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Numerical study on natural convection of liquid nitrogen used to cool the high-temperature superconducting cable in a new combined energy transmission system

机译:新型能源系统中液氮自然对流的数值研究

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In a new high-temperature superconducting (HTS) electricity transmission system, natural convection of liquid nitrogen in the annular channel is caused by the inside wall heating and outside wall cooling. Two-dimensional numerical simulation of the natural convection is conducted using a finite volume method. The dimensionless eccentricity, epsilon*, in the range of -1.0 to 1.0 is considered when the Rayleigh numbers (Ra) varied from 2 x 10(5) to 1 x 10(7). A bifurcation map of flow pattern is obtained by many numerical simulations. It is found that there are three typical flow regions in the fully developed stage, i.e. steady flow, periodic flow and chaotic flow. When the Ra is relatively low, the flow is steady and uniform. As the Ra increases, the reinforced natural convection approaches a time-dependent periodic flow and further a strongly chaotic flow. Furthermore, when the epsilon* is up to 0.6, a cluster of Rayleigh-Renard convection cells appears on the top of the flowing channel, and enhances the heat transfer slightly. The effect of the epsilon* and Ra on the heat transfer of natural convection is analyzed quantitatively. It is demonstrated that the most suitable region for the vertical position of the HTS cable is for a dimensionless eccentricity in the range of -0.8 to -0.6 to enhance the heat transfer while guaranteeing the safety of the HTS system.
机译:在新的高温超导(HTS)发电系统中,环形通道中的液氮的自然对流由内壁加热和外壁冷却引起。使用有限体积法进行自然对流的二维数值模拟。当瑞利数(RA)变化在2×10(5)至1×10(7)中时,考虑无量纲偏心率ε*,在-1.0至1.0的范围内。通过许多数值模拟获得流动模式的分叉图。发现完全发育阶段有三个典型的流量区域,即稳定的流动,周期性流动和混沌流动。当RA相对较低时,流动是稳定和均匀的。随着RA的增加,加强的自然对流接近时间依赖的周期性流动,进一步是强烈混乱的流动。此外,当epsilon *高达0.6时,瑞利雷晶圈对流单元的簇出现在流动通道的顶部上,并略微增强热传递。定量分析了ε*和Ra对自然对流传热的影响。据证明HTS电缆的垂直位置的最合适区域是为-0.8至-0.6的无量纲偏心率,以增强热传递,同时保证HTS系统的安全性。

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