Optimal selection of annulus radius ratio to enhance heat transfer with minimum entropy generation in developing laminar forced convection of water-Al2O3 nanofluid flow

Majid Siavashi1, Mohammad Vahid Jamali1
1Applied Multi-Phase Fluid Dynamics Lab., School of Mechanical Engineering, Iran University of Science and Technology, Tehran, Iran

Tóm tắt

Từ khóa


Tài liệu tham khảo

AZARI A. Thermal conductivity modeling of water containing metal oxide nanoparticles [J]. Journal of Central South University, 2015, 22: 1141–1145.

YANG Liu, DU Kai, ZHANG Xiao-song. Influence factors on thermal conductivity of ammonia-water nanofluids [J]. Journal of Central South University, 2012, 19:1622–1628.

HAQUE A K M M, KWON S, KIM J, NOH J, HUH S, CHUNG H, JEONG H. An experimental study on thermal characteristics of nanofluid with graphene and multi-wall carbon nanotubes [J]. Journal of Central South University, 2015, 22: 3202–3210.

KAKAÇ S, PRAMUANJAROENKIJ A. Review of convective heat transfer enhancement with nanofluids [J]. International Journal of Heat and Mass Transfer, 2009, 52: 3187–3196.

WUSIMAN Ku-er-ban-jiang, CHUNG H S, NINE M D J, HANDRY A, EOM Y S, KIM J H, JEONG H M. Heat transfer characteristics of nanofluid through circular tube [J]. Journal of Central South University, 2013, 20: 142–148.

ZAIB A, BHATTACHARYYA K, SHAFIE S. Unsteady boundary layer flow and heat transfer over an exponentially shrinking sheet with suction in a copper-water nanofluid [J]. Journal of Central South University, 2015, 22:4856–4863.

ASHRAF M B, HAYAT T, ALSAEDI A, SHEHZAD S A. Convective heat and mass transfer in MHD mixed convection flow of Jeffrey nanofluid over a radially stretching surface with thermal radiation [J]. Journal of Central South University, 2015, 22: 1114–1123.

SHEHZAD S, HUSSAIN T, HAYAT T, RAMZAN M, ALSAEDI A. Boundary layer flow of third grade nanofluid with Newtonian heating and viscous dissipation [J]. Journal of Central South University, 2015, 22: 360–367.

RAFIK S M, KEZZAR M, ADJABI R. Heat transfer of copper/water nanofluid flow through converging-diverging channel [J]. Journal of Central South University, 2016, 23: 484–496.

IZADI M, BEHZADMEHR A, JALALI-VAHIDA D. Numerical study of developing laminar forced convection of a nanofluid in an annulus [J]. International Journal of Thermal Sciences, 2009, 48: 2119–2129.

ALAWIA O A, AZWADI C S N, DAWOOD H K. Natural convection heat transfer in horizontal concentric annulus between outer cylinder and inner flat tube using nanofluid [J]. International Communications in Heat and Mass Transfer, 2014, 57: 65–71.

MATIN M H, POP B I. Numerical Study of Mixed Convection Heat Transfer of a Nanofluid in an Eccentric Annulus [J]. Numerical Heat Transfer, Part A: Applications: An International Journal of Computation and Methodology, 2013, 65: 84–105.

MOGHARIA R M, MUJUMDARB A S, SHARIATA M, TALEBIA F, SAJJADIC S M, AKBARINIAD A. Investigation effect of nanoparticle mean diameter on mixed convection Al2O3-water nanofluid flow in an annulus by two phase mixture model [J]. International Communications in Heat and Mass Transfer, 2013, 49: 25–35.

YANG C, LI W, NAKAYAMA A. Convective heat transfer of nanofluids in a concentric annulus [J]. International Journal of Thermal Sciences, 2013, 71: 249–257.

DAWOODA H K, MOHAMMED H A, AZWADI C S N, MUNISAMY K M, WAHID M A. Forced, natural and mixed-convection heat transfer and fluid flow in annulus: A review [J]. International Communications in Heat and Mass Transfer, 2015, 62: 45–57.

BEJAN A. Entropy generation minimization: The method of thermodynamic optimization of finite-size systems and finite-time processes [M]. CRC press, 1995.

BIANCO V, NARDINI S, MANCA O. Enhancement of heat transfer and entropy generation analysis of nanofluids turbulent convection flow in square section tubes [J]. Nanoscale Research Letters, 2011, 6: 252.

BIANCOA V, MANCAB O, NARDINI S. Entropy generation analysis of turbulent convection flow of Al2O3–water nanofluid in a circular tube subjected to constant wall heat flux [J]. Energy Conversion and Management, 2014, 77: 306–314.

LEONG K Y, SAIDUR R, MAHLIA T M I, YAU Y H. Entropy generation analysis of nanofluid flow in a circular tube subjected to constant wall temperature [J]. International Communications in Heat and Mass Transfer, 2012, 39: 1169–1175.

MOGHADDAMI M, MOHAMMADZADE A, ALEM V E S. Second law analysis of nanofluid flow [J]. Energy Conversion and Management, 2011, 52: 1397–1405.

MOGHADDAMI M, SHAHIDI S, SIAVASHI M. Entropy generation analysis of nanofluid flow in turbulent and laminar regimes [J]. Journal of Computational and Theoretical Nanoscience, 2012, 9: 1586–1595.

