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Property Impacts on Plate-fin Multi-stream Heat Exchanger (Cold Box) Design in CO2 Cryogenic Process: Part II. Evaluation of Viscosity and Thermal Conductivity Models

机译:性能对CO2低温过程中板翅式多流热交换器(冷箱)设计的影响:第二部分。粘度和导热系数模型的评估

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摘要

Viscosity and thermal conductivity are key transport properties in the design of plate-fin multi-stream heat exchanger in CO2 cryogenic processes. It is necessary to evaluate the reliabilities of viscosity and thermal conductivity models. In addition, the differences in design of multi-stream heat exchanger by using different property models need to be studied as well. In this paper, viscosity models and thermal conductivity models of CO2 mixtures with non-condensable gas impurities were evaluated separately by comparison with existing experimental data. Recommendations were given on model selections and their impact on the design of plate-finmulti-stream heat exchanger were analyzed. The results show that for viscosity, the uncertainty range of Wilke’s model is the smallest with a maximum absolute deviation of 6.1%. This model is therefore recommended to be used. For thermal conductivity, GERG model, with a maximum absolute deviation of 8.7% is preferred. The choice of thermal conductivity model has a noticeabl eimpact on the plate-fin multi-stream heat exchanger design, and the maximum deviation by using different thermal conductivity models is 7.5%
机译:粘度和导热率是设计CO2低温过程中板翅式多流热交换器的关键传输特性。有必要评估粘度和导热系数模型的可靠性。另外,还需要研究使用不同特性模型的多流热交换器的设计差异。本文通过与现有实验数据进行比较,分别评估了具有不可冷凝气体杂质的CO2混合物的粘度模型和导热系数模型。给出了模型选择的建议,并分析了它们对板翅式多流热交换器的设计的影响。结果表明,对于粘度,Wilke模型的不确定性范围最小,最大绝对偏差为6.1%。因此,建议使用此模型。对于热导率,最好使用GERG模型,其最大绝对偏差为8.7%。导热系数模型的选择对板翅式多流换热器设计有显着影响,使用不同的导热系数模型的最大偏差为7.5%

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