Skip to main content

2020 | OriginalPaper | Buchkapitel

5. Oval and Flat Tube Geometries, Row Effects in Tube Banks, Local Heat Transfer Coefficient on Plain Fins, Performance Comparison, Numerical Simulation and Patents, Coatings

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

Erschienen in: Heat Transfer Enhancement in Externally Finned Tubes and Internally Finned Tubes and Annuli

Verlag: Springer International Publishing

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

search-config
loading …

Abstract

The performance of oval and flat tube geometries, coatings and effect of rows in tube banks are briefed in this chapter. The local heat transfer coefficients for plain fins are presented. The performance comparison of various fin geometries and works on numerical simulation and patents is reported.

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 Achaichia A, Cowell TA (1988) Heat transfer and pressure drop characteristics of flat tube and louvered plate fin surfaces. Exp Therm Fluid Sci 1:147–157CrossRef Achaichia A, Cowell TA (1988) Heat transfer and pressure drop characteristics of flat tube and louvered plate fin surfaces. Exp Therm Fluid Sci 1:147–157CrossRef
Zurück zum Zitat Bar-Cohen A, Rohsenow WM (1984) Thermally optimum spacing of vertical natural convection cooled parallel plates. J Heat Transf 106(1):116–123CrossRef Bar-Cohen A, Rohsenow WM (1984) Thermally optimum spacing of vertical natural convection cooled parallel plates. J Heat Transf 106(1):116–123CrossRef
Zurück zum Zitat Beamer HE, Cowell TA (1998) Heat exchanger cooling fin with varying louver angle. U.S. patent 5,730,214 Beamer HE, Cowell TA (1998) Heat exchanger cooling fin with varying louver angle. U.S. patent 5,730,214
Zurück zum Zitat Bejan A, Morega M (1994) The optimal spacing of a stack of plates cooled by turbulent forced convection. Int J Heat Mass Transf 37(6):1045–1048CrossRef Bejan A, Morega M (1994) The optimal spacing of a stack of plates cooled by turbulent forced convection. Int J Heat Mass Transf 37(6):1045–1048CrossRef
Zurück zum Zitat Bejan A, Sciubba E (1992) The optimal spacing of parallel plates cooled by forced convection. Int J Heat Mass Transf 35(12):3259–3264CrossRef Bejan A, Sciubba E (1992) The optimal spacing of parallel plates cooled by forced convection. Int J Heat Mass Transf 35(12):3259–3264CrossRef
Zurück zum Zitat Bemisderfer C, Wanner J (1991) Chevron lanced fin design with unequal leg lengths for a heat exchanger. U.S. patent 5,062,475 Bemisderfer C, Wanner J (1991) Chevron lanced fin design with unequal leg lengths for a heat exchanger. U.S. patent 5,062,475
Zurück zum Zitat Boewe D, Yin J, Park YC, Bullard CW, Hrnjak PS (1999) The role of suction line heat exchanger in transcritical R-744 mobile air-conditioning systems. SAE Int. Congress and Exposition, SAE 1999-01-0583 Boewe D, Yin J, Park YC, Bullard CW, Hrnjak PS (1999) The role of suction line heat exchanger in transcritical R-744 mobile air-conditioning systems. SAE Int. Congress and Exposition, SAE 1999-01-0583
Zurück zum Zitat Brauer H (1964) Compact heat exchangers. Chem Prog Eng (London) 45(8):451–460 Brauer H (1964) Compact heat exchangers. Chem Prog Eng (London) 45(8):451–460
Zurück zum Zitat Canhoto P, Heitor Reis A (2011) Optimization of forced convection heat sinks with pumping power requirements. Int J Heat Mass Transf 54:1441–1447CrossRef Canhoto P, Heitor Reis A (2011) Optimization of forced convection heat sinks with pumping power requirements. Int J Heat Mass Transf 54:1441–1447CrossRef
Zurück zum Zitat Cox B (1973) Heat transfer and pumping power performance in tube banks—finned and bare. ASME Paper 73-HT-27 Cox B (1973) Heat transfer and pumping power performance in tube banks—finned and bare. ASME Paper 73-HT-27
