1. Knapp R.T., Daily J.W. Hammitt F.G. Cavitation. Moscow: Peace. 1974. 6688 p. (in Russian).
2. Oksler G. Armature cavitation? Let's figure it out! Armaturostroyeniye. 2012, N 2(77). P. 74-77 (in Russian).
3. Kapranova A., Neklyudov S., Lebedev A., Meltser A. Determination of the average parameters of cavitation bubbles in the flowing part of the control valves. Int. J. Mech. Eng. Technol. 2018. V. 9, No. 3. P. 25-31.
4. Arzumanov E.S. Hydraulic regulatory bodies of automated control systems. Moscow: Mashinostroyeniye, 1985, 256 p. (in Russian).
5. Chernoshtan V.I., Kuznetsov V.A. Pipeline fittings for thermal power plants. Reference manual. Moscow: MEI Publishing House, 2001. 368 p. (in Russian).
6. Lerner D.G., Spiridonov E.K., Forental V.I. An integrated approach to the study of a throttling valve. Izvestiya SNTS RAN –Proceedings of the SNTS RAN. 2011. Vol. 13. N 1(2). P. 469-462. (in Russian).
7. Patent on the model 175776 Russian Federation. Direct-acting control valve / A.E. Lebedev, A.B. Kapranova, A.M. Meltser, S.A. Solopov, D.V. Voronin, S.V. Neklyudov. Published by May 2018 (in Russian).
8. Kapranova A.B., Lebedev A.E., Meltser A.M., Solopov S.A., Serov E.M. Methods of modeling the developmental stages of hydrodynamic cavitation. Fundamental'nyye Issledovaniya. 2016. N 3(section 2). P. 268-273.
9. Klimontovich Y.L. Turbulent Motion and Chaos Structure: A New Approach to the Statistical Theory of Open Systems. Moscow: LENAND, 2014. 328 p. (in Russian).
10. Kapranova A., Neklyudov S., Lebedev A., Meltser A. Qualitative evaluation of the coefficient of hydraulic resistance in the area of the divider of the fluid flow of the axial valve. Int. J. Mech. Eng. Technol. 2018. V. 9, N. 8. P. 153-159.
11. Kapranova A.B., Lebedev A.E., Meltser A.M., Solopov S.A. The application process of the Ornstein-Ulenbek to the formation of cavitation bubbles. Czas. Tech. Mech. 2016. V. 113. N. 2. P. 136-144. DOIhttps://doi.org/10.4467/2353737XCT.16.101.5500.
12. Kapranova A., Miadonye A. Stochastic simulation of cavitation bubbles formation in the axial valve separator influenced by degree of opening. Journal of Oil, Gas and Petrochemical Sciences. 2019. V. 2. N. 2. P. 70-75. DOI:https://doi.org/10.30881/jogps.00026
13. Kapranova A., Lebedev A., Meltser A., Neklyudov S. The ensemble-averaged characteristics of the bubble system during cavitation in the separator. E3s Web of Conference. 2019. V. 140. 06005. DOI: https://doi.org/10.1051/e3sconf/201914006005
14. Kapranova A.B., Lebedev A.E., Meltser A.M., Neklyudov S.V. Stochastic model of process of formation of cavitation bubbles in the flow path of control valve. Vestnik. IGEY. 2016. N 4. P. 94-107.). DOI:https://doi.org/10.17588/2072- 2672.2016.4.024-029 (in Russian).
15. Franc J.-P., Michel J.-M. Fundamentals of Cavitation. Fluid Mechanics and Its Applications. 2005. V. 76. N 11. DOIhttps://doi.org/10.1007/1-4020-2233-6
16. S. Xu, Y. Qiao, X. Liu, C.C. Church, M. Wan Fundamentals of Cavitation. In: Wan M., Feng Y., Haar G. (eds). Cavitation in Biomedicine. Dordrecht: Springer, 2015. DOIhttps://doi.org/10.1007/978-94-017-7255-6_1
17. Qian J., Liu B., Jin Z., Zhang H., Lu A. Numerical analysis of flow and cavitation characteristics in a pilot-control globe valve with different valve core displacements. J. Zhejiang Univ. Sci. A. 2016, V. 17, N. 1. P. 54-64.DOIhttps://doi.org/10.1631/jzus.A1500228
18. Arzumanov E.S. Calculation and selection of regulatory bodies of automatic systems. Moscow: Energia, 1971. - 112 p. (in Russian).
