He Yang, Zhang Zaoxiao, Xue Changle, et al. A CO2 Two-phase Ejector Model Based on Delayed Equilibrium Model[J]. Journal of refrigeration, 2016, 37(4).
DOI:
He Yang, Zhang Zaoxiao, Xue Changle, et al. A CO2 Two-phase Ejector Model Based on Delayed Equilibrium Model[J]. Journal of refrigeration, 2016, 37(4). DOI: 10.3969/j.issn.0253-4339.2016.04.001.
A CO2 Two-phase Ejector Model Based on Delayed Equilibrium Model
The ejector is key to the performance of the transcritical CO2 ejector refrigeration system. Considering the complex processes
such as metastable phase change
supersonic flow
and choking phenomena et al.
in the CO2 two-phase ejector
a 1D distributed model was built in this paper and the delayed equilibrium theory was employed to analyze metastable phenomena in the motive nozzle. After the comparison with the relevant experiments data
the model was validated to be reliable to predict ejector performance. Compared with the homogeneous equilibrium model (HEM)
the proposed model presented a 12.39%~25.30% lower critical mass flow rate. Meanwhile
the comparison results showed that the metastable phenomena would slow down the expansion process causing higher nozzle outlet pressure than that of the HEM simulation results. Moreover
the model is used to study the effect of the dimensions on the ejector performance and the results revealed that under a certain operating condition
an optimal mixing section diameter existed for both high entrainment ratio and pressure lift. Besides
a longer mixing section with a fixed mixing section diameter would increase the pressure lift ratio.