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Flow maps in multiphase flows

Treść / Zawartość
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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Flow structure maps are the most useful tool in the process of identifying structures formed in multiphase flows. They can be defined as a graphical way to present the transition boundaries of flow structures, depending on the characteristic parameters of the phase transformation or flow, such as the vapor quality, the void fraction, the mass flow density, or the velocities of individual phases. Maps are usually two-dimensional drawings, described with a minimum of two selected parameters or quantities describing the phenomenon. The oldest maps of flow structures concerned adiabatic flows, mainly two-phase water-air systems or three-phase water-oil-air systems in conventional channels. Maps of nonadiabatic flow structures are simple and allow the selection of an appropriate model to determine the heat transfer coefficient as well as the flow resistance of the refrigerant. This has a major impact on the design of flow devices, where two- and even three-phase flows. This paper includes reviews of proposed maps of multiphase flow structures by various authors.
Słowa kluczowe
Rocznik
Strony
19--28
Opis fizyczny
Bibliogr. 36 poz., rys.
Twórcy
  • Politechnika Koszalińska, Katedra Energetyki, ul. Śniadeckich 2, 75-453 Koszalin, Poland
  • Politechnika Koszalińska, Katedra Energetyki, ul. Śniadeckich 2, 75-453 Koszalin, Poland
  • Katedra Inżynierii Procesowej i Środowiska, Politechnika Opolska, ul. St. Mikołajczyka 5, 45-271 Opole, Poland
  • Katedra Inżynierii Procesowej i Środowiska, Politechnika Opolska, ul. St. Mikołajczyka 5, 45-271 Opole, Poland
Bibliografia
  • [1] Sikora, M. (2020). Modeling of two-phase flow structures during condensation in mini-channels. Koszalin University of Technology (in Polish).
  • [2] Dziubiński, M., & Prywer, J. (2009). Two-phase fluid mechanics. Scientific and Technical Publishing House, Warsaw (in Polish).
  • [3] Ulbrich, R. (2014). Modern research methods for flows in multiphase systems. Publishing House of the Opole University of Technology (in Polish).
  • [4] Zhang, J., Xu, J.Y., Wu, Y.X., Li, D.H., & Li, H. (2013). Experimental validation of the calculation of phase holdup for an oil–water two-phase vertical flow based on the measurement of pressure drops. Flow Measurement and Instrumentation, 31, 96–101. doi: 10.1016/j.flowmeasinst. 2012.08.002
  • [5] Bannwart, A.C., Rodriguez, O.M.H., Trevisan, F.E., Vieira, F.F., & de Carvalho, C.H.M. (2009). Experimental investigation on liquid–liquid–gas flow: Flow patterns and pressure-gradient. Journal of Petroleum Science and Engineering, 65(1‒2), 1–13. doi: 10.1016/j.petrol.2008.12.014
  • [6] Płaczek, M., Pietrzak, M., & Witczak, S. (2018). A conductometric method for determining the upward gasliquid-liquid three-phase flow. Archives of Thermodynamics, 39(3), 97−110. doi: 10.1515/aoter-2018-0022
  • [7] Baker, O. (1954). Simultaneous flow of oil and gas. Oil and Gas Journal, 53, 185–190.
  • [8] Charles, M.E., Govier, G.W., & Hodgson, G.W. (1961). The horizontal pipeline flow of equal density oil-water mixtures. Canadian Journal of Chemical Engineering, 39, 27–36. doi: 10.1002/cjce.5450390106
  • [9] Troniewski, L., Witczak, S., & Trębacz, J. (2000). Twophase water-oil flow in vertical channels. Science Notebooks Mechanics. Opole University of Technology, 65,39–54 (in Polish).
  • [10] Xu, J., Li, D., Guo, J., & Wu, Y. (2010). Investigations of phase inversion and frictional pressure gradients in upward and downward oil–water flow in vertical pipes. International Journal of Multiphase Flow, 36, 930–939.doi: 10.1016/j.ijmultiphaseflow.2010.08.007
  • [11] Flores, J.G. (1997). Oil–Water Flow in Vertical and Deviated Wells. University of Tulsa.
  • [12] Brandt, A. (2014). Annular flow of a multiphase mixture in the pipes of thin-film apparatus. PhD thesis, Opole University of Technology (in Polish).
  • [13] Hewitt, G.F., & Roberts, D.N. (1969). Studies of TwoPhase Flow Patterns by Simultaneous X-Ray and Flash Photography. Berkshire: Atomic Energy Research Establishment. Harwell, England.
  • [14] Taitel, Y., & Dukler, A.E. (1976). A model for predicting flow regime transitions in horizontal and near horizontal gas-liquid flow. AIChE Journal, American Institute of Chemical Engineers, 22(1), 47–55. doi: 10.1002/aic.690220105
  • [15] Ulbrich, R. (1989). Identification of two-phase gas-liquid flow. Studies and Monographs, 32, WSI, Opole (in Polish).
