Thermal calculation of submersible motors
Authors: Gizatullin R.R., Pescherenko S.N., Shiverskiy A.V.
Published in issue: #12(108)/2020
DOI: 10.18698/2308-6033-2020-12-2036
Category: Mechanics | Chapter: Mechanics of Liquid, Gas, and Plasma
The paper proposes a method of thermal calculation of submersible electric motors intended for use at the stage of their conceptual design. The model is based on the complete system of hydrodynamic equations averaged over the motor cross section and the annular channel through which coolant is pumped. All geometric dimensions and properties of the substance are set. The temperature distribution over the cross section and along the length of the motor is calculated. Two approximations are used. In the first one, the temperature distribution in the cross section of the electric motor was averaged over the corners, which requires setting an effective coefficient of thermal conductivity inside the stator grooves filled with winding wires and electrical insulation. In the second approximation, the heat transfer at the solid – liquid interface was specified through the empirical dependence of the Nusselt number on the Reynolds and Prandtl numbers. To verify the model, the results obtained were compared with calculations by the method of computational fluid dynamics in the ANSYS Fluent software package. The error in calculating the insulation temperature was not more than 5%.
References
[1] Melnichenko V.Ye. Otsenka vliyaniya osnovnykh tekhnologicheskikh kharakte-ristik dobyvayushchikh skvazhin na resurs pogruzhnykh elektrotsentrobezhnykh nasosov. Diss. kand. tehn. nauk [Assessment of the influence of the main technological characteristics of production wells on the resource of submersible electric centrifugal pumps. Cand. eng. sc. diss.]. Moscow, 2017, 161 p.
[2] Melnichenko V.Ye. Burenie i neft (Drilling and oil), 2017, no. 2. pp. 16–21.
[3] Yazkov A.V. Neftyanoe khozyaystvo — Oil Industry, 2007, no. 11, pp. 125–125.
[4] Kuptsov S.M. Territoriya neftegaz — Oil and Gas Territory, 2010, no. 4. pp. 36–38.
[5] Volovodov A.V. Ekspozitsiya neft gaz — Exposition Oil & Gas, 2018, no. 6. pp. 42–43.
[6] Nugayev I.F., Bayguskarov I.S., Styskin A.V., Urazbakhtina N.G. Elektro-tekhnicheskiye i informatsionnyye kompleksy i sistemy (Electrical and information complexes and systems), 2014, vol. 10, no. 3, pp. 38–44.
[7] Yazkov A.V., Roslyak A.T., Arbuzov V.N. Neftepromyslovoye delo — Oilfield Engineering, 2007, no. 10, pp. 27–34.
[8] Shmidt S.A., Lyustritskiy V.M. Teplovoy rezhim PED v protsesse osvoyeniya skvazhiny, oborudovannoy UETSN [Thermal mode of submersible electric motor during development of a well equipped with an ESP]. Sbornik trudov instituta Giprovostokneft [Proceedings of the Giprovostokneft Institute]. Samara, Giprovostokneft Publ., 2000, 73 p.
[9] Staton D., Hawkins D., Popescu M. Practical Strategies for Improved Cooling of Electrical Motors and Generators. In: The International Conference for Inductive and Electromagnetic Components, Systems and Devices including Manufacturing and Processing, 2012.
[10] Maiyuschenko A.V. Analysts of thermal state of traction brushless permanent motor for mine electric locomotive. Electrical engineering and electromechanics, 2016, no. 6, pp. 15–18. DOI: 10.20998/2074-272X. 2016.6.03
[11] Rymsha V.V., Protsyna Z. P., Demyanenko S. K. Elektrotekhnika & elektro-mekhanika — Electrical engineering & Electromechanics, 2010, no. 4. pp. 26–28.
[12] Denisova A.S., Pescherenko S.N., Poshvin Ye.V. Burenie i neft (Drilling and oil), 2010, no. 10, pp. 46–48.
[13] Denisova A.S., Pescherenko S.N. Nauchnyye issledovaniya i innovatsii (Research and innovation), 2010, vol. 4, no. 1, pp. 114–117.
[14] Gizatullin R.R., Pescherenko M.P., Pescherenko S.N. Teplovyye protsessy v tekhnike — Thermal Processes in Engineering, 2019, vol. 11, no. 3, pp. 106–114.
[15] Morozkin V.P., Todos P.I., Tokarev B.F. Dvigateli postoyannogo toka dlya podvodnoy tekhniki [Motors for underwater equipment]. Moscow, Energia Publ., 1977, 184 p.
[16] Landau L.D., Lifshitz E.M. Teoreticheskaya fizika. T. VI. Gidrodinamika [Course of theoretical physics. Vol. VI. Hydrodynamics]. Moscow, Fizmatlit Publ., 2001, 736 p.
[17] Mikheev M.A., Mikheeva I.M. Osnovy teploperedachi [Fundamentals of heat transfer]. Moscow, Energia Publ., 1977, 344 p.
[18] Isachenko V.P., Osipova V.A., Sukomel A.S. Teploperedacha [Heat transfer]. Moscow, Energia Publ., 1981, 417 p.