Abstract
In this paper, we designed two different configurations with locally isothermal sidewalls, where the temperature is set to be the bulk temperature, to control the large-scale circulation in turbulent Rayleigh-Bénard convection, namely two-point control and four-point control. At fixed Rayleigh number and Prandtl number, a series of direct numerical simulations are performed on both two-dimensional (2-D) and quasi-two-dimensional (quasi-2-D) cavities with both types of control, where the width of the control area is fixed at and the vertical distance from the cavity centre varies from 0 to 0.45 with an interval of 0.05. Our results show that the control effect depends on, the control configurations as well as the flow dimensions. For 2-D cavities, both two-point control and four-point control suppress the flow reversal when, accompanied by the enhancement of vertical heat transfer and the strength of the large-scale circulation. For quasi-2-D cavities, the suppression of the flow reversals is obvious with two-point control and, while the effect is rather limited with four-point control. Further experiments with and up to show that two-point control with can effectively suppress the flow reversal, while two-point control with can suppress the reversals at low and activate them at higher, which agrees well with our numerical simulations.
| Original language | English |
|---|---|
| Article number | A14 |
| Journal | Journal of Fluid Mechanics |
| Volume | 915 |
| DOIs | |
| State | Published - 2021 |
Keywords
- Bénard convection
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