Skip to main content

2020 | OriginalPaper | Buchkapitel

2. Pool Boiling Enhancement Techniques

verfasst von : Sujoy Kumar Saha, Hrishiraj Ranjan, Madhu Sruthi Emani, Anand Kumar Bharti

Erschienen in: Two-Phase Heat Transfer Enhancement

Verlag: Springer International Publishing

Aktivieren Sie unsere intelligente Suche, um passende Fachinhalte oder Patente zu finden.

search-config
loading …

Abstract

Pool boiling enhancement techniques with all their aspects have been presented in this chapter. Many different types of textured surfaces like abrasives, open groves, three-dimensional cavities, electroplating, attached wire and screen promoters, pierced three-dimensional cover sheets, etched surfaces, coatings, porous surfaces, structured surfaces, combined structured and porous surfaces and composite surfaces have been discussed in detail. Pool boiling tests of enhanced surfaces have also been discussed. Fundamental theory, effects of boiling hysteresis and orientation, boiling mechanism and models for structured surfaces and porous surfaces, critical heat flux (CHF) and thin film evaporation have all been included.

Sie haben noch keine Lizenz? Dann Informieren Sie sich jetzt über unsere Produkte:

Springer Professional "Wirtschaft+Technik"

Online-Abonnement

Mit Springer Professional "Wirtschaft+Technik" erhalten Sie Zugriff auf:

  • über 102.000 Bücher
  • über 537 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Finance + Banking
  • Management + Führung
  • Marketing + Vertrieb
  • Maschinenbau + Werkstoffe
  • Versicherung + Risiko

Jetzt Wissensvorsprung sichern!

Springer Professional "Technik"

Online-Abonnement

Mit Springer Professional "Technik" erhalten Sie Zugriff auf:

  • über 67.000 Bücher
  • über 390 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Maschinenbau + Werkstoffe




 

Jetzt Wissensvorsprung sichern!

