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Research Article

Finite-size particles in turbulent channel flow: quadrant analysis and acceleration statistics

, &
Pages 1048-1071 | Received 17 Dec 2015, Accepted 13 Jul 2016, Published online: 11 Aug 2016

References

  • Dupont S, Brunet Y, Jarosz N. Eulerian modelling of pollen dispersal over heterogeneous vegetation canopies. Agric Forest Meteorol. 2006;141:82–104.
  • Vinkovic I, Aguirre C, Simons S, et al. Large eddy simulation of droplet dispersion for inhomogeneous turbulent wall flow. J Multiphase Flow. 2006;32:344–364.
  • Kaftori D, Hestroni G, Banerjee S, Particle behaviour in the turbulent boundary layer. I. Motion, deposition and entrainment. Phys. Fluids 1995a;7:5:1095–1106.
  • Guha A. Transport and deposition of particles in turbulent and laminar flow. Annu Rev Fluid Mech. 2008;40:311–41.
  • Shields A. Application of similarity principles and turbulence research to bed-load movement. Mitteilunger der Preussischen Versuchsanstalt für Wasserbau und Schiffbau 1936;26:5–24.
  • Bagnold R. The nature of saltation on ‘bed-load’ transport in water. Proc R Soc Lond. 1973;332:1591:473–504.
  • Robinson S. Coherent motions in the turbulent boundary layer. Annu Rev Fluid Mech. 1991;23:601–640.
  • R. van Hout. Time-resolved PIV measurements of the interaction of polystyrene beads with near-wall-coherent structures in a turbulent channel flow. Int J Multiphase Flow 2011;37:346–357.
  • R. van Hout. Spatially and temporally resolved measurements of bead resuspension and saltation in a turbulent water channel flow. J Fluid Mech. 2013;715:389–423.
  • Kiger K, Pan C, Suspension and turbulence modification effects of solid particulates on a horizontal turbulent channel flow. J Turbul. 2002;3:1–21.
  • Niño Y, García M. Experiments on particle-turbulence interactions in the near wall region of an open channel flow: implications for sediment transport. J Fluid Mech. 1996;326:285–319.
  • Lelouvetel J, Bigillon F, Doppler D, et al. Experimental investigation of ejections and sweeps involved in particle suspension. Water Resour Res. 2009;45:W02416. doi:10.1029/2007WR006520
  • Marchioli C, Soldati A. Mechanisms for particle transfer and segregation in a turbulent boundary layer. J Fluid Mech. 2002;468:283–315.
  • Lashgari I, Picano F, Breugem WP, et al. Channel flow of rigid sphere suspensions: particle dynamics in the inertial regime. Int J Multiphase Flow. 2016;78:12–24.
  • Lashgari I, Picano F, Breugem WP, et al. Laminar, turbulent, and inertial shear-thickening regimes in channel flow of neutrally buoyant particle suspensions. Phys Rev Lett. 2014;113:254502.
  • Garcia-Villalba M, Kidanemariam A, Uhlmann M. DNS of vertical plane channel flow with finite-size particles: Voronoi analysis, acceleration statistics and particle-conditioned averaging. Int J Multiphase Flow. 2012;46:54–74.
  • Naso A, Prosperetti A. The interaction between a solid particle and a turbulent flow. New J Phys. 2010;12:33–40.
  • Zeng L, Balachandar S, Fischer P, et al. Interactions of a stationary finite-sized particle with wall turbulence. J Fluid Mech. 2008;594:271–305.
  • Homann H, Bec J. Finite-size effects in the dynamics of neutrally buoyant particles in turbulent flow. J Fluid Mech. 2010;651:81–91.
  • Uhlmann M. Interface-resolved direct numerical simulation of vertical particulate channel flow in the turbulent regime. Phys Fluids. 2008;20:053305.
  • Qureshi N, Bourgoin M, Baudet C, et al. Turbulent transport of material particles: an experimental study of finite size effects. Phys Rev Lett. 2007;99:184502.