Zurück zum Zitat Cox B, Jallouk PA (1973) Methods for evaluating the performance of compact heat exchanger surfaces. J Heat Transf 95:464–469CrossRef Cox B, Jallouk PA (1973) Methods for evaluating the performance of compact heat exchanger surfaces. J Heat Transf 95:464–469CrossRef
Zurück zum Zitat Davenport CJ (1983) Correlations for heat transfer and flow friction characteristics of louvered fin. In: Heat transfer—Seattle 1983, AIChE Sym. Ser., No. 225, vol 79, pp 19–27 Davenport CJ (1983) Correlations for heat transfer and flow friction characteristics of louvered fin. In: Heat transfer—Seattle 1983, AIChE Sym. Ser., No. 225, vol 79, pp 19–27
Zurück zum Zitat Eckels PW, Rabas TJ (1985) Heat transfer and pressure drop of typical air cooler finned tubes. J Heat Transf 107:198–204CrossRef Eckels PW, Rabas TJ (1985) Heat transfer and pressure drop of typical air cooler finned tubes. J Heat Transf 107:198–204CrossRef
Zurück zum Zitat Esformes JL (1989) Ramp wing enhanced plate fin. U.S. patent 4,817,709 Esformes JL (1989) Ramp wing enhanced plate fin. U.S. patent 4,817,709
Zurück zum Zitat Fiebig M, Valencia A, Mitra NK (1994) Local heat transfer and flow losses in fin-and-tube heat exchangers with vortex generators: a comparison of round and flat tubes. Exp Therm Fluid Sci 8(1):35–45CrossRef Fiebig M, Valencia A, Mitra NK (1994) Local heat transfer and flow losses in fin-and-tube heat exchangers with vortex generators: a comparison of round and flat tubes. Exp Therm Fluid Sci 8(1):35–45CrossRef
Zurück zum Zitat Haberski RJ, Raco RJ (1976) Engineering analysis and development of an advanced technology low cost dry cooling tower heat transfer surface. Curtiss-Wright Corporation, Report No.Cod-2774-1 Haberski RJ, Raco RJ (1976) Engineering analysis and development of an advanced technology low cost dry cooling tower heat transfer surface. Curtiss-Wright Corporation, Report No.Cod-2774-1
Zurück zum Zitat Hatada T, Senshu T (1984) Experimental study on heat transfer characteristics of convex louver fins for air conditioning heat exchangers. ASME paper ASME 84-HT-74 Hatada T, Senshu T (1984) Experimental study on heat transfer characteristics of convex louver fins for air conditioning heat exchangers. ASME paper ASME 84-HT-74
Zurück zum Zitat Hetsroni G, Mosyak A, Pogrebnyak E, Yarin LP (2011) Micro-channels: reality and myth. J Fluids Eng 133:121–202CrossRef Hetsroni G, Mosyak A, Pogrebnyak E, Yarin LP (2011) Micro-channels: reality and myth. J Fluids Eng 133:121–202CrossRef
Zurück zum Zitat Hu X, Jacobi AM (1993) Local heat transfer behavior and its impact on a single-row, annularly finned tube heat exchanger. J Heat Transf 115:66–74CrossRef Hu X, Jacobi AM (1993) Local heat transfer behavior and its impact on a single-row, annularly finned tube heat exchanger. J Heat Transf 115:66–74CrossRef
Zurück zum Zitat Ikejima K, Gotoh T, Yumikura T, Takeshita M, Yoshita T (1998) Heat exchanger and method of fabrication the heat exchanger. U.S. patent 5,769,157 Ikejima K, Gotoh T, Yumikura T, Takeshita M, Yoshita T (1998) Heat exchanger and method of fabrication the heat exchanger. U.S. patent 5,769,157
Zurück zum Zitat Itoh M, Kogure H, Iino K, Ochiai I, Kitayama Y, Miyagi M (1986) Fin-and-tube type heat exchanger. U.S. patent 4593756 Itoh M, Kogure H, Iino K, Ochiai I, Kitayama Y, Miyagi M (1986) Fin-and-tube type heat exchanger. U.S. patent 4593756
Zurück zum Zitat Jang JY, Chen LK (1997) Numerical analysis of heat transfer and fluid flow in a three-dimensional wavy-fin and tube heat exchanger. Int J Heat Mass Transf 40(16):3981–3990CrossRef Jang JY, Chen LK (1997) Numerical analysis of heat transfer and fluid flow in a three-dimensional wavy-fin and tube heat exchanger. Int J Heat Mass Transf 40(16):3981–3990CrossRef
