Effects of fluid properties on sheared thermal convection
ORAL
Abstract
A series of direct numerical simulations of sheared thermal convection have been performed with a second-order finite difference code (van der Poel et al., Comp. & Fluids, 116:10-16, 2015), optimized for a GPU cluster (AFiD GPU (Zhu et al., Comp. Phys. Comm., 229:199-210, 2018)), with a Rayleigh number Ra = 1x106 and a wall Reynolds number Rew of 0 ≤ Rew ≤ 4000. We study the Prandtl number (Pr) dependency of flow structures in the regime of 0.22 ≤ Pr ≤ 4.6. Our findings show that a high Pr results in an increased dependency of Nusselt number and Rew. At Pr = 4.6 we find a dependency of Nu(Rew) ∝ 1x10-3 Rew in the shear dominated regime, while in the same regime for Pr = 0.22 and Pr = 0.46, Nu(Rew) seems to collapse at Nu(Rew) ∝ 1x10-4 Rew.
Additionally, we study the bulk Richardson number Rib - the ratio of buoyancy to mechanical forcing. For low Rib the flow settles in a regime dominated by the flow shearing, while a thermally dominated regime is present for high Rib. Various flow statistics have been plotted as a function of Rib-1 to determine whether the Richardson number is a good estimator of the flow behavior. We show that in the studied parameter space Rib-1 Ra0.31 predicts Nu within 10%.
*NWO-I SURFsara-Cartesius
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Presenters
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Alexander Blass
- University of Twente