19. GOST 12893-2005. Single-seat, double-seat and cage control valves. General technical conditions. Moscow, Standartinform Publ., 2008. 26 p. (in Russian).
20. Idelchik I.E. Hydraulic resistance reference book. Moscow: Mashinostroyeniye, 1975. 559 p. (in Russian).
21. GOST R 52720-2007. Pipefittings. Terms and Definitions. Moscow: Standartinform Publ., 2007. 30 p. (in Russian).
22. Patent N KR 20180055897A. Valve / Preston T.J. Published by May 25, 2018.
23. Patent N US 8297315B2. Throttle valve / V. Esveldt. Published by October 30, 2012.
24. Patent N US 4327757. Control valve / H.H. Weevers. Published by May 4, 1982.
25. Volgin G. The hydraulic resistance coefficient in the conditions of simultaneous effect of Re, Fr and B/h. E3S Web of Conferences, 2019, Vol. 97, 05031. doihttps://doi.org/10.1051/e3sconf/20199705031.
26. Altshul A.D. Hydraulic resistance. Moscow: Nedra, 1982. 224 p. (in Russian).
27. Narasimhamurthy V.D, Andersson H. Turbulence statistics in a rotating ribbed channel. International Journal of Heat and Fluid Flow. 2014. V. 51. DOI:https://doi.org/10.1016/j.ijheatfluidflow.2014.10.008
28. Kireev V.N., Nizamova A., Urmancheev S.F. The hydraulic resistance of thermoviscous liquid flow in a plane channel with a variable cross-section. Journal of Physics Conference Series. 2019. V. 1158. N 3. 032014. DOIhttps://doi.org/10.1088/1742-6596/1158/3/032014
29. Alfonsi G. Direct Numerical Simulation of Turbulent Flows. Applied Mechanics Reviews. 2011. V. 64. N. 2. 0802. DOI:https://doi.org/10.1115/1.4005282
30. Narasimhamurthy V.D., Andersson H. DNS of turbulent flow in a rotating rough channel. 8th Workshop on Direct and Large-Eddy Simulation: materials of the International Conference (January 2011). V. 15. DOI:https://doi.org/10.1007/978-94-007-2482-2_65
31. Kapranova A.B., Lebedev A.E., Meltser A.M., Neklyudov S.V. On the influence of the throughput of the axial valve on the parameters of the stochastic model of cavitation. RHJ Journal of the Chemical Society named after D.I. Mendeleev). 2018. Vol. 62. N 4. P. 51-53.
32. GOST R 55508-2013. Pipefittings. Method of experimental determination of hydraulic and cavitation characteristics. Moscow: Standartinform Publ., 2014. 38 p. (in Russian).
33. Kapranova A.B., Lebedev A.E., Neklyudov S.V., Melzer A.M. Engineering Method for Calculating of an Axial Valve Separator with an External Location of the Locking Part. Frontiers in Energy Research: Process and Energy Systems. March 2020. V. 8. article 32. P. 1-17. DOI:https://doi.org/10.3389/fenrg.2020.00032
34. Kapranova A.B., Lebedev A.E., Meltser A.M., Neklyudov S.V. Investigation of the behavior of the gas-steam system inside the cavitation bubble during the operation of the axial valve. Vestnik. IGEY – Bulletin IGEY, 2020, N. 3. P. 58-64. DOI:https://doi.org/10.17588/2072-2672.2020.3.058-064 (in Russian).
35. Kapranova A.B., Lebedev A.E., Melzer A.M., Neklyudov S.V. About Formation of Elements of a Cyber-Physical System for Efficient Throttling of Fluid in an Axial Valve. In monograph: Cyber-Physical Systems: Advances in Design & Modelling. Studies in Systems, Decision and Control / eds. A. Kravets, A. Bolshakov, M. Shcherbakov. V. 259. Springer, Cham, 2020. P. 109-119. DOI:https://doi.org/10.1007/978-3-030-32579-4_9