Zurück zum Zitat Jang Y-J, Chen H-C, Han J-C (2001) Computation of flow and heat transfer in two-pass channels with 60 deg ribs. J Heat Transf 123(3):563–575CrossRef Jang Y-J, Chen H-C, Han J-C (2001) Computation of flow and heat transfer in two-pass channels with 60 deg ribs. J Heat Transf 123(3):563–575CrossRef
Zurück zum Zitat Jones TV, Russell CMB (1980) Heat transfer distribution on annular fins. ASME Paper 78-HT-30 Jones TV, Russell CMB (1980) Heat transfer distribution on annular fins. ASME Paper 78-HT-30
Zurück zum Zitat Jung GH, Jung SH (1999) Heat exchanger fin having an increasing concentration of slits from an upstream to a downstream side of the fin. U.S. patent 5,934,363 Jung GH, Jung SH (1999) Heat exchanger fin having an increasing concentration of slits from an upstream to a downstream side of the fin. U.S. patent 5,934,363
Zurück zum Zitat Kandlikar SG (1987) A general correlation for saturated two-phase flow boiling heat transfer inside horizontal and vertical tubes. In: Ragi EG, Rudy TM, Rabas TJ, Robertson JM (eds) Boiling and condensation in heat transfer equipment, HTD, vol 85, pp 9–20 Kandlikar SG (1987) A general correlation for saturated two-phase flow boiling heat transfer inside horizontal and vertical tubes. In: Ragi EG, Rudy TM, Rabas TJ, Robertson JM (eds) Boiling and condensation in heat transfer equipment, HTD, vol 85, pp 9–20
Zurück zum Zitat Kearney SP, Jacobi AM (1996) Local convective behavior and fin efficiency in shallow banks of in-line and staggered, annularly finned tubes. J Heat Transf 118(2):317–326CrossRef Kearney SP, Jacobi AM (1996) Local convective behavior and fin efficiency in shallow banks of in-line and staggered, annularly finned tubes. J Heat Transf 118(2):317–326CrossRef
Zurück zum Zitat Kim JH, Jensen M, Jansen K (2002) Fin shape effects in turbulent heat transfer in tubes with helical fins. In: Heat transfer 2002. Proceedings of the 12th international heat transfer conference, vol 4, pp 183–188 Kim JH, Jensen M, Jansen K (2002) Fin shape effects in turbulent heat transfer in tubes with helical fins. In: Heat transfer 2002. Proceedings of the 12th international heat transfer conference, vol 4, pp 183–188
Zurück zum Zitat Kruckels SW, Kottke V (1970) Investigation of the distribution of heat transfer on fins and finned tube models. Chem Eng Tech 42:355–362 Kruckels SW, Kottke V (1970) Investigation of the distribution of heat transfer on fins and finned tube models. Chem Eng Tech 42:355–362
Zurück zum Zitat Lehtinen A (2005) Analytical treatment of heat sinks cooled by forced convection. PhD thesis, Tampere university of technology, Tampere, Finland Lehtinen A (2005) Analytical treatment of heat sinks cooled by forced convection. PhD thesis, Tampere university of technology, Tampere, Finland
Zurück zum Zitat Leu J-S, Liu M-S, Liaw J-S, Wang C-C (2001) A numerical investigation of louvered fin-and-tube heat exchangers having circular and oval tube configurations. Int J Heat Mass Transf 44:4235–4243CrossRef Leu J-S, Liu M-S, Liaw J-S, Wang C-C (2001) A numerical investigation of louvered fin-and-tube heat exchangers having circular and oval tube configurations. Int J Heat Mass Transf 44:4235–4243CrossRef
Zurück zum Zitat Lindstedt M, Karvinen R (2012) Optimization of isothermal plate fin arrays with laminar forced convection. J Enhanc Heat Transf 19(6):535–547CrossRef Lindstedt M, Karvinen R (2012) Optimization of isothermal plate fin arrays with laminar forced convection. J Enhanc Heat Transf 19(6):535–547CrossRef
Zurück zum Zitat Manglik RM, Zhang JH, Muley A (2005) Low Reynolds number forced convection in three-dimensional wavy-plate-fin compact channels: fin density effects. Int J Heat Mass Transf 48:1439–1449CrossRef Manglik RM, Zhang JH, Muley A (2005) Low Reynolds number forced convection in three-dimensional wavy-plate-fin compact channels: fin density effects. Int J Heat Mass Transf 48:1439–1449CrossRef
