CFD investigation of flow through a centrifugal compressor diffuser with splitter blades

Abstract The aerodynamic losses in centrifugal compressors are mainly associated with the separated flow on the suction sides of impeller and diffuser vanes. The overall performance of such compressors can be improved by adding splitter vanes. The present work examines the effect of varying the geom...

Full description

Bibliographic Details
Main Authors: M. G. Khalafallah, H. S. Saleh, S. M. Ali, H. M. Abdelkhalek
Format: Article
Language:English
Published: SpringerOpen 2021-12-01
Series:Journal of Engineering and Applied Science
Subjects:
Online Access:https://doi.org/10.1186/s44147-021-00040-w
_version_ 1818575255929618432
author M. G. Khalafallah
H. S. Saleh
S. M. Ali
H. M. Abdelkhalek
author_facet M. G. Khalafallah
H. S. Saleh
S. M. Ali
H. M. Abdelkhalek
author_sort M. G. Khalafallah
collection DOAJ
description Abstract The aerodynamic losses in centrifugal compressors are mainly associated with the separated flow on the suction sides of impeller and diffuser vanes. The overall performance of such compressors can be improved by adding splitter vanes. The present work examines the effect of varying the geometrical location of the splitter vanes in the diffuser on the overall performance of a high-speed centrifugal compressor stage of a small gas turbine. To increase the pressure recovery through the diffuser, two radial sets of vanes are used. The first set of vanes (diffuser-1) is equipped with splitter vanes, placed mid-distance between the main vanes, while the vanes of the second set (diffuser-2) are conventional vanes. Flow through the compressor was simulated using the ANSYS 19 workbench program. Flow characteristics and compressor performance were obtained and analyzed for different circumferential positions of the splitting vanes relative to the main vanes of diffuser-1. The study covered seven positions of the splitter vanes including the original design of the diffuser where the splitter vanes were located at mid-distance between the main vanes. The analysis shows that, at design conditions, selecting the position of the splitter vanes to be nearer to the pressure side of the main vanes improves the stage performance. In the present study, locating the splitters at 33% of the angular distance between the main vanes leads to the best performance, and a significant improvement in the overall stage performance is recorded. The pressure recovery coefficient is raised by about 17%, the pressure ratio is increased by about 1.13%, and the stage efficiency is increased by about 2.01%, compared to the original splitter position. Performance improvement is related to the suppression of the flow separation and the more uniformity of flow. On the contrary, further moving the splitter closer to the main blade, the pressure recovery coefficient is decreased by about 2% than the position of 33% of the angular distance, but still higher than the original position by about 15% and a limited improvement in the compressor performance is noticed. Moving the splitter far out the main blade annihilates the static pressure recovery of the diffuser by about 2:7% compared with the original position. So, for the investigated compressor, the best position of the splitter blade in the circumferential direction, which provides the best stage performance in our parametric analysis, is not necessary to be at the mid-angular distance between the diffuser’s main blades, but it is achieved by moving the splitter to about 33% of the angular distance where the diminished loss from the suppressed flow separation is more prevailing and the instigated friction losses from splitter surfaces are less critical.
first_indexed 2024-12-15T00:37:51Z
format Article
id doaj.art-55e15d90401245f2a99be9764c3f566d
institution Directory Open Access Journal
issn 1110-1903
2536-9512
language English
last_indexed 2024-12-15T00:37:51Z
publishDate 2021-12-01
publisher SpringerOpen
record_format Article
series Journal of Engineering and Applied Science
