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Computational Studies of Heat Transfer in Turbulent Wavy-Channel Flows

机译:湍流波浪通道流中传热的计算研究

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Heat transfer is studied in fully-developed turbulent flows through channels with various geometries using Direct Numerical Simulations (DNS). Channels where a sinusoidal wave is mapped on either the streamwise direction or spanwise direction are studied, and comparisons to a simple rectangular channel are provided. The velocity-components fields of the fluid flow, and pressure fields are analyzed, along with the vorticity generated in the flow, and are utilized in tandem with the Nusselt number calculated along the heat transfer boundaries, to derive a clearer description of the heat transfer performance of the various geometries. The geometries that have a sinusoidal wave mapped along the spanwise direction and not along the streamwise direction showed the poorest heat transfer performance, as exhibited by the lowest average Nusselt number. The performance of two channels, with an in-phase and out-of-phase sinusoidal wave mapped along the streamwise direction exhibited heat transfer performance significantly higher than that shown by the rectangular channel, which served as baseline. The heat transfer differences can be largely attributed to the vorticity generation and superior fluid mixing that is generated by the periodic streamwise mapped sinusoid. Streamwise sinusoidal channels exhibit Nusselt numbers that are more than three times greater than the spanwise mapped sinusoid, and almost three times greater than that of the rectangular channel. It is shown that the difference among an in-phase and out of phase wave mapping exists, but is shown to be minimal. Further exploration regarding potential geometries with various phase shifts, non-rounded corners, and longer simulation times would be beneficial.
机译:通过使用直接数值模拟(DNS)的具有各种几何的通道,在完全开发的湍流流动中研究了传热。研究了正弦波在流动方向或翼展方向上映射的通道,并且提供了与简单矩形通道的比较。分析了流体流动和压力场的速度 - 组件和压力场以及流动中产生的涡度,并且与沿着传热边界计算的纽带数一起使用,以推导出传热的更清晰的描述各种几何形状的性能。具有沿南部方向映射的正弦波且不沿着流动方向映射的几何形状显示出最糟糕的传热性能,如最低的平均露珠数所展示。两个通道的性能,沿着流动方向映射的同相和异位正弦波,其具有明显高于由矩形通道所示的传热性能,其用作基线。传热差异可以很大程度上归因于由周期性流动映射正弦曲面产生的涡流产生和优异的流体混合。流动的正弦通道具有比跨跨映射正弦曲线大的三倍以上的露珠数,矩形通道的几乎大于三倍。结果表明,存在相位和超出相波映射的差异,但被显示为最小。关于具有各个相移,非圆角和更长的模拟时间的潜在几何形状的进一步探索将是有益的。

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