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首页> 外文期刊>Journal of nuclear engineering and radiation science >Numerical Simulation of Supercritical Carbon Dioxide Critical Flow in the Nozzle Tube
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Numerical Simulation of Supercritical Carbon Dioxide Critical Flow in the Nozzle Tube

机译:喷嘴管中超临界二氧化碳临界流动的数值模拟

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摘要

2 ) Brayton gas turbine cycle has been studied as an efficient and cost-effective option for advanced power systems. One major safety issue for any power cycle is a pipe break and the associated discharge of the working fluid and subsequent decrease in system pressure. In this paper, an S-CO 2 critical flow in the nozzle tube is analyzed numerically with fluent 15.0 . The Redlich–Kwong real gas equation is selected to calculate carbon dioxide density and the standard k-epsilon turbulence model is selected. Experimental data are used as a benchmark to examine the capability of the current approach. Compared with experimental data, the simulation results overestimate the critical mass flux; the error range is between 15% and 25%. The simulation results show that as L/D increases, critical mass flow decreases. As stagnation temperature increases, critical mass flow decreases. The complex thermal hydraulic behavior in the nozzle tubes is analyzed. Three flow patterns in the nozzle tube during transient critical flow are obtained and discussed. From inlet to outlet of the tube, CO 2 may undergo the following phases in turn: (1) supercritical phase; (2) supercritical phase—gas phase; (3) supercritical phase—gas phase—liquid phase. The simulation results are also helpful for further experimental and theoretical research.]]>
机译:2)布莱顿燃气轮机循环是先进电力系统中一种高效、经济的选择。任何动力循环的一个主要安全问题是管道破裂和相关的工作流体排放,以及随后的系统压力下降。本文用fluent 15.0对喷管内S-CO2临界流动进行了数值分析。选择Redlich–Kwong真实气体方程来计算二氧化碳密度,并选择标准的k-ε湍流模型。实验数据被用作检验当前方法能力的基准。与实验数据相比,模拟结果高估了临界质量流量;误差范围在15%到25%之间。模拟结果表明,随着L/D的增加,临界质量流量减小。随着停滞温度的升高,临界质量流量减小。分析了喷管内复杂的热工水力行为。得到并讨论了瞬态临界流中喷管内的三种流型。从管的入口到出口,CO可依次经历以下阶段:(1)超临界阶段;(2) 超临界气相;(3) 超临界气相液相。模拟结果也有助于进一步的实验和理论研究。]]>

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