Bomminayuni S, Stoesser T (2011) Turbulence statistics in an open-channel flow over a rough bed. ASCE J Hydraul Eng 137:1347–1358
CrossRef
Google Scholar
Fadlun EA, Verzicco R, Orlandi P, Mohd-Yusof J (2000) Combined immersed boundary finite difference methods for three dimensional complex flow simulations. J Comput Phys 161:35–60
MATH
MathSciNet
CrossRef
Google Scholar
Fraga B, Ouro P, Stoesser T (in revision) Speedup of an Eulerian-Lagrangian large-eddy simulation solver by hybrid MPI-OpenMP parallelization. Comput Fluids
Google Scholar
Iida A, Kato K, Mizuno A (2007) Numerical simulation of unsteady flow and aero-dynamic performance of vertical axis wind turbines with LES. In: 16th Austral-Asian fluid mechanics conference, Crown Plaza, Gold Coast
Google Scholar
Kara MC, Stoesser T (2014) A strong FSI coupling scheme to investigate the onset of resonance of cylinders in tandem arrangement. In: ASME 2014 33rd International conference on ocean, offshore and arctic engineering, San Francisco, 8–13 June 2014, Paper No. OMAE2014-23972
Google Scholar
Kara S, Stoesser T, Sturm TW (2012) Turbulence statistics in compound channels with deep and shallow overbank flows. J Hydraul Res 50:482–493
CrossRef
Google Scholar
Kim D, Kim JH, Stoesser T (2013) The effect of baffle spacing on hydrodynamics and solute transport in serpentine contact tanks. J Hydraul Res 51:558–568
CrossRef
Google Scholar
Li C, Zhu S, Xu Y, Xiao Y (2013) 2.5D large eddy simulation of vertical axis wind turbine in consideration of high angle of attack flow. Renew Energy 51:317–330
CrossRef
Google Scholar
Maitre T, Amet E, Pellone C (2013) Modeling of the flow in a Darrieus water turbine: wall grid refinement analysis and comparison with experiments. Renew Energy 57:497–512
CrossRef
Google Scholar
McNaughton J, Billard F, Revell A (2014) Turbulence modelling of low Reynolds number flow effects around a vertical axis turbine a a range of tip-speed ratios. J Fluids Struct 47:124–139
CrossRef
Google Scholar
Nicoud F, Ducros F (1999) Subgrid-scale stress modelling based on the square of the velocity gradient tensor. Flow Turbul Combust 62:183–200
MATH
CrossRef
Google Scholar
Peskin CS (1972) Flow patterns around heart valves: a digital computer method for solving the equations of motion, Ph.D. thesis, Albert Einstein College of Medicine
Google Scholar
Peskin CS (2002) The immersed boundary method. Acta Numer 11:479–517
MATH
MathSciNet
CrossRef
Google Scholar
Rodi W, Constantinescu G, Stoesser T (2013) Large-Eddy simulation in hydraulics. IAHR monographs. CRC Press, Boca Raton
Google Scholar
Roma A, Peskin CS, Berger J (1999) An adaptive version of the immersed boundary method. J Comput Phys 153:509–534
MATH
MathSciNet
CrossRef
Google Scholar
Shin SJ, Huang W, Sung HJ (2008) Assessment of regularized delta functions and feedback forcing schemes for an immersed boundary method. Int J Numer Methods Fluids 58:263–286
MATH
MathSciNet
CrossRef
Google Scholar
Stoesser T (2010) Physically realistic roughness closure scheme to simulate turbulent channel flow over rough beds within the framework of LES. ASCE J Hydraul Eng 136:812–819
CrossRef
Google Scholar
Stoesser T (2014) Large-eddy simulation in hydraulics: Quo Vadis? J Hydraul Res 52:441–452
CrossRef
Google Scholar
Stoesser T, Nikora V (2008) Flow structure over square bars at intermediate submergence: Large Eddy Simulation (LES) study of bar spacing effect. Acta Geophys 56:876–893
CrossRef
Google Scholar
Uhlmann M (2005) An immersed boundary method with direct forcing for the simulation of particles flow. J Comput Phys 209:448–476
MATH
MathSciNet
CrossRef
Google Scholar
Wang Z, Fan J, Luo K (2008) Combined multi-direct forcing and immersed boundary method for simulating flows with moving particles. Int J Multiphase Flow 34:283–302
CrossRef
Google Scholar
Yang X, Zhang X, Li Z, He G (2009) A smoothing technique for discrete delta function with application to immersed boundary method in moving boundary simulations. J Comput Phys 228:7821–7836
MATH
MathSciNet
CrossRef
Google Scholar