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Analysis of thermal mixing characteristics in different T-junction configurations

机译:不同T型结配置中热混合特性分析

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High frequency temperature fluctuations in the near wall region of turbulent thermal mixing processes of hot and cold fluid streams in T-junctions cause unexpected fatigue cracking of piping systems. For the prediction of these frequencies of temperature fluctuations in the flow, the Large-Eddy Simulation (LES) method is most appreciate. In this paper, we present a detailed study of thermal mixing processes in different T-junction configurations. Numerical results of the horizontal T-junction configuration are validated with experimental data obtained from the Fluid-Structure-Interaction (FS1) test facility at the University of Stuttgart. In the main and branch pipe water streams flow with a temperature difference of 65 K. Furthermore, in all investigated cases a constant mass flow rate ratio (main/branch) of 4:1 is maintained, respectively. Herein we discuss in detail the impact of the entrance orientation of the cold branch pipe, the thermal stratification, the turbulent thermal mixing and the temperature fluctuations along the downstream. Our study consider additionally the second-order statistics of the flow and spectral analysis of fluid temperature fluctuations from the near-wall region. The flow simulations are coupled with the heat conduction in the solid material in order to take account of the thermal fluid-structure interaction.
机译:湍流热混合过程的近壁区域近壁区域的高频温度波动在T型交界处的湍流热混合过程中引起了管道系统的意外疲劳开裂。为了预测流量中的温度波动频率,大涡模拟(LES)方法最欣赏。在本文中,我们介绍了不同T结配置中的热混合过程的详细研究。用从斯图加特大学的流体结构 - 相互作用(FS1)测试设施获得的实验数据验证了水平T结配置的数值结果。在主和分支管道水流中,具有65 k的温差流动。此外,在所有调查的情况下,分别保持4:1的恒定质量流量比(主/分支)。这里我们详细讨论了冷分支管,热分层,湍流热混合和下游温度波动的撞击的影响。我们的研究另外考虑近壁区域的流体温度波动的流动和光谱分析的二阶统计。流量模拟与固体材料中的热传导联接,以考虑热流体结构相互作用。

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