Zurück zum Zitat McQuiston FC (1978) Correlation of heat, mass, and momentum transport coefficients for plate-fin-tube heat transfer for surfaces with staggered tube. ASHRAE Trans 54(Part 1):294–309 McQuiston FC (1978) Correlation of heat, mass, and momentum transport coefficients for plate-fin-tube heat transfer for surfaces with staggered tube. ASHRAE Trans 54(Part 1):294–309
Zurück zum Zitat Min J, Webb RL (2000) Condensate carryover phenomena in dehumidifying, finned-tube heat exchangers. Exp Therm Fluid Sci 22:175–182CrossRef Min J, Webb RL (2000) Condensate carryover phenomena in dehumidifying, finned-tube heat exchangers. Exp Therm Fluid Sci 22:175–182CrossRef
Zurück zum Zitat Min J, Webb RL (2004) Numerical analyses of effects of tube shape on performance of a finned tube heat exchanger. J Enhanc Heat Transf 11:61–74CrossRef Min J, Webb RL (2004) Numerical analyses of effects of tube shape on performance of a finned tube heat exchanger. J Enhanc Heat Transf 11:61–74CrossRef
Zurück zum Zitat Min J, Webb RL, Bemisderfer CH (2000) Long-term hydraulic performance of dehumidifying heat-exchangers with and without hydrophilic coatings. Int J 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. Int J HVAC&R Res 6(3):257–272CrossRef
Zurück zum Zitat Mirth DR, Ramadhyani S (1993) Comparison of methods of modeling the air-side heat and mass transfer in chilled water cooling coils. ASHRAE Trans 99(Pt. 2):285–299 Mirth DR, Ramadhyani S (1993) Comparison of methods of modeling the air-side heat and mass transfer in chilled water cooling coils. ASHRAE Trans 99(Pt. 2):285–299
Zurück zum Zitat Mori Y, Nakayama W (1980) Recent advances in compact heat exchangers in Japan. In: Shah RK, McDonald CF, Howard CP (eds) Compact heat exchangers—history, technology, manufacturing technologies. ASME Symp. HTD, vol 10, pp 5–16 Mori Y, Nakayama W (1980) Recent advances in compact heat exchangers in Japan. In: Shah RK, McDonald CF, Howard CP (eds) Compact heat exchangers—history, technology, manufacturing technologies. ASME Symp. HTD, vol 10, pp 5–16
Zurück zum Zitat Muzychka YS (2005) Constructal design of forced convection cooled microchannel heat sinks and heat exchangers. Int J Heat Mass Transf 48:3119–3127CrossRef Muzychka YS (2005) Constructal design of forced convection cooled microchannel heat sinks and heat exchangers. Int J Heat Mass Transf 48:3119–3127CrossRef
Zurück zum Zitat Neal SBHC, Hitchcock JA (1966) A study of the heat transfer processes in banks of finned tubes in cross flow, using a large scale model technique. In: Proceedings of the third international heat transfer conference, vol 3. American Institute of Chemical Engineers, pp 290–298 Neal SBHC, Hitchcock JA (1966) A study of the heat transfer processes in banks of finned tubes in cross flow, using a large scale model technique. In: Proceedings of the third international heat transfer conference, vol 3. American Institute of Chemical Engineers, pp 290–298
Zurück zum Zitat O’Brien JE, Sohal MS, Wallstedt PC (2001) Local heat transfer and pressure drop for finned-tube heat exchangers using oval tubes and vortex generators. In: Proceedings of 2001 ASME international mechanical engineering congress and exposition, ASME, New York, Paper No. IMECE2001/HTD-24118 O’Brien JE, Sohal MS, Wallstedt PC (2001) Local heat transfer and pressure drop for finned-tube heat exchangers using oval tubes and vortex generators. In: Proceedings of 2001 ASME international mechanical engineering congress and exposition, ASME, New York, Paper No. IMECE2001/HTD-24118
Zurück zum Zitat O’Connor JM, Pasternak SF (1976) Method of making a heat exchanger. U. S. Patent 3,947,941 O’Connor JM, Pasternak SF (1976) Method of making a heat exchanger. U. S. Patent 3,947,941
