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Buoyancy suppression in gases at high temperatures

机译:高温气体中的浮力抑制

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The computational fluid dynamics code FLUENT was used to study Rayleigh instability at large temperature differences in a sealed gas-filled enclosure with a cold top wall and a heated bottom wall (Benard problem). Both steady state and transient calculations were performed. Instability boundaries depending on the geometry, temperature, and pressure were defined that showed the system tended to become more unstable when the hot-wall temperature increased beyond a certain level, a result of the dampening effect of gas viscosity at higher temperatures. Results also showed that the eventual system stability depended on the final pressure reached at steady state, regardless of how fast the bottom-wall temperature was ramped up to minimize time spent in the unstable region of fluid motion. It was shown that the final system state can differ depending on whether results are obtained via a steady-state or transient calculation, demonstrating that the history of the flow structure development and corresponding temperature fields in this type of system has a profound effect on the final state. Finally, changes in the slope of the pressure-versus-time curve were found to be good indicators of flow pattern changes, and can be a convenient experimental tool for diagnosing the expected changes in flow behavior in such systems.
机译:计算流体动力学代码FLUENT用于研究在具有冷顶壁和加热底壁(贝纳德问题)的密封充气容器中大温差下的瑞利不稳定性。进行了稳态和瞬态计算。定义了取决于几何形状,温度和压力的不稳定性边界,该边界表明,当热壁温度升高到一定水平以上时,系统趋于变得更加不稳定,这是高温下气体粘度的阻尼作用的结果。结果还表明,最终的系统稳定性取决于稳态时达到的最终压力,而与底壁温度的升高速度无关,以最小化在不稳定流体运动区域中花费的时间。结果表明,最终系统的状态可能会有所不同,具体取决于通过稳态还是瞬态计算获得的结果,这表明这种类型的系统中流动结构发展的历史和相应的温度场对最终系统具有深远的影响。州。最后,发现压力-时间曲线的斜率变化是流动模式变化的良好指示,并且可以作为诊断此类系统中流动行为预期变化的便捷实验工具。

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