  • [16] Breber, G., Palen, J.W., & Taborek, J. (1980). Prediction of Horizontal Tubeside Condensation of Pure Components Using Flow Regime Criteria. Journal of Heat Transfer, 102, 471–476. doi: 10.1115/1.3244325
  • [17] Soliman, H.M. (1982). On the annular-to-wavy flow pattern transition during condensation inside horizontal tubes. Canadian Journal of Chemical Engineering, 60,475–481. doi: 10.1002/cjce.5450600405
  • [18] Taitel, Y., & Dukler, A.E. (1976). A model for predicting flow regime transitions in horizontal and near horizontal gas-liquid flow. AIChE Journal, American Institute of Chemical Engineers, American Institute of Chemical Engineers, 22, 47–55. doi: 10.1002/aic.690220105
  • [19] El Hajal, J., Thome, J.R., & Cavallini, A. (2003). Condensation in horizontal tubes, part 1: two-phase flow pattern map. International Journal of Heat and Mass Transfer, 46, 3349–3363. doi: 10.1016/S0017-9310(03)00139-X
  • [20] Coleman, J.W., & Garimella, S. (2003). Two-phase flow regimes in round, square and rectangular tubes during condensation of refrigerant R134a. International Journal of Refrigeration, 26, 117–128. doi: 10.1016/S0140-7007(02)00013-0
  • [21] Wojtan, L., Ursenbacher, T., & Thome, J.R. (2005). Investigation of flow boiling in horizontal tubes: Part I A new diabatic two-phase flow pattern map. International Journal of Heat and Mass Transfer, 48, 2955–2969. doi:10.1016/j.ijheatmasstransfer.2004.12.012
  • [22] Yang, C.M., & Hrnjak, P. (2020). A new flow pattern map for flow boiling of R410A in horizontal micro-fin tubes considering the effect of the helix angle. International Journal of Refrigeration, 109, 154–160. doi: 10.1016/j.ijrefrig.2019.09.013
  • [23] Turgut, O.E., & Asker, M. (2022). Flow boiling behaviors of various refrigerants inside horizontal tubes: a comparative research study. Eskişehir Technical UniversityJournal of Science and Technology A - Applied Sciences and Engineering, 23, 1–20. doi: 10.18038/estubtda.749040
  • [24] Kattan, N., Thome, J.R., & Favrat, D. (1998). Flow Boiling in Horizontal Tubes: Part 1 Development of a Diabatic Two-Phase Flow Pattern Map. Journal of Heat Transfer,120, 140. doi: 10.1115/1.2830037
  • [25] Nema, G., Garimella, S., & Fronk, B.M. (2014). Flow regime transitions during condensation in microchannels. International Journal of Refrigeration, 40, 227–240. doi:10.1016/j.ijrefrig.2013.11.018
  • [26] Mishima, K., Hibiki, T., & Nishihara, H. (1993). Some characteristics of gas-liquid flow in narrow rectangular ducts. International Journal of Multiphase Flow, 19, 115–124. doi: 10.1016/0301-9322(93)90027-R
  • [27] Sikora, M. (2021). Flow Structure Investigations during Novec Refrigerant Condensation in Minichannels. Materials, 14, 6889. doi: 10.3390/ma14226889
  • [28] Açikgöz, M., França, F., & Lahey, R.T. (1992). An experimental study of three-phase flow regimes. International Journal of Multiphase Flow, 18, 327–336. doi: 10.1016/0301-9322(92)90020-H
  • [29] Woods, G.S., Spedding, P.L., Watterson, J.K., & Raghunathan, R.S. (1998). Three-Phase Oil/Water/Air Vertical Flow. Chemical Engineering Research and Design, 76, 571–584. doi: 10.1205/026387698525252
  • [30] Cazarez, O., Montoya, D., Vital, A.G., & Bannwart, A.C. (2010). Modeling of three-phase heavy oil–water–gas bubbly flow in upward vertical pipes. International Journal of Multiphase Flow, 36, 439–448. doi: 10.1016/j.ijmultiphaseflow.2010.01.006
  • [31] Shean, A.R. (1976). Pressure drop and phase fraction in oil-water-air vertical pipe flow. Thesis, Department of Mechanical Engineering, Massachusetts Institute of Technology, Cambridge.
  • [32] Govier, G.W., & Aziz, K. (2008). The Flow of Complex Mixtures in Pipes. (2nd Edn.). Society of Petroleum Engineers.
  • [33] Spedding, P.L., Woods, G.S., Raghunathan, R.S., & Watterson, J.K. (2000). Flow Pattern, Holdup and Pressure Drop in Vertical and Near Vertical Two- and Three-Phase Upflow. Chemical Engineering Research and Design, 78,404–418. doi: 10.1205/026387600527301
  • [34] Nowak, M. (2007). Volume share and resistance of threephase flow in the vertical channel. Opole University of Technology (in Polish).
  • [35] Pietrzak, M., Płaczek, M., & Witczak, S. (2017). Upward flow of air-oil-water mixture in vertical pipe. Experimental Thermal and Fluid Science, 81, 175–186. doi: 10.1016/j.expthermflusci.2016.10.021
  • [36] Brandt, A., Czernek, K., Płaczek, M., & Witczak, S. (2021). Downward Annular Flow of Air–Oil–Water Mixture in a Vertical Pipe. Energies, 14(1), 30. doi: 10.3390/en14010030
Uwagi
Opracowanie rekordu ze środków MNiSW, umowa nr POPUL/SP/0154/2024/02 w ramach programu "Społeczna odpowiedzialność nauki II" - moduł: Popularyzacja nauki (2025).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-343f5798-5e43-44a8-a00f-0b090ed2b695
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