Theoretical and experimental study of water vapour condensation with high content of non-condensable gas in a vertical tube

IF 0.6 Q3 ENGINEERING, MULTIDISCIPLINARY
J. Krempaský, J. Havlík, T. Dlouhý
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引用次数: 1

Abstract

This article deals with the possibility of separating water vapour from flue gases after oxyfuel combustion using condensation processes. Those processes can generally be described as condensation of water vapour in the presence of non-condensable gases. Hence, the effect of noncondensable gas (NCG) on the condensation process has been theoretically and experimentally analysed in this study. The theoretical model was developed on the basis of the heat and mass transfer analogy with respect to the effect of the NCG, the flow mode of the condensate film, the shear stress of the flowing mixture, subcooling and superheating. Subsequently, an experimental analysis was carried out on a 1.5m long vertical pipe with an inner diameter of 23.7mm. The mixture of vapour and air flowed inside the inner tube with an air mass fraction ranging from 23% to 62%. The overall heat transfer coefficients (HTC) from the theoretical model and experimental measurement are significantly lower than the HTC obtained according to the Nusselt theory for the condensation of pure water vapour. The overall HTC decreases along the tube length as the gas concentration increases, which corresponds to a decrease in the local condensation rate. The highest values of the HTC are observed in the condenser inlet, although a strong decrease in HTC is also observed here. Meanwhile, there is a possibility for an HTC enhancement through turbulence increase of the condensing mixture in the condenser outlet. Results also showed that the heat resistance of the mixture is several times higher than the heat resistance of the condensate film. The developed theoretical model based on heat and mass transfer analogy is in good agreement with experimental results with the standard deviation within +25% and −5%. The model is more accurate for lower NCG concentrations.
高不凝性气体水蒸气在垂直管内冷凝的理论与实验研究
本文讨论了利用冷凝过程从氧燃料燃烧后的烟气中分离水蒸气的可能性。这些过程通常可以描述为水蒸气在不可冷凝气体存在下的冷凝。因此,本研究从理论和实验上分析了不凝气体(NCG)对冷凝过程的影响。在传热传质模拟的基础上,针对NCG、冷凝膜的流动模式、流动混合物的剪切应力、过冷和过热的影响,建立了理论模型。随后,在内径为23.7mm的1.5米长垂直管上进行了实验分析。蒸汽和空气的混合物在内管内流动,空气质量分数在23%至62%之间。理论模型和实验测量的总传热系数(HTC)明显低于根据Nusselt理论获得的纯水蒸汽冷凝的HTC。随着气体浓度的增加,总HTC沿管长度减小,这对应于局部冷凝速率的减小。在冷凝器入口观察到HTC的最高值,尽管在这里也观察到HTC强烈下降。同时,有可能通过冷凝器出口中冷凝混合物的湍流增加来增强HTC。结果还表明,混合物的耐热性是冷凝膜耐热性的数倍。基于传热传质类比的理论模型与实验结果吻合良好,标准偏差在+25%和-5%之间。该模型对于较低的NCG浓度更准确。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Acta Polytechnica
Acta Polytechnica ENGINEERING, MULTIDISCIPLINARY-
CiteScore
1.90
自引率
12.50%
发文量
49
审稿时长
24 weeks
期刊介绍: Acta Polytechnica is a scientific journal published by CTU in Prague. The main title, Acta Polytechnica, is accompanied by the subtitle Journal of Advanced Engineering, which defines the scope of the journal more precisely - Acta Polytechnica covers a wide spectrum of engineering topics, physics and mathematics. Our aim is to be a high-quality multi-disciplinary journal publishing the results of basic research and also applied research. We place emphasis on the quality of all published papers. The journal should also serve as a bridge between basic research in natural sciences and applied research in all technical disciplines. The innovative research results published by young researchers or by postdoctoral fellows, and also the high-quality papers by researchers from the international scientific community, reflect the good position of CTU in the World University Rankings. We hope that you will find our journal interesting, and that it will serve as a valuable source of scientific information.
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