Literatur
Zurück zum Zitat Albertson CE, inventor; Borg-Warner Corp, assignee (1977) Boiling heat transfer surface and method. United States Patent US 4,018,264 Albertson CE, inventor; Borg-Warner Corp, assignee (1977) Boiling heat transfer surface and method. United States Patent US 4,018,264
Zurück zum Zitat Antonelli R, O’Neill PS (1981) Design and application considerations heat exchangers with enhanced boiling surfaces. In: Sourcebook JP (ed) Heat exchanger. Hemisphere, Washington, DC Antonelli R, O’Neill PS (1981) Design and application considerations heat exchangers with enhanced boiling surfaces. In: Sourcebook JP (ed) Heat exchanger. Hemisphere, Washington, DC
Zurück zum Zitat Arai N (1977) Heat transfer tubes enhancing boiling and condensation in heat exchangers of a refrigerating machine. ASHRAE Trans 83(2):58–69 Arai N (1977) Heat transfer tubes enhancing boiling and condensation in heat exchangers of a refrigerating machine. ASHRAE Trans 83(2):58–69
Zurück zum Zitat Arias FJ, Reventos F (2010) Heat transfer enhancement in film boiling due to lift forces on the Taylor-Helmholtz instability in low forced convection from a horizontal surface. J Enhanc Heat Transf 17(2):197CrossRef Arias FJ, Reventos F (2010) Heat transfer enhancement in film boiling due to lift forces on the Taylor-Helmholtz instability in low forced convection from a horizontal surface. J Enhanc Heat Transf 17(2):197CrossRef
Zurück zum Zitat Arshad J, Thome JR (1983) Enhanced boiling surfaces: heat transfer mechanism and mixture boiling. Proc ASME-JSME Therm Eng Joint Conf 1(1):191–197 Arshad J, Thome JR (1983) Enhanced boiling surfaces: heat transfer mechanism and mixture boiling. Proc ASME-JSME Therm Eng Joint Conf 1(1):191–197
Zurück zum Zitat Asakavicius JP, Zukauskas AA, Gaigolis VA, Eva VK (1979) Heat transfer from freon-113, ethyl alcohol and water with screen wicks. Heat Transf Soviet Res 11(1):92–100 Asakavicius JP, Zukauskas AA, Gaigolis VA, Eva VK (1979) Heat transfer from freon-113, ethyl alcohol and water with screen wicks. Heat Transf Soviet Res 11(1):92–100
Zurück zum Zitat Ayub ZH, Bergles AE (1987) Pool boiling from GEWA surfaces in water and R-113. Wärme-und Stoffübertragung 21(4):209–219CrossRef Ayub ZH, Bergles AE (1987) Pool boiling from GEWA surfaces in water and R-113. Wärme-und Stoffübertragung 21(4):209–219CrossRef
Zurück zum Zitat Ayub ZH, Bergles AE (1990) Nucleate pool boiling curve hysteresis for GEWA-T surfaces in saturated R-113. Exp Thermal Fluid Sci 3(2):249–255CrossRef Ayub ZH, Bergles AE (1990) Nucleate pool boiling curve hysteresis for GEWA-T surfaces in saturated R-113. Exp Thermal Fluid Sci 3(2):249–255CrossRef
Zurück zum Zitat Bang IC, Chang SH (2005) Boiling heat transfer performance and phenomena of Al2O3–water nano-fluids from a plain surface in a pool. Int J Heat Mass Transf 48(12):2407–2419CrossRef Bang IC, Chang SH (2005) Boiling heat transfer performance and phenomena of Al2O3–water nano-fluids from a plain surface in a pool. Int J Heat Mass Transf 48(12):2407–2419CrossRef
Zurück zum Zitat Bar-Cohen A (1992) Hysteresis phenomena at the onset of nucleate boiling. In: Dhir VK, Bergles AE (eds) Pool and external flow boiling. American Society of Mechanical Engineers, New York, pp 1–4 Bar-Cohen A (1992) Hysteresis phenomena at the onset of nucleate boiling. In: Dhir VK, Bergles AE (eds) Pool and external flow boiling. American Society of Mechanical Engineers, New York, pp 1–4
Zurück zum Zitat Bell KJ, Mueller AC (1984) Engineering data book II. Wolverine Tube Bell KJ, Mueller AC (1984) Engineering data book II. Wolverine Tube
Zurück zum Zitat Bergles AE, Bakhru N, Shires JW (1968) Cooling of high-power-density computer components. MIT Heat Transfer Laboratory, Cambridge, MS Bergles AE, Bakhru N, Shires JW (1968) Cooling of high-power-density computer components. MIT Heat Transfer Laboratory, Cambridge, MS
Zurück zum Zitat Bergles AE, Chyu MC (1982) Characteristics of nucleate pool boiling from porous metallic coatings. J Heat Transf 104(2):279–285CrossRef Bergles AE, Chyu MC (1982) Characteristics of nucleate pool boiling from porous metallic coatings. J Heat Transf 104(2):279–285CrossRef
Zurück zum Zitat Bi J et al (2015) Heat transfer characteristics and CHF prediction in nano-fluid boiling. Int J Heat Mass Transf 80:256–265CrossRef Bi J et al (2015) Heat transfer characteristics and CHF prediction in nano-fluid boiling. Int J Heat Mass Transf 80:256–265CrossRef
Zurück zum Zitat Bliss FE Jr, Hsu ST, Crawford M (1969) An investigation into the effects of various platings on the film coefficient during nucleate boiling from horizontal tubes. Int J Heat Mass Transf 12(9):1061–1072CrossRef Bliss FE Jr, Hsu ST, Crawford M (1969) An investigation into the effects of various platings on the film coefficient during nucleate boiling from horizontal tubes. Int J Heat Mass Transf 12(9):1061–1072CrossRef
Zurück zum Zitat Bolukbasi A, Ciloglu D (2011) Pool boiling heat transfer characteristics of vertical cylinder quenched by SiO2–water nanofluids. Int J Therm Sci 50(6):1013–1021CrossRef Bolukbasi A, Ciloglu D (2011) Pool boiling heat transfer characteristics of vertical cylinder quenched by SiO2–water nanofluids. Int J Therm Sci 50(6):1013–1021CrossRef
Zurück zum Zitat Bonilla CF, Grady JJ, Avery GW (1965) Pool boiling heat transfer from scored surfaces. Chem Eng Progress Symp Ser 61(57):280–288 Bonilla CF, Grady JJ, Avery GW (1965) Pool boiling heat transfer from scored surfaces. Chem Eng Progress Symp Ser 61(57):280–288
Zurück zum Zitat Brothers WS, Kallfelz AJ (1979) Heat transfer surface and method of manufacture. US Patent 4,159,739 Brothers WS, Kallfelz AJ (1979) Heat transfer surface and method of manufacture. US Patent 4,159,739
Zurück zum Zitat Carey VP (1992) Liquid-vapor phase-change phenomena. Hemisphere, Washington, DC Carey VP (1992) Liquid-vapor phase-change phenomena. Hemisphere, Washington, DC
Zurück zum Zitat Chang JY, You SM (1996) Heater orientation effects on pool boiling of micro-porous-enhanced surfaces in saturated FC-72. J Heat Transf 118(4):937–943CrossRef Chang JY, You SM (1996) Heater orientation effects on pool boiling of micro-porous-enhanced surfaces in saturated FC-72. J Heat Transf 118(4):937–943CrossRef
Zurück zum Zitat Chang JY, You SM (1997) Boiling heat transfer phenomena from microporous and porous surfaces in saturated FC-72. Int J Heat Mass Transf 40(18):4437–4447CrossRef Chang JY, You SM (1997) Boiling heat transfer phenomena from microporous and porous surfaces in saturated FC-72. Int J Heat Mass Transf 40(18):4437–4447CrossRef
Zurück zum Zitat Chaudhri IH, McDougall IR (1969) Ageing studies in nucleate pool boiling of isopropyl acetate and perchloroethylene. Int J Heat Mass Transf 12(6):681–688CrossRef Chaudhri IH, McDougall IR (1969) Ageing studies in nucleate pool boiling of isopropyl acetate and perchloroethylene. Int J Heat Mass Transf 12(6):681–688CrossRef
Zurück zum Zitat Chien L-H, Chang C-C (2003) Enhancement of pool boiling on structured surfaces using HFC-4310 and water. J Enhanc Heat Transf 11:23–44CrossRef Chien L-H, Chang C-C (2003) Enhancement of pool boiling on structured surfaces using HFC-4310 and water. J Enhanc Heat Transf 11:23–44CrossRef
Zurück zum Zitat Chien LH, Chang CC (2004) Enhancement of pool boiling on structured surfaces using HFC-4310 and water. J Enhanc Heat Transf 11(1):23MathSciNetCrossRef Chien LH, Chang CC (2004) Enhancement of pool boiling on structured surfaces using HFC-4310 and water. J Enhanc Heat Transf 11(1):23MathSciNetCrossRef
Zurück zum Zitat Chien LH, Chen CL (2000) An experimental study of boiling enhancement in a small boiler. In: 2000 national heat transfer conference, Pittsburgh, PA Chien LH, Chen CL (2000) An experimental study of boiling enhancement in a small boiler. In: 2000 national heat transfer conference, Pittsburgh, PA
Zurück zum Zitat Chien LH, Hwang HL (2012) An experimental study of boiling heat transfer enhancement of mesh-on-fin tubes. J Enhanc Heat Transf 19(1):75CrossRef Chien LH, Hwang HL (2012) An experimental study of boiling heat transfer enhancement of mesh-on-fin tubes. J Enhanc Heat Transf 19(1):75CrossRef
Zurück zum Zitat Chien LH, Webb RL (1998a) A parametric study of nucleate boiling on structured surfaces, part I: effect of tunnel dimensions. J Heat Transf 120(4):1042–1048CrossRef Chien LH, Webb RL (1998a) A parametric study of nucleate boiling on structured surfaces, part I: effect of tunnel dimensions. J Heat Transf 120(4):1042–1048CrossRef
