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Technical Papers

Comparison of Wall Treatments and Meshes in Large-Eddy Simulations of Mixing Tees

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Pages 25-40 | Received 08 Jan 2018, Accepted 03 Apr 2018, Published online: 18 May 2018

References

  • Aging and Life Extension of Major LWR Components, V. N. SHAH and P. E. MacDONALD, Eds., Elsevier (1993).
  • M. DAHLBERG et al., “Development of a European Procedure for Assessment of High Cycle Thermal Fatigue in Light Water Reactors: Final Report of the NESC-Thermal Fatigue Project,” EUR 22763 EN, European Commission Joint Research Centre (2007).
  • J. WESTIN et al., “High-Cycle Thermal Fatigue in Mixing Tees. Large-Eddy Simulations Compared to a New Validation Experiment,” Proc. 16th Int. Conf. Nuclear Engineering, Orlando, Florida, ASME (2008).
  • A. K. KUCZAJ, E. M. J. KOMEN, and M. S. LOGINOV, “Large-Eddy Simulation Study of Turbulent Mixing in a T-Junction,” Nucl. Eng. Des., 240, 2116 (2010); https://doi.org/10.1016/j.nucengdes.2009.11.027.
  • A. TIMPERI, “Conjugate Heat Transfer LES of Thermal Mixing in a T-Junction,” Nucl. Eng. Des., 273, 483 (2014); https://doi.org/10.1016/j.nucengdes.2014.02.031.
  • M. TANAKA and Y. MIYAKE, “Numerical Investigation on Thermal Striping Phenomena in a T-Junction Piping System,” Proc. 22nd Int. Conf. Nuclear Engineering (ICONE 22), Prague, Czech Republic, July 7–11, 2014.
  • U. PIOMELLI, “Wall-Layer Models for Large-Eddy Simulations,” Prog. Aerosp. Sci., 44, 437 (2008); https://doi.org/10.1016/j.paerosci.2008.06.001.
  • C. DUPRAT et al., “A Wall-Layer Model for Large-Eddy Simulations of Turbulent Flows With/Out Pressure Gradient,” Phys. Fluids, 23, 015101 (2011); https://doi.org/10.1063/1.3529358.
  • L. DAVIDSON, “Large Eddy Simulations: Wall Functions with Forcing Given by Backscatter from a Scale-Similarity Model,” Progress in Hybrid RANS-LES Modelling, NNFM 111, p. 271–281, S.-H. PENG et al., Eds., Springer (2010).
  • S. KAWAI and J. LARSSON, “Wall-Modeling in Large Eddy Simulation: Length Scales, Grid Resolution, and Accuracy,” Phys. Fluids, 24, 015105 (2012); https://doi.org/10.1063/1.3678331.
  • H. ABE, H. KAWAMURA, and Y. MATSUO, “Surface Heat-Flux Fluctuations in a Turbulent Channel Flow up to Reτ = 1020 with Pr = 0.025 and 0.71,” Int. J. Heat Fluid Flow, 25, 404 (2004); https://doi.org/10.1016/j.ijheatfluidflow.2004.02.010.
  • S. T. JAYARAJU, E. M. J. KOMEN, and E. BAGLIETTO, “Suitability of Wall-Functions in Large Eddy Simulation for Thermal Fatigue in a T-Junction,” Nucl. Eng. Des., 240, 2544 (2010); https://doi.org/10.1016/j.nucengdes.2010.05.026.
  • T. PASUTTO, C. PÉNIGUEL, and M. SAKIZ, “Chained Computations Using an Unsteady 3D Approach for the Determination of Thermal Fatigue in a T-Junction of a PWR Nuclear Plant,” Proc. 20th Int. Conf. Structural Mechanics in Reactor Technology, Espoo, Finland, August 9–14, 2009.
  • R. J. A. HOWARD and E. SERRE, “Large Eddy Simulation in Code_Saturne of Thermal Mixing in a T Junction with Brass Walls,” Int. J. Heat Fluid Flow, 63, 119 (2017); https://doi.org/10.1016/j.ijheatfluidflow.2016.09.011.
  • U. ANDERSSON, J. WESTIN, and J. ERIKSSON, “Thermal Mixing in a T-Junction. Model Tests 2006,” Report U 06:66, pp. 25 and 43, Vattenfall Research and Development (2006).
  • S. COURTIN et al., “High Cycle Thermal Fatigue FATHER Experiment: Non Destructive and Metallographic Examinations,” Proc. 21st Int. Conf. Structural Mechanics in Reactor Technology (SMiRT21), New Delhi, India, November 6–11, 2011.
  • J.-M. STEPHAN, “Numerical Interpretation of the Endurance Test on FATHER Mixing Zone Mock-Up,” Proc. ASME 2011 Pressure Vessels & Piping Division Conf., Baltimore, Maryland, July 17–21, 2011.
