Turbulent channel flow of generalized Newtonian fluids at a low Reynolds number
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Publication:5145035
DOI10.1017/jfm.2020.903zbMath1461.76302OpenAlexW3111020593MaRDI QIDQ5145035
Jannike Solsvik, Arturo A. Arosemena, Helge I. Andersson
Publication date: 19 January 2021
Published in: Journal of Fluid Mechanics (Search for Journal in Brave)
Full work available at URL: https://doi.org/10.1017/jfm.2020.903
Related Items (2)
Effects of shear-thinning rheology on near-wall turbulent structures ⋮ Velocity-vorticity correlations and the four-layer regime in turbulent channel flow of generalized Newtonian fluids
Cites Work
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- A lattice Boltzmann approach for the non-Newtonian effect in the blood flow
- A numerical method for incompressible non-Newtonian fluid flows based on the lattice Boltzmann method
- Direct numerical simulation of turbulent non-Newtonian flow using a spectral element method
- Turbulent pipe flow predictions with a low Reynolds number \(k-\varepsilon\) model for drag reducing fluids.
- A GNF framework for turbulent flow models of drag reducing fluids and proposal for a \(k-\varepsilon\) type closure.
- DNS of wall turbulence: Dilute polymers and self-sustaining mechanisms.
- Direct numerical simulation of turbulent non-Newtonian flow using OpenFOAM
- Turbulent pipe flow of shear-thinning fluids
- The return to isotropy of homogeneous turbulence
- Quadrant Analysis in Turbulence Research: History and Evolution
- Some dynamical features of the turbulent flow of a viscoelastic fluid for reduced drag
- Some characteristics of small-scale turbulence in a turbulent duct flow
- Direct numerical simulation of turbulent channel flow up to Reτ=590
- Budgets of Reynolds stress, kinetic energy and streamwise enstrophy in viscoelastic turbulent channel flow
- Turbulent stress invariant analysis: Clarification of existing terminology
- Computational Modeling of Turbulent Flows
- The return to isotropy of homogeneous turbulence
- Hybrid LES‐RANS modelling: a one‐equation SGS model combined with a k–ω model for predicting recirculating flows
- Drag reduction by polymer additives in a turbulent channel flow
- Turbulent channel flow near maximum drag reduction: simulations, experiments and mechanisms
- Maximum drag reduction in a turbulent channel flow by polymer additives
- Turbulent Flows
- Turbulent duct flow with polymers
- DIRECT NUMERICAL SIMULATION: A Tool in Turbulence Research
- Turbulence statistics in fully developed channel flow at low Reynolds number
- The structure of turbulent boundary layers
- Rheology and Non-Newtonian Fluids
- The influence of shear-dependent rheology on turbulent pipe flow
- Turbulence
- Experiments in turbulent pipe flow with polymer additives at maximum drag reduction
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