Zurück zum Zitat Chien LH, Webb RL (1998b) A parametric study of nucleate boiling on structured surfaces, part II: effect of pore diameter and pore pitch. J Heat Transf 120(4):1049–1054CrossRef Chien LH, Webb RL (1998b) A parametric study of nucleate boiling on structured surfaces, part II: effect of pore diameter and pore pitch. J Heat Transf 120(4):1049–1054CrossRef
Zurück zum Zitat Chien LH, Webb RL (1998c) Visualization of pool boiling on enhanced surfaces. Exp Thermal Fluid Sci 16(4):332–341CrossRef Chien LH, Webb RL (1998c) Visualization of pool boiling on enhanced surfaces. Exp Thermal Fluid Sci 16(4):332–341CrossRef
Zurück zum Zitat Chien LH, Webb RL (1998d) Measurement of bubble dynamics on an enhanced boiling surface. Exp Thermal Fluid Sci 16(3):177–186CrossRef Chien LH, Webb RL (1998d) Measurement of bubble dynamics on an enhanced boiling surface. Exp Thermal Fluid Sci 16(3):177–186CrossRef
Zurück zum Zitat Chien LH, Webb RL (1998e) A nucleate boiling model for structured enhanced surfaces. Int J Heat Mass Transf 41(14):2183–2195MATHCrossRef Chien LH, Webb RL (1998e) A nucleate boiling model for structured enhanced surfaces. Int J Heat Mass Transf 41(14):2183–2195MATHCrossRef
Zurück zum Zitat Chien LH, Webb RL (2001) Effect of geometry and fluid property parameters on performance of tunnel and pore enhanced boiling surfaces. J Enhanc Heat Transf 8(5):329CrossRef Chien LH, Webb RL (2001) Effect of geometry and fluid property parameters on performance of tunnel and pore enhanced boiling surfaces. J Enhanc Heat Transf 8(5):329CrossRef
Zurück zum Zitat Chu RC, Moran KP, inventors; International Business Machines Corp, assignee (1977) Method for customizing nucleate boiling heat transfer from electronic units immersed in dielectric coolant. United States Patent US 4,050,507 Chu RC, Moran KP, inventors; International Business Machines Corp, assignee (1977) Method for customizing nucleate boiling heat transfer from electronic units immersed in dielectric coolant. United States Patent US 4,050,507
Zurück zum Zitat Cieśliński JT (2002) Nucleate pool boiling on porous metallic coatings. Exp Thermal Fluid Sci 25(7):557–564CrossRef Cieśliński JT (2002) Nucleate pool boiling on porous metallic coatings. Exp Thermal Fluid Sci 25(7):557–564CrossRef
Zurück zum Zitat Corman JC, McLaughlin MH (1976) Boiling augmentation with structured surfaces. ASHRAE Trans 82(1):906–918 Corman JC, McLaughlin MH (1976) Boiling augmentation with structured surfaces. ASHRAE Trans 82(1):906–918
Zurück zum Zitat Czikk AM, O’Neill PS (1979) Correlation of nucleate boiling from porous metal films. In: Advances in enhanced heat transfer. ASME, New York, pp 103–113 Czikk AM, O’Neill PS (1979) Correlation of nucleate boiling from porous metal films. In: Advances in enhanced heat transfer. ASME, New York, pp 103–113
Zurück zum Zitat Dahl MM, Erb LD, Inventors; Gates Rubber Co, assignee (1976) Liquid heat exchanger interface and method. United States Patent US 3,990,862 Dahl MM, Erb LD, Inventors; Gates Rubber Co, assignee (1976) Liquid heat exchanger interface and method. United States Patent US 3,990,862
Zurück zum Zitat Danilova GN, Tikhonov AV (1996) R113 boiling heat transfer modeling on porous metallic matrix surfaces. Int J Heat Fluid Flow 17(1):45–51CrossRef Danilova GN, Tikhonov AV (1996) R113 boiling heat transfer modeling on porous metallic matrix surfaces. Int J Heat Fluid Flow 17(1):45–51CrossRef
Zurück zum Zitat Das SK, Putra N, Roetzel W (2003) Pool boiling characteristics of nano-fluids. Int J Heat Mass Transf 46:851–862MATHCrossRef Das SK, Putra N, Roetzel W (2003) Pool boiling characteristics of nano-fluids. Int J Heat Mass Transf 46:851–862MATHCrossRef
Zurück zum Zitat Dizon MB, Yang J, Cheung FB, Rempe JL, Suh KY, Kim SB (2004) Effects of surface coating on the critical heat flux for pool boiling from a downward facing surface. J Enhanc Heat Transf 11(2):133CrossRef Dizon MB, Yang J, Cheung FB, Rempe JL, Suh KY, Kim SB (2004) Effects of surface coating on the critical heat flux for pool boiling from a downward facing surface. J Enhanc Heat Transf 11(2):133CrossRef
Zurück zum Zitat Dundin VA, Danilova GN, Tikhonov AV (1990) Enhanced heat transfer surfaces for shell-andtube evaporators of refrigerating machines. Refrig Mach Ser XM-7:1–46. (in Russian) Dundin VA, Danilova GN, Tikhonov AV (1990) Enhanced heat transfer surfaces for shell-andtube evaporators of refrigerating machines. Refrig Mach Ser XM-7:1–46. (in Russian)
Zurück zum Zitat Faghri A (1995) Heat pipe science and technology. Global Digital Press Faghri A (1995) Heat pipe science and technology. Global Digital Press
Zurück zum Zitat Ferjancic K, Golobic I (2002) Surface effects on pool boiling CHF. Exp Thermal Fluid Sci 25:565–571CrossRef Ferjancic K, Golobic I (2002) Surface effects on pool boiling CHF. Exp Thermal Fluid Sci 25:565–571CrossRef
Zurück zum Zitat Fritz W (1935) Berechnung des maximalvolumes von dampfblasen. Phys Z 36:379–384 Fritz W (1935) Berechnung des maximalvolumes von dampfblasen. Phys Z 36:379–384
Zurück zum Zitat Fujie K, Nakayama W, Kuwahara H, Kakizaki K, Inventors; Hitachi Cable Ltd, Hitachi Ltd, assignee (1977) Heat transfer wall for boiling liquids. United States Patent US 4,060,125 Fujie K, Nakayama W, Kuwahara H, Kakizaki K, Inventors; Hitachi Cable Ltd, Hitachi Ltd, assignee (1977) Heat transfer wall for boiling liquids. United States Patent US 4,060,125
Zurück zum Zitat Fujii M, Nishiyama E, Yamanaka G (1979) Nucleate pool boiling heat transfer from micro-porous heating surfaces. In: Chenoweth JM, Kaellis J, Michel JW, Shenkman S (eds) Advances in enhanced heat transfer. ASME, New York, pp 45–51 Fujii M, Nishiyama E, Yamanaka G (1979) Nucleate pool boiling heat transfer from micro-porous heating surfaces. In: Chenoweth JM, Kaellis J, Michel JW, Shenkman S (eds) Advances in enhanced heat transfer. ASME, New York, pp 45–51
Zurück zum Zitat Gaertner RF, inventor; General Electric Co, assignee (1967) Method and means for increasing the heat transfer coefficient between a wall and boiling liquid. United States Patent US 3,301,314 Gaertner RF, inventor; General Electric Co, assignee (1967) Method and means for increasing the heat transfer coefficient between a wall and boiling liquid. United States Patent US 3,301,314
Zurück zum Zitat Ge X, Qu W, Zhang L, Ma T (2003) Evaporation heat transfer of thin liquid film and meniscus in micro capillary and on substrate with Nano relief. J Enhanc Heat Transf 10(2) Ge X, Qu W, Zhang L, Ma T (2003) Evaporation heat transfer of thin liquid film and meniscus in micro capillary and on substrate with Nano relief. J Enhanc Heat Transf 10(2)
Zurück zum Zitat Gerardi C, Buongiorno J, Hu LW, McKrell T (2011) Infrared thermometry study of nanofluid pool boiling phenomena. Nanoscale Res Lett 6(1):232CrossRef Gerardi C, Buongiorno J, Hu LW, McKrell T (2011) Infrared thermometry study of nanofluid pool boiling phenomena. Nanoscale Res Lett 6(1):232CrossRef
Zurück zum Zitat Gottzmann CF, ONeill PS, Minton PE (1973) High-efficiency heat-exchangers. Chem Eng Prog 69(7):69–75 Gottzmann CF, ONeill PS, Minton PE (1973) High-efficiency heat-exchangers. Chem Eng Prog 69(7):69–75
Zurück zum Zitat Gottzmann CF, Wulf JB, O’Neill PS (1971) Theory and application of high performance boiling surfaces to components of absorption cycle air conditioners. In: Proceedings conference national gas research technology session V paper, vol 3 Gottzmann CF, Wulf JB, O’Neill PS (1971) Theory and application of high performance boiling surfaces to components of absorption cycle air conditioners. In: Proceedings conference national gas research technology session V paper, vol 3
Zurück zum Zitat Grant AC, inventor; Union Carbide Corp, assignee (1977) Porous metallic layer and formation. United States Patent US 4,064,914 Grant AC, inventor; Union Carbide Corp, assignee (1977) Porous metallic layer and formation. United States Patent US 4,064,914
Zurück zum Zitat Griffith P, Wallis JD (1960) The role of surface conditions in nucleate boiling. Chem Eng Prog Symp Ser 56(49):49–63 Griffith P, Wallis JD (1960) The role of surface conditions in nucleate boiling. Chem Eng Prog Symp Ser 56(49):49–63