  • Star-CCM+ Version 9.06, User Guide,” CD Adapco Group (2014).
  • N. J. GEORGIADIS, D. P. RIZZETTA, and C. FUREBY, “Large-Eddy Simulation: Current Capabilities, Recommended Practices, and Future Research,” Proc. 47th Aerospace Sciences Mtg., Orlando, Florida, January 5–8, 2009, NASA/TM-2009-215616, American Institute of Aeronautics and Astronautics (2009).
  • F. R. MENTER, Best Practice: Scale-Resolving Simulations in ANSYS CFD. Version 1.0, ANSYS Germany GmbH (2012).
  • S. B. POPE, Turbulent Flows, Cambridge University Press, Cambridge, United Kingdom (2000).
  • F. INCROPERA and D. DeWITT, Fundamentals of Heat and Mass Transfer, 4th ed., John Wiley & Sons, Hoboken, New Jersey (1996).
  • F. M. WHITE, Viscous Fluid Flow, McGraw-Hill (1991).
  • Y. NA and T. J. HANRATTY, “Limiting Behavior of Turbulent Scalar Transport Close to a Wall,” Int. J. Heat Mass Transf., 43, 1749 (2000); https://doi.org/10.1016/S0017-9310(99)00258-6.
  • H. TENNEKES and J. L. LUMLEY, A First Course in Turbulence, The MIT Press, Cambridge, Massachusetts (1972).
  • Y. NA, “On the Large Eddy Simulation of High Prandtl Number Scalar Transport Using Dynamic Subgrid-Scale Model,” Korean Soc. Mech. Eng. Int. J., 18, 1, 173 (2004).
  • M. INAGAKI, H. HATTORI, and Y. NAGANO, “A Mixed-Timescale SGS Model for Thermal Field at Various Prandtl Numbers,” Int. J. Heat Fluid Flow, 34, 47 (2012); https://doi.org/10.1016/j.ijheatfluidflow.2011.11.007.
  • A. TIMPERI, “Simulations of Thermal Mixing and Crack Growth,” VTT-R-01062-14, p. 39, VTT Technical Research Centre of Finland (2014).
  • J.–M. NDOMBO and R. J. A. HOWARD, “Large Eddy Simulation and the Effect of the Turbulent Inlet Conditions in the Mixing Tee,” Nucl. Eng. Des., 241, 2172 (2011); https://doi.org/10.1016/j.nucengdes.2011.03.020.
  • R. J. A. HOWARD and E. SERRE, “Large-Eddy Simulation in a Mixing Tee Junction: High-Order Turbulent Statistics Analysis,” Int. J. Heat Fluid Flow, 51, 65 (2015); https://doi.org/10.1016/j.ijheatfluidflow.2014.11.009.
  • I. TISELJ et al., “DNS of Turbulent Heat Transfer in Channel Flow with Heat Conduction in the Solid Wall,” J. Heat Transfer, 123, 849 (2001); https://doi.org/10.1115/1.1389060.
  • C. FLAGEUL 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, 55, 34 (2015); https://doi.org/10.1016/j.ijheatfluidflow.2015.07.009.
  • N. KIMURA, H. MIYAKOSHI, and H. KAMIDE, “Experimental Investigation on Transfer Characteristics of Temperature Fluctuation from Liquid Sodium to Wall in Parallel Triple-Jet,” Int. J. Heat Mass Transf., 50, 2024 (2007); https://doi.org/10.1016/j.ijheatmasstransfer.2006.09.030.
  • N. KIMURA et al., “Experimental Study on High Cycle Thermal Fatigue in T-Junction-Effect of Local Flow Velocity on Transfer of Temperature Fluctuation from Fluid to Structure,” Proc. 13th Int. Topl. Mtg. Nuclear Reactor Thermal Hydraulics (NURETH-13), Kanazawa City, Ishikawa Prefecture, Japan, September 27–October 2, 2009.
  • N. KASAHARA, N. KIMURA, and H. KAMIDE, “Thermal Fatigue Evaluation Method Based on Power Spectrum Density Functions Against Fluid Temperature Fluctuation,” Proc. ASME 2005 Pressure Vessels & Piping Division Conf., Denver, Colorado, July 17–21, 2005, ASME (2005).
  • B. L. SMITH et al., “Report of the OECD/NEA-Vattenfall T-Junction Benchmark Exercise,” NEA/CSNI/R(2011)5, Organisation for Economic Co-operation and Development Nuclear Energy Agency Committee on the Safety of Nuclear Installations, (2011).
  • RCC-M-Edition 2000,” Afcen (2000).
  • O. COSTA GARRIDO, S. EL SHAWISH, and L. CIZELJ, “Uncertainties in the Thermal Fatigue Assessment of Pipes Under Turbulent Fluid Mixing Using an Improved Spectral Loading Approach,” Int. J. Fatigue, 82, 550 (2016); https://doi.org/10.1016/j.ijfatigue.2015.09.010.

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