Heat and fluid flow analysis of metal foam embedded in a double-layered sinusoidal heat sink under local thermal non-equilibrium condition using nanofluid

Journal of Thermal Analysis and Calorimetry - Tập 138 Số 2 - Trang 1461-1476 - 2019
Hossein Arasteh1, Ramin Mashayekhi2, Marjan Goodarzi3, S. Hossein Motaharpour2, Mahidzal Dahari4, Davood Toghraie5
1Department of Mechanical Engineering, Isfahan University of Technology, Isfahan, Iran
2Young Researchers and Elite Club, Khomeinishahr Branch, Islamic Azad University, Khomeinishahr, Iran
3Sustainable Management of Natural Resources and Environment Research Group, Faculty of Environment and Labour Safety, Ton Duc Thang University, Ho Chi Minh City, Vietnam
4Department of Electrical Engineering, Faculty of Engineering, University of Malaya, Kuala Lumpur, Malaysia
5Department of Mechanical Engineering, Khomeinishahr Branch, Islamic Azad University, Khomeinishahr, Iran

Tóm tắt

Từ khóa


Tài liệu tham khảo

Heydari A, Akbari OA, Safaei MR, Derakhshani M, Alrashed AAAA, Mashayekhi R, Ahmadi Sheikh Shabani Gh, Zarringhalam M, Khang Nguyen T. The effect of attack angle of triangular ribs on heat transfer of nanofluids in a microchannel. J Therm Anal Calorim. 2018;131:2893–912.

Mashayekhi R, Khodabandeh E, Bahiraei M, Bahrami L, Toghraie D, Akbari OA. Application of a novel conical strip insert to improve the efficacy of water–Ag nanofluid for utilization in thermal systems: a two-phase simulation. Energy Convers Manag. 2017;151:573–86.

Rezaei O, Akbari OA, Marzban A, Toghraie D, Pourfattah F, Mashayekhi R. The numerical investigation of heat transfer and pressure drop of turbulent flow in a triangular microchannel. Physica E. 2017;93:179–89.

Behnampour A, Akbari OA, Safaei MR, Ghavami M, Marzban A, Ahmadi Sheikh Shabani Gh, Mashayekhi R. Analysis of heat transfer and nanofluid fluid flow in microchannels with trapezoidal, rectangular and triangular shaped ribs. Physica E. 2017;91:15–31.

Alazmi B, Vafai K. Analysis of variants within the porous media transport models. ASME J Heat Transf. 1999;122:303–26.

Meghdadi Isfahani AH, Afrand M. Experiment and Lattice Boltzmann numerical study on nanofluids flow in a micromodel as porous medium. Physica E. 2017;94:15–21.

Kim SY, Paek JW, Kang BH. Flow and heat transfer correlations for porous fin in a plate-fin heat exchanger. ASME J Heat Transf. 2000;122:572–8.

Nojoomizadeh M, Karimipour A. The effects of porosity and permeability on fluid flow and heat transfer of multi walled carbon nano-tubes suspended in oil (MWCNT/Oil nano-fluid) in a microchannel filled with a porous medium. Physica E. 2016;84:423–33.

Nojoomizadeh M, D’Orazio A, Karimipour A, Afrand M, Goodarzi M. Investigation of permeability effect on slip velocity and temperature jump boundary conditions for FMWNT/water nanofluid flow and heat transfer inside a microchannel filled by a porous media. Physica E. 2018;97:226–38.

Arasteh H, Salimpour MR, Tavakoli MR. Optimal distribution of metal foam inserts in a double-pipe heat exchanger. Int J Numer Meth Heat Fluid Flow. 2019. https://doi.org/10.1108/HFF-04-2018-0162 .

Torabi M, Zhang K, Yang G, Wang J, Wu P. Heat transfer and entropy generation analyses in a channel partially filled with porous media using local thermal non-equilibrium model. J Energy. 2015;82:1–17.

Mahmoudi Y, Maerefat M. Analytical investigation of heat transfer enhancement in a channel partially filled with a porous material under local thermal non-equilibrium condition. Int J Therm Sci. 2011;50:2386–401.

Mahmoudi Y, Karimi N. Numerical investigation of heat transfer enhancement in a pipe partially filled with a porous material under local thermal non-equilibrium condition. Int J Heat Mass Transf. 2014;68:161–73.

Xu HJ, Qu ZG, Tao WQ. Analytical solution of forced convective heat transfer in tubes partially filled with metallic foam using the two-equation model. Int J Heat Mass Transf. 2011;54:3846–55.

