超临界二氧化碳双通道流动不稳定性三维CFD数值研究
Three-Dimensional CFD Numerical Study of Supercritical Carbon Dioxide Two-Channel Flow Instability
DOI: 10.12677/NST.2021.92013, PDF,   
作者: 黄家坚, 周 源*:四川大学物理学院,四川 成都;黄彦平, 刘光旭:中国核动力设计研究设计院,四川 成都
关键词: 超临界二氧化碳双通道流动不稳定性Supercritical Carbon Dioxide Two-Channel Flow Instability
摘要: 超临界二氧化碳在拟临界点附近具有良好的导热性能和易压缩性,采用超临界二氧化碳作为换热工质的布雷顿循环系统拥有可观的系统热效率,但物性的剧烈变化可能会导致流动不稳定性问题。采用三维数值模拟方法对超临界二氧化碳双通道流动不稳定性问题进行了研究,与实验进行了对比,分析了不稳定起始至结束整个过程中双通道间的状态变化。已有的数值结果表明超临界二氧化碳流动不稳定性分为三个阶段,随着加热功率的线性增加,流动状态经历波动起始、持续波动和波动结束三个过程。质量流量、流体密度和主流温度均会呈现正余弦波动状态,三者存在一定的相位延迟。壁面温度和表面换热系数会随着流体的波动而出现相应的变化,壁面出现最大温度点和最大表面系数换热点。
Abstract: Supercritical carbon dioxide has outstanding thermal conductivity and compressibility near the pseudo-critical point. The Brayton cycle system which uses supercritical carbon dioxide as heat exchanger has considerable thermal efficiency. However, the drastic change of physical properties may lead to the problem of flow instability. Three-dimensional numerical simulation is used to study the supercritical carbon dioxide two-channel flow. The calculated results are compared with the experimental results and the state changes between the two channels are analyzed during the whole process. The numerical results show that flow instability of the supercritical carbon dioxide is divided into three stages. With the linear increase of heating power, the flow state goes through three processes: the beginning of fluctuation, the continuous and the end of fluctuation. The mass flow rate, fluid density and flux temperature show sine and cosine fluctuation state, and there is a certain phase delay. The wall temperature and surface heat transfer coefficient will change with the fluctuation of the fluid, and the maximum temperature and the maximum surface heat transfer coefficient will occur on the wall.
文章引用:黄家坚, 周源, 黄彦平, 刘光旭. 超临界二氧化碳双通道流动不稳定性三维CFD数值研究[J]. 核科学与技术, 2021, 9(2): 113-125. https://doi.org/10.12677/NST.2021.92013

参考文献

[1] Bai, Z.W., Zhang, G.Q., Li, Y.Y., Xu, G. and Yang, Y.P. (2018) A Supercritical CO2 Brayton Cycle with a Bleeding Anabranch Used in Coal-Fired Power Plants. Energy, 142, 731-738. [Google Scholar] [CrossRef
[2] 黄彦平, 等. 超临界二氧化碳热质传递与热力循环[M]. 北京: 中国原子能出版社, 2019. INSB 978-7-5022-9897.
[3] Xiong, T., Yan, X., Xiao, Z., et al. (2012) Experimental Study on Flow Instability in Parallel Channels with Supercritical Water. Annals of Nuclear Energy, 48, 60-67. [Google Scholar] [CrossRef
[4] Xi, X., Xiao, Z., Yan, X., et al. (2014) Numerical Simulation of the Flow Instability between Two Heated Parallel Channels with Supercritical Water. Annals of Nuclear Energy, 64, 57-66. [Google Scholar] [CrossRef
[5] Wang, W., Yang. D., Liang, Z., et al. (2018) Experimental Investigation on Flow Instabilities of Ultra-Supercritical Water in Parallel Channels. Applied Thermal Engineering, 147, 819-828. [Google Scholar] [CrossRef
[6] Chen, Y., Yang, C., Zhao, M., et al. (2016) An Experiment of Natural Circulation Flow and Heat Transfer With Supercritical Water in Parallel Channels. Journal of Nuclear Engineering and Radiation Science, 2, Article ID: 031013. [Google Scholar] [CrossRef
[7] Saini, A.S., Chatoorgoon, V. and Ghadge, D.S. (2020) Experimental Investigation of Flow Instability in Two Vertical Parallel Channels Using Super Critical CO2. Journal of Nuclear Engineering and Radiation Science, 7, Article ID: 011403. [Google Scholar] [CrossRef
[8] Sharma, M., Vijyan, P.K., Pilkhwal, D.S. and Asako, Y. (2013) Steady State and Stability Characteristics of Natural Circulation Loops Operating with Carbon Dioxide at Supercritical Pressures for Open and Closed Loop Boundary Conditions. Nuclear Engineering and Design, 265, 737-754. [Google Scholar] [CrossRef
[9] Liu, G.X., Huang, Y.P. and Wang, J.F. (2019) A New Theoretical Model of Steady-State Characteristics of Supercritical Carbon Dioxide Natural Circulation. Energy, 189, Article ID: 116323. [Google Scholar] [CrossRef
[10] Zhang, L., Wang, H.J., Gu, H.F., Qiao, S.X., Shi, X.B. and Luo, Y.S. (2013) Experimental Investigations on Flow Instabilities in a Forced Circulation Loop at Near-Critical and Supercritical Pressures. AIP Conference Proceedings, 1547, 312-319. [Google Scholar] [CrossRef
[11] Li, J.J., et al. (2015) CFD Analysis of Supercritical Water Flow Instability in Parallel Channels. International Journal of Heat & Mass Transfer, 86, 923-929. [Google Scholar] [CrossRef