YARMAND H, AHMADI G, GHAREHKHANI S, NEWAZ K S, REZA S M, SADAT A M, BAKAR M A. Entropy generation during turbulent flow of zirconia-water and other nanofluids in a square cross section tube with a constant heat flux [J]. Entropy, 2014, 16: 6116–6132.

MAHIAN O, KIANIFAR A, KLEINSTREUER C, AL-NIMRC M A, POPD I, SAHINE A Z, WONGWISES S. A review of entropy generation in nanofluid flow [J]. International Journal of Heat and Mass Transfer, 2013, 65: 514–532.

KUCUK H. Numerical analysis of entropy generation in concentric curved annular ducts [J]. Journal of Mechanical Science and Technology, 2010, 24: 1927–1937.

WU Shuang-ying, CHEN Su-jun, XIAO Lan, LI You-rong. Numerical investigation on developing laminar forced convective heat transfer and entropy generation in an annular helicoidal tube [J]. Journal of Mechanical Science and Technology, 2011, 25: 1439–1447.

MAHMUD S, FRASER A R. Analysis of entropy generation inside concentric cylindrical annuli with relative rotation [J]. International Journal of Thermal Sciences, 2003, 42: 513–521.

HADDAD O M, ALKAM M K, KHASAWNEH M T. Entropy generation due to laminar forced convection in the entrance region of a concentric annulus [J]. Energy, 2004, 29: 35–55.

SIAVASHI M, BAHRAMI H R T, SAFFARI H. Numerical investigation of porous rib arrangement on heat transfer and entropy generation of nanofluid flow in an annulus using a two-phase mixture model [J]. Numerical Heat Transfer, Part A: Applications, 2017, 71: 1174–1196.

SIAVASHI M, BAHRAMI H R T, SAFFARI H. Numerical investigation of flow characteristics, heat transfer and entropy generation of nanofluid flow inside an annular pipe partially or completely filled with porous media using two-phase mixture model [J]. Energy, 2015, 93, Part 2: 2451–2466.

SIAVASHI M, JAMALI M. Heat transfer and entropy generation analysis of turbulent flow of TiO2-water nanofluid inside annuli with different radius ratios using two-phase mixture model [J]. Applied Thermal Engineering, 2016, 100: 1149–1160.

GHASEMI K, SIAVASHI M. Lattice Boltzmann numerical simulation and entropy generation analysis of natural convection of nanofluid in a porous cavity with different linear temperature distributions on side walls [J]. Journal of Molecular Liquids, 2017, 233: 415–430.

GHASEMI K, SIAVASHI M. MHD nanofluid free convection and entropy generation in porous enclosures with different conductivity ratios [J]. Journal of Magnetism and Magnetic Materials, 2017, 442: 474–490.

SIAVASHI M, BORDBAR V, RAHNAMA P. Heat transfer and entropy generation study of non-Darcy double-diffusive natural convection in inclined porous enclosures with different source configurations [J]. Applied Thermal Engineering, 2017, 110: 1462–1475.

TOOSI M H, SIAVASHI M. Two-phase mixture numerical simulation of natural convection of nanofluid flow in a cavity partially filled with porous media to enhance heat transfer [J]. Journal of Molecular Liquids, 2017, 238: 553–569.

BEJAN A. Second law analysis in heat transfer [J]. Energy, 1980, 5: 720–732.

EL BÉCAYE M S, TAM N C, GALANISB N, ROY G. Heat transfer behaviours of nanofluids in a uniformly heated tube [J]. Superlattice Microst, 2004, 35: 543–557.

KHANAFERA K, VAFAI K. A critical synthesis of thermophysical characteristics of nanofluids [J]. International Journal of Heat and Mass Transfer, 2011, 54: 4410–4428.

PAK B C, CHO Y I. Hydrodynamic and heat transfer study of dispersed fluids with submicron metallic oxide particles [J]. Experimental Heat Transfer, 1998, 11: 151–170.

XUANA Y, ROETZEL W. Conceptions for heat transfer correlation of nanofluids [J]. International Journal of Heat and Mass Transfer, 2000, 43: 3701–3707.

KOO J, KLEINSTREUER C. A new thermal conductivity model for nanofluids [J]. Journal of Nanoparticle Research, 2004, 6: 577–588.

XUAN Yi-min, LI Qiang. Heat transfer enhancement of nanofluids [J]. International Journal of Heat and Fluid Flow, 2000, 21: 58–64.

HAGEN K D. Heat transfer with applications [M]. Prentice Hall, 1999.

RAISEE M, MOGHADDAMI M. Numerical investigation of laminar forced convection of nanofluids through circular pipes [J]. Journal of Enhanced Heat Transfer, 2008, 15: 335–350.

DAS S K, PUTRA N, THIESEN P, ROETZEL W. Temperature dependence of thermal conductivity enhancement for nanofluids [J]. Journal of Heat Transfer, 2003, 125: 567–574.

REA U, MCKRELL T, HU Lin-wen, BUONGIORNO J. Laminar convective heat transfer and viscous pressure loss of alumina–water and zirconia–water nanofluids [J]. International Journal of Heat and Mass Transfer, 2009, 52: 2042–2048.

PATANKAR S. Numerical heat transfer and fluid flow [M]. Taylor & Francis, 1980.

ROHSENOW W M, HARTNETT J P, CHO Y I. Handbook of heat transfer [M]. McGraw-Hill, 1998.