Zurück zum Zitat Onishi H, Inaoka K, Matsubara K, Suzuki K (1999) Numerical analysis of flow and conjugate heat transfer of two-row plate-finned tube heat exchanger. In: Shah RK, Bell KJ, Honda H, Thonon B (eds) Proceedings of the international conference on compact heat exchangers and enhancement technology for the process industries. Begell House Inc., New York, pp 175–183 Onishi H, Inaoka K, Matsubara K, Suzuki K (1999) Numerical analysis of flow and conjugate heat transfer of two-row plate-finned tube heat exchanger. In: Shah RK, Bell KJ, Honda H, Thonon B (eds) Proceedings of the international conference on compact heat exchangers and enhancement technology for the process industries. Begell House Inc., New York, pp 175–183
Zurück zum Zitat Rabas TI, Huber FV (1989) Row number effects on the heat transfer performance of in-line finned tube banks. Heat Transf Eng 10(4):19–29CrossRef Rabas TI, Huber FV (1989) Row number effects on the heat transfer performance of in-line finned tube banks. Heat Transf Eng 10(4):19–29CrossRef
Zurück zum Zitat Rabas TJ, Myers GA, Eckels PW (1986) Comparison of the thermal performance of serrated high-finned tubes used in heat-recovery systems. In: Chiou JP, Sengupta S (eds) Heat transfer in waste heat recovery and heat rejection systems. ASME Symp. HTD, vol 59, pp 33–40 Rabas TJ, Myers GA, Eckels PW (1986) Comparison of the thermal performance of serrated high-finned tubes used in heat-recovery systems. In: Chiou JP, Sengupta S (eds) Heat transfer in waste heat recovery and heat rejection systems. ASME Symp. HTD, vol 59, pp 33–40
Zurück zum Zitat Saboya FEM, Sparrow EM (1974) Local and average heat transfer coefficients for one-row plate fin and tube heat exchanger configurations. J Heat Transf 96:265–272CrossRef Saboya FEM, Sparrow EM (1974) Local and average heat transfer coefficients for one-row plate fin and tube heat exchanger configurations. J Heat Transf 96:265–272CrossRef
Zurück zum Zitat Saboya FEM, Sparrow EM (1976a) Experiments on a three-row fin and tube heat exchanger. J Heat Transf 98:520–522CrossRef Saboya FEM, Sparrow EM (1976a) Experiments on a three-row fin and tube heat exchanger. J Heat Transf 98:520–522CrossRef
Zurück zum Zitat Saboya FEM, Sparrow EM (1976b) Transfer characteristics of two-row plate fin and tube heat exchanger configurations. Int Heat Mass Transf 19:41–49CrossRef Saboya FEM, Sparrow EM (1976b) Transfer characteristics of two-row plate fin and tube heat exchanger configurations. Int Heat Mass Transf 19:41–49CrossRef
Zurück zum Zitat Saha A (2008) Effect of the number of periodic module on flow and heat transfer in a periodic array of cubic pin-fins inside a channel. J Enhanc Heat Transf 15(3):243–260CrossRef Saha A (2008) Effect of the number of periodic module on flow and heat transfer in a periodic array of cubic pin-fins inside a channel. J Enhanc Heat Transf 15(3):243–260CrossRef
Zurück zum Zitat Sheui TWH, Tsai SF, Chiang TP (1999) Numerical study of heat transfer in two-row heat exchangers having extended fin surfaces. Numer Heat Transf Part A 35(7):797–814CrossRef Sheui TWH, Tsai SF, Chiang TP (1999) Numerical study of heat transfer in two-row heat exchangers having extended fin surfaces. Numer Heat Transf Part A 35(7):797–814CrossRef
Zurück zum Zitat Somchai W, Yutasak C (2005) Effect of fin pitch and number of tube rows on the air side performance of herringbone wavy fin and tube heat exchangers. Energy Convers Manag 46:2216–2231CrossRef Somchai W, Yutasak C (2005) Effect of fin pitch and number of tube rows on the air side performance of herringbone wavy fin and tube heat exchangers. Energy Convers Manag 46:2216–2231CrossRef
Zurück zum Zitat Tanaka T, Hatada T, Itoh M, Senshu T, Katsumata N, Michizuki Y, Terada H, Izushi M, Sato M, Tsuji H, Nagai M (1994) Fin-tube heat exchanger. U.S. patent 5,360,060 Tanaka T, Hatada T, Itoh M, Senshu T, Katsumata N, Michizuki Y, Terada H, Izushi M, Sato M, Tsuji H, Nagai M (1994) Fin-tube heat exchanger. U.S. patent 5,360,060
