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      Reynolds averaged turbulence modelling using deep neural networks with embedded invariance

      , ,
      Journal of Fluid Mechanics
      Cambridge University Press (CUP)

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          Abstract

          There exists significant demand for improved Reynolds-averaged Navier–Stokes (RANS) turbulence models that are informed by and can represent a richer set of turbulence physics. This paper presents a method of using deep neural networks to learn a model for the Reynolds stress anisotropy tensor from high-fidelity simulation data. A novel neural network architecture is proposed which uses a multiplicative layer with an invariant tensor basis to embed Galilean invariance into the predicted anisotropy tensor. It is demonstrated that this neural network architecture provides improved prediction accuracy compared with a generic neural network architecture that does not embed this invariance property. The Reynolds stress anisotropy predictions of this invariant neural network are propagated through to the velocity field for two test cases. For both test cases, significant improvement versus baseline RANS linear eddy viscosity and nonlinear eddy viscosity models is demonstrated.

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          Most cited references14

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          Direct numerical simulation of turbulent channel flow up to Reτ=590

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            Neural Network Modeling for Near Wall Turbulent Flow

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              A more general effective-viscosity hypothesis

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                Author and article information

                Journal
                applab
                Journal of Fluid Mechanics
                J. Fluid Mech.
                Cambridge University Press (CUP)
                0022-1120
                1469-7645
                November 25 2016
                October 18 2016
                : 807
                :
                : 155-166
                Article
                10.1017/jfm.2016.615
                63f59f5a-fabb-4165-b1fd-d88343d7cef1
                © 2016
                History

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