论文标题

在湍流强制冷却中的颗粒污染沉积

Deposition of particle pollution in turbulent forced-air cooling

论文作者

Stafford, Jason, Xu, Chen

论文摘要

旋转风扇是用于加热设备和建筑物的普遍强制冷却方法。随着大气污染物的浓度增加,由于对流扩散,微观和纳米级颗粒在表面上的积累导致了不良的机械,化学和电效应,从而增加了冷却需求并降低电子设备的可靠性。在这里,我们发现了导致粒子物质(pm $ _ {10} $和pm $ _ {2.5} $)在表面上增强沉积的机制,这是由于湍流的轴向风扇流动在雷诺数字上运行的湍流,$ re re \ sim 10^5 $。将现场的长期粒子沉积的定性观察与\ textIt {int intu}粒子图像在电信基站上的粒子图像法相结合,从而揭示了撞击速度和角度的主要作用。使用象限分析探索了近壁动量运输,以$ 10 <y^+ <50 $进行了探索,以发现湍流事件的贡献,这些事件通过湍流扩散和涡流影响促进粒子沉积。通过分解这些事件,已经对细颗粒从散装流到表面的局部运输行为进行了分类。从沉积到清洁表面的过渡伴随着剪切速度,湍流应力和粒子扫掠运动的降低,并在壁正常方向较低。最后,使用这些见解,发现对粗颗粒的选择性过滤可促进增强细粒子物质沉积的条件。

Rotating fans are the prevalent forced cooling method for heat generating equipment and buildings. As the concentration of atmospheric pollutants has increased, the accumulation of microscale and nanoscale particles on surfaces due to advection-diffusion has led to adverse mechanical, chemical and electrical effects that increase cooling demands and reduce the reliability of electronic equipment. Here, we uncover the mechanisms leading to enhanced deposition of particle matter (PM$_{10}$ and PM$_{2.5}$) on surfaces due to turbulent axial fan flows operating at Reynolds numbers, $Re \sim 10^5$. Qualitative observations of long-term particle deposition from the field were combined with \textit{in situ} particle image velocimetry on a telecommunications base station, revealing the dominant role of impingement velocity and angle. Near-wall momentum transport for $10 < y^+ < 50$ were explored using a quadrant analysis to uncover the contributions of turbulent events that promote particle deposition through turbulent diffusion and eddy impaction. By decomposing these events, the local transport behaviour of fine particles from the bulk flow to the surface has been categorised. The transition from deposition to clean surfaces was accompanied by a decrease in shear velocity, turbulent stresses, and particle sweep motions with lower flux in the wall-normal direction. Finally, using these insights, selective filtering of coarse particles was found to promote the conditions that enhance the deposition of fine particle matter.

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