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A study on multi-nozzle arrangement for spray cooling system in natural draft dry cooling tower

机译:天然干燥冷却塔喷雾冷却系统多喷嘴装置的研究

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摘要

Natural draft dry cooling tower (NDDCT) technology is especially attractive to power plants built in arid regions with limited water resource. However, high ambient temperature in summer deteriorates the performance of built NDDCT. To address this problem, evaporative pre-cooling technology has been developed by using nozzles to disintegrate water into fine droplets to achieve quick evaporation. The pre-cooled air flowing through radiator, has an enhanced heat exchange with the hot working fluid in the tube side. This paper reports a spray cooling system for the experimental tower built in UQ by combining several nozzle LNN1.5 to cool the inlet air and consequently improve the cooling efficiency of the NDDCT. To minimize water usage, a careful arrangement of spray nozzles should be investigated to achieve the maximum cooling outcome. With five nozzles installment, the inlet air is cooled by 6.3 degrees C, corresponding to 51.2% cooling efficiency. A dimensionless analysis is presented to correlate cooling efficiency with influencing factors. The advantage of this pre-cooling system lies in the efficient water usage: more than 96% of the injected water extracts substantial heat from hot air and evaporates into vapor, leading to a pre-cooled airflow. (C) 2017 Elsevier Ltd. All rights reserved.
机译:天然干燥冷却塔(NDDCT)技术对内置水资源有限的干旱地区的发电厂特别有吸引力。然而,夏季的高环境温度会使内置NDDCT的性能恶化。为了解决这个问题,通过使用喷嘴将水解成微小液滴来开发蒸发预冷技术,以实现快速蒸发。流过散热器的预冷空气,具有增强的热交换与管侧的热工作流体。本文通过组合多个喷嘴LNN1.5来冷却入口空气并因此提高NDDCT的冷却效率,报告了UQ内置的实验塔的喷雾冷却系统。为了最大限度地减少水的使用,应研究喷嘴的仔细布置,以实现最大的冷却结果。使用五个喷嘴安装,入口空气通过6.3℃冷却,对应于51.2%的冷却效率。提出无量纲分析以将冷却效率与影响因素相关联。这种预冷却系统的优点在于在有效的水中使用:超过96%的注射水从热空气中提取大量热量并蒸发成蒸气,导致预冷的气流。 (c)2017 Elsevier Ltd.保留所有权利。

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