Qu Z, Xu H, Tao W. Numerical simulation of non-equilibrium conjugate heat transfer in tubes partially filled with metallic foams. J Therm Sci Technol. 2012;7:151–65.

Akbari OA, Koveiti A, Mashayekhi R. The numerical investigation of turbulent nanofluid flow and two-dimensional forced convection heat transfer in a sinusoidal converging-diverging channel. Heat Transf Res. https://doi.org/10.1615/HeatTransRes.2018025937 .

Shamsi MR, Akbari OA, Marzban A, Toghraie D, Mashayekhi R. Increasing heat transfer of non-Newtonian nanofluid in rectangular microchannel with triangular ribs. Physica E. 2017;93:167–78.

Mashayekhi R, Khodabandeh E, Akbari OA, Toghraie D, Bahiraei M, Gholami M. CFD analysis of thermal and hydrodynamic characteristics of hybrid nanofluid in a new designed sinusoidal double-layered microchannel heat sink. J Therm Anal Calorim. 2018;134(3):2305–15.

Dabiri S, Khodabandeh E, Khoeini Poorfar A, Mashayekhi R, Toghraie D, Abadian Zade SA. Parametric investigation of thermal characteristic in trapezoidal cavity receiver for a linear Fresnel solar collector concentrator. Energy. 2018;153:17–26.

Toghraie D, Mashayekhi R, Arasteh H, Sheykhi S, Niknejadi MR, Chamkha AJ. Two-phase investigation of water-Al2O3 nanofluid in a micro concentric annulus under non-uniform heat flux boundary conditions. Int J Numer Meth Heat Fluid Flow. 2019. https://doi.org/10.1108/HFF-11-2018-0628 .

Jafaryar M, Sheikholeslami M, Li Z. CuO–water nanofluid flow and heat transfer in a heat exchanger tube with twisted tape turbulator. J Powder Technol. 2018;336:131–43.

Nazari S, Toghraie D. Numerical simulation of heat transfer and fluid flow of water-CuO nanofluid in a sinusoidal channel with a porous medium. Physica E. 2017;87:134–40.

Goutam S, Manosh CP. Investigation of the characteristics of nanofluids flow and heat transfer in a pipe using a single phase model. Int Commun Heat Mass Transf. 2018;93:48–59.

Sheremet MA, Dinarvand S, Pop I. Effect of thermal stratification on free convection in a square porous cavity filled with a nanofluid using Tiwari and Das’ nanofluid model. Physica E. 2015;69:332–41.

Hung TCh, Yan WM, Li WP. Analysis of heat transfer characteristics of double-layered microchannel heat sink. Int J Heat Mass Transf. 2012;55:3090–9.

Hung TCh, Yan WM. Enhancement of thermal performance in double-layered microchannel heat sink with nanofluids. Int J Heat Mass Transf. 2012;55:3225–38.

Leng Ch, Wang XD, Wang TH. An improved design of double-layered microchannel heat sink with truncated top channels. Appl Therm Eng. 2015;79:54–62.

Shen H, Jin X, Zhang F, Xie G, Sunden B, Yan H. Computational optimization of counter-flow double-layered microchannel heat sinks subjected to thermal resistance and pumping power. Appl Therm Eng. 2017;121:180–9.

Arabpour A, Karimipour A, Toghraie D, Akbari OA. Investigation into the effects of slip boundary condition on nanofluid flow in a double-layer microchannel. J Therm Anal Calorim. 2018;131:2975–91.

Heidary H, Kermani MJ. Effect of nano-particles on forced convection in sinusoidal-wall channel. Int Commun Heat Mass Transf. 2010;37:1520–7.

Mohammed HA, Gunnasegaran P, Shuaib NH. Influence of channel shape on the thermal and hydraulic performance of microchannel heat sink. Int Commun Heat Mass Transf. 2011;38:474–80.

Yang YT, Wang YH, Tseng PK. Numerical optimization of heat transfer enhancement in a wavy channel using nanofluids. Int Commun Heat Mass Transf. 2014;51:9–17.

Khoshvaght-Aliabadi M, Sahamiyan M, Hesampour M, Sartipzadeh O. Experimental study on cooling performance of sinusoidal–wavy minichannel heat sink. Appl Therm Eng. 2016;92:50–61.

Akbarzadeh M, Maghrebi MJ. Combined effects of corrugated walls and porous inserts on performance improvement in a heat exchanger channel. Int J Therm Sci. 2018;127:266–76.

