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An exploratory research on performance improvement of super-large natural draft wet cooling tower based on the reconstructed dry-wet hybrid rain zone

机译:基于干湿混合雨区重建的超大型自然通风湿式冷却塔性能改进的探索性研究

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The ambient cold air cannot reach the center area of the super-large natural draft wet cooling towers (S-NDWCTs) due to the large diameter and the large water droplets resistance in the rain zone. In order to solve this issue, the reconstructed dry-wet hybrid rain zone was proposed to improve the performance of S-NDWCTs in this paper. Some split-flow plates were arranged inside the rain zone which can divide the conventional rain zone into the dry zones and wet zones, and then produced the dry-wet hybrid rain zone. The 3D numerical model of S-NDWCTs was established and validated by the actual design data, and then the ventilation and thermal performance of the S-NDWCTs with the reconstructed dry-wet hybrid rain zone were investigated. The numerical simulation results demonstrated that, after adopting the reconstructed dry-wet hybrid rain zone, the airflow velocity inside the tower becomes larger significantly, and the high temperature areas of both the moist air and the circulating water in the central area of the tower disappear. Additionally, by comparing with the S-NDWCTs with a conventional rain zone, it was discovered that, under the conditions of split-flow plates dimension parameters used in this paper, the ventilation rate and the Merkel number increase by about 238% and 9.89% at most, respectively; the outlet water temperature decreases by approximately 0.48 degrees C at most. The investigations in this paper could provide a new idea and a novel method for the in-depth energy-saving research and structural optimal design of the S-NDWCTs. (C) 2019 Elsevier Ltd. All rights reserved.
机译:由于雨区的大直径和大的水滴阻力,周围的冷空气无法到达超大型自然通风湿式冷却塔(S-NDWCT)的中心区域。为了解决这个问题,本文提出了一种重建的干湿混合雨带,以提高S-NDWCT的性能。在雨区内部布置了一些分流板,可以将常规雨区分为干区和湿区,然后产生干湿混合雨区。建立了S-NDWCT的3D数值模型,并通过实际设计数据进行了验证,然后研究了干湿混合雨带重建后的S-NDWCT的通风和热性能。数值模拟结果表明,采用重建的干湿混合雨带后,塔内的气流速度明显增大,塔中央的湿空气和循环水的高温区域消失了。 。另外,通过与常规雨区的S-NDWCT进行比较,发现在本文使用的分流板尺寸参数条件下,通风率和默克尔数分别增加了238%和9.89%最多分别;出水温度最多降低约0.48摄氏度。本文的研究可为S-NDWCT的深入节能研究和结构优化设计提供新的思路和新的方法。 (C)2019 Elsevier Ltd.保留所有权利。

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