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Research papers

Double-averaged kinetic energy budgets in flows over mobile granular beds: insights from DNS data analysis

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Pages 653-672 | Received 11 Apr 2018, Accepted 23 Jul 2019, Published online: 08 Nov 2019

References

  • Ancey, C., & Heyman, J. (2014). A microstructural approach to bed load transport: Mean behaviour and fluctuations of particle transport rates. Journal of Fluid Mechanics, 744, 129–168. doi: 10.1017/jfm.2014.74
  • Ballio, F., Nikora, V., & Coleman, S. E. (2014). On the definition of solid discharge in hydro-environment research and applications. Journal of Hydraulic Research, 52, 173–184. doi: 10.1080/00221686.2013.869267
  • Brunet, Y., Finnigan, J. J., & Raupach, M. R. (1994). A wind tunnel study of air flow in waving wheat: Single-point velocity statistics. Boundary-Layer Meteorology, 70, 95–132. doi: 10.1007/BF00712525
  • Chan-Braun, C., García-Villalba, M., & Uhlmann, M. (2011). Direct numerical simulation of sediment transport in turbulent open channel flow. In W. Nagel, D. Kröner, and M. Resch (Eds.), High performance computing in science and engineering '10. Berlin: Springer.
  • Coleman, S. E., & Nikora, V. I. (2008). A unifying framework for particle entrainment. Water Resources Research, 44, W04415. doi: 10.1029/2007WR006363
  • Coleman, S. E., & Nikora, V. I. (2009). Exner equation: A continuum approximation of a discrete granular system. Water Resources Research, 45, W09421.
  • Dey, S. (2014). Fluvial hydrodynamics: Hydrodynamic and transport phenomena. Berlin: Springer.
  • Dey, S., & Das, R. (2012). Gravel-bed hydrodynamics: Double-averaging approach. Journal of Hydraulic Engineering, 138, 707–725. doi: 10.1061/(ASCE)HY.1943-7900.0000554
  • Finnigan, J. (2000). Turbulence in plant canopies. Annual Review of Fluid Mechanics, 32, 519–571. doi: 10.1146/annurev.fluid.32.1.519
  • García, M. (2008). Sedimentation engineering: Processes, measurements, modeling, and practice (Nos. 110, ASCE Manuals Rep. Eng. Pract.). Reston, VA: ASCE.
  • Ghodke, C. D., & Apte, S. V. (2016). Dns study of particle-bed-turbulence interactions in an oscillatory wall-bounded flow. Journal of Fluid Mechanics, 792, 232–251. doi: 10.1017/jfm.2016.85
  • Giménez-Curto, L. A., & Lera, M. A. C. (1996). Oscillating turbulent flow over very rough surfaces. Journal of Geophysical Research: Oceans, 101, 20745–20758. doi: 10.1029/96JC01824
  • Graf, W. H., & Altinakar, M. S. (1998). Fluvial hydraulics: Flow and transport processes in channels of simple geometry. Chichester: Wiley.
  • Grishin, N. N. (1982). Mekhanika pridonnykh nanosov [Mechanics of near-bed sediments]. Moscow: Nauka, Academy of Sciences.
  • Julien, P. (2018). River mechanics. Cambridge: Cambridge University Press.
  • Kempe, T., & Fröhlich, J. (2012a). An improved immersed boundary method with direct forcing for the simulation of particle laden flows. Journal of Computational Physics, 231, 3663–3684. doi: 10.1016/j.jcp.2012.01.021
  • Kempe, T., & Fröhlich, J. (2012b). Collision modelling for the interface-resolved simulation of spherical particles in viscous fluids. Journal of Fluid Mechanics, 709, 445–489. doi: 10.1017/jfm.2012.343
  • Kempe, T., Vowinckel, B., & Fröhlich, J. (2014). On the relevance of collision modeling for interface-resolving simulations of sediment transport in open channel flow. International Journal of Multiphase Flow, 58, 214–235. doi: 10.1016/j.ijmultiphaseflow.2013.09.008
  • Kidanemariam, A. G., & Uhlmann, M. (2014). Direct numerical simulation of pattern formation in subaqueous sediment. Journal of Fluid Mechanics, 750, R21–R213. doi: 10.1017/jfm.2014.284
  • Kolmogorov, A. N. (1954). O novom variante gravitatsionnoy teorii dvijeniea vzveshennykh nanosov M.A. Velikanova [On a new version of the gravitational theory of suspended sediments of M.A. Velikanov]. Proc. Moscow State University, Physics Series (Vol. 3, pp. 41–45).
  • Mignot, E., Barthelemy, E., & Hurther, D. (2009). Double-averaging analysis and local flow characterization of near-bed turbulence in gravel-bed channel flows. Journal of Fluid Mechanics, 618, 279–303. doi: 10.1017/S0022112008004643
  • Nikora, V. (2009). Friction factor for rough-bed flows: Interplay of fluid stresses, secondary currents, nonuniformity, and unsteadiness. In Proceedings of the 33rd IAHR congress, Vancouver, Canada.
