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Tytuł artykułu

Ice slurry flow and heat transfer during flow through tubes of rectangular and slit cross-sections

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The paper presents the results of experimental research of pressure drop and heat transfer coefficients of ice slurry during its flow through tubes of rectangular and slit cross-sections. Moreover, the work discusses the influence of solid particles, type of motion and cross-section on the changes in the pressure drop and heat transfer coefficient. The analysis presented in the paper allows for identification of the criterial relations used to calculate the Fanning factor and the Nusselt number for laminar and turbulent flow, taking into account elements such as phase change, which accompanies the heat transfer process. Ice slurry flow is treated as a generalized flow of a non-Newtonian fluid.
Rocznik
Strony
171--190
Opis fizyczny
Bibliogr. 25 poz., il.
Twórcy
  • Cracow University of Technology, Faculty of Mechanical Engineering, Jana Pawła II 37, Kraków, Poland
autor
  • Cracow University of Technology, Faculty of Mechanical Engineering, Jana Pawła II 37, Kraków, Poland
Bibliografia
  • [1] NIEZGODA-ŻELASKO B.: Ice slurry, new cooling technology.perspective of application Part I. Chłodnictwo&Klimatyzacja 9(2009), 48-50.
  • [2] NIEZGODA-ŻELASKO B.: Ice slurry, new cooling technology, perspective of application (part II). Chłodnictwo&Klimatyzacja 10(2009), 46-51.
  • [3] NIEZGODA-ŻELASKO B., ŻELASKO J.: Thermal and flow calculations of ice slurry-fed air coolers. In: Thermodynamics in Science and Technology, PAN, Poznań 2011.
  • [4] GULIPART J.: Experimental study and calculation method of transport characteristics of ice slurries. In: Proc. 1st Workshop on Ice Slurries of the Int. Institute of Refrigeration, Yverdon-Les-Bains, Schwitzerland, 1999, 74-82.
  • [5] CHRISTENSEN K.G., KAUFFELD M.: Heat Transfer Measurements with Ice Slurry. Institute of Refrigeration, 1997.
  • [6] EGOLF P.W., KITANOVSKI A., ATA-CAESAR D., STAMATIOU E., KAWAJI M., BEDECARRATS J.P., STRUB F: Thermodynamics and heat transfer of ice slurries. Int. J. Refrig. 28(2005), 51-59.
  • [7] JENSEN E., CHRISTENSEN K., HANSEN T., SCHNEIDER P., KAUFFLED M.: Pressure drop and heat transfer with ice slurry. Purdue Univer. IIF/II (2000), 521-529.
  • [8] NIEZGODA-ŻELASKO B., ZALEWSKI W.: Momentum transfer of ice slurries flows in tubes. Experimental investigation. Int. J. Refrig. 29(2006), 418-428.
  • [9] MIKA Ł.: Loss coefficients of ice slurry in sudden pipe contractions. Arch. Thermodyn. 3(2010)
  • [10] KITANOVSKI A., VUARNOZ A., ATA-CAESAR D., EGOLF P.W., HANSEN T.M., DOETSCH CH.: The fluid dynamics of ice slurry. Int. J. Refrig. 28(2005), 37-55.
  • [11] NIEZGODA-ŻELASKO B.: Heat transfer of ice slurries flows in tubes. Int. J. Refrig. 29(2006), 437-450.
  • [12] WANG J., ZHANG T., WANG S.: Heterogeneous ice slurry flow and concentration distribution in horizontal pipes. Int. J. Heat and Fluid Flow 44(2013), 425-434.
  • [13] STAMATIOU E., KAWAJI M.: Thermal and flow behavior of ice slurries in a vertical rectangular channel. Part I: Local distribution measurements in adiabatic flow. Int. J. Heat Mass Trans. 48(2005), 3527-3543.
  • [14] STAMATIOU E., KAWAJI M.: Thermal and flow behavior of ice slurries in a vertical rectangular channel. Part II: Forced convective melting heat transfer. Int. J. Heat Mass Trans. 48(2005) 3544-3559.
  • [15] AYEL V., LOTTIN O., PEERHOSSAINI H.: Rheology, flow behaviour and heat transfer of ice slurries: A review of the state of the art. Int. J. Refrig. 26(2003), 95-107.
  • [16] NIEZGODA-ŻELASKO B.: Heat transfer and pressure drop of ice slurries flow in tube. Monograph 334, Cracow UT, Cracow 2006 (in Polish).
  • [17] GÜCÜYENER I.H., MEHMETODLU T.: Characterization of flow regime in concentric annuli and pipes for field-pseudoplastic fluids. J. Petroleum Sci. Erig. 16(1996), 45-60.
  • [18] NOUAR C., FRIGAARD LA.: Nonlinear stability Poiseuille flow of Bingham fluid: theoretical results and comparison with phenomenological criteria. J. Non-Newton. Fluid 100(2000), 127-149.
  • [19] MATRAS Z.: Hydraulic transport of rheologically complex non-Newtonian fluids in pipe. Cracow UT, Cracow 2001 (in Polish).
  • [20] KOZICKI W., CHOU C.H., Tiu C.: Non-Newtonian flow in ducts of arbitrary cross-sectional shape. Chern. Engi. Sci. 21(1966), 665-679.
  • [21] HANKS R.W., PRATT D.R.: On the flow of Bingham plastic slurries in pipes and between parallel plates. Soc. Pet. Eng. Paper. SPE1682, 1967.
  • [22] SHAH S.N., SUTTON D.L.: New friction correlation for cements from pipe and rotational-viscometer data. Soc. Pet. Eng. Prod. Eng. 12(1991), 415-424.
  • [23] MAGLIONE R.: New method determines flow regime and pressure losses during drilling and cementm. Oil Gas J. 93(1995), 94-101.
  • [24] CHARUNKYAKORN P., SENGUPTA S., ROY S.K.: Forced convective heat transfer in microencapsulated phase change material slurries: flow in circular ducts. Int. J. Heat Mass Trans. 34(1991), 819-833.
  • [25] NIEZGODA B.: Solution of inverse problem for determining mean convective heat transfer coefficient by means of Gram-Schmidt and Nelder-Meade methods. Biul. ITC Warsaw UT 80(1995) (in Polish).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-0aad68f0-57eb-425b-9266-4fbe4210d7c0
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