spelling doaj.art-55e15d90401245f2a99be9764c3f566d2022-12-21T22:41:44ZengSpringerOpenJournal of Engineering and Applied Science1110-19032536-95122021-12-0168112310.1186/s44147-021-00040-wCFD investigation of flow through a centrifugal compressor diffuser with splitter bladesM. G. Khalafallah0H. S. Saleh1S. M. Ali2H. M. Abdelkhalek3Mechanical Power Department, Faculty of Engineering, Cairo UniversityMechanical Power Department, Faculty of Engineering, Cairo UniversityMechanical Power Department, Faculty of Engineering, Cairo UniversityMechanical Power Department, Faculty of Engineering, Cairo UniversityAbstract The aerodynamic losses in centrifugal compressors are mainly associated with the separated flow on the suction sides of impeller and diffuser vanes. The overall performance of such compressors can be improved by adding splitter vanes. The present work examines the effect of varying the geometrical location of the splitter vanes in the diffuser on the overall performance of a high-speed centrifugal compressor stage of a small gas turbine. To increase the pressure recovery through the diffuser, two radial sets of vanes are used. The first set of vanes (diffuser-1) is equipped with splitter vanes, placed mid-distance between the main vanes, while the vanes of the second set (diffuser-2) are conventional vanes. Flow through the compressor was simulated using the ANSYS 19 workbench program. Flow characteristics and compressor performance were obtained and analyzed for different circumferential positions of the splitting vanes relative to the main vanes of diffuser-1. The study covered seven positions of the splitter vanes including the original design of the diffuser where the splitter vanes were located at mid-distance between the main vanes. The analysis shows that, at design conditions, selecting the position of the splitter vanes to be nearer to the pressure side of the main vanes improves the stage performance. In the present study, locating the splitters at 33% of the angular distance between the main vanes leads to the best performance, and a significant improvement in the overall stage performance is recorded. The pressure recovery coefficient is raised by about 17%, the pressure ratio is increased by about 1.13%, and the stage efficiency is increased by about 2.01%, compared to the original splitter position. Performance improvement is related to the suppression of the flow separation and the more uniformity of flow. On the contrary, further moving the splitter closer to the main blade, the pressure recovery coefficient is decreased by about 2% than the position of 33% of the angular distance, but still higher than the original position by about 15% and a limited improvement in the compressor performance is noticed. Moving the splitter far out the main blade annihilates the static pressure recovery of the diffuser by about 2:7% compared with the original position. So, for the investigated compressor, the best position of the splitter blade in the circumferential direction, which provides the best stage performance in our parametric analysis, is not necessary to be at the mid-angular distance between the diffuser’s main blades, but it is achieved by moving the splitter to about 33% of the angular distance where the diminished loss from the suppressed flow separation is more prevailing and the instigated friction losses from splitter surfaces are less critical.https://doi.org/10.1186/s44147-021-00040-wCentrifugal compressorVaned diffuserSplitter BladesNumerical simulationFlow separation
spellingShingle M. G. Khalafallah
H. S. Saleh
S. M. Ali
H. M. Abdelkhalek
CFD investigation of flow through a centrifugal compressor diffuser with splitter blades
Journal of Engineering and Applied Science
Centrifugal compressor
Vaned diffuser
Splitter Blades
Numerical simulation
Flow separation
title CFD investigation of flow through a centrifugal compressor diffuser with splitter blades
title_full CFD investigation of flow through a centrifugal compressor diffuser with splitter blades
title_fullStr CFD investigation of flow through a centrifugal compressor diffuser with splitter blades
title_full_unstemmed CFD investigation of flow through a centrifugal compressor diffuser with splitter blades
title_short CFD investigation of flow through a centrifugal compressor diffuser with splitter blades
title_sort cfd investigation of flow through a centrifugal compressor diffuser with splitter blades
topic Centrifugal compressor
Vaned diffuser
Splitter Blades
Numerical simulation
Flow separation
url https://doi.org/10.1186/s44147-021-00040-w
work_keys_str_mv AT mgkhalafallah cfdinvestigationofflowthroughacentrifugalcompressordiffuserwithsplitterblades
AT hssaleh cfdinvestigationofflowthroughacentrifugalcompressordiffuserwithsplitterblades
AT smali cfdinvestigationofflowthroughacentrifugalcompressordiffuserwithsplitterblades
AT hmabdelkhalek cfdinvestigationofflowthroughacentrifugalcompressordiffuserwithsplitterblades