Yang Bin, Ma Xiaojing, Zhang Hailun, Sun Wenxu, Jia Lei, Xue Haoyuan
Institute of Marine Science and Technology, Shandong University, Qingdao 266237, China.
School of Control Science and Engineering, Shandong University, Jinan 250061, China.
Entropy (Basel). 2022 Jul 11;24(7):960. doi: 10.3390/e24070960.
In this study, a wet steam model was used to investigate the effect of steam superheat on ejector performance and non-equilibrium condensation phenomena. The simulation data for the ejector were validated with experimental data. The simulations show that an increase in primary flow superheat will increase the entrainment ratio, while an increase in secondary flow superheat will decrease the entrainment ratio. The output fluid superheat has little effect on the entrainment ratio. As the primary flow superheat increases from 0 to 20 K, the starting position of non-equilibrium condensation moves backward by 5 mm, and the mass fraction of condensed droplets decreases by 20%. The higher the secondary flow superheat, the lower the mass fraction of liquid in the diffusion chamber. The superheat level of the output fluid has no influence on the non-equilibrium condensation phenomenon of the ejector.
在本研究中,使用湿蒸汽模型来研究蒸汽过热对喷射器性能和非平衡凝结现象的影响。喷射器的模拟数据与实验数据进行了验证。模拟结果表明,主流过热增加会提高引射比,而二次流过热增加会降低引射比。输出流体过热对引射比影响很小。当主流过热从0增加到20 K时,非平衡凝结的起始位置向后移动5 mm,凝结液滴的质量分数降低20%。二次流过热越高,扩散室内液体的质量分数越低。输出流体的过热度水平对喷射器的非平衡凝结现象没有影响。