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Research Article

RANS Model development on temperature variance in conjugate heat transfer

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Pages 180-207 | Received 31 Jul 2020, Accepted 01 Dec 2020, Published online: 22 Dec 2020

References

  • Westin J, Alavyoon F, Andersson P, et al. Experiments and unsteady CFD calculations of thermal mixing in a T-junction, in OECD/NEA/IAEA Workshop on Benchmarking of CFD Codes for Application to Nuclear Reactor Safety (CFD4NRS), Munich, 2006, pp. 1–15.
  • Odemark Y, Green T, Angele K, et al. High-cycle thermal fatigue in mixing tees: new large eddy simulations validated against new data obtained by PIV in the Vattenfall experiment, in 17th International Conference on Nuclear Engineering, Brussels, 2009, pp. 775–785, Paper ICONE17-175962.
  • Polyakov A. Wall effect on temperature fluctuations in the viscous sublayer. Teplofiz Vys Temp. 1974;12:328–337.
  • Tiselj I, Cizelj L. DNS of turbulent channel flow with conjugate heat transfer at Prandtl number 0.01. Nucl Eng Des. 2012;253:153–160.
  • Tiselj I, Pogrebnyak E, Li C, et al. Effect of wall boundary condition on Scalar transfer in a fully developed turbulent Flume. Phys Fluids. 2001a;13(20):1028–2555.
  • Tiselj I, Bergant R, Mavko B, et al. DNS of turbulent heat transfer in channel flow With heat conduction in the solid wall. J Heat Transfer. 2001b;123(5):849–857.
  • Tiselj I. Tracking of large-scale Structures in turbulent channel with Direct numerical simulation of Low Prandtl number Passive Scalar. Phys Fluids. 2014;26:125111–125117.
  • Flageul C, Benhamadouche S, Lamballais É, et al. DNS of turbulent channel flow with conjugate heat transfer: effect of thermal boundary conditions on the second Moments and Budgets. Int J Heat Fluid Flow. 2015;55:34–44.
  • Flageul C, Benhamadouche S, Lamballais É, et al. On the discontinuity of the dissipation rate Associated with the temperature variance at the fluid-solid interface for cases with conjugate heat transfer. Int J Heat Mass Transf. 2017;111:321–328.
  • Flageul C, Tiselj I, Benhamadouche S, et al. A correlation for the discontinuity of the temperature variance dissipation rate at the fluid-solid interface in turbulent channel flows. Flow Turbul Combstion. 2019;103:175–201.
  • Uapipatanakul S. Development of computational methods for conjugate heat transfer analysis in complex industrial applications [PhD thesis]. Manchester, UK: The University of Manchester; 2010.
  • Craft TJ, Iacovides H, Uapipatanakul S. Towards the development of RANS models for conjugate heat transfer. J Turbulence. 2010;11(26):1–16.
  • Hanjalić K, Kenjeres S, Durst F. Natural convection in partitioned two-dimensional enclosures at higher Rayleigh numbers. Int J Heat Mass Transfer, Int. 1996;39(7):1407–1427.
  • Keshmiri A. Modelling of conjugate heat transfer in near-wall turbulece [M.Sc. diss.] School of Mechanical Aerospace & Civil Engineering, The University of Manchester; 2006.
  • Craft TJ, Launder BE, Suga K. Development and application of a cubic eddy-viscosity model of turbulence. Int J Heat Fluid Flow. 1996;17(2):108–115.
  • Apsley DD, Leschziner MA. A new Low-Reynolds-number nonlinear two-equation turbulence model for complex flows. Int J Heat Fluid Flow. 1998;19:209–222.
  • Daly BJ, Harlow FH. Transport equations in turbulence. Phys Fluids. 1970;13:2634–2649.
  • Suga K, Abe K. Nonlinear eddy viscosity modelling for turbulence and heat transfer near wall and shear-Free Boundaries. Int J Heat Fluid Flow. 2000;21(1):37–48.
  • Craft TJ, Iavocides H, Yoon JH. Progress in the use of non-linear two-equation models in the computation of convective heat-transfer in impinging and separated flows. Flow Turbul Combust. 1999;63:59–80.
  • Launder BE, Sharma BI. Application of the energy-dissipation model of turbulence to the Calculation of flow near a Spinning Disc. Lett Heat Mass Transf. 1974;1:131–137.
  • Suga K. Development and application of a non-linear eddy viscosity model sensitized to stress and strain invariants [PhD thesis] Manchester, UK: The University of Manchester; 1995.
  • Yang G. Modelling of turbulent conjugate heat transfer [PhD thesis] Manchester, UK: The University of Manchester; 2020.
  • Wu Z, Laurence D, Iacovides H, et al. Direct simulation of conjugate heat transfer of Jet in channel Crossflow. Int J Heat Mass Transf. 2017;110:193–208.

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