Experience of applying 3D-scanning and CFD calculations to study and optimization the flow in the impeller of a multi-shaft centrifugal compressor
https://doi.org/10.25206/2588-0373-2024-8-3-69-79
EDN: EKLOEM
Abstract
The paper presents an analysis of semi-open centrifugal impellers of a three-stage multi-shaft compressor. A 3D-scanning of the geometry of the impellers is carried out, a CFD calculation is carried out at the design operating mode of the compressor, and the results obtained are analyzed. Problems have been identified with the second stage impeller. Next, the geometry of all three impellers is optimized using Ansys CFX software, an improvement in efficiency and an improvement in the flow pattern are obtained.
Keywords
About the Authors
E. V. FilimonovRussian Federation
Filimonov Evgeniy Victorovich, Commercial Director
Krasnodar, Uralskaya St., 222, 350080
L. N. Marenina
Russian Federation
Marenina Lyubov Nikolaevna, Candidate of Technical Sciences, Associate Professor of Higher School of Power Engineering, Institute of Power Engineering
Saint Petersburg, Politechnicheskaya str., 29, 195251
AuthorID (RSCI): 791131,
AuthorID (SCOPUS): 57188961410,
ResearcherID: C-6788-2017
A. A. Drozdov
Russian Federation
Drozdov Aleksandr Aleksandrovich, Doctor of Technical Sciences, Professor of Higher School of Power Engineering, Institute of Power Engineering
Saint Petersburg, Politechnicheskaya str., 29, 195251
AuthorID (RSCI): 314735,
AuthorID (SCOPUS): 56649790100,
ResearcherID: К-7937-2014
N. I. Sadovsky
Russian Federation
Sadovsky Nikolay Ivanovich, Candidate of Technical Sciences, Associate Professor of Higher School of Power Engineering, Institute of Power Engineering
Saint Petersburg, Politechnicheskaya str., 29, 195251
AuthorID (RSCI): 120322,
AuthorID (SCOPUS): 57221745249,
ResearcherID: AAG-5818-2019
References
1. Lunev A. T. Struktura metoda proyektirovaniya i ispytaniya protochnoy chasti nagnetateley dlya perekachivaniya prirodnogo gaza [Structure of the method for designing and testing the flow part of superchargers for pumping natural gas] // Kompressornaya tekhnika i pnevmatika. Compressor Technology and Pneumatics. 2001. No. 10. P. 4–7. (In Russ.).
2. Aungier R. H. Centrifugal Compressors: A Strategy for Aerodynamic Design and Analysis. New York, USA: ASME Press, 2000. 330 p. ISBN 0-7918-0093-8. (In Engl.).
3. Japikse D. Turbomachinery design with an agile engineering system // JSME Fluid Engineering Conference. OSAKA, September 19–20, 2003. P. 19–20. (In Engl.).
4. Japikse D., Bittery J. Effective two-zone modeling of diffusers and return channel systems for radial and mixed-flow pumps and compressors // 11th International symposium on Transport Phenomena and Dynamics of Rotating Machinery, February 26 – March 02. Honolulu, 2006. Vol. 2. P. 511–520. (In Engl.).
5. Japikse D., Dubitsky O. Vaneless diffuser advanced model // ASME Turbo Expo Conference, June 6 9. Reno-Tahoe, 2005. (In Engl.).
6. Japikse D. Design system development for turbomachinery (turbopump) designs 1998 and a decade beyond // JANNAF Conference, July 15–17. Cleveland, Ohio, 1998. P. 263–275. (In Engl.).
7. Potashev A. V., Potashev E. V. Raschet techeniya gaza v protochnoy chasti turbomashin po kvazitrekhmernoy modeli [Calculation of the gas flow in the flow path of turbomachines using a quasi-three-dimensional model] // Kompressornaya tekhnika i pnevmatika. Compressor Technology and Pneumatics. 2020. No. 3. P. 26–31. EDN: TSUBRZ. (In Russ.).
8. Potashev A. V., Potashev E. V., Khisameyev I. G. Metody i programmy aerodinamicheskogo rascheta i proyektirovaniya rabochikh elementov turbomashin [Methods and programs for aerodynamic analysis and design of the working elements of turbomachines] // Kompressornaya tekhnika i pnevmatika. Compressor Technology and Pneumatics. 2018. No. 2. P. 23–33. EDN: EWKGZY. (In Russ.).
9. Kabalyk K., Kryłłowicz W. Numerical modeling of the performance of a centrifugal compressor impeller with low inlet flow coefficient // Transactions of the institute of fluid-flow machinery. 2016. Vol. 131. P. 41–53. (In Engl.).
