[1]. Ferreira V., “Differential pressure spectral analysis for two-phase flow through an orifice plate,” International journal of pressure vessels and Piping, Vol. 73, No. 1, pp. 19-23, 1997. ##
[2]. Fossa M. and Guglielmini G., “Pressure drop and void fraction profiles during horizontal flow through thin and thick orifices,” Experimental Thermal and Fluid Science, Vol. 26, No. 5, pp. 513-523, 2002. ##
[3]. Oliveira J. L.G., Passos J. C., Verschaeren R. and C. W. M. Geld, van der, “Mass flow rate measurements in gas–liquid flows by means of a venturi or orifice plate coupled to a void fraction sensor,” Experimental Thermal and Fluid Science, Vol. 33, Issue 2, pp. 253-260, 2009. ##
[4]. Bertola, V., “The structure of gas–liquid flow in a horizontal pipe with abrupt area contraction,” Experimental thermal and fluid science, Vol. 28, No. 6, pp. 505-512, 2004. ##
[5]. Jones Jr O. C. and Zuber N., “The interrelation between void fraction fluctuations and flow patterns in two-phase flow,” International Journal of Multiphase Flow, Vol. 2, No. 3, pp. 273-306, 1975. ##
[6]. Roul M. K. and Dash S.K., “Single-phase and two-phase flow through thin and thick orifices in horizontal pipes,” Journal of Fluids Engineering, Vol. 134, No. 9, pp. 091301, 2012. ##
[7]. Alimonti C., Falcone G. and Bello O., “Two-phase flow characteristics in multiple orifice valves,” Experimental Thermal and Fluid Science, Vol. 34, No. 8, pp. 1324-1333, 2010. ##
[8]. Meng, Z., Huang Zh., Wang B., Ji H., Li H. and Yan Y., “Air–water two-phase flow measurement using a Venturi meter and an electrical resistance tomography sensor,” Flow Measurement and Instrumentation, Vol. 21, Issue 3, pp. 268-276, 2010. ##
[9]. Hollingshead C.L., Johnson M. C., Barfuss S. L. and Spall R. E., “Discharge coefficient performance of Venturi, standard concentric orifice plate, V-cone and wedge flow meters at low Reynolds numbers,” Journal of Petroleum Science and Engineering, Vol. 78, Issue 3-4, pp. 559-566, 2011. ##
[10]. Shaban H. and Tavoularis S., “Measurement of gas and liquid flow rates in two-phase pipe flows by the application of machine learning techniques to differential pressure signals,” International Journal of Multiphase Flow, Vol. 67, pp. 106-117, 2014. ##
[11]. Cioncolini A., Scenini F. and Duff J., “Micro-orifice single-phase liquid flow: Pressure drop measurements and prediction,” Experimental Thermal and Fluid Science, Vol. 65, pp. 33-40, 2015. ##
[12]. Al-Qutami T. A., Rosdiazli I., Idris I. and Mohd Azmin I., “Development of soft sensor to estimate multiphase flow rates using neural networks and early stopping,” International Journal on Smart Sensing & Intelligent Systems, Vol. 10, Issue 1, pp. 199-222 2017. ##
[13]. Butterworth D., “A comparison of some void-fraction relationships for co-current gas-liquid flow,” International Journal of Multiphase Flow, Vol. 1, Issue 6, pp. 845-850, 1975. ##
[14]. Woldesemayat M. A., “Comparison of void fraction correlations for two-phase flow in horizontal and upward inclined flows,” Oklahoma State University, 2006. ##
[15]. Chisholm D. and Rooney D., “Pressure drop during steam/water flow through orifices,” Journal of Mechanical Engineering Science, Vol. 16, Issue 5, pp. 353-355, 1974. ##
[16]. Baker O. “Design of pipelines for the simultaneous flow of oil and gas,” in Fall Meeting of the Petroleum Branch of AIME, Society of Petroleum Engineers, 1953. ##
[17]. Kojasoy G., Landis F., Kwame-Mensah P. and Chang C. T., “Two-phase pressure drop in multiple thick-and thin-orifice plates,” Experimental thermal and fluid science, Vol. 15, Issue 4, pp. 347-358, 1997. ##
[18]. Fluent A., “Fluent 12. Theory guide,” Ansys inc., 2017. ##
[19]. Shah M. S., Joshi J. B., Kalsi A. S., Prasad C. S. R. and Shukla D. S., “Analysis of flow through an orifice meter: CFD simulation,” Chemical Engineering Science, Vol. 71, pp. 300-309, 26 March 2012. ##
[20]. Kalkan O. O., “Implementation of k-epsilon turbulence models in a two dimensional parallel navier-stokes solver on hybrid grids,” 2014. ##