2012Proceeding of THMT-12. Proceedings of the Seventh International Symposium On Turbulence, Heat and Mass Transfer Palermo, Italy, 24-27 September, 2012Requires access

Simulation of the gas-particle flow in a cyclone separator

R. V. Salvo, Francisco José de Souza, D. A. M. Martins

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Abstract

In this work, the particle-gas flow in a small sampling cyclone separator is simulated by means of Large-Eddy Simulations (LES). The Eulerian-Lagrangian approach is used to calculate the fluid flow along with the particle motion. Unlike Reynolds-averaged turbulence models (RANS), LES modeling is advantageous as it does not demand turbulence dispersion models for the particles, which in turn requires parameter tuning that may not be applicable to arbitrary cyclone geometries and operating conditions. The grade efficiencies computed are compared with the experimental ones and shown to be sensitive to Reynolds numbers and geometry variations. It can be concluded that, besides the independence of ad hoc parameters, LES offers a robust, reliable modeling option for such flows.

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What this paper is about

In this work, the particle-gas flow in a small sampling cyclone separator is simulated by means of Large-Eddy Simulations (LES). The Eulerian-Lagrangian approach is used to calculate the fluid flow along with the particle motion. Unlike Reynolds-averaged turbulence models (RANS), LES modeling is advantageous as it does not demand turbulence dispersion models for the particles, which in turn requires parameter tuning that may not be applicable to arbitrary cyclone geometries and operating conditions. The grade efficiencies computed are compared with the experimental ones and shown to be sensitive to Reynolds numbers and geometry variations. It can be concluded that, besides the independence of ad hoc parameters, LES offers a robust, reliable modeling option for such flows.

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Available abstract

In this work, the particle-gas flow in a small sampling cyclone separator is simulated by means of Large-Eddy Simulations (LES). The Eulerian-Lagrangian approach is used to calculate the fluid flow along with the particle motion. Unlike Reynolds-averaged turbulence models (RANS), LES modeling is advantageous as it does not demand turbulence dispersion models for the particles, which in turn requires parameter tuning that may not be applicable to arbitrary cyclone geometries and operating conditions. The grade efficiencies computed are compared with the experimental ones and shown to be sensitive to Reynolds numbers and geometry variations. It can be concluded that, besides the independence of ad hoc parameters, LES offers a robust, reliable modeling option for such flows.

Key concepts: Cyclonic separation, Reynolds-averaged Navier–Stokes equations, Mechanics, Turbulence, Large eddy simulation, Reynolds number, Meteorology, Eulerian path

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