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Performance improvement of baffle-type solar air collector based on first chamber narrowing

机译:基于第一腔室变窄的挡板式太阳能空气收集器的性能改进

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This paper proposes a novel idea to optimize thermal performance of baffle-type solar air collector by narrowing the first chamber through rearranging the baffles in the collector. The collector with five chambers divided by four baffles was investigated numerically and experimentally, and the mechanism of performance improvement was revealed by flow and heat transfer analysis. The simulation results show that the width of first chamber has significant influence on thermal efficiency, while has little influence on pressure drop. The maximum thermal-efficiency growth rate can be achieved when the width of the first chamber is 200 mm with the total chamber size of 2000 mm x 1000 mm x 120 mm, and the value is up to 16.90% compared with the model with evenly distributed baffles during the Reynolds number ranges from 1.8-5.5 x 10(3). A test rig was developed at the ratio of 1:0.5 to the numerical model. Four collector models were studied under three working conditions, and effectiveness of this method is verified. The results show that the first-chamber narrowing method has relatively stable optimization effect with a thermal-efficiency growth rate ranges from 9.73% to 16.10% in the experiment. It means that this method is not sensitive to scale change and has certain adaptability. (C) 2018 Elsevier Ltd. All rights reserved.
机译:本文提出了一种新颖的想法,即通过将挡板重新布置在集热器中来缩小第一腔室,从而优化挡板式太阳能集热器的热性能。数值和实验研究了具有五个隔室和四个挡板的集热器,并通过流动和传热分析揭示了性能提高的机理。仿真结果表明,第一腔室的宽度对热效率有显着影响,而对压降的影响很小。当第一个腔室的宽度为200 mm,腔室的总尺寸为2000 mm x 1000 mm x 120 mm时,可以实现最大的热效率增长率,并且与均匀分布的模型相比,该值高达16.90%雷诺数期间的挡板范围为1.8-5.5 x 10(3)。开发了一个与数字模型比例为1:0.5的试验台。在三个工作条件下研究了四种收集器模型,并验证了该方法的有效性。结果表明,第一腔室变窄方法具有相对稳定的优化效果,实验中的热效率增长率为9.73%至16.10%。这意味着该方法对尺度变化不敏感,具有一定的适应性。 (C)2018 Elsevier Ltd.保留所有权利。

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