10. Kryłłowicz W., Świder P., Kozanecki Z. [et al.]. Technical and Aerodynamical Aspects of a High Pressure Synthesis Gas Turbocompressor Modernization // 12th European Conference on Turbomachinery Fluid Dynamics and Thermodynamics, April 3–7. Stockholm, Sweden, 2017. DOI: 10.29008/ETC2017-171. (In Engl.).
11. Melnikov V., Prokusov A. Ispol’zovaniye programmnogo kompleksa FlowVision pri raschete elementov protochnoy chasti turbokompressorov v OAO «SKBT» [Using the FlowVision software package when calculating the elements of the flow part of turbocompressors at OJSC SKBT] // SAPR i grafika. CAD and Graphics. 2005. No. 4. P. 92–96. (In Russ.).
12. Galerkin Yu. B. Turbokompressory [Turbochargers]. Saint Petersburg, 2010. 650 p. (In Russ.).
13. Galerkin Yu. B., Rekstin A. F., Semenovskiy V. B. Statisticheskaya model’ kharakteristiki koeffitsiyenta napora kolesa tsentrobezhnogo kompressora [Statistical model of centrifugal compressor impeller loading factor characteristic] // Kompressornaya tekhnika i pnevmatika. Compressor Technology and Pneumatics. 2023. No. 1. P. 2–7. EDN: PIPEKN. (In Russ.).
14. Marenina L. N., Galerkin Yu. B. Optimizatsiya obratnykh napravlyayushchikh apparatov vysokoraskhodnykh tsentrobezhnykh kompressornykh stupeney CFD-metodami [Optimization of return channels of high flow centrifugal compressor stages by CFD-methods] // Izvestiya vysshikh uchebnykh zavedeniy. Mashinostroyeniye. Proceedings of Higher Educational Institutions. Маchine Building. 2021. No. 10. P. 49–64. DOI: 10.18698/0536-1044-2021-10-49-64. EDN: BSUPZQ. (In Russ.).
15. Solovyeva O. A., Soldatova K. V., Galerkin Yu. B., Rekstin A. F. Pervichnoye proyektirovaniye bezlopatochnykh diffuzorov tsentrobezhnykh kompressornykh stupeney Metodom universal’nogo modeler [Primary design of vaneless diffusers of centrifugal compressor stages by the universal modeling method] // Izvestiya vysshikh uchebnykh zavedeniy. Mashinostroyeniye. Proceedings of Higher Educational Institutions. Маchine Building. 2021. No. 3 (732). P. 39–52. DOI: 10.18698/0536-1044-2021-3-39-52. EDN: SYYIIG. (In Russ.).
16. Marenina L. N., Solovyeva O. A., Galerkin Yu. B., Popova E. Yu., Kaminskiy V. N. Razrabotka parametrizovannoy modeli i raschet osevogo kompressora energeticheskoy ustanovki [Development of a parametrized model and calculation of a power unit axial compressor] // Materialovedeniye. Energetika. Materials Science. Energy. 2020. Vol. 26, no. 4. P. 100–111. DOI: 10.18721/JEST.26408. EDN: WMUUQX. (In Russ.).
17. Marechale R., Ji M., Cave M. Experimental and numerical investigation of labyrinth seal clearance impact on centrifugal impeller performance // Proceedings of ASME Turbo Expo 2015: Turbine Technical Conference and Exposition GT2015, June 15–19. Montréal, Canada, 2015. DOI: 10.1115/GT2015-43778. (In Engl.).
18. Matas R., Syka T., Lunacek O. Numerical and experimental modelling of the centrifugal compressor stage – setting the model of impellers with 2D blades // EPJ Web of Conferences 11th International Conference on Experimental Fluid Mechanics. 2017. Vol. 143. 02073. DOI: 10.1051/epjconf/201714302073. (In Engl.).
19. Hazby H. R., Xu L., Schleer M. Study of the Flow in a Vaneless Diffuser at Part Speed Operating Conditions // Journal of Turbomachinery. 2014. Vol. 136 (3). P. 031011–031011-9. DOI: 10.1115/1.4024693. (In Engl.).
Review
For citations:
Filimonov E.V., Marenina L.N., Drozdov A.A., Sadovsky N.I. Experience of applying 3D-scanning and CFD calculations to study and optimization the flow in the impeller of a multi-shaft centrifugal compressor. Omsk Scientific Bulletin. Series Aviation-Rocket and Power Engineering. 2024;8(3):69-79. (In Russ.) https://doi.org/10.25206/2588-0373-2024-8-3-69-79. EDN: EKLOEM
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