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Experimental Studies on Heat Transfer and Friction Factor Characteristics of Al2O3/Water Nanofluid in a Circular Pipe Under Transition Flow With Wire Coil Inserts

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Pages 485-496 | Published online: 14 Feb 2011

REFERENCES

  • Ahuja , A. S. 1975 . Augmentation of Heat Transport in Laminar Flow of Polystyrene Suspension: Experiments and Results . Journal of Applied Physics , 46 : 3408 – 3416 .
  • Choi , S. U. S. 1995 . Developments and Applications of Non-Newtonian Flows . ASME FED , 66 : 99 – 105 .
  • Yu , W. , France , D. M. , Routbort , J. L. and Choi , S. U. S. 2008 . Review and Comparison of Nanofluid Thermal Conductivity and Heat Transfer Enhancements . Heat Transfer Engineering , 29 ( 5 ) : 432 – 460 .
  • Chandrasekar , M. and Suresh , S. 2009 . Review on the Mechanisms of Heat Transport in Nanofluids . Heat Transfer Engineering , 30 ( 14 ) : 1136 – 1150 .
  • Pak , B. C. and Cho , Y. I. 1998 . Hydrodynamic and Heat Transfer Study of Dispersed Fluids With Submicron Metallic Oxide Particles . Experimental Heat Transfer , 11 : 151 – 170 .
  • Xuan , Y. and Li , Q. 2003 . Investigation on Convective Heat Transfer and Flow Features of Nanofluids . Journal of Heat Transfer , 125 : 151 – 155 .
  • Wen , D. and Ding , Y. 2004 . Experimental Investigation Into Convective Heat Transfer of Nanofluids at the Entrance Region Under Laminar Flow Conditions . International Journal of Heat and Mass Transfer , 47 : 5181 – 5188 .
  • Ding , Y. , Alias , H. , Wen , D. and Williams , R. A. 2006 . Heat Transfer of Aqueous Suspensions of Carbon Nanotubes (CNT Nanofluids) . International Journal of Heat and Mass Transfer , 49 : 240 – 250 .
  • Yang , Y. , Zhang , Z. G. , Grulke , E. A. , Anderson , W. B. and Wu , G. 2005 . Heat Transfer Properties of Nanoparticle-In-Fluid Dispersions (Nanofluids) in Laminar Flow . International Journal of Heat and Mass Transfer , 48 : 1107 – 1116 .
  • He , Y. , Jin , Y. , Chen , H. , Ding , Y. , Cang , D. and Lu , H. 2007 . Heat Transfer and Flow Behavior of Aqueous Suspensions of TiO2 Nanoparticles (Nanofluids) Flowing Upward Through a Vertical Pipe . International Journal of Heat and Mass Transfer , 50 : 2272 – 2281 .
  • Chen , H. , Yang , W. , He , Y. , Ding , Y. , Zhang , L. , Tan , C. , Lapkin , A. A. and Bavykin , D. V. 2008 . Heat Transfer Behaviour of Aqueous Suspensions of Titanate Nanofluids . Powder Technology , 183 : 63 – 72 .
  • Duangthongsuk , W. and Wongwises , S. 2008 . Heat Transfer Enhancement and Pressure Drop Characteristics of TiO2–Water Nanofluid in a Double-Tube Counter Flow Heat Exchanger . International Journal of Heat and Mass Transfer , 52 : 2059 – 2067 .
  • Duangthongsuk , W. and Wongwises , S. 2008 . Effect of Thermophysical Properties Models on the Predicting of the Convective Heat Transfer Coefficient for Low Concentration Nanofluid . International Communications in Heat and Mass Transfer , 35 : 1320 – 1326 .
  • Nguyen , C. T. , Roy , G. , Gauthier , C. and Galanis , N. 2007 . Heat Transfer Enhancement Using Al2O3–Water Nanofluid for Electronic Liquid Cooling System . Applied Thermal Engineering , 28 : 1501 – 1506 .
