Droplet size of cooling tower fog.

T Rothman, J O Ledbetter
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引用次数: 9

Abstract

Fog from cooling towers causes problems of visibility and icing along roadways adjacent to the towers; moreover, the visible plume from the towers offers difficulty in that it is equated by much of the public with air pollution. It is desirable to know the size of the fog droplets in order to plan abatement procedures and to determine the airborne lifetimes of such fogs. The methodology involved capturing the droplets on slides coated with a vaseline-mineral oil mixture, making photomicrographs of the droplets, counting and sizing the droplets into eight droplet diameter increments; namely less than 5 mum, 5-10 mum, 10-20 mum, 20-40 mum, 40-60 mum, 60-80 mum, 80-100 mum, and greater than 100 mum. The resulting distribution was similar to that for natural fogs and clouds; i.e., it was bi-modal, the first mode at less than 5 mum containing the vast majority of the droplets, and the second at 20-40 mum. This study agrees with others that the size distribution of a fog in a saturated environment is continuously changing, with the smaller droplets tending to evaporate and the larger ones tending to grow, thus shifting the second mode toward larger sizes.

冷却塔雾滴大小。
来自冷却塔的雾造成了塔附近道路的能见度和结冰问题;此外,塔楼上可见的烟羽也带来了困难,因为它被许多公众等同于空气污染。了解雾滴的大小是很有必要的,这样才能计划减少雾滴的步骤,并确定这种雾在空气中的寿命。该方法包括在涂有凡士林-矿物油混合物的载玻片上捕获液滴,对液滴进行显微照相,对液滴进行计数,并将液滴大小分为八个直径增量;即小于5株、5 ~ 10株、10 ~ 20株、20 ~ 40株、40 ~ 60株、60 ~ 80株、80 ~ 100株、大于100株。结果与自然雾和云的分布相似;也就是说,它是双模态的,第一模态在小于5 μ m时含有绝大多数液滴,第二模态在20-40 μ m时。本研究与其他研究一致认为,在饱和环境中,雾的大小分布是不断变化的,较小的雾滴趋于蒸发,较大的雾滴趋于生长,从而将第二种模式转向较大的雾滴。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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