Arman S, Hassanzadeh R. Effects of the geometric parameters on the thermal-hydraulic performance of the wavy tubes. Int Commun Heat Mass Transf. 2018;96:27–36.

Vafai K. Handbook of porous media. 2nd ed. Bosa Roca: Taylor & Francis Inc; 2005.

Xu HJ, Gong L, Zhao CY, Yang YH, Xu ZG. Analytical considerations of local thermal non-equilibrium conditions for thermal transport in metal foams. Int J Therm Sci. 2015;95:73–87.

Arasteh H, Mashayekhi R, Toghraie D, Karimipour A, Bahiraei M, Rahbari A. Optimal arrangements of a heat sink partially filled with multilayered porous media employing hybrid nanofluid. J Therm Anal Calorim. 2019;1:1. https://doi.org/10.1007/s10973-019-08007-z .

Nield DA, Bejan A. Convection in porous media. 3rd ed. New York: Springer; 2006.

Aminossadati SM, Ghasemi B. Natural convection cooling of a localised heat source at the bottom of a nanofluid-filled enclosure. Eur J Mech B Fluids. 2009;5:630–40.

Eiyad AN, Chamkha AJ. Mixed convection flow of a nanofluid in a lid-driven cavity with a wavy wall. Int Commun Heat Mass Transf. 2014;57:36–47.

Patel HE, Anoop KB, Sundararajan T, Das SK. A micro-convection model for thermal conductivity of nanofluids. In: International heat transfer conference 13. Begel House Inc., 2006.

Aminossadati SM. Hydromagnetic natural cooling of a triangular heat source in a triangular cavity with water–CuO nanofluid. Int Commun Heat Mass Transf. 2013;43:22–9.

Nield DA, Kuznetsov AV. Local thermal nonequilibrium effects in forced convection in a porous medium channel: a conjugate problem. Int J Heat Mass Transfer. 1999;42:3245–52.

Huang ZF, Nakayama A, Yang K, Yang C, Liu W. Enhancing heat transfer in the core flow by using porous medium insert in a tube. Int J Heat Mass Transf. 2010;53:1164–74.

Targui N, Kahalerras H. Analysis of fluid flow and heat transfer in a double pipe heat exchanger with porous structures. Energy Convers Manag. 2008;49:3217–29.

Esfahani JA, Safaei MR, Goharimanesh M, De Oliveira LR, Goodarzi M, Shamshirband Sh, Bandarra Filho EP. Comparison of experimental data, modelling and non-linear regression on transport properties of mineral oil based nanofluids. Powder Technol. 2017;317:458–70.

Safaei MR, Goodarzi M, Mohammadi M. Numerical modeling of turbulence mixed convection heat transfer in air filled enclosures by finite volume method. Int J Multiphys. 2016;5:4.

Goodarzi M, Safaei MR, Oztop HF, Karimipour A, Sadeghinezhad E, Dahari M, Kazi SN, Jomhari N, Numerical study of entropy generation due to coupled laminar and turbulent mixed convection and thermal radiation in an enclosure filled with a semitransparent medium. Sci World J. ID 761745.

Safaei MR, Ahmadi G, Goodarzi M, Kamyar A, Kazi S. Boundary layer flow and heat transfer of FMWCNT/water nanofluids over a flat plate. Fluids. 2016;1:4.

Rahmanian B, Safaei MR, Kazi SN, Ahmadi G, Oztop HF, Vafai K. Investigation of pollutant reduction by simulation of turbulent non-premixed pulverized coal combustion. Appl Therm Eng. 2014;73:1222–35.

Mahian O, Kolsi L, Amani M, Estelle P, Ahmadi G, Kleinstreuer C, Marshal JS, Siavashi M, Taylor RA, Niazmand H, Wangwises S, Hayat T, Kolanjiyil A, Kasaeian A, Pop I, Recent advances in modeling and simulation of nanofluid flows-Part I: Fundamentals and theory. Physics reports, 2018.

Mahian O, Kolsi L, Amani M, Estelle P, Ahmadi G, Kleinstreuer C, Marshal JS, Taylor RA, Abu-Nada A, Rashidi S, Niazmand H, Wangwises S, Hayat T, Kolanjiyil A, Kasaeian A, Pop I, Recent advances in modeling and simulation of nanofluid flows-Part II: applications. Physics reports, 2018.

Kim D, Kwon Y, Cho Y, Li Ch, Cheong S, Hwang Y, Lee J, Hong D, Moon S. Convective heat transfer characteristics of nanofluids under laminar and turbulent flow conditions. J Curr Appl Phys. 2009;9:119–23.