Zurück zum Zitat Tao YB, He YL, Wu ZG, Tao WQ (2007) Three-dimensional numerical study and field synergy principle analysis of wavy fin heat exchangers with elliptic tubes. Int J Heat Fluid Flow 28(6):1531–1544CrossRef Tao YB, He YL, Wu ZG, Tao WQ (2007) Three-dimensional numerical study and field synergy principle analysis of wavy fin heat exchangers with elliptic tubes. Int J Heat Fluid Flow 28(6):1531–1544CrossRef
Zurück zum Zitat Teertstra P, Yovanovich MM, Culham JR (2000) Analytical forced convection modeling of plate fin heat sinks. J Electron Manuf 10(4):253–261CrossRef Teertstra P, Yovanovich MM, Culham JR (2000) Analytical forced convection modeling of plate fin heat sinks. J Electron Manuf 10(4):253–261CrossRef
Zurück zum Zitat Torikoshi K, Xi G (1995) A numerical study of flow and thermal fields in finned tube heat exchangers. In: Proceedings of the IMECE, HTD, vol 317-1, pp 453–458 Torikoshi K, Xi G (1995) A numerical study of flow and thermal fields in finned tube heat exchangers. In: Proceedings of the IMECE, HTD, vol 317-1, pp 453–458
Zurück zum Zitat Torikoshi K, Xi GN, Nakazawa Y, Asano H (1994) Flow and heat transfer performance of a plate fin-and-tube heat exchanger (1st report: effect of fin pitch). In: Heat transfer 1994. Proceedings of the 10th international heat transfer conference, vol 4, pp 411–416 Torikoshi K, Xi GN, Nakazawa Y, Asano H (1994) Flow and heat transfer performance of a plate fin-and-tube heat exchanger (1st report: effect of fin pitch). In: Heat transfer 1994. Proceedings of the 10th international heat transfer conference, vol 4, pp 411–416
Zurück zum Zitat Tsai SF, Sheu TWH, Lee SM (1999) Heat transfer in a conjugate heat exchanger with a wavy fin surface. Int J Heat Mass Transf 42:1735–1745CrossRef Tsai SF, Sheu TWH, Lee SM (1999) Heat transfer in a conjugate heat exchanger with a wavy fin surface. Int J Heat Mass Transf 42:1735–1745CrossRef
Zurück zum Zitat Ueda H, Hatada T, Kunugi N, Ooucgi T, Sugimoto S, Shimizu T, Kohno K (1994) Heat transfer fins and heat exchanger. U.S. patent 5,353,886 Ueda H, Hatada T, Kunugi N, Ooucgi T, Sugimoto S, Shimizu T, Kohno K (1994) Heat transfer fins and heat exchanger. U.S. patent 5,353,886
Zurück zum Zitat Valencia A, Fiebig M, Mitra NK (1996) Heat transfer enhancement by longitudinal vortices in a fin-tube heat exchanger element with flat tubes. J Heat Transf 118(1):209–211CrossRef Valencia A, Fiebig M, Mitra NK (1996) Heat transfer enhancement by longitudinal vortices in a fin-tube heat exchanger element with flat tubes. J Heat Transf 118(1):209–211CrossRef
Zurück zum Zitat Wang CC, Fu WL, Chang CT (1997) Heat transfer and friction characteristics of typical wavy fin-and-tube heat exchangers. Heat Transf Friction Charact 14:174–186 Wang CC, Fu WL, Chang CT (1997) Heat transfer and friction characteristics of typical wavy fin-and-tube heat exchangers. Heat Transf Friction Charact 14:174–186
Zurück zum Zitat Wang CC, Jang JY, Chiou NF (1999) A heat transfer and friction correlation for wavy fin-and-tube heat exchangers. Int J Heat Mass Transf 42:1919–1924CrossRef Wang CC, Jang JY, Chiou NF (1999) A heat transfer and friction correlation for wavy fin-and-tube heat exchangers. Int J Heat Mass Transf 42:1919–1924CrossRef
Zurück zum Zitat Wang C-C (2000) Recent progress on the air-side performance of fin-and-tube heat exchangers. Int J Heat Exchanges 1:49–76 Wang C-C (2000) Recent progress on the air-side performance of fin-and-tube heat exchangers. Int J Heat Exchanges 1:49–76