  • Nikora, V., Ballio, F., Coleman, S., & Pokrajac, D. (2013). Spatially averaged flows over mobile rough beds: Definitions, averaging theorems and conservation equations. Journal of Hydraulic Engineering, 139, 803–811. doi: 10.1061/(ASCE)HY.1943-7900.0000738
  • Nikora, V., Goring, D., McEwan, I., & Griffiths, G. (2001). Spatially averaged open-channel flow over rough bed. Journal of Hydraulic Engineering, 127, 123–133. doi: 10.1061/(ASCE)0733-9429(2001)127:2(123)
  • Nikora, V., McEwan, I., McLean, S., Coleman, S., Pokrajac, D., & Walters, R. (2007a). Double-averaging concept for rough-bed open-channel and overland flows: Theoretical background. Journal of Hydraulic Engineering, 133, 873–883. doi: 10.1061/(ASCE)0733-9429(2007)133:8(873)
  • Nikora, V., McLean, S., Coleman, S., Pokrajac, D., McEwan, I., Campbell, L., …Koll, K. (2007b). Double averaging concept for rough-bed open-channel and overland flows: Applications. Journal of Hydraulic Engineering, 133, 884–895. doi: 10.1061/(ASCE)0733-9429(2007)133:8(884)
  • Papadopoulos, K., Nikora, V., Cameron, S., Stewart, M., & Gibbins, C. (2019). Spatially averaged flows over mobile rough beds: Equations for the second-order velocity moments. Journal of Hydraulic Research. doi:10.1080/00221686.2018.1555559
  • Pedras, M. H. J., & de Lemos, M. J. S. (2001). Macroscopic turbulence modeling for incompressible flow through undeformable porous media. International Journal of Heat and Mass Transfer, 44, 1081–1093. doi: 10.1016/S0017-9310(00)00202-7
  • Raupach, M. R., & Shaw, R. H. (1982). Averaging procedures for flow within vegetation canopies. Boundary-Layer Meteorology, 22, 79–90. doi: 10.1007/BF00128057
  • Singh, A., Foufoula-Georgiou, E., Porté-Angel, F., & Wilcock, P. R. (2012). Coupled dynamics of the co-evolution of gravel bed topography, flow turbulence and sediment transport in an experimental channel. Journal of Geophysical Research, 117, F04016.
  • Soldati, A., & Marchioli, C. (2012). Sediment transport in steady turbulent boundary layers: Potentials, limitations, and perspectives for lagrangian tracking in DNS and LES. Advances in Water Resources, 48, 18–30. doi: 10.1016/j.advwatres.2012.05.011
  • Uhlmann, M. (2005). An immersed boundary method with direct forcing for the simulation of particulate flows. Journal of Computational Physics, 209, 448–476. doi: 10.1016/j.jcp.2005.03.017
  • Velikanov, M. A. (1944). Perenos vzveshennykh chastits turbulentnym potokom [Transport of suspended particles by turbulent flow]. Proc. Academy of Sciences, OTN, Moscow (Vol. 3, pp. 189–208).
  • Vowinckel, B., & Fröhlich, J. (2012). Simulation of bed load transport in turbulent open channel flow. PAMM, 12, 505–506. doi: 10.1002/pamm.201210241
  • Vowinckel, B., Kempe, T., & Fröhlich, J. (2013). Particle-resolving simulations of bed-load sediment transport. In 8th international conference on multiphase flow, Jeju, Korea.
  • Vowinckel, B., Kempe, T., & Fröhlich, J. (2014). Fluid-particle interaction in turbulent open channel flow with fully-resolved mobile beds. Advances in Water Resources, 72, 32–44. doi: 10.1016/j.advwatres.2014.04.019
  • Vowinckel, B., Kempe, T., Fröhlich, J., & Nikora, V. (2012). Numerical simulation of sediment transport in open channel flow. In R. Muñoz (Ed.), River flow (pp. 507–514). London: CRC Press.
  • Vowinckel, B., Nikora, V., Kempe, T., & Fröhlich, J. (2017a). Momentum balance in flows over mobile granular beds: Application of double-averaging methodology to DNS data. Journal of Hydraulic Research, 55, 190–207. doi: 10.1080/00221686.2016.1260656
  • Vowinckel, B., Nikora, V., Kempe, T., & Fröhlich, J. (2017b). Spatially-averaged momentum fluxes and stresses in flows over mobile granular beds: A DNS-based study. Journal of Hydraulic Research, 55, 208–223. doi: 10.1080/00221686.2016.1260658
  • Wilson, N. R., & Shaw, R. H. (1977). A higher order closure model for canopy flow. Journal of Applied Meteorology, 16, 1197–1205. doi: 10.1175/1520-0450(1977)016<1197:AHOCMF>2.0.CO;2
  • Yalin, M. S (1977). Mechanics of sediment transport. Oxford: Pergamon Press.
  • Yuan, J., & Piomelli, U. (2014). Roughness effects on the Reynolds stress budgets in near-wall turbulence. Journal of Fluid Mechanics, 760. doi: 10.1017/jfm.2014.608