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THE INLET AIR PRE-COOLING OF NATURAL DRAFT DRY COOLING TOWERS-WETTED MEDIUM ISSUE

机译:天然气润滑塔 - 湿润介质问题的入口空气预冷

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Dry cooling towers are an alternative cooling method when large quantities of water are not available. Examples of the proposed applications are the enhanced geothermal and concentrated solar thermal (CST) power plants in arid or semi-arid areas, like south-western United States, Australia, western Asia, north-western China and the rest of the world. Natural draft dry cooling towers (NDDCTs) have received widespread attention because they do not consume water, have low maintenance requirements and cause small parasitic losses. Unfortunately, the performance of a NDDCT is severely reduced when the ambient air is hot, which is because the NDDCT is driven by buoyancy effect and relies solely on air to cool the working fluid. The present study introduces inlet air pre-cooling using wetted media, which combines dry and wet cooling. The wet cooling system only operates at high ambient temperatures to assist dry cooling. However, wetted-medium cooling introduces extra pressure drop which reduces the air flow passing through the NDDCT and thus impairs the tower heat rejection. To this end, this paper takes into account the trade-off between the wetted-medium cooling and the extra pressure drop. Early studies find that the performance of NDDCTs can be improved by wetted-medium evaporative pre-cooling when the ambient air is hot and dry. However, the pre-cooling enhancement is seasonal-dependent and is significantly affected by wetted media. To further investigate the effect of wetted medium type on pre-cooling performance, the current study simulates a pre-cooled NDDCT using five selected wetted media (i.e., three film and two trickle media) based on a self-developed MATLAB program. The innovations of the current study are: (1) two typical types of wetted media with the potential of evaporative pre-cooling are comparatively studied to give suggestions for future pre-cooling design; (2) the characteristics of wetted media suitable for evaporative pre-cooling of NDDCTs are summarized. The simulation finds that the media with high or low cooling efficiencies and pressure drops are not promising while those media with middle cooling efficiencies and pressure drops intend to produce much performance enhancement of the studied NDDCT. The film medium, Cellulose7060 with pressure drops of 28.6-272.1 Pa/m and cooling efficiency range of 44.7-88.5% is most promising for such pre-cooling enhancement. For the studied NDDCT, the critical temperatures below which the tower performance does not benefit but is hindered by wetted-medium pre-cooling are 28, 16, 30, 26 and 26°C for cellulose7090, cellulose7060, PVC1200, Trickle125 and Trickle100, respectively (ambient humidity of 20% and medium thickness of 200mm). The pre-cooling enhancements can go up to 100% by 200mm-thick cellulose7060 at extreme hot and dry climate (i.e., ambient temperature of 50°C and humidity of 20%). The simulation will give instructions for the design of pre-cooled NDDCTs.
机译:干燥的冷却塔是当不可用的大量水时的替代冷却方法。拟议应用的例子是干旱或半干旱地区的增强地热和集中的太阳能热(CST)发电厂,如美国西南部,澳大利亚,西亚,西北部和世界其他地区。天然的干燥冷却塔(NDDCTS)已经受到广泛的关注,因为它们不会消耗水,具有低维护要求并导致小寄生损失。遗憾的是,当环境空气热时,NDDCT的性能受到严重减少,这是因为NDDCT通过浮力效果驱动并且仅依赖于空气来冷却工作流体。本研究介绍了使用湿润介质的入口空气预冷,其结合干燥和湿冷冷却。湿冷冷却系统仅在高环境温度下运行,以帮助干燥冷却。然而,湿润的中等冷却引入了额外的压降,从而减少了通过NDDCT的空气流量,从而损害塔式排出。为此,本文考虑了湿润的中等冷却与额外压降之间的权衡。早期研究发现,当环境空气热干燥时,通过湿润的中等蒸发预冷可以提高NDDCT的性能。然而,预冷却增强是季节性依赖性的,受湿润介质的显着影响。为了进一步研究湿润的介质类型对预冷性能的影响,目前的研究基于自我开发的MATLAB程序模拟了使用五种选定的湿润介质(即三膜和两个涓流介质)的预冷却的NDDCT。目前研究的创新是:(1)两种典型类型的湿润介质具有蒸发预冷的潜力的介质,比较研究,为未来的预冷设计提供建议; (2)总结了适用于NDDCTS的蒸发预冷却的湿润介质的特性。模拟发现,具有高或低冷却效率和压力下降的介质并不有希望,而那些具有中间冷却效率和压力下降的介质打算产生大量的性能增强学习的NDDCT。薄膜介质,纤维素7060,压降为28.6-272.1Pa / m和冷却效率范围为44.7-88.5%,对于这种预冷却增强最有前途。对于研究的NDDCT,下面低于塔式性能的临界温度不受湿润的培养基预冷却的临界温度为28,16,30,26和26℃,Cellulose7090,Cellulose7060,PVC1200,Trickle125和Trickle100 (环境湿度为20%,中等厚度为200mm)。预冷却增强可在极端炎热和干燥气候下高达100%(厚的Cellulose7060)(即,环境温度为50°C,湿度为20%)。模拟将提供预冷却的NDDCT的设计说明。

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