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Investigation on thermal stratification and turbulent penetration in a pressurizer surge line with an overall out-surge flow

机译:在总喘振流量下的增压器喘振线中的热分层和湍流渗透研究

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Excessive thermal stresses caused by temperature fluctuations can result in thermal fatigue in the piping system of a nuclear power plants (NPPs). The phenomenon of thermal stratification and turbulent penