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Investigation of the effect of the working fluid flow parameters on the fineness of cleaning the centrifugal filter of the hydraulic system of a power plant

https://doi.org/10.25206/2588-0373-2025-9-3-101-106

EDN: PEGBPY

Abstract

The article considers the influence of the parameters of the working fluid flow (flow rate, pressure, velocity) on the fineness of cleaning the centrifugal filter of the hydraulic system of a power plant. Based on the compiled mathematical model, the author develops a calculation method and obtains the dependences characterizing the purification process, namely, the limiting size of the pollutant particles deposited in the cleaner from the pressure at the filter inlet, the flow rate of the working fluid, the tangential and radial components of the fluid velocity.

About the Author

A. B. Yakovlev
Omsk State Technical University
Russian Federation

YAKOVLEV Aleksey Borisovich, Candidate of Technical Sciences, Associate Professor, Head of the Aircraft and Rocket Building Department

Omsk, Mira Ave., 11, 644050

AuthorID (RSCI): 488687

AuthorID (SCOPUS): 56503089200

ResearcherID: E-7451-2014



References

1. Bashta T. M., Rudnev S. S., Nekrasov B. B. [et al.]. Gidravlika, gidromashiny i gidroprivody [Hydraulics, hydraulic machines and hydraulic drives]. Moscow, 2010. 423 p. ISBN 978-5-903034-88-8. (In Russ.).

2. Budarova O. P., Boldyrev A. V. Rabochiye sredy gidravlicheskikh i pnevmaticheskikh system [Working conditions of hydraulic and pneumatic systems]. Ed. by I. H. Israfilov. Kazan, 2019. 254 p. ISBN 978-5-00130-181-3. (In Russ.).

3. Galdin N. S. Osnovy gidravliki i gidroprivoda [Fundamentals of hydraulics and hydraulic drive]. Omsk, 2006. 144 p. ISBN 5-93204-305-9. EDN: QMEZYN. (In Russ.).

4. Plekhanov N. G., Fedorov V. S. Obosnovaniye effektivnosti primeneniya tsentrifug dlya ochistki gidravlicheskikh masel [Justification of the effectiveness of the use of centrifuges for cleaning hydraulic oils]. Sistemy. Metody. Tekhnologii. Systems. Methods. Technologies. 2024. No. 4 (64). P. 15–21. DOI: 10.18324/2077-5415-2024-4-15-21. EDN: DQSYKF. (In Russ.).

5. Zubkova S. Yu., Romanov R. A. Sovremennyye metody analiza masel i smazochnykh materialov [Modern methods for the oils and lubricants analysis]. Khimicheskaya tekhnika. Chemical Engineering. 2018. No. 9. P. 22–24. EDN: PJGWLL. (In Russ.).

6. Finkel'shtejn Z. L. Gidrodinamicheskaya ochistka zhidkostey v promyshlennosti [Hydrodynamic purification of liquids in industry]. Gornyy informatsionno-analiticheskiy byulleten’. Mining Information and Analytical Bulletin. 2004. No. 4. P. 235–237. EDN: INTNPB. (In Russ.).

7. Litvinsky G. G. Pryamotochnyye tsentrobezhnyye gidrodinamicheskiye fil’try s ezhektsionnoy retsirkulyatsiyey shlama [Direct-flow centrifugal hydrodynamic filters with ejection sludge recirculation]. Sbornik Nauchnykh Trudov Donbasskogo Gosudarstvennogo Tekhnicheskogo Institute. 2022. No. 28 (71). P. 121–135. EDN: JPGJVX. (In Russ.).

8. Baryshev V. I. Klassifikatsiya, kontrol’ i normirovaniye promyshlennoy chistoty rabochikh zhidkostey i masel [Classification, control and rationing of industrial purity of working fluids and oils]. Vestnik Yuzhno-Ural’skogo gosudarstvennogo universiteta. Seriya: Mashinostroyeniye. Bulletin of SUSU. Series “Mechanical Engineering Industry”. 2005. No. 1 (41). P. 149–161. EDN: KYSTNP. (In Russ.).

9. Piralishvili Sh., Guryanov A., Veretennikov S. [et al.]. Vikhrevyye tekhnologii v aviatsii i energetike [Vortex technologies in aviation and energetics]. Novyye tekhnologii, materialy i oborudovaniye rossiyskoy aviakosmicheskoy otrasli. New Technologies, Materials and Equipment of the Russian Aerospace Industry. Kazan, 2018. Vol. 1. P. 276–282. EDN: YNBHYT. (In Russ.).

10. Yakovlev A. B. Zakruchennyye potoki v promyshlennosti [Swirling flows in industry]. Omskiy nauchnyy vestnik. Omsk Scientific Bulletin. 1999. No. 6. P. 51–53. EDN: NSZPHS. (In Russ.).

11. Yakovlev A. B. Razrabotka vikhrevykh apparatov osushki szhatogo vozdukha dlya sistem nazemnogo startovogo kompleksa [Development of vortex compressed air drying devices for ground launch complex systems]. Omskiy nauchnyy vestnik. Ser. Aviatsionno-raketnoye i energeticheskoye mashinostroyeniye. Omsk Scientific Bulletin. Series Aviation Rocket and Power Engineering. 2020. Vol. 4, no. 2. P. 111–116. DOI: 10.25206/2588-0373-2020-4-2-111-116. EDN: KJXNUY. (In Russ.).

12. Vologodskiy N. V., Pronevich A. V., Yakovlev A. B. Eksperimental’noye issledovaniye tsiklonnykh fil’trov pnevmaticheskoy sistemy avtomaticheskogo upravleniya gazoturbinnogo dvigatelya dlya uvelicheniya stepeni ochistki [Experimental study of cyclone filters of pneumatic automatic control system of gas turbine engine for increasing degree of purification]. Omskiy nauchnyy vestnik. Ser. Aviatsionno- raketnoye i energeticheskoye mashinostroyeniye. Omsk Scientific Bulletin. Series Aviation Rocket and Power Engineering. 2020. Vol. 4, no. 3. P. 101–109. DOI: 10.25206/2588-0373-2020-4-3-101-109. EDN: YRZAUK. (In Russ.).

13. Kolmakov E. A., Kondrashov P. M., Zen’kov I. V. Obzor konstruktsiy fil’trov v sostave pogruzhnykh elektrotsentrobezhnykh nasosov pri dobyche nefti [Review of filter designs used in oil production by means of electric submersible pumps]. Vestnik Kuzbasskogo gosudarstvennogo tekhnicheskogo universiteta. Bulletin of the Kuzbass State Technical University. 2016. No. 1 (113). P. 150–157. EDN: YJUWBD. (In Russ.).

14. Devisilov V. A., Sharay E. Yu., Agalakova N. A. Izucheniye gidravlicheskikh kharakteristik techeniya zhidkosti v gidrodinamicheskom fil’tre s tangentsial’noy zakrutkoy potoka [Investigation of the hydraulic characteristics of fluid flow in hydrodynamic filter with tangential flow swirling]. Vektor nauki Tol’yattinskogo gosudarstvennogo universiteta. Science Vector of Togliatti State University. 2013. No. 2 (24). P. 32–37. EDN: REUXQJ. (In Russ.).

15. Yakovlev A. B. Vliyaniye geometricheskikh parametrov tsentrobezhnogo fil’tra na tonkost’ ego ochistki [Influence of geometric parameters of a centrifugal filter on the fineness of its purification]. Dinamika sistem, mekhanizmov i mashin. Dynamics of systems, mechanisms and machines. 2002. No. 2. P. 43–45. EDN: VVNNAV. (In Russ.).

16. Smulskiy I. I. Aerodinamika i protsessy v vikhrevykh kamerakh [Aerodynamics and processes in vortex chambers]. Novosibirsk, 1992. 301 p. ISBN 5-02-030300-3. EDN: PUHZYX. (In Russ.).

17. Kuznetsov V. I., Makarov V. V. Fizicheskaya i matematicheskaya modeli rabochego protsessa vikhrevoy truby [Physical and mathematical models of the vortex tube workflow]. Omsk, 2018. 232 p. ISBN 978-5-8149-2671-5. EDN: EWJCVP. (In Russ.).

18. Mitrofanova O. V. Gidrodinamika i teploobmen zakruchennykh potokov v kanalakh yaderno-energeticheskikh ustanovok [Hydrodynamics and heat exchange of swirling flows in channels of nuclear power plants]. Moscow, 2010. 288 p. ISBN 978-5-9221-1223-9. EDN: MUWSRZ. (In Russ.).

19. Vasilevsky M., Zyatikov P., Shishmina L. [et al.] Particles separation in a cyclone device cone. EPJ Web of Conferences. Vol. 82. Tomsk, 2015. P. 01049. DOI: 10.1051/epjconf/20158201049. EDN: UENNXL.


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For citations:


Yakovlev A.B. Investigation of the effect of the working fluid flow parameters on the fineness of cleaning the centrifugal filter of the hydraulic system of a power plant. Omsk Scientific Bulletin. Series Aviation-Rocket and Power Engineering. 2025;9(3):101-106. (In Russ.) https://doi.org/10.25206/2588-0373-2025-9-3-101-106. EDN: PEGBPY

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