Structural optimization for an axial oil‐water separator with multi‐stage separation

Author(s):  
Le Zhao ◽  
Xiaobo Zeng ◽  
Weiguang Zhao ◽  
Fuqiang Zhu ◽  
Mingwen Hou ◽  
...  
PLoS ONE ◽  
2015 ◽  
Vol 10 (4) ◽  
pp. e0124095 ◽  
Author(s):  
Liqiong Chen ◽  
Shijuan Wu ◽  
Hongfang Lu ◽  
Kun Huang ◽  
Lijie Zhao

2017 ◽  
Vol 148 ◽  
pp. 115-126 ◽  
Author(s):  
Chuanwei Zhao ◽  
Haoyu Sun ◽  
Zengliang Li

2020 ◽  
Vol 115 (sp1) ◽  
pp. 417
Author(s):  
Shiying Shi ◽  
Zhongliang Su ◽  
Liming Lin ◽  
Jingyu Xu ◽  
Yunteng He ◽  
...  

2013 ◽  
Vol 803 ◽  
pp. 383-386
Author(s):  
Shu Ren Yang ◽  
Di Xu ◽  
Chao Yu ◽  
Jia Wei Fan ◽  
Cheng Chu Yue Fu

In order to solve the problem of high water cut wells in some oil field in Daqing that it could not get the large-scale application because of the bad separating effect of down hole centrifugal oil-water separator, we optimize the design of multi-cup uniform flux oil-water separator according to the similar separation principle of multi-cup uniform flux gas anchor, and it is obtained to achieve of injection-production technology in the same well which is of high water cut. The design concept of the separator is increasing the number of opening every layer and aperture gradually in subsection from up to down in the design process. The purpose is to get the close intake quantity of every orifice and guarantee the residence time is long enough in the separator, effectively shorten the length of down hole oil-water separator and reduce the production costs and operating costs.


2018 ◽  
Vol 353 ◽  
pp. 708-716 ◽  
Author(s):  
Wenjihao Hu ◽  
Peibin Zhang ◽  
Xiaokong Liu ◽  
Bin Yan ◽  
Li Xiang ◽  
...  
Keyword(s):  

Author(s):  
Terry Potter ◽  
Tathagata Acharya

Abstract Multiphase separators on production platforms are among the first equipment through which well fluids flow. Based on functionality, multiphase separators can either be two-phase that separate oil from water, or three-phase that separate oil, natural gas, and water. Separator performances are often evaluated using mean residence time (MRT) of the hydrocarbon phase. MRT is defined as the amount of time a given phase stays inside the separator. On field, operators usually measure MRT as the ratio of active volume occupied by each phase to the phase volumetric flowrate. However, this method may involve significant errors as the oil-water interface height is obtained using level controllers and the volume occupied by each phase is calculated assuming the interface can be extrapolated from the weir back to the separator inlet. In this study, authors perform computational fluid dynamics (CFD) on a two-phase horizontal separator to evaluate MRT as a function of varying water volume flowrates (water-cut) in a mixture of water and oil. The authors use residence time distributions (RTD) to obtain MRT at each water-cut — a method that results in significantly more accurate results than the regular method used by operators. The numerical model is developed with commercial software package ANSYS Fluent. The code uses the Eulerian multiphase model along with the k-ε turbulence model. The simulation results show agreement with experiments performed by previous researchers. Additional simulations are performed to assess the effect of various separator internals on separator performance. Simulation results suggest that the model developed in this study can be used to predict performances of two-phase liquid-liquid separators with reasonable accuracy and will be useful towards their design to improve performances under various inlet flow conditions.


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