Zurück zum Zitat Guglielmini G, Misale M, Schenone C, Pasquali C, Zappaterra M (1988) On performances of nucleate boiling enhanced surfaces for cooling of high-power electronic devices. In: Proceedings of the 22nd international symposium heat transfer in electronic and microelectronic equipment, pp 589–600 Guglielmini G, Misale M, Schenone C, Pasquali C, Zappaterra M (1988) On performances of nucleate boiling enhanced surfaces for cooling of high-power electronic devices. In: Proceedings of the 22nd international symposium heat transfer in electronic and microelectronic equipment, pp 589–600
Zurück zum Zitat Haider SI, Webb RL (1997) A transient micro-convection model of nucleate pool boiling. Int J Heat Mass Transf 40(15):3675–3688CrossRef Haider SI, Webb RL (1997) A transient micro-convection model of nucleate pool boiling. Int J Heat Mass Transf 40(15):3675–3688CrossRef
Zurück zum Zitat Hanlon MA, Ma HB (2003) Evaporation heat transfer in sintered porous media. J Heat Transf 125(4):644–652CrossRef Hanlon MA, Ma HB (2003) Evaporation heat transfer in sintered porous media. J Heat Transf 125(4):644–652CrossRef
Zurück zum Zitat Hasegawa S, Echigo R, Irie S (1975) Boiling characteristics and burnout phenomena on heating surface covered with woven screens. J Nucl Sci Technol 12(11):722–724CrossRef Hasegawa S, Echigo R, Irie S (1975) Boiling characteristics and burnout phenomena on heating surface covered with woven screens. J Nucl Sci Technol 12(11):722–724CrossRef
Zurück zum Zitat Hausner HH, Mal MK (1982) Handbook of powder metallurgy. Chemical Pub. Co., New York Hausner HH, Mal MK (1982) Handbook of powder metallurgy. Chemical Pub. Co., New York
Zurück zum Zitat Hegde RN, Rao SS, Reddy RP (2012) Experimental studies on CHF enhancement in pool boiling with CuO-water nanofluid. Heat Mass Transf 48(6):1031–1041CrossRef Hegde RN, Rao SS, Reddy RP (2012) Experimental studies on CHF enhancement in pool boiling with CuO-water nanofluid. Heat Mass Transf 48(6):1031–1041CrossRef
Zurück zum Zitat Hsieh SS, Weng CJ (1997) Nucleate pool boiling from coated surfaces in saturated R-134a and R-407c. Int J Heat Mass Transf 40(3):519–532CrossRef Hsieh SS, Weng CJ (1997) Nucleate pool boiling from coated surfaces in saturated R-134a and R-407c. Int J Heat Mass Transf 40(3):519–532CrossRef
Zurück zum Zitat Hsieh SS, Yang TY (2001) Nucleate pool boiling from coated and spirally wrapped tubes in saturated R-134a and R-600a at low and moderate heat flux. J Heat Transf 123(2):257–270CrossRef Hsieh SS, Yang TY (2001) Nucleate pool boiling from coated and spirally wrapped tubes in saturated R-134a and R-600a at low and moderate heat flux. J Heat Transf 123(2):257–270CrossRef
Zurück zum Zitat Hsu YY (1962) On the size range of active nucleation cavities on a heating surface. J Heat Transf 84(3):207–213CrossRef Hsu YY (1962) On the size range of active nucleation cavities on a heating surface. J Heat Transf 84(3):207–213CrossRef
Zurück zum Zitat Hu HP, Yeh RH (2010) Effects of interfacial shear in forced convection turbulent film boiling on a sphere with upward external flowing liquid. J Enhanc Heat Transf 17(2):125CrossRef Hu HP, Yeh RH (2010) Effects of interfacial shear in forced convection turbulent film boiling on a sphere with upward external flowing liquid. J Enhanc Heat Transf 17(2):125CrossRef
Zurück zum Zitat Hübner P, Künstler W (1997) Pool boiling heat transfer at finned tubes: influence of surface roughness and shape of the fins. Int J Refrig 20(8):575–582CrossRef Hübner P, Künstler W (1997) Pool boiling heat transfer at finned tubes: influence of surface roughness and shape of the fins. Int J Refrig 20(8):575–582CrossRef
Zurück zum Zitat Hummel RL, inventor; Dept of Chemical Engineering, assignee (1965) Means for increasing the heat transfer coefficient between a wall and boiling liquid. United States Patent US 3,207,209 Hummel RL, inventor; Dept of Chemical Engineering, assignee (1965) Means for increasing the heat transfer coefficient between a wall and boiling liquid. United States Patent US 3,207,209
Zurück zum Zitat Imadojemu HE, Hong KT, Webb RL (1995) Pool boiling of R-11 refrigerant and water on oxidized enhanced tubes. J Enhanc Heat Transf 2(3):189CrossRef Imadojemu HE, Hong KT, Webb RL (1995) Pool boiling of R-11 refrigerant and water on oxidized enhanced tubes. J Enhanc Heat Transf 2(3):189CrossRef
Zurück zum Zitat Jamialahmadi M, Müller-Steinhagen H (1993) Scale formation during nucleate boiling—a review. Corros Rev 11(1–2):25–54 Jamialahmadi M, Müller-Steinhagen H (1993) Scale formation during nucleate boiling—a review. Corros Rev 11(1–2):25–54
Zurück zum Zitat Janowski KR, Shum MS, Bradley SA, inventors; UOP LLC, assignee (1978) Heat transfer surface. United States Patent US 4,129,181 Janowski KR, Shum MS, Bradley SA, inventors; UOP LLC, assignee (1978) Heat transfer surface. United States Patent US 4,129,181
Zurück zum Zitat Jiang YY, Wang WC, Wang D, Wang BX (2001) Boiling heat transfer on machined porous surfaces with structural optimization. Int J Heat Mass Transf 44(2):443–456MATHCrossRef Jiang YY, Wang WC, Wang D, Wang BX (2001) Boiling heat transfer on machined porous surfaces with structural optimization. Int J Heat Mass Transf 44(2):443–456MATHCrossRef
Zurück zum Zitat Jung JY, Kim ES, Kang YT (2012) Stabilizer effect on CHF and boiling heat transfer coefficient of alumina/water nanofluids. Int J Heat Mass Transf 55(7–8):1941–1946CrossRef Jung JY, Kim ES, Kang YT (2012) Stabilizer effect on CHF and boiling heat transfer coefficient of alumina/water nanofluids. Int J Heat Mass Transf 55(7–8):1941–1946CrossRef
Zurück zum Zitat Jung JY, Kim ES, Nam Y, Kang YT (2013) The study on the critical heat flux and pool boiling heat transfer coefficient of binary nanofluids (H2O/LiBr Al2O3). Int J Refrig 36(3):1056–1061CrossRef Jung JY, Kim ES, Nam Y, Kang YT (2013) The study on the critical heat flux and pool boiling heat transfer coefficient of binary nanofluids (H2O/LiBr Al2O3). Int J Refrig 36(3):1056–1061CrossRef
Zurück zum Zitat Kajikawa T, Takazawa H, Mizuki M (1983) Heat transfer performance of metal fiber sintered surfaces. Heat Transfer Eng. 4(1):57–66CrossRef Kajikawa T, Takazawa H, Mizuki M (1983) Heat transfer performance of metal fiber sintered surfaces. Heat Transfer Eng. 4(1):57–66CrossRef
Zurück zum Zitat Kandlikar SG (2001) A theoretical model to predict pool boiling CHF incorporating effects of contact angle and orientation. J Heat Transf 123(6):1071–1079CrossRef Kandlikar SG (2001) A theoretical model to predict pool boiling CHF incorporating effects of contact angle and orientation. J Heat Transf 123(6):1071–1079CrossRef
Zurück zum Zitat Kang MG (2000) Effect of surface roughness on pool boiling heat transfer. Int J Heat Mass Transf 43(22):4073–4085MATHCrossRef Kang MG (2000) Effect of surface roughness on pool boiling heat transfer. Int J Heat Mass Transf 43(22):4073–4085MATHCrossRef
Zurück zum Zitat Kartsounes GT (1975) A study of surface treatment on pool boiling heat transfer in refrigerant-12. ASHRAE Trans 81(Pt. 1):320–326 Kartsounes GT (1975) A study of surface treatment on pool boiling heat transfer in refrigerant-12. ASHRAE Trans 81(Pt. 1):320–326
Zurück zum Zitat Kedzierski MA (1995) Calorimetric and visual measurements of R123 pool boiling on four enhanced surfaces, Report # NISTIR 5732, US Department of Energy Kedzierski MA (1995) Calorimetric and visual measurements of R123 pool boiling on four enhanced surfaces, Report # NISTIR 5732, US Department of Energy
Zurück zum Zitat Khrustalev D, Faghri A (1994) Thermal analysis of a micro heat pipe. J Heat Transf 116(1):189–198CrossRef Khrustalev D, Faghri A (1994) Thermal analysis of a micro heat pipe. J Heat Transf 116(1):189–198CrossRef
Zurück zum Zitat Kim CJ, Bergles AE (1988) Incipient boiling behaviour of porous boiling surfaces used for cooling of microelectronic chips. Particul Phenom Multiphase Transport 2:3–18 Kim CJ, Bergles AE (1988) Incipient boiling behaviour of porous boiling surfaces used for cooling of microelectronic chips. Particul Phenom Multiphase Transport 2:3–18
Zurück zum Zitat Kim NH (1996) Pool boiling heat transfer enhancement by perforated plates. American Society of Mechanical Engineers, New York, NY Kim NH (1996) Pool boiling heat transfer enhancement by perforated plates. American Society of Mechanical Engineers, New York, NY
Zurück zum Zitat Kim NH, Choi KK (2001) Nucleate pool boiling on structured enhanced tubes having pores with connecting gaps. Int J Heat Mass Transf 44(1):17–28CrossRef Kim NH, Choi KK (2001) Nucleate pool boiling on structured enhanced tubes having pores with connecting gaps. Int J Heat Mass Transf 44(1):17–28CrossRef