  • Anoop , K. B. , Sundararajan , T. and Das , S. K. 2009 . Effect of Particle Size on the Convective Heat Transfer in Nanofluid in the Developing Region . International Journal of Heat and Mass Transfer , 52 : 2189 – 2195 .
  • Heris , S. Z. , Etemad , S. G. and Esfahany , M. N. 2006 . Experimental Investigation of Oxide Nanofluids Laminar Flow Convective Heat Transfer . International Communications in Heat and Mass Transfer , 33 : 529 – 535 .
  • Hwang , K. S. , Jang , S. P. and Choi , S. U. S. 2009 . Flow and Convective Heat Transfer Characteristics of Water-Based Al2O3 Nanofluids in Fully Developed Laminar Flow Regime . International Journal of Heat and Mass Transfer , 52 : 193 – 199 .
  • Williams , W. , Buongiorno , J. and Hu , L. W. 2008 . Experimental Investigation of Turbulent Convective Heat Transfer and Pressure Loss of Alumina/Water and Zirconia/Water Nanoparticle Colloids (Nanofluids) in Horizontal Tubes . Journal of Heat Transfer , 130 042412-1–042412-7
  • Dewan , A. , Mahanta , P. , Sumithra Raju , K. and Suresh Kumar , P. 2004 . Review of Passive Heat Transfer Augmentation Techniques . Proc. of the Institution of Mechanical Engineers, Part A: Journal of Power and Energy , 218 : 509 – 527 .
  • Webb , R. L. and Kim , N. H. 2005 . Principles of Enhanced Heat Transfer , New York : Taylor & Francis .
  • Lee , J. H. , Hwang , K. S. , Jang , S. P. , Lee , B. H. , Kim , J. H. , Choi , S. U. S. and Choi , C. J. 2008 . Effective Viscosities and Thermal Conductivities of Aqueous Nanofluids Containing Low Volume Concentrations of Al2O3 Nanoparticles . International Journal of Heat and Mass Transfer , 51 : 2651 – 2656 .
  • Das , S. K. , Putra , N. , Thiesen , P. and Roetzel , W. 2003 . Temperature Dependence of Thermal Conductivity Enhancement for Nanofluids . Journal of Heat Transfer , 125 : 567 – 574 .
  • Xie , H. , Chen , L. and Wu , Q. 2008 . Measurements of the Viscosity of Suspensions (Nanofluids) Containing Nanosized Al2O3 Particles . High Temperatures–High Pressures , 37 : 127 – 135 .
  • Coleman , H. W. and Steele , W. G. 1989 . Experimental and Uncertainty Analysis for Engineers , New York : Wiley .
  • ANSI/ASME . 1986 . Measurement Uncertainty , Vol. 19 , 1 – 1985 . PTC .
  • Xuan , Y. and Roetzel , W. 2000 . Conceptions for Heat Transfer Correlation of Nanofluids . International Journal of Heat and Mass Transfer , 43 : 3701 – 3707 .
  • Dittus , F. W. and Boelter , L. M. K. 1930 . Heat Transfer in Automobile Radiators of the Tubular Type . University of California Publications in Engineering , 2 : 443 – 461 .
  • Blasius , H. 1908 . Grenzschichten in Flüssigkeiten mit kleiner Reibung . Z. Math. Phys. , 56 : 1 – 37 . (English translation at http://naca.larc.nasa.gov/reports/1950/naca-tm-1256)
  • Yu , W. , France , D. M. , Smith , D. S. , Singh , D. , Timofeeva , E. V. and Routbort , J. L. 2009 . Heat Transfer to a Silicon Carbide/Water Nanofluid . International Journal of Heat and Mass Transfer , 2 : 3606 – 3612 .
  • Ghajar , A. J. , Tang , W. C. and Beam , J. E. 1995 . Methodology for Comparison of Hydraulic and Thermal Performance of Alternative Heat Transfer Fluids in Complex Systems . Heat Transfer Engineering , 16 : 60 – 72 .

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