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Condensation from gas-vapour mixtures in small non-circular tubes

机译:小型非圆形管中的气体与蒸气混合物的冷凝

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Careful measurements have been made during condensation of steam from steam-air mixtures flowing in a small, flattened, horizontal tube. The ranges of the relevant variables covered (inlet temperature, pressure, air mole fraction and mixture mass flow rate) were chosen to simulate those occurring in an exhaust heat-exchanger tube of a proposed fuel-cell engine. The experimental tube was cooled by water in laminar counter flow to simulate the external heat-transfer coefficient (air flowing over fins) in the application. The total heat-transfer rate was found from the mass flow rate and temperature rise of the coolant. The tube wall temperature was measured by thermocouples attached in grooves along its length. Special arrangements were made to ensure good mixing of the coolant (in laminar flow) prior to measuring the inlet and outlet temperatures. The condensate was separated using a cyclone at exit from the tube. A simple model was developed to predict local and total heat-transfer and condensation rates and local bulk vapour composition, temperature and pressure along the tube in terms of the inlet parameters and the wall temperature distribution. The measured heat-transfer and condensation rates for the tube were found to be in good agreement with the calculated values without having recourse to empirical adjustment.
机译:在小型扁平的水平管中流动的蒸汽-空气混合物中冷凝出的蒸汽期间,已经进行了仔细的测量。选择要覆盖的相关变量的范围(进气温度,压力,空气摩尔分数和混合物质量流率)以模拟在建议的燃料电池发动机的排气热交换器管中发生的变量。用层流逆流用水冷却实验管,以模拟应用中的外部传热系数(空气流过鳍片)。从冷却剂的质量流量和温度升高中可以得出总传热率。管壁温度是通过沿其长度方向安装在凹槽中的热电偶测量的。在测量进口和出口温度之前,进行了特殊安排以确保冷却剂(在层流中)良好混合。在旋管出口处使用旋风分离器分离冷凝物。开发了一个简单的模型,以根据进口参数和壁温分布预测管道的局部和总传热和冷凝速率以及局部总蒸汽成分,沿管道的温度和压力。发现管的测得的传热和冷凝速率与计算值非常吻合,而无需进行经验调整。

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