Zurück zum Zitat Ko SY, Liu L, Yao YQ (1992) Boiling hysteresis on porous metallic coatings. In: Chen XJ, Veziroglu TN, Tien CL (eds) Multiphase flow and heat transfer: second international symposium. Hemisphere, New York, pp 259–268 Ko SY, Liu L, Yao YQ (1992) Boiling hysteresis on porous metallic coatings. In: Chen XJ, Veziroglu TN, Tien CL (eds) Multiphase flow and heat transfer: second international symposium. Hemisphere, New York, pp 259–268
Zurück zum Zitat Kole M, Dey TK (2012) Investigations on the pool boiling heat transfer and critical heat flux of ZnO-ethylene glycol nanofluids. Appl Therm Eng 37:112–119CrossRef Kole M, Dey TK (2012) Investigations on the pool boiling heat transfer and critical heat flux of ZnO-ethylene glycol nanofluids. Appl Therm Eng 37:112–119CrossRef
Zurück zum Zitat Komendantov AS, Yang Y, Kuang B, Bolshakov RN (2004) Heat transfer enhancement at boiling crisis in straight and spiral tubes. J Enhanc Heat Transf 11(4) Komendantov AS, Yang Y, Kuang B, Bolshakov RN (2004) Heat transfer enhancement at boiling crisis in straight and spiral tubes. J Enhanc Heat Transf 11(4)
Zurück zum Zitat Kovalev SA, Solovyev S, Ovodkov O (1999) Theory of boiling heat transfer on a capillary porous surface. In: Proceeding of the 9th international heat transfer conference, vol. 2, pp 105–110 Kovalev SA, Solovyev S, Ovodkov O (1999) Theory of boiling heat transfer on a capillary porous surface. In: Proceeding of the 9th international heat transfer conference, vol. 2, pp 105–110
Zurück zum Zitat Krikkis RN, Sotirchos SV, Razelos P (2003) Multiplicity analysis of pin fins under multiboiling conditions. J Enhanc Heat Transf 10(1):95CrossRef Krikkis RN, Sotirchos SV, Razelos P (2003) Multiplicity analysis of pin fins under multiboiling conditions. J Enhanc Heat Transf 10(1):95CrossRef
Zurück zum Zitat Kulenovic R, Mertz R, Groll M (2002) High speed flow visualization of pool boiling from structured tubular heat transfer surfaces. Exp Thermal Fluid Sci 25(7):547–555CrossRef Kulenovic R, Mertz R, Groll M (2002) High speed flow visualization of pool boiling from structured tubular heat transfer surfaces. Exp Thermal Fluid Sci 25(7):547–555CrossRef
Zurück zum Zitat Kun LC, Czikk AM (1969) Surface for boiling liquids. U.S. Patent 3,454,081 (Reissued August 21, 1979 Re. 30,077) Kun LC, Czikk AM (1969) Surface for boiling liquids. U.S. Patent 3,454,081 (Reissued August 21, 1979 Re. 30,077)
Zurück zum Zitat Kurihara HM, Myers JE (1960) The effects of superheat and surface roughness on boiling coefficients. AICHE J 6(1):83–91CrossRef Kurihara HM, Myers JE (1960) The effects of superheat and surface roughness on boiling coefficients. AICHE J 6(1):83–91CrossRef
Zurück zum Zitat Kwark SM, Kumar R, Moreno G, Yoo J, You SM (2010) Pool boiling characteristics of low concentration nanofluids. Int J Heat Mass Transf 53(5–6):972–981CrossRef Kwark SM, Kumar R, Moreno G, Yoo J, You SM (2010) Pool boiling characteristics of low concentration nanofluids. Int J Heat Mass Transf 53(5–6):972–981CrossRef
Zurück zum Zitat Li Z, Tan Y, Wang S (1992) Investigation of the heat transfer performance of mechanically made porous surface tubes with ribbed tunnels. In: Chen XJ, Veziroglu TN, Tien CL (eds) Multiphase flow and heat transfer; second international symposium, vol 1. Hemisphere, New York, pp 700–707 Li Z, Tan Y, Wang S (1992) Investigation of the heat transfer performance of mechanically made porous surface tubes with ribbed tunnels. In: Chen XJ, Veziroglu TN, Tien CL (eds) Multiphase flow and heat transfer; second international symposium, vol 1. Hemisphere, New York, pp 700–707
Zurück zum Zitat Liang HS, Yang WJ (1998) Nucleate pool boiling heat transfer in a highly wetting liquid on micro-graphite-fiber composite surfaces. Int J Heat Mass Transf 41(13):1993–2001CrossRef Liang HS, Yang WJ (1998) Nucleate pool boiling heat transfer in a highly wetting liquid on micro-graphite-fiber composite surfaces. Int J Heat Mass Transf 41(13):1993–2001CrossRef
Zurück zum Zitat Liaw SP, Dhir VK (1986) Effect of surface wettability on transition boiling heat transfer from a vertical surface. In: Proceedings of the 8th international heat transfer conference, vol 4, pp 2031–2036 Liaw SP, Dhir VK (1986) Effect of surface wettability on transition boiling heat transfer from a vertical surface. In: Proceedings of the 8th international heat transfer conference, vol 4, pp 2031–2036
Zurück zum Zitat Lienhard JH (1987) A heat transfer textbook, 2nd edn. Prentice-Hall, Englewood Cliffs, NJ Lienhard JH (1987) A heat transfer textbook, 2nd edn. Prentice-Hall, Englewood Cliffs, NJ
Zurück zum Zitat Liu JW, Lee DJ, Su A (2001) Boiling of methanol and HFE-7100 on heated surface covered with a layer of mesh. Int J Heat Mass Transf 44(1):241–246CrossRef Liu JW, Lee DJ, Su A (2001) Boiling of methanol and HFE-7100 on heated surface covered with a layer of mesh. Int J Heat Mass Transf 44(1):241–246CrossRef
Zurück zum Zitat Liu X, Ma T, Wu J (1987) Effects of porous layer thickness of sintered screen surfaces on pool nucleate boiling heat transfer and hysteresis phenomena. In: Wang B-X (ed) Heat transfer science and technology. Hemisphere, New York, pp 577–583 Liu X, Ma T, Wu J (1987) Effects of porous layer thickness of sintered screen surfaces on pool nucleate boiling heat transfer and hysteresis phenomena. In: Wang B-X (ed) Heat transfer science and technology. Hemisphere, New York, pp 577–583
Zurück zum Zitat Liu ZH, Xiong JG, Bao R (2007) Boiling heat transfer characteristics of nanofluids in a flat heat pipe evaporator with micro-grooved heating surface. Int J Multiphase Flow 33(12):1284–1295CrossRef Liu ZH, Xiong JG, Bao R (2007) Boiling heat transfer characteristics of nanofluids in a flat heat pipe evaporator with micro-grooved heating surface. Int J Multiphase Flow 33(12):1284–1295CrossRef
Zurück zum Zitat Lorenz JJ, Mikic BB, Rohsenow WM, (1974) The effect of surface conditions on nucleate boiling characteristics. In: Proc 5th Int Heat Transfer Conf, vol 4, pp 35–49 Lorenz JJ, Mikic BB, Rohsenow WM, (1974) The effect of surface conditions on nucleate boiling characteristics. In: Proc 5th Int Heat Transfer Conf, vol 4, pp 35–49
Zurück zum Zitat Luke A (1997) Pool boiling heat transfer from horizontal tubes with different surface roughness. Int J Refrig 20(8):561–574CrossRef Luke A (1997) Pool boiling heat transfer from horizontal tubes with different surface roughness. Int J Refrig 20(8):561–574CrossRef
Zurück zum Zitat Ma HB, Peterson GP (1997) Temperature variation and heat transfer in triangular grooves with an evaporating film. J Thermophys Heat Transfer 11(1):90–97CrossRef Ma HB, Peterson GP (1997) Temperature variation and heat transfer in triangular grooves with an evaporating film. J Thermophys Heat Transfer 11(1):90–97CrossRef
Zurück zum Zitat Ma T, Liu X, Wu J, Li H, (1986) Effects of geometrical shapes and parameters of re-entrant grooves on nucleate pool boiling heat transfer from porous surfaces. In: Heat Transfer 1986, Proc 8th Int Heat Transfer Conf, vol 4, pp 2013–2018 Ma T, Liu X, Wu J, Li H, (1986) Effects of geometrical shapes and parameters of re-entrant grooves on nucleate pool boiling heat transfer from porous surfaces. In: Heat Transfer 1986, Proc 8th Int Heat Transfer Conf, vol 4, pp 2013–2018
Zurück zum Zitat Malyshenko SP, Styrikovich MA (1992) Heat transfer at pool boiling on surfaces with porous coating. In: Chen XJ, Veziroglu TN, Tien CL (eds) Multiphase flow and heat transfer: second international symposium, vol 1. Hemisphere, New York, pp 269–284 Malyshenko SP, Styrikovich MA (1992) Heat transfer at pool boiling on surfaces with porous coating. In: Chen XJ, Veziroglu TN, Tien CL (eds) Multiphase flow and heat transfer: second international symposium, vol 1. Hemisphere, New York, pp 269–284
Zurück zum Zitat Marto PJ, Moulson JA, Maynard MD (1968) Nucleate pool boiling of nitrogen with different surface conditions. J Heat Transf 90(4):437–444CrossRef Marto PJ, Moulson JA, Maynard MD (1968) Nucleate pool boiling of nitrogen with different surface conditions. J Heat Transf 90(4):437–444CrossRef
Zurück zum Zitat Matijević M, Djurić M, Zavargo Z, Novaković M (1992) Improving heat transfer with pool boiling by covering of heating surface with metallic spheres. Heat Transf Eng 13(3):49–57CrossRef Matijević M, Djurić M, Zavargo Z, Novaković M (1992) Improving heat transfer with pool boiling by covering of heating surface with metallic spheres. Heat Transf Eng 13(3):49–57CrossRef
