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Computational study of conjugate heat transfer in T-junctions

机译:T型结中共轭传热的计算研究

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In this work we focus on the numerical prediction of temperature fluctuations induced in solid materials through turbulent mixing processes. As test case we use the mixing of two streams of different temperature in a T-junction. Due to the turbulent mixing of the two streams temperature fluctuations occur which are also transferred to the solid walls in contact with the fluid. Such fluctuations in the solid material may lead to thermal fatigue and are therefore relevant for the lifetime management of components used in nuclear power plants (NPP).rnWe investigate the mixing in T-junctions made of different materials and having different pipe wall thicknesses. The temperature difference between the streams in the main and side branch is set to 75℃ and the mass flow rate in the main pipe is three times larger than in the side branch. In a first step we perform a set of simulations by using different formulations of the large-eddy simulation (LES) subgrid scale model, i.e. classical Smagorinsky model and dynamic procedure, to identify the influence of the modeled subgrid scales on the simulation results. The comparison between available experimental data and the numerical results reveals a good agreement when using the dynamic procedure. In a second step we address the temperature fluctuations in the solid wall subject to the wall thickness. The influence of the wall thickness is represented as a damping effect on the temperature fluctuations in radial direction in the pipe material. This study shows the capability of LES to predict thermal fluctuations in turbulent mixing.
机译:在这项工作中,我们专注于通过湍流混合过程在固体材料中引起的温度波动的数值预测。作为测试用例,我们在T型结中使用两种温度不同的流的混合。由于两种流的湍流混合,出现温度波动,该温度波动也被传递到与流体接触的固体壁上。固体材料中的这种波动可能导致热疲劳,因此与核电厂(NPP)中使用的组件的寿命管理有关。我们研究了由不同材料制成且具有不同管壁厚度的T型接头的混合。主管和支管之间的温度差设置为75℃,主管的质量流量比支管大三倍。第一步,我们使用大涡模拟(LES)子网格比例模型的不同公式(即经典Smagorinsky模型和动态过程)执行一组模拟,以识别建模的子网格比例对模拟结果的影响。使用动态程序时,可用的实验数据和数值结果之间的比较显示出很好的一致性。在第二步中,我们解决了受壁厚影响的实心壁中的温度波动。壁厚的影响表示为对管材中径向温度波动的阻尼作用。这项研究显示了LES预测湍流混合中热波动的能力。

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