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NUMERICAL SIMULATION FOR EFFECT OF ROLLING MOTION ON THERMAL STRATIFICATION IN A SURGE LINE

机译:轧制运动对喘振线热分层的影响的数值模拟

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Pressurizer surge lines are essential pipeline structure in NPPs, and the thermal stratification in surge line is recognized as one of the possible cause of thermal fatigue. In this paper, a Computational Fluid Dynamic (CFD) method has been adopted to simulate temperature fluctuations on the process of temperature rising in a pressurizer surge line under rolling motion of single degree of freedom. This work focuses on a fundamental description of differences of thermal stratification between the surge line rolling around the coordinate X-axis condition and that in a static state. The Large-eddy simulation (LES) model is employed to capture the details of temperature change in surge line. Temperature distributions near the inner wall of a surge line pipe with or without swinging were monitored and compared. The temperature differences between the top and bottom of the pipe sections are employed to represent the maximum temperature differences at all the monitored sections. As the surge line swinging, the pattern of temperature distribution and the length of thermal stratification development are different from that in a static. Fluid temperature fluctuation in surge line occur periodically during the fluid temperature rising when the surge line is rotated with the X-axis, and the temperature difference between top and bottom of the surge line is reduced in the same motion mode compared with the static state.
机译:加压器浪涌线是NPPS中必不可少的管道结构,浪涌线的热分层被认为是热疲劳的可能原因之一。本文采用了计算流体动力学(CFD)方法来模拟在单一自由度的轧制运动下对压力升压线温度升高的温度波动。这项工作侧重于围绕坐标X轴条件绕弯曲线滚动的热分层差异的根本描述。使用大涡模拟(LES)模型用于捕获喘振线温度变化的细节。监测和比较浪涌管线管内壁附近的温度分布并进行比较。管道部分的顶部和底部之间的温度差异用于表示所有受监控部分的最大温度差异。由于浪涌线摆动,温度分布的模式和热分层发育的长度与静态不同。在旋转线用X轴旋转时,在流体温度上升期间,喘振线的流体温度波动在旋转线旋转时,与静态相比,在相同的运动模式下降低了喘振管的顶部和底部之间的温度差。

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