Zurück zum Zitat Mertz R, Kulenovic R, Chen Y, Groll M (2002) Pool boiling of butane from enhanced evaporator tubes. Heat Transf 3:629–634 Mertz R, Kulenovic R, Chen Y, Groll M (2002) Pool boiling of butane from enhanced evaporator tubes. Heat Transf 3:629–634
Zurück zum Zitat Mikic BB, Rohsenow WM (1969) A new correlation of pool-boiling data including the effect of heating surface characteristics. J Heat Transf 91(2):245–250CrossRef Mikic BB, Rohsenow WM (1969) A new correlation of pool-boiling data including the effect of heating surface characteristics. J Heat Transf 91(2):245–250CrossRef
Zurück zum Zitat Milton RM, inventor; Union Carbide Corp, assignee (1968) Heat exchange system. United States Patent US 3,384,154 Milton RM, inventor; Union Carbide Corp, assignee (1968) Heat exchange system. United States Patent US 3,384,154
Zurück zum Zitat Milton RM, inventor; Union Carbide Corp, assignee (1970) Heat exchange system. United States Patent US 3,523,577 Milton RM, inventor; Union Carbide Corp, assignee (1970) Heat exchange system. United States Patent US 3,523,577
Zurück zum Zitat Milton RM, inventor; Union Carbide Corp, assignee (1971) Heat exchange system with porous boiling layer. United States Patent US 3,587,730 Milton RM, inventor; Union Carbide Corp, assignee (1971) Heat exchange system with porous boiling layer. United States Patent US 3,587,730
Zurück zum Zitat Min J, Webb RL, Bemisderfer CH (2000) Long-term hydraulic performance of dehumidifying heat-exchangers with and without hydrophilic coatings. HVAC&R Res 6(3):257–272CrossRef Min J, Webb RL, Bemisderfer CH (2000) Long-term hydraulic performance of dehumidifying heat-exchangers with and without hydrophilic coatings. HVAC&R Res 6(3):257–272CrossRef
Zurück zum Zitat Modahl RJ, Luckeroth VC, inventors; Trane Co, assignee (1982) Heat transfer surface for efficient boiling of liquid R-11 and its equivalents. United States Patent US 4,354,550 Modahl RJ, Luckeroth VC, inventors; Trane Co, assignee (1982) Heat transfer surface for efficient boiling of liquid R-11 and its equivalents. United States Patent US 4,354,550
Zurück zum Zitat Nakayama W, Daikoku T, Kuwahara H, Nakajima T (1980a) Dynamic model of enhanced boiling heat transfer on porous surfaces. Prut I: experimental investigation. J Heat Transf 102:445–450CrossRef Nakayama W, Daikoku T, Kuwahara H, Nakajima T (1980a) Dynamic model of enhanced boiling heat transfer on porous surfaces. Prut I: experimental investigation. J Heat Transf 102:445–450CrossRef
Zurück zum Zitat Nakayama W, Daikoku T, Kuwahara H, Nakajima T (1980b) Dynamic model of enhanced boiling heat transfer on porous surfaces Prut II: analytical modelling. Heat Transf 102:451–456CrossRef Nakayama W, Daikoku T, Kuwahara H, Nakajima T (1980b) Dynamic model of enhanced boiling heat transfer on porous surfaces Prut II: analytical modelling. Heat Transf 102:451–456CrossRef
Zurück zum Zitat Nakayama W, Daikoku T, Nakajima T (1982) Effects of pore diameters and system pressure on saturated pool nucleate boiling heat transfer from porous surfaces. J Heat Transf 104(2):286–291CrossRef Nakayama W, Daikoku T, Nakajima T (1982) Effects of pore diameters and system pressure on saturated pool nucleate boiling heat transfer from porous surfaces. J Heat Transf 104(2):286–291CrossRef
Zurück zum Zitat Nishikawa K (1983) Augmented heat transfer by nucleate boiling at prepared surfaces. Proc ASME/JSME Thermal Eng Conf (1):387–393 Nishikawa K (1983) Augmented heat transfer by nucleate boiling at prepared surfaces. Proc ASME/JSME Thermal Eng Conf (1):387–393
Zurück zum Zitat Nishikawa K, Ito T (1980) Augmentation of nucleate boiling heat transfer by prepared surfaces. In: Heat transfer in energy problems, pp 111–118 Nishikawa K, Ito T (1980) Augmentation of nucleate boiling heat transfer by prepared surfaces. In: Heat transfer in energy problems, pp 111–118
Zurück zum Zitat O’Connor JP, You SM (1995) A painting technique to enhance pool boiling heat transfer in saturated FC-72. J Heat Transf 117(2):387–393CrossRef O’Connor JP, You SM (1995) A painting technique to enhance pool boiling heat transfer in saturated FC-72. J Heat Transf 117(2):387–393CrossRef
Zurück zum Zitat O’Neill PS, Gottzmann CF, Terbot JW (1972) Novel heat exchanger increases cascade cycle efficiency for natural gas liquefaction. In: Advances in cryogenic engineering. Springer, Boston, MA, pp 420–437 O’Neill PS, Gottzmann CF, Terbot JW (1972) Novel heat exchanger increases cascade cycle efficiency for natural gas liquefaction. In: Advances in cryogenic engineering. Springer, Boston, MA, pp 420–437
Zurück zum Zitat Ökten K, Biyikoglu A (2018) Effect of air bubble injection on the overall heat transfer coefficient. J Enhanc Heat Transf 25(3):195CrossRef Ökten K, Biyikoglu A (2018) Effect of air bubble injection on the overall heat transfer coefficient. J Enhanc Heat Transf 25(3):195CrossRef
Zurück zum Zitat Orman L (2016) Enhancement of pool boiling heat transfer with pin− fin microstructures. J Enhanc Heat Transf 23(2):137CrossRef Orman L (2016) Enhancement of pool boiling heat transfer with pin− fin microstructures. J Enhanc Heat Transf 23(2):137CrossRef
Zurück zum Zitat Pais C, Webb RL (1991) Literature survey of pool boiling on enhanced surfaces. ASHRAE Trans 97(1):79–89 Pais C, Webb RL (1991) Literature survey of pool boiling on enhanced surfaces. ASHRAE Trans 97(1):79–89
Zurück zum Zitat Palm B (1992) Heat transfer enhancement in boiling by aid of perforated metal foils. In: Sunden B, Zukauskas A (eds) Recent advances in heat transfer. Elsevier Science, New York Palm B (1992) Heat transfer enhancement in boiling by aid of perforated metal foils. In: Sunden B, Zukauskas A (eds) Recent advances in heat transfer. Elsevier Science, New York
Zurück zum Zitat Park KA, Bergles AE (1988) Effects of size of simulated microelectronic chips on boiling and critical heat flux. J Heat Transf 110(3):728–734CrossRef Park KA, Bergles AE (1988) Effects of size of simulated microelectronic chips on boiling and critical heat flux. J Heat Transf 110(3):728–734CrossRef
Zurück zum Zitat Peterson GP (1994) An introduction to heat pipes. Wiley Interscience, New York Peterson GP (1994) An introduction to heat pipes. Wiley Interscience, New York
Zurück zum Zitat Polezhaev YV (1990) Modelling heat transfer with boiling on porous structures. Therm Eng 37(12):617–620 Polezhaev YV (1990) Modelling heat transfer with boiling on porous structures. Therm Eng 37(12):617–620
Zurück zum Zitat Ragi EG, inventor; Union Carbide Corp, assignee (1972) Composite structure for boiling liquids and its formation. United States Patent US 3,684,007 Ragi EG, inventor; Union Carbide Corp, assignee (1972) Composite structure for boiling liquids and its formation. United States Patent US 3,684,007
Zurück zum Zitat Rainey KN, You SM (2001) Effects of heater size and orientation on pool boiling heat transfer from microporous coated surfaces. Int J Heat Mass Transf 44(14):2589–2599CrossRef Rainey KN, You SM (2001) Effects of heater size and orientation on pool boiling heat transfer from microporous coated surfaces. Int J Heat Mass Transf 44(14):2589–2599CrossRef
Zurück zum Zitat Ramaswamy C, Joshi Y, Nakayama W, Johnson WB (2003) Semi-analytical model for boiling from enhanced structures. Int J Heat Mass Transf 46(22):4257–4269CrossRef Ramaswamy C, Joshi Y, Nakayama W, Johnson WB (2003) Semi-analytical model for boiling from enhanced structures. Int J Heat Mass Transf 46(22):4257–4269CrossRef
Zurück zum Zitat Rohsenow WM (1985) Boiling, in handbook of heat transfer fundamentals. McGraw Hill, New York, pp 12–15 Rohsenow WM (1985) Boiling, in handbook of heat transfer fundamentals. McGraw Hill, New York, pp 12–15
Zurück zum Zitat Sachar KS, Silvestri VJ, inventors; International Business Machines Corp, assignee (1983) Porous film heat transfer. United States Patent US 4,381,818 Sachar KS, Silvestri VJ, inventors; International Business Machines Corp, assignee (1983) Porous film heat transfer. United States Patent US 4,381,818
Zurück zum Zitat Saidi MH, Ohadi M, Souhar M (1999) Enhanced pool boiling of R-123 refrigerant on two selected tubes. Appl Therm Eng 19(8):885–895CrossRef Saidi MH, Ohadi M, Souhar M (1999) Enhanced pool boiling of R-123 refrigerant on two selected tubes. Appl Therm Eng 19(8):885–895CrossRef
