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Shell-and-tube evaporator model performance with different two-phase flow heat transfer correlations. Experimental analysis using R134a and R1234yf

机译:壳管式蒸发器模型性能与不同的两相流传热相关性。使用R134a和R1234yf的实验分析

摘要

This work presents a model of a shell-and-tube evaporator using R1234yf and R134a as working fluids. The model uses the effectiveness-NTU method to predict the evaporation pressure and the refrigerant and secondary fluid temperatures at the evaporator outlet, using as inputs the geometry of the evaporator, the refrigerant mass flow rate and evaporator inlet enthalpy, and the secondary fluid volumetric flow rate and evaporator inlet temperature. The model performance is evaluated using different two-phase flow heat transfer correlations through model outputs, comparing predicted and experimental data. The output parameter with maximum deviations between the predicted and experimental data is the evaporating pressure, being the deviations in outlet temperatures less than 3%. The evaporator model using Kandlikar's correlation obtains the highest precision and the lowest absolute mean error, with 4.87% in the evaporating pressure, 0.45% in the refrigerant outlet temperature and 0.03% in the secondary fluid outlet temperature.
机译:这项工作介绍了使用R1234yf和R134a作为工作流体的管壳式蒸发器的模型。该模型使用有效性-NTU方法来预测蒸发器出口处的蒸发压力以及制冷剂和二次流体的温度,使用蒸发器的几何形状,制冷剂质量流量和蒸发器入口焓以及二次流体的体积流量作为输入速率和蒸发器入口温度。通过模型输出,比较预测数据和实验数据,使用不同的两相流热传递相关性来评估模型性能。在预测数据和实验数据之间具有最大偏差的输出参数是蒸发压力,即出口温度偏差小于3%。使用Kandlikar相关性的蒸发器模型可获得最高的精度和最低的绝对平均误差,蒸发压力为4.87%,制冷剂出口温度为0.45%,二次流体出口温度为0.03%。

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