Analytical Study of Heat Flux Splitting in Micro-channels Filled with Porous Media
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  • 作者:Maziar Dehghan ; Mohammad Sadegh Valipour ; Seyfolah Saedodin
  • 关键词:Heat flux bifurcation (splitting) ; Micro ; channel ; Internal heat generation ; Slip regime ; Local thermal non ; equilibrium ; Porous medium
  • 刊名:Transport in Porous Media
  • 出版年:2015
  • 出版时间:September 2015
  • 年:2015
  • 卷:109
  • 期:3
  • 页码:571-587
  • 全文大小:1,376 KB
  • 参考文献:Buonomo, B., Manca, O., Lauriat, G.: Forced convection in micro-channels filled with porous media in local thermal non-equilibrium conditions. Int. J. Therm. Sci. 77, 206-22 (2014)CrossRef
    Chen, X., Xia, X.L., Meng, X.L., Dong, X.H.: Thermal performance analysis on a volumetric solar receiver with double-layer ceramic foam. Energy Convers. Manag. 97, 282-89 (2015)CrossRef
    Dehghan, M., Daneshipour, M., Valipour, M.S., Rafee, R., Saedodin, S.: Enhancing heat transfer in microchannel heat sinks using converging flow passages. Energy Convers. Manag. 92, 244-50 (2015a)
    Dehghan, M., Mahmoudi, Y., Valipour, M.S., Saedodin, S.: Combined conduction–convection–radiation heat transfer of slip flow inside a micro-channel filled with a porous material. Transp. Porous Media 108, 413-36 (2015b)
    Dehghan, M., Jamal-Abad, M.T., Rashidi, S.: Analytical interpretation of the local thermal non-equilibrium condition of porous media imbedded in tube heat exchangers. Energy Convers. Manag. 85, 264-71 (2014a)CrossRef
    Dehghan, M., Saedodin, S., Valipour, M.S.: Perturbation analysis of the local thermal non-equilibrium condition in a fluid saturated porous medium bounded by an iso-thermal channel. Transp. Porous Media 102(2), 139-52 (2014b)CrossRef
    Dehghan, M., Basirat Tabrizi, H.: On near-wall behavior of particles in a dilute turbulent gas–solid flow using kinetic theory of granular flows. Powder Technol. 224, 273-80 (2012)CrossRef
    Dehghan, M., Basirat Tabrizi, H.: Turbulence effects on the granular model of particle motion in a boundary layer flow. Can. J. Chem. Eng. 92, 189-95 (2014)CrossRef
    Deng, B., Qiu, Y., Kim, C.N.: An improved porous medium model for microchannel heat sinks. Appl. Therm. Eng. 30, 2512-517 (2010)CrossRef
    Haddad, O.M., Abu-Zaid, M., Al-Nimr, M.A.: Developing free convection gas flow in a vertical open-ended micro-channel filled with porous media. Numer. Heat Transf. A 48, 693-10 (2005)CrossRef
    Harley, J.C., Huang, H., Bau, H.H., Zemel, J.N.: Gas flow in microchannels. J. Fluid Mech. 284, 257-74 (1995)CrossRef
    Hashemi, S.M.H., Fazeli, S.A., Shokouhmand, H.: Fully developed non-Darcian forced convection slip-flow in a micro-annulus filled with a porous medium: analytical solution. Energy Convers. Manag. 52, 1054-060 (2011)CrossRef
    Hooman, K.: Entropy generation for microscale forced convection: effects of different thermal boundary conditions, velocity slip, temperature jump, viscous dissipation, and duct geometry. Int. Commun. Heat Mass Transf. 34, 945-57 (2007)CrossRef
    Hooman, K.: Heat transfer and entropy generation for forced convection through a microduct of rectangular cross-section: effects of velocity slip, temperature jump, and duct geometry. Int. Commun. Heat Mass Transf. 35, 1065-068 (2008)CrossRef
    Hooman, K.: Slip flow forced convection in a microporous duct of rectangular cross-section. Appl. Therm. Eng. 29, 1012-019 (2009)CrossRef
    Hooman, K., Ejlali, A.: Effects of viscous heating, fluid property variation, velocity slip, and temperature jump on convection through parallel plate and circular microchannels. Int. Commun. Heat Mass Transf. 37, 34-8 (2010)CrossRef
    Imani, G.R., Maerefat, M., Hooman, K.: Estimation of heat flux bifurcation at the heated boundary of a porous medium using a pore-scale numerical simulation. Int. J. Therm. Sci. 54, 109-18 (2012)CrossRef
    Imani, G.R., Maerefat, M., Hooman, K.: Pore-scale numerical experiment on the effect of the pertinent parameters on heat flux splitting at the boundary of a porous medium. Transp. Porous Media 98, 631-49 (2013)CrossRef