Zurück zum Zitat Saier M, Kastner HW, Klockler R, inventors; Wieland-Werke AG, assignee (1979) Y and T-finned tubes and methods and apparatus for their making. United States Patent US 4,179,911 Saier M, Kastner HW, Klockler R, inventors; Wieland-Werke AG, assignee (1979) Y and T-finned tubes and methods and apparatus for their making. United States Patent US 4,179,911
Zurück zum Zitat Sanborn DF, Holman JL, Ware CD, inventors; Trane Co, assignee (1982) Heat exchange surface with porous coating and subsurface cavities. United States Patent US 4,359,086 Sanborn DF, Holman JL, Ware CD, inventors; Trane Co, assignee (1982) Heat exchange surface with porous coating and subsurface cavities. United States Patent US 4,359,086
Zurück zum Zitat Sathyabhama A (2015) Nucleate pool boiling heat transfer from a flat-plate grooved surface. J Enhanc Heat Transf 22(3) Sathyabhama A (2015) Nucleate pool boiling heat transfer from a flat-plate grooved surface. J Enhanc Heat Transf 22(3)
Zurück zum Zitat Sathyabhama A, Pandiyan PS (2016) Effect of surface vibration on boiling heat transfer from a copper flat circular disc. J Enhanc Heat Transf 23(4)CrossRef Sathyabhama A, Pandiyan PS (2016) Effect of surface vibration on boiling heat transfer from a copper flat circular disc. J Enhanc Heat Transf 23(4)CrossRef
Zurück zum Zitat Shahmoradi Z, Etesami N, Esfahany MN (2013) Pool boiling characteristics of nanofluid on flat plate based on heater surface analysis. Int Commun Heat Mass Transf 47:113–120CrossRef Shahmoradi Z, Etesami N, Esfahany MN (2013) Pool boiling characteristics of nanofluid on flat plate based on heater surface analysis. Int Commun Heat Mass Transf 47:113–120CrossRef
Zurück zum Zitat Shum MS, inventor; UOP LLC, assignee (1980) Finned heat transfer tube with porous boiling surface and method for producing same. United States Patent US 4,182,412 Shum MS, inventor; UOP LLC, assignee (1980) Finned heat transfer tube with porous boiling surface and method for producing same. United States Patent US 4,182,412
Zurück zum Zitat Sokol P, Blein P, Gorenflo D, Rott W, Schömann H (1990) Pool boiling heat transfer from plain and finned tubes to propane and propylene. Heat Transf:75–80 Sokol P, Blein P, Gorenflo D, Rott W, Schömann H (1990) Pool boiling heat transfer from plain and finned tubes to propane and propylene. Heat Transf:75–80
Zurück zum Zitat Sridharan A, Hochreiter LE, Cheung FB, Webb RL (2002) Effect of chemical cleaning on steam generator tube performance. Heat Transf Eng 23(1):38–47CrossRef Sridharan A, Hochreiter LE, Cheung FB, Webb RL (2002) Effect of chemical cleaning on steam generator tube performance. Heat Transf Eng 23(1):38–47CrossRef
Zurück zum Zitat Srinivasan V, Augustyniak JD, Lockett MJ (2001) Pool boiling experiments with liquid nitrogen on enhanced boiling surfaces. In: Compact heat exchangers and enhancement technology for the process industries-2001: Proceedings of the third international conference on compact heat exchangers and enhancement technology for the process industries held at the Davos Congress Centre, Davos, Switzerland. Begell House Publishers Inc., p 409 Srinivasan V, Augustyniak JD, Lockett MJ (2001) Pool boiling experiments with liquid nitrogen on enhanced boiling surfaces. In: Compact heat exchangers and enhancement technology for the process industries-2001: Proceedings of the third international conference on compact heat exchangers and enhancement technology for the process industries held at the Davos Congress Centre, Davos, Switzerland. Begell House Publishers Inc., p 409
Zurück zum Zitat Suriyawong A, Wongwises S (2010) Nucleate pool boiling heat transfer characteristics of TiO2–water nanofluids at very low concentrations. Exp Thermal Fluid Sci 34(8):992–999CrossRef Suriyawong A, Wongwises S (2010) Nucleate pool boiling heat transfer characteristics of TiO2–water nanofluids at very low concentrations. Exp Thermal Fluid Sci 34(8):992–999CrossRef
Zurück zum Zitat Szumigala ET (1971) Manufacturing method for boiling surfaces. US Patent 3,566,514 Szumigala ET (1971) Manufacturing method for boiling surfaces. US Patent 3,566,514
Zurück zum Zitat Tarrad AH, Burnside BM (1993) Pool boiling tests on plain and enhanced tubes using a wide-boiling-range mixture. Exp Heat Transf Int J 6(1):83–96CrossRef Tarrad AH, Burnside BM (1993) Pool boiling tests on plain and enhanced tubes using a wide-boiling-range mixture. Exp Heat Transf Int J 6(1):83–96CrossRef
Zurück zum Zitat Tatara RA, Payvar P (2000) Pool boiling of pure R134a from a single Turbo-BII-HP tube. Int J Heat Mass Transf 43(12):2233–2236CrossRef Tatara RA, Payvar P (2000) Pool boiling of pure R134a from a single Turbo-BII-HP tube. Int J Heat Mass Transf 43(12):2233–2236CrossRef
Zurück zum Zitat Thors P, Clevinger NR, Campbell BJ, Tyler JT, inventors; Wolverine Tube Inc., assignee (1997) Heat transfer tubes and methods of fabrication thereof. United States Patent US 5,697,430 Thors P, Clevinger NR, Campbell BJ, Tyler JT, inventors; Wolverine Tube Inc., assignee (1997) Heat transfer tubes and methods of fabrication thereof. United States Patent US 5,697,430
Zurück zum Zitat Torii T, Hirasawa S, Kuwahara H, Yanagida T, Fujie K (1978) The use of heat exchangers with THERMOEXCEL’s tubing in ocean thermal energy power plants. ASME Torii T, Hirasawa S, Kuwahara H, Yanagida T, Fujie K (1978) The use of heat exchangers with THERMOEXCEL’s tubing in ocean thermal energy power plants. ASME
Zurück zum Zitat Tsay JY, Yan YY, Lin TF (1996) Enhancement of pool boiling heat transfer in a horizontal water layer through surface roughness and screen coverage [Erhöhung des Wärmeübergangs beim Behältersieden in einer horizontalen Wasserschicht durch Aufrauhen und/oder Abdecken der Heizfläche mittels eines Edelstahlnetzes]. Heat Mass Transf 32(1–2):17–26CrossRef Tsay JY, Yan YY, Lin TF (1996) Enhancement of pool boiling heat transfer in a horizontal water layer through surface roughness and screen coverage [Erhöhung des Wärmeübergangs beim Behältersieden in einer horizontalen Wasserschicht durch Aufrauhen und/oder Abdecken der Heizfläche mittels eines Edelstahlnetzes]. Heat Mass Transf 32(1–2):17–26CrossRef
Zurück zum Zitat Uhle JL (1998) Boiling heat transfer characteristics of steam generator U-tube fouling. Doctoral dissertation, Massachusetts Institute of Technology Uhle JL (1998) Boiling heat transfer characteristics of steam generator U-tube fouling. Doctoral dissertation, Massachusetts Institute of Technology
Zurück zum Zitat Uma BBK, Rao M, Balikrishnan AR (2000) Enhanced pool boililng heat transfer using interference plates. In: Proceedings of the NHTC ‘00, 34th national heat transfer conference, pp 911–929 Uma BBK, Rao M, Balikrishnan AR (2000) Enhanced pool boililng heat transfer using interference plates. In: Proceedings of the NHTC ‘00, 34th national heat transfer conference, pp 911–929
Zurück zum Zitat Vachon RI, Nix GH, Tanger GE, Cobb RO (1969) Pool boiling heat transfer from Teflon-coated stainless steel. J Heat Transf 91(3):364–369CrossRef Vachon RI, Nix GH, Tanger GE, Cobb RO (1969) Pool boiling heat transfer from Teflon-coated stainless steel. J Heat Transf 91(3):364–369CrossRef
Zurück zum Zitat Vasiliev LL, Zhuravlyov AS, Shapovalov A (2012) Heat transfer enhancement in mini channels with micro/nano particles deposited on a heat-loaded wall. J Enhanc Heat Transf 19(1):13CrossRef Vasiliev LL, Zhuravlyov AS, Shapovalov A (2012) Heat transfer enhancement in mini channels with micro/nano particles deposited on a heat-loaded wall. J Enhanc Heat Transf 19(1):13CrossRef
Zurück zum Zitat Vazquez DM, Kumar R (2013) Surface effects of ribbon heaters on critical heat flux in nanofluid pool boiling. Int Commun Heat Mass Transf 41:1–9CrossRef Vazquez DM, Kumar R (2013) Surface effects of ribbon heaters on critical heat flux in nanofluid pool boiling. Int Commun Heat Mass Transf 41:1–9CrossRef
Zurück zum Zitat Wang CC, Chang YJ, Shieh WY, Yang CY (1998) Nucleate boiling performance of R-22, R-123, R-134A, R-410A, and R-407C on smooth and enhanced tubes. American Society of Heating, Refrigerating and Air-Conditioning Engineers, Inc., Atlanta, GA Wang CC, Chang YJ, Shieh WY, Yang CY (1998) Nucleate boiling performance of R-22, R-123, R-134A, R-410A, and R-407C on smooth and enhanced tubes. American Society of Heating, Refrigerating and Air-Conditioning Engineers, Inc., Atlanta, GA