  • Volk R, Calzavarini E, Verhille G, et al. Acceleration of heavy and light particles in turbulence: comparison between experiments and direct numerical simulations. Phys D. 2008;237:2084–2089.
  • Xu H, Bodenschatz E. Motion of inertial particles with sizes larger than Kolmogorov scales in turbulent flows. Phys D. 2008;237:2095–2100.
  • Calzavarini E, Volk R, Bourgoin M, et al. Acceleration statistics of finite-sized particles in turbulent flow: the role of Faxén forces. J Fluid Mech. 2009:630:179–189.
  • Bec J, Biferale L, Boffetta G, et al. Acceleration statistics of heavy particles in turbulence. J Fluid Mech. 2006;550:349–358.
  • Gerashchenko S, Sharp N, Neuscamman S, et al. Lagrangian measurements of inertial particle accelerations in a turbulent boundary layer. J Fluid Mech. 2008;617:255.
  • Lavezzo V, Soldati A, Gerashchenko S, et al. On the role of gravity and shear on inertial particle accelerations in near wall turbulence. J Fluid Mech. 2010;658:229–246.
  • Zamansky R, Vinkovic I, Gorokhovski M. Acceleration statistics of solid particles in turbulent channel flow. Phys Fluids. 2011;23:113304.
  • Apte S, Mahesh K, Lundgren T. Accounting for finite-size effects in simulations of disperse particle-laden flows. Int J Multiphase Flow. 2008;34:260–271.
  • Shao X, Wu T, Yu Z. Fully resolved numerical simulation of particle-laden turbulent flow in a horizontal channel at a low Reynolds number. J Fluid Mech. 2012;693:319–344.
  • Picano F, Breugem WP, Brandt L. Turbulent channel flow of dense suspensions of neutrally buoyant spheres. J Fluid Mech. 2015:764:463–487.
  • Costa P, Boersma BJ, Westerweel J, et al. Collision model for fully resolved simulations of flows laden with finite-size particles. Phys Rev E. 2015;92:053012.
  • Fornari W, Formenti A, Picano F, et al. The effect of particle density in turbulent channel flow laden with finite size particles in semi-dilute conditions. Phys Fluids. 2016;28:033301.
  • Buffat M, Le Penven L, Cadiou A. An efficient spectral method based on an orthogonal decomposition of the velocity for transition analysis in wall bounded flow. Comput Fluids. 2011;42:62–72.
  • Uhlmann M. An immersed boundary method with direct forcing for the simulation of particulate flows. J Comput Phys. 2005;209:448–476.
  • Yu W, Vinkovic I, Buffat M. Acceleration statistics of finite-size particles in turbulent channel flow in the absence of gravity. Flow Turbul Combust. 2015;25:1–23.
  • Glowinski R, Pan T, Hesla T, et al. A distributed Lagrange multiplier/fictitious domain method for particulate flows. Int J Multiphase Flow. 1999;25:755–794.
  • Kidanemariam A, Chan-Braun C, Doychev T, et al. Direct numerical simulation of horizontal open channel flow with finite-size, heavy particles at low solid volume fraction. New J Phys. 2013;15:025031.
  • Marchioli C, Soldati A, Kuerten J, et al. Statistics of particle dispersion in direct numerical simulations of wall-bounded turbulence: results of an international collaborative benchmark test. Int J Multiphase Flow. 2008;34:879–893.
  • Sumer B, Oguz B. Particle motions near the bottom in turbulent flow in an open channel. J Fluid Mech. 1978;86:109–127.
  • Rouson D, Eaton J. On the preferential concentration of solid particles in turbulent channel flow. J Fluid Mech. 2001;428:149–169.
  • Vinkovic I, Doppler D, Lelouvetel J, et al. Direct numerical simulation of particle interaction with ejections in turbulent channel flows. Int J Multiphase Flow. 2011;37:187–197.
  • Zamansky R, Vinkovic I, Gorokhovski M. Acceleration in turbulent channel flow: universalities in statistics, subgrid stochastic models and an application. J Fluid Mech. 2013;721:627–668.

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