Verification of Eulerian--Eulerian and Eulerian--Lagrangian simulations for fluid--particle flows
ORAL
Abstract
In this work, we study the performance of three simulation techniques for fluid-particle flows: (1) a volume--filtered Euler--Lagrange approach (EL), (2) a quadrature--based moment method using the anisotropic Gaussian closure (AG), and (3) a traditional two-fluid model. By simulating two problems: particles in frozen homogeneous isotropic turbulence (HIT), and cluster--induced turbulence (CIT), the convergence of the methods under grid refinement is found to depend on the simulation method and the specific problem, with CIT simulations facing fewer difficulties than HIT. Although EL converges under refinement for both HIT and CIT, its statistical results exhibit dependence on the techniques used to extract statistics for the particle phase. For HIT, converging both EE methods (TFM and AG) poses challenges, while for CIT, AG and EL produce similar results. Overall, all three methods face challenges when trying to extract converged, parameter-independent statistics due to the presence of shocks in the particle phase.
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Authors
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Bo Kong
Ames Laboratory, Iowa State Univ
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Ravi Patel
Cornell University
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Jesse Capecelatro
University of Michigan
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Olivier Desjardins
Cornell University, Cornell Univ
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Rodney Fox
Iowa State University and Ames Laboratory, Iowa State University, Iowa State Univ, Center for Multiphase Flow Research and Education, Iowa State University; and Ames Laboratory, US DOE