angles, inlet mixture temperatures, flow rates, and concentrations. The obtained 15 run/boundary conditions were adopted as cases for computational fluid dynamics simulation to determine the separation efficiency, tangential velocity and pressure drop of each case using ANSYS Fluent software. The optimization results show that the swirl generator with a 45 degrees deflection angle generated slightly higher tangential velocity compared with higher and lower vane deflection angles. The separation efficiency obtained by using the 45 degrees swirl generator was higher than other angles, in spite that the turbulence intensity is slightly higher at 45 degrees compared to other vane angles.
引用
收藏
页码:2957 / 2967
页数:11
相关论文
共 25 条
[1]  
Al-Kayiem H.H., 2014, WIT Trans. Eng. Sci., V82, P361
[2]   Experimental hydrocyclone flow field studies [J].
Bergstrom, Jonas ;
Vomhoff, Hannes .
SEPARATION AND PURIFICATION TECHNOLOGY, 2007, 53 (01) :8-20
[3]  
Bradley N., 2007, THESIS
[4]   Numerical and experimental studies of flow field in hydrocyclone with air core [J].
Cui, Bao-yu ;
Wei, De-zhou ;
Gao, Shu-ling ;
Liu, Wen-gang ;
Feng, Yu-qing .
TRANSACTIONS OF NONFERROUS METALS SOCIETY OF CHINA, 2014, 24 (08) :2642-2649
[5]  
Dirkzwager M., 1996, PhD Thesis
[6]   Computational Analysis of Swirling Pipe Flow [J].
Dohnal, Miloslav ;
Hajek, Jiri .
PRES2016: 19TH INTERNATIONAL CONFERENCE ON PROCESS INTEGRATION, MODELING AND OPTIMIZATION FOR ENERGY SAVINGS AND POLLUTION REDUCTION, 2016, 52 :757-762
[7]  
Granato D., 2014, Mathematical and statistical methods in food science and technology, P1
[8]   EXPERIMENTAL-STUDY OF TURBULENT SWIRLING FLOW IN A STRAIGHT PIPE [J].
KITOH, O .
JOURNAL OF FLUID MECHANICS, 1991, 225 :445-479
[9]   Numerical study on oil and water two-phase flow in a cylindrical cyclone [J].
Liu, Hai-fei ;
Xu, Jing-yu ;
Wu, Ying-xiang ;
Zheng, Zhi-chu .
JOURNAL OF HYDRODYNAMICS, 2010, 22 (05) :790-795
[10]   Treatment of offshore oily produced water: Research and application of a novel fibrous coalescence technique [J].
Lu, Hao ;
Liu, Yi-Qian ;
Cai, Jing-Bo ;
Xu, Xiao ;
Xie, Lin-Sheng ;
Yang, Qiang ;
Li, Yue-Xi ;
Zhu, Kai .
JOURNAL OF PETROLEUM SCIENCE AND ENGINEERING, 2019, 178 :602-608