Zurück zum Zitat Wang DY, Cheng JG, Zhang HJ (1991) Pool boiling heat transfer from T-finned tubes at atmospheric and super-atmospheric pressures. In: ASME HDT, p 159 Wang DY, Cheng JG, Zhang HJ (1991) Pool boiling heat transfer from T-finned tubes at atmospheric and super-atmospheric pressures. In: ASME HDT, p 159
Zurück zum Zitat Wang J, Catton I (2001) Enhanced evaporation heat transfer in triangular grooves covered with a thin fine porous layer. Appl Therm Eng 21(17):1721–1737CrossRef Wang J, Catton I (2001) Enhanced evaporation heat transfer in triangular grooves covered with a thin fine porous layer. Appl Therm Eng 21(17):1721–1737CrossRef
Zurück zum Zitat Wasekar VM, Manglik RM (2017) Enhanced heat transfer in nucleate pool boiling of aqueous surfactant and polymeric solutions. J Enhanc Heat Transf 24(1–6):47CrossRef Wasekar VM, Manglik RM (2017) Enhanced heat transfer in nucleate pool boiling of aqueous surfactant and polymeric solutions. J Enhanc Heat Transf 24(1–6):47CrossRef
Zurück zum Zitat Webb RL (1981) The evolution of enhanced surface geometries for nucleate boiling. Heat Transf Eng 2(3–4):46–69CrossRef Webb RL (1981) The evolution of enhanced surface geometries for nucleate boiling. Heat Transf Eng 2(3–4):46–69CrossRef
Zurück zum Zitat Webb RL (1983) Nucleate boiling on porous coated surfaces. Heat Transf Eng 4(3–4):71–82CrossRef Webb RL (1983) Nucleate boiling on porous coated surfaces. Heat Transf Eng 4(3–4):71–82CrossRef
Zurück zum Zitat Webb RL, Donald Q (2004) Kern lecture award paper: odyssey of the enhanced boiling surface. J Heat Transf 126(6):1051–1059CrossRef Webb RL, Donald Q (2004) Kern lecture award paper: odyssey of the enhanced boiling surface. J Heat Transf 126(6):1051–1059CrossRef
Zurück zum Zitat Webb RL, Haider I (1992) An analytical model for nucleate boiling on enhanced surfaces. In: Dhir VK, Bergles AE (eds) Proceedings of the engineering foundation conference on pool and external flow boiling, Santa Barbara, CA, pp 345–360 Webb RL, Haider I (1992) An analytical model for nucleate boiling on enhanced surfaces. In: Dhir VK, Bergles AE (eds) Proceedings of the engineering foundation conference on pool and external flow boiling, Santa Barbara, CA, pp 345–360
Zurück zum Zitat Webb RL, Kim NY (2005) Principles of enhanced heat transfer. Taylor and Francis, New York Webb RL, Kim NY (2005) Principles of enhanced heat transfer. Taylor and Francis, New York
Zurück zum Zitat Webb RL, inventor; Trane Co, assignee (1970) Heat transfer surface which promotes nucleate ebullition. United States Patent US 3,521,708 Webb RL, inventor; Trane Co, assignee (1970) Heat transfer surface which promotes nucleate ebullition. United States Patent US 3,521,708
Zurück zum Zitat Webb RL, inventor; Trane Co, assignee (1972) Heat transfer surface having a high boiling heat transfer coefficient. United States Patent US 3,696,861 Webb RL, inventor; Trane Co, assignee (1972) Heat transfer surface having a high boiling heat transfer coefficient. United States Patent US 3,696,861
Zurück zum Zitat Webb RL, Pais C (1992) Nucleate pool boiling data for five refrigerants on plain, integral-fin and enhanced tube geometries. Int J Heat Mass Transf 35(8):1893–1904CrossRef Webb RL, Pais C (1992) Nucleate pool boiling data for five refrigerants on plain, integral-fin and enhanced tube geometries. Int J Heat Mass Transf 35(8):1893–1904CrossRef
Zurück zum Zitat Wei L, Yuan D, Feng Y, Tang D (2014) Experimental study of bubble growth and flow in small-diameter thermosyphon loops with filling ratios of 90% and 95%. J Enhanc Heat Transf 21(1):63CrossRef Wei L, Yuan D, Feng Y, Tang D (2014) Experimental study of bubble growth and flow in small-diameter thermosyphon loops with filling ratios of 90% and 95%. J Enhanc Heat Transf 21(1):63CrossRef
Zurück zum Zitat Wen D, Corr M, Hu X, Lin G (2011) Boiling heat transfer of nanofluids: the effect of heating surface modification. Int J Therm Sci 50(4):480–485CrossRef Wen D, Corr M, Hu X, Lin G (2011) Boiling heat transfer of nanofluids: the effect of heating surface modification. Int J Therm Sci 50(4):480–485CrossRef
Zurück zum Zitat Xin MD (1985) Analysis and experiment of boiling heat transfer on T-shaped finned surfaces. In: AICHE paper 23rd national heat transfer conference, Denver, CO Xin MD (1985) Analysis and experiment of boiling heat transfer on T-shaped finned surfaces. In: AICHE paper 23rd national heat transfer conference, Denver, CO
Zurück zum Zitat Xin MD, Chao YD (1987) Analysis and experiment of boiling heat transfer on T-shaped finned surfaces. Chem Eng Commun 50(1–6):185–199CrossRef Xin MD, Chao YD (1987) Analysis and experiment of boiling heat transfer on T-shaped finned surfaces. Chem Eng Commun 50(1–6):185–199CrossRef
Zurück zum Zitat Xu J, Chen B, Wang X (2010) Prediction of sliding bubble velocity and mechanism of sliding bubble motion along the surface. J Enhanc Heat Transf 17(2):111CrossRef Xu J, Chen B, Wang X (2010) Prediction of sliding bubble velocity and mechanism of sliding bubble motion along the surface. J Enhanc Heat Transf 17(2):111CrossRef
Zurück zum Zitat Yang GW, Liang HS, Yang WJ, Vrable DL (1996) Nucleate pool boiling on micro graphite–copper composite surfaces. J Heat Transf 118(3):792–796CrossRef Yang GW, Liang HS, Yang WJ, Vrable DL (1996) Nucleate pool boiling on micro graphite–copper composite surfaces. J Heat Transf 118(3):792–796CrossRef
Zurück zum Zitat Yilmaz S, Westwater JW (1981) Effect of commercial enhanced surfaces on the boiling heat transfer curve. Adv EnhancHeat Transf 18:73–91 Yilmaz S, Westwater JW (1981) Effect of commercial enhanced surfaces on the boiling heat transfer curve. Adv EnhancHeat Transf 18:73–91
Zurück zum Zitat You SM, Kim JH, Kim KH (2003) Effect of nanoparticles on critical heat flux of water in pool boiling heat transfer. Appl Phys Lett 83(16):3374–3376CrossRef You SM, Kim JH, Kim KH (2003) Effect of nanoparticles on critical heat flux of water in pool boiling heat transfer. Appl Phys Lett 83(16):3374–3376CrossRef
Zurück zum Zitat Young RX, Hummel RL (1965) Improved nucleate boiling heat transfer. Chem Eng Prog Symp Ser 61(59):264–470 Young RX, Hummel RL (1965) Improved nucleate boiling heat transfer. Chem Eng Prog Symp Ser 61(59):264–470
Zurück zum Zitat Zhang H, Dong L (1992) Analysis and experiment of pool boiling heat transfer from Cit-shaped finned tube above atmospheric pressure. In: Chen XJ, Veziroglu TN, Tien CL (eds) Multiphase flow and heat transfer. Second international symposium, vol I. Hemisphere, New York, pp 384–392 Zhang H, Dong L (1992) Analysis and experiment of pool boiling heat transfer from Cit-shaped finned tube above atmospheric pressure. In: Chen XJ, Veziroglu TN, Tien CL (eds) Multiphase flow and heat transfer. Second international symposium, vol I. Hemisphere, New York, pp 384–392
Zurück zum Zitat Zhang Y, Zhang H, Chen XJ, Verioglu TN, Tien CL (1992) Boiling heat transfer from a thin powder porous layer at low and moderate heat flux. In: II international symposium on multiphase flow heat transfer, New York. Hemisphere, Washington, DC, pp 358–366 Zhang Y, Zhang H, Chen XJ, Verioglu TN, Tien CL (1992) Boiling heat transfer from a thin powder porous layer at low and moderate heat flux. In: II international symposium on multiphase flow heat transfer, New York. Hemisphere, Washington, DC, pp 358–366
Zurück zum Zitat Zhou X, Bier K (1997) Pool boiling heat transfer from a horizontal tube coated with oxide ceramics. Int J Refrig 20(8):552–560CrossRef Zhou X, Bier K (1997) Pool boiling heat transfer from a horizontal tube coated with oxide ceramics. Int J Refrig 20(8):552–560CrossRef
Zurück zum Zitat Zohler SR, inventor; Carrier Corp, assignee (1990) Porous coating for enhanced tubes. United States Patent US 4,890,669 Zohler SR, inventor; Carrier Corp, assignee (1990) Porous coating for enhanced tubes. United States Patent US 4,890,669
Zurück zum Zitat Zuber N (1958) On the stability of boiling heat transfer. Trans Am Soc Mech Eng 80 Zuber N (1958) On the stability of boiling heat transfer. Trans Am Soc Mech Eng 80
Metadaten
Titel
Pool Boiling Enhancement Techniques
verfasst von
Sujoy Kumar Saha
Hrishiraj Ranjan
Madhu Sruthi Emani
Anand Kumar Bharti
Copyright-Jahr
2020
DOI
https://doi.org/10.1007/978-3-030-20755-7_2

    Marktübersichten

    Die im Laufe eines Jahres in der „adhäsion“ veröffentlichten Marktübersichten helfen Anwendern verschiedenster Branchen, sich einen gezielten Überblick über Lieferantenangebote zu verschaffen.