References
[1]. Mehrdad, A., Hossein, J., Gholamreza, K., & Mansour,
K. (2010). A prediction to the best artificial lift method
selection on the basis of TOPSIS model. Journal of
Petroleum and Gas Engineering, 1(1), 009-015.
[2].
Ballarini, M., Bruni, M., Muñoz, H., Colla, M., Teves, R.,
Cruz Pirez, J., ... & Fleitas, D. (2017, April). High efficiency
ESP applications for slim wells. In SPE Electric Submersible
Pump Symposium. OnePetro.
[3]. Bezerra, M. A., Schnitman, L., Barreto Filho, M. D. A.,
Jose, A. M., & de Souza, F. (2009, May). Pattern
Recognition for Downhole Dynamometer Card in Oil Rod
Pump System Using Artificial Neural Networks. In ICEIS (2) (pp. 351-355).
[5]. Brantly, J. E. (1961). History of petroleum engineering.
Boyed Printing Co., American Petroleum Institute, Dallas,
Texas, USA, (pp. 133-269).
[7]. Kermit, E. B. (1980). The technology of artificial lift
methods. Volumen 2b, Petroleum Publishing.
[9].
Chen, J., Liu, H., Wang, F., Shi, G., Cao, G., & Wu, H.
(2013). Numerical prediction on volumetric efficiency of
progressive cavity pump with fluid–solid interaction
model. Journal of Petroleum Science and Engineering,
109, 12-17.
[11]. Elldakli, F. (2017). Gas lift system. Petroleum &
Petrochemical Engineering Journal, 1(4), 1-11.
[13]. Fleshman, R., & Lekic, H. O. (1999). Artificial lift for
high-volume production. Oilfield Review, 11(1), 49-63.
[14]. Gamboa, J., Olivet, A., Iglesias, J. C., & Gonzalez, P.
(2003). Understanding the performance of a progressive
cavity pump with metallic stator. In Proceedings of the
20th International Pump Users Symposium. Texas A&M
University. Turbomachinery Laboratories.
[17]. Karthikeshwaran, R. (2018). A study on progressive
cavity pump. JASC: Journal of Applied Science and
Computations, 5(12), 2179- 2187.
[18].
Crnogorac, M., Tanasijević, M., Danilović, D.,
Karović Maričić, V., & Leković, B. (2020). Selection of
Artificial Lift Methods: A Brief Review and New Model Based
on Fuzzy Logic. Energies, 13(7), 1758.
[19]. Dake, L. P. (1983). Fundamentals of Reservoir
Engineering. Elsevier, (pp. 464).
[20]. Kaul, S. P. (2014). Simulation Study of Volatile Oil
Reservoirs – Understanding the ReservoirDrive
Mechanisms in Conventional and Liquids- Rich
Unconventional Reservoirs and Its Effect on Long Term
Deliverability (Doctoral dissertation, Texas A & M University,
United States).
[23]. Mathew, U. C., Stanley, E. T., Obibuike, U. J. &
Chijioke, O. I. (2019). Prospects and evaluation of
progressive cavity pump for niger delta field application.
International Journal of Engineering and Advanced
Research Technology (IJEART), 5(8), 12- 16.
[24].
Mohammadzaheri, M., Tafreshi, R., Khan, Z.,
Ghodsi, M., Franchek, M., & Grigoriadis, K. (2020).
Modelling of petroleum multiphase flow in electrical
submersible pumps with shallow artificial neural networks.
Ships and Offshore Structures, 15(2), 174-183.
[29].
Neely, B., Gipson, F., Clegg, J., Capps, B., & Wilson, P.
(1981, October). Selection of artificial lift method. In SPE
Annual Technical Conference and Exhibition. OnePetro.
[31].
Ounsakul, T., Sirirattanachatchawan, T.,
Pattarachupong, W., Yokrat, Y., & Ekkawong, P. (2019,
March). Artificial lift selection using machine learning. In
International Petroleum Technology Conference.
OnePetro.
[34].
Refai, A., Abdou, H. A. M., Seleim, A., Biasin, G.,
Reda, W. & Dmitry, L. (2013). Permanent magnet motor
application for esp artificial lift. North Africa Technical
Conference and Exhibition.
[37]. Shahri, M. (2011). Simplified and rapid method for
determining flow characteristics of every gas-lift valve
(GLV). Texas Tech University, (pp. 1-112).
[40]. Takacs, G. (2015). Sucker-rod Pumping Handbook:
Production Engineering Fundamentals and Long-Stroke
Rod Pumping. Gulf Professional Publishing.
[41]. Takács, G. (2003). Sucker-Rod Pumping Manual.
PennWell Corporation.
[42].
Toochukwu, E. S., Julian, O. U., Chemazu, I. A.,
Chidube, U. M., Emeka, O. J., & Kelechi, I. K. (2020).
Analyses of Electric Submersible Progressive Cavity Pumps
for Production of Heavy Oil Reservoir in the Niger Delta.
Advances in Petroleum Exploration and Development, 19(1), 9-16.
[44]. Wang, H., Hu, Q., Yang, Y., & Wang, C. (2021).
Performance differences of electrical submersible pump
under variable speed schemes. International Journal of
Simulation Modelling, 20, 76-86.
[48]. Zeng, Z., & Cremaschi, S. (2017). Artificial lift infrastructure planning for shale gas producing horizontal
wells. Proceedings of the FOCAPO/CPC, Tuscan, AZ, USA,
8, 12.
[49].
Zheng, L., Wu, X., Han, G., Li, H., Zuo, Y., & Zhou, D.
(2018). Analytical model for the flow in progressing cavity
pump with the metallic stator and rotor in clearance fit.
Mathematical Problems in Engineering.
[50].
Zhou, L., Wang, W., Hang, J., Shi, W., Yan, H., & Zhu, Y.
(2020). Numerical investigation of a high-speed electrical
submersible pump with different end clearances. Water,
12(4), 1116.