    Jennings, S.G.: The mean free path in air. J. Aerosol Sci. 19, 159-66 (1988)CrossRef
    Jiang, P.X., Xu, R.N., Gong, W.: Particle-to-fluid heat transfer coefficients in miniporous media. Chem. Eng. Sci. 61, 7213-222 (2006)CrossRef
    Jiang, P.X., Lu, X.C.: Numerical simulation and theoretical analysis of thermal boundary characteristics of convection heat transfer in porous media. Int. J. Heat Fluid Flow 28, 1144-156 (2007)CrossRef
    Kaviany, M.: Principles of heat transfer in porous media. Springer, New York (1995)CrossRef
    Kim, S.J.: Methods for thermal optimization of microchannel heat sinks. Heat Transf. Eng. 25, 37-9 (2004)CrossRef
    Kim, S.J., Kim, D.: Thermal interaction at the interface between a porous medium and an impermeable wall. J. Heat Transf. 123, 527-33 (2001)CrossRef
    Kuznetsov, A.V., Nield, D.A.: Thermally developing forced convection in a porous medium occupied by a rarefied gas: parallel plate channel or circular tube with walls at constant heat flux. Transp. Porous Media 76, 345-62 (2009)CrossRef
    Lee, D.Y., Vafai, K.: Analytical characterization and conceptual assessment of solid and fluid temperature differentials in porous media. Int. J. Heat Mass Transf. 31, 423-35 (1999)CrossRef
    Lindner, F., Mundt, C., Pfitzner, M.: Fluid flow and heat transfer with phase change and local thermal non-equi
  • 作者单位:Maziar Dehghan (1)
    Mohammad Sadegh Valipour (1)
    Seyfolah Saedodin (1)

    1. Faculty of Mechanical Engineering, Semnan University, PO 35131-19111, Semnan, Iran
  • 刊物类别:Earth and Environmental Science
  • 刊物主题:Earth sciences
    Geotechnical Engineering
    Industrial Chemistry and Chemical Engineering
    Civil Engineering
    Hydrogeology
    Mechanics, Fluids and Thermodynamics
  • 出版者:Springer Netherlands
  • ISSN:1573-1634
文摘
The conditions of occurring heat flux splitting (bifurcation) phenomenon in a micro-channel filled with a porous medium including internal heat generations within both the solid and fluid phases under the local thermal non-equilibrium (LTNE) condition is analytically studied in the slip regime. The channel walls are subjected to a constant heat flux. Exact solutions for both the dimensionless temperatures of the two phases and the Nusselt number are obtained. Effects of the pertinent parameters such as heat generation parameter (\(\omega \)), the interphase heat transfer parameter (Vadasz in J Porous Media 15:249-58, 2012) or Biot number (\(\textit{Bi}\)), the fluid-to-solid effective conductivity ratio (k), and the temperature jump coefficient (\(\beta \)) on the dimensionless temperature profile (\(\theta \)) of the two phases as well as the Nusselt number are investigated. Moreover, the validity of one-equation model (the local thermal equilibrium assumption) is analyzed by comparing the Nusselt number obtained by one-equation model (LTE) with that obtained by the two-equation model (LTNE). Results reveal that the conditions at which the heat flux bifurcation (splitting) occurs in the slip regime is the same as those of the no-slip regime. In addition, a kind of heat flux bifurcation in which the solid and fluid phases have the same dimensionless temperature sign is observed in the slip regime, while it was not previously observe in the no-slip regime. It is discussed that the Nusselt number can increase or decrease with respect to \(\omega \) and may have either positive or negative values in both the no-slip and slip regimes. The presence of internal heat generation intensifies the role of \(\beta \) in the Nusselt number reduction. In addition, the accuracy of LTE model increases with increased \(\textit{Bi}\) and with decreased \(\beta \), while it is not a monotonic function of k in the presence of internal heat generation. Keywords Heat flux bifurcation (splitting) Micro-channel Internal heat generation Slip regime Local thermal non-equilibrium Porous medium

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