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           Launder, B.E., Reece, G.J., Rodi, W., 1975. Progress in the development of a Reynolds-stress
               turbulence closure. J. Fluid Mech. 37 (3), 537–566.
           Launder, B.E., 1988. On the computation of convective heat transfer in complex turbulent
               flows. J. Heat Transf. 110, 1112–1128.
           Launder, B.E., 1989. Second-moment closure: Present – and future. Int. J. Heat Fluid Flow
               10, 282–300.
           Manservisi, S., Menghini, F., 2014. Triangular rod bundle simulations of a CFD (k-ε-k θ -ε θ ) heat
               transfer turbulence model for heavy liquid metals. Nucl. Eng. Des. 273, 251–270.
           Menter, F., Hemstrom, B., Henriksson, M., Karlsson, R., Latrobe, A., Martin, A.,
               Muhlbauer, P., Scheuerer, M., Smith, B., Takacs, T., Willemsen, S., 2002. CFD best prac-
               tice guidelines for CFD code validation for reactor safety applications. ECORA D01,
               Germany.
           Nagano, Y., Shimada, M., 1996. Development of a two equation heat transfer model based on
               direct simulations of turbulent flows with different Prandtl numbers. Phys. Fluids
               8, 3379–3402.
           Nagano, Y., Pei, C.Q., Hattori, H., 1999. A new low Reynolds number one-equation model of
               turbulence. Flow Turbul. Combust. 63, 135–151.
           OECD/NEA, 2007. Handbook on Lead–bismuth eutectic alloy and Lead properties, materials
               compatibility, Thermal-hydraulics and Technologies. OECD NEA No. 6195, ISBN 978-
               92-64-99002-9.
           OECD, 2007. Best practice guidelines for the use of CFD in nuclear reactor safety applications.
               NEA/CSNI/R 5, Paris, France.
           Otic, I., Gr€ otzbach, G., Worner, M., 2005. Analysis and modelling of the temperature variance
               equation in turbulent natural convection for low-Prandtl-number fluids. J. Fluid Mech.
               525, 237–261.
           Otic, I., Gr€ otzbach, G., 2007. Turbulent heat flux and temperature variance dissipation rate in
               natural convection in lead-bismuth. Nucl. Sci. Eng. 155, 489–496.
           Peeters, T.W.J., Henkes, R.A.W.M., 1992. The Reynolds-stress model of turbulence applied to
               natural convection boundary layer along a heated vertical plate. Int. J. Heat Mass Transf.
               33, 403–420.
           Piquet, J., 1999. Turbulent Flows – Models and Physics. Springer, Berlin.
           Reynolds, A.J., 1975. The prediction of turbulent Prandtl and Schmidt numbers. Int. J. Heat
               Mass Transf. 18 (9), 1055–1069.
           Rodi, W., 1993. Turbulence Models and their Application in Hydraulics - a State of the Art
               Review, third ed. IAHR Publication, Delft, Balkema Rotterdam.
           Roelofs, F., Shams, A., Otic, I., B€ ottcher, M., Duponcheel, M., Bartosiewicz, Y., Lakehal, D.,
               Baglietto, E., Lardeau, S., Cheng, X., 2015a. Status and perspective of turbulence heat
               transfer modelling for the industrial application of liquid metal flows. Nucl. Eng. Des.
               290, 99–106.
           Roelofs, F., Shams, A., Pacio, I., Moreau, V., Planquart, P., van Tichelen, K., Di Piazza, I.,
               Tarantino, M., 2015b. European outlook for LMFR thermal hydraulics. In: NURETH-
               16, Chicago, IL, August 30–September 4.
           Roelofs, F., 2017. Best Practice Guidelines for Nuclear Liquid Metal CFD. VKI Lecture Series
               on Thermohydraulics and Chemistry of Liquid Metal Cooled Reactors. The Von Karman
               Institute for Fluid Dynamics. April 10–14.
           Shams, A., Roelofs, F., Baglietto, E., Lardeau, S., Kenjeres, S., 2014. Assessment and calibra-
               tion of an algebraic heat flux model for low-Prandtl fluids. J. Heat Mass Transf.
               79, 589–601.
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