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首页> 外文期刊>Aerosol and Air Quality Research >Simplified Modeling and Analysis of the Fog Water Harvesting System in the Asir Region of the Kingdom of Saudi Arabia
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Simplified Modeling and Analysis of the Fog Water Harvesting System in the Asir Region of the Kingdom of Saudi Arabia

机译:沙特阿拉伯王国阿西尔地区雾水收集系统的简化建模和分析

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摘要

Scarcity of fresh water is one of the greatest obstacles to achieve the sustainable development in the Kingdom of Saudi Arabia. About thirty desalination plants are built to satisfy the Kingdom needs. The Kingdom is in need of new unconventional water resources such as fog water harvesting system which will complement the existing water resources in the Asir region. This region is facing major challenges due to the flourishing tourism, irrigation in agriculture and rising living standards. Passive mesh type fog collector is analyzed in the current study to predict the rate of fog water collection by combining a physically based impaction and aerodynamic models. The results indicate that the greater volumes of water can be harvested from the fog associated with higher wind speeds, bigger sizes of fog droplet and higher liquid water content in the fog-laden winds with the threshold mesh shade coefficient of about 0.56. It is found that the aerodynamic efficiency has a significant impact on the overall fog collection efficiency compared to the impaction efficiency. The model shows that for the fog droplet size of 30 μm with the wind speed of 4 m s~(–1), it is possible to collect the fog water at the rate of 0.65 to 9.7 L m~(–2) per hour when the liquid water content (LWC) in the fog varies from 0.2 to 3 g m~(–3), respectively.
机译:淡水短缺是沙特阿拉伯王国实现可持续发展的最大障碍之一。为了满足沙特王国的需求,建造了约三十座海水淡化厂。沙特王国需要新的非常规水资源,例如雾水收集系统,以补充阿西尔地区的现有水资源。由于旅游业的蓬勃发展,农业的灌溉和生活水平的提高,该地区面临着重大挑战。在当前的研究中,对被动式网状集雾器进行了分析,以通过结合基于物理的碰撞模型和空气动力学模型来预测集雾率。结果表明,在雾载风中,与更高的风速,更大的雾滴大小和更高的液态水含量相关的雾可以收获更多的水,其阈值网格阴影系数约为0.56。发现与冲击效率相比,空气动力学效率对总体雾收集效率具有显着影响。该模型表明,对于雾滴大小为30μm,风速为4 ms〜(–1)的情况,每小时收集雾水的速率为0.65至9.7 L m〜(–2)。雾中的液态水含量(LWC)分别在0.2至3 gm〜(–3)之间变化。

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