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

Abstract 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...

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Main Authors: Hussain H. Al-Kayiem, Jaseer E. Hamza, Tamiru A. Lemmu
Format: Article
Language:English
Published: SpringerOpen 2020-05-01
Series:Journal of Petroleum Exploration and Production Technology
Subjects:
Online Access:https://doi.org/10.1007/s13202-020-00903-7
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author Hussain H. Al-Kayiem
Jaseer E. Hamza
Tamiru A. Lemmu
author_facet Hussain H. Al-Kayiem
Jaseer E. Hamza
Tamiru A. Lemmu
author_sort Hussain H. Al-Kayiem
collection DOAJ
description Abstract 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° to 75° 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° deflection angle generated slightly higher tangential velocity compared with higher and lower vane deflection angles. The separation efficiency obtained by using the 45° swirl generator was higher than other angles, in spite that the turbulence intensity is slightly higher at 45° compared to other vane angles.
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spelling doaj.art-d59abfd3d62e4cf694c90e866805464a2022-12-22T03:51:16ZengSpringerOpenJournal of Petroleum Exploration and Production Technology2190-05582190-05662020-05-011072957296710.1007/s13202-020-00903-7Performance enhancement of axial concurrent liquid–liquid hydrocyclone separator through optimization of the swirler vane angleHussain H. Al-Kayiem0Jaseer E. Hamza1Tamiru A. Lemmu2Mechanical Engineering Department, Universiti Teknologi PETRONASMechanical Engineering Department, Universiti Teknologi PETRONASMechanical Engineering Department, Universiti Teknologi PETRONASAbstract 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° to 75° 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° deflection angle generated slightly higher tangential velocity compared with higher and lower vane deflection angles. The separation efficiency obtained by using the 45° swirl generator was higher than other angles, in spite that the turbulence intensity is slightly higher at 45° compared to other vane angles.https://doi.org/10.1007/s13202-020-00903-7Produced water separationDeoilingDesign of experimentHydrocyclone separatorResponse surface methodologySwirl generator
spellingShingle Hussain H. Al-Kayiem
Jaseer E. Hamza
Tamiru A. Lemmu
Performance enhancement of axial concurrent liquid–liquid hydrocyclone separator through optimization of the swirler vane angle
Journal of Petroleum Exploration and Production Technology
Produced water separation
Deoiling
Design of experiment
Hydrocyclone separator
Response surface methodology
Swirl generator
title Performance enhancement of axial concurrent liquid–liquid hydrocyclone separator through optimization of the swirler vane angle
title_full Performance enhancement of axial concurrent liquid–liquid hydrocyclone separator through optimization of the swirler vane angle
title_fullStr Performance enhancement of axial concurrent liquid–liquid hydrocyclone separator through optimization of the swirler vane angle
title_full_unstemmed Performance enhancement of axial concurrent liquid–liquid hydrocyclone separator through optimization of the swirler vane angle
title_short Performance enhancement of axial concurrent liquid–liquid hydrocyclone separator through optimization of the swirler vane angle
title_sort performance enhancement of axial concurrent liquid liquid hydrocyclone separator through optimization of the swirler vane angle
topic Produced water separation
Deoiling
Design of experiment
Hydrocyclone separator
Response surface methodology
Swirl generator
url https://doi.org/10.1007/s13202-020-00903-7
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AT jaseerehamza performanceenhancementofaxialconcurrentliquidliquidhydrocycloneseparatorthroughoptimizationoftheswirlervaneangle
AT tamirualemmu performanceenhancementofaxialconcurrentliquidliquidhydrocycloneseparatorthroughoptimizationoftheswirlervaneangle