Zurück zum Zitat Wang C-C, Chi K-Y, Chang C-J (2000) Heat transfer and friction characteristics of plain fin-and-tube heat exchangers, part II: correlation. Int J Heat Mass Transf 43:2693–2700CrossRef Wang C-C, Chi K-Y, Chang C-J (2000) Heat transfer and friction characteristics of plain fin-and-tube heat exchangers, part II: correlation. Int J Heat Mass Transf 43:2693–2700CrossRef
Zurück zum Zitat Webb RL (1990) The flow structure in the louvered fin exchanger geometry. SAE Int. Congress and Exposition, SAE 900722 Webb RL (1990) The flow structure in the louvered fin exchanger geometry. SAE Int. Congress and Exposition, SAE 900722
Zurück zum Zitat Webb RL, Gupte N (1990) Design of light weight heat exchangers for air-to-two phase service. In: Shah RK, Kraus AD, Metzger D (eds) Compact heat exchangers: a Festschrift for A. L. London. Hemisphere Publishing Corp., Washington, pp 311–334 Webb RL, Gupte N (1990) Design of light weight heat exchangers for air-to-two phase service. In: Shah RK, Kraus AD, Metzger D (eds) Compact heat exchangers: a Festschrift for A. L. London. Hemisphere Publishing Corp., Washington, pp 311–334
Zurück zum Zitat Webb RL, Iyengar A (2001) Oval finned tube condenser and design pressure limits. J Enhanc Heat Transf 8:147–158CrossRef Webb RL, Iyengar A (2001) Oval finned tube condenser and design pressure limits. J Enhanc Heat Transf 8:147–158CrossRef
Zurück zum Zitat Webb RL, Kim NY (2005) Principles of enhanced heat transfer. Taylor & Francis, New York Webb RL, Kim NY (2005) Principles of enhanced heat transfer. Taylor & Francis, New York
Zurück zum Zitat Wieting AR (1975) Empirical correlations for heat transfer and flow friction characteristics of rectangular offset fin heat exchangers. J Heat Transf 97:488–490CrossRef Wieting AR (1975) Empirical correlations for heat transfer and flow friction characteristics of rectangular offset fin heat exchangers. J Heat Transf 97:488–490CrossRef
Zurück zum Zitat Wu JM, Tao WQ (2007) Numerical computation of laminar natural convection heat transfer around a horizontal compound tube with external longitudinal fins. Heat Transf Eng 28(2):93–102CrossRef Wu JM, Tao WQ (2007) Numerical computation of laminar natural convection heat transfer around a horizontal compound tube with external longitudinal fins. Heat Transf Eng 28(2):93–102CrossRef
Zurück zum Zitat Xin RC, Li HZ, Kang HJ, Li W, Tao WQ (1994) An experimental investigation on heat transfer and pressure drop characteristics of triangular wavy fin-and-tube heat exchanger surfaces. J Xi’an Jiaotong Univ 28(2):77–83 Xin RC, Li HZ, Kang HJ, Li W, Tao WQ (1994) An experimental investigation on heat transfer and pressure drop characteristics of triangular wavy fin-and-tube heat exchanger surfaces. J Xi’an Jiaotong Univ 28(2):77–83
Zurück zum Zitat Yilmaz A, Büyükalaca O, Yilmaz T (2000) Optimum shape and dimensions of ducts for convective heat transfer in laminar flow at constant wall temperature. Int J Heat Mass Transf 43:767–775CrossRef Yilmaz A, Büyükalaca O, Yilmaz T (2000) Optimum shape and dimensions of ducts for convective heat transfer in laminar flow at constant wall temperature. Int J Heat Mass Transf 43:767–775CrossRef
Zurück zum Zitat Youn B, Kim YS (1998) Heat exchanger fins of an air conditioner. U.S. patent 5725625 Youn B, Kim YS (1998) Heat exchanger fins of an air conditioner. U.S. patent 5725625
Zurück zum Zitat Yun J-Y, Kim H-Y (1997) Structure of heat exchanger. U.S. patent 5697432 Yun J-Y, Kim H-Y (1997) Structure of heat exchanger. U.S. patent 5697432
Metadaten
Titel
Oval and Flat Tube Geometries, Row Effects in Tube Banks, Local Heat Transfer Coefficient on Plain Fins, Performance Comparison, Numerical Simulation and Patents, Coatings
verfasst von
Sujoy Kumar Saha
Hrishiraj Ranjan
Madhu Sruthi Emani
Anand Kumar Bharti
Copyright-Jahr
2020
DOI
https://doi.org/10.1007/978-3-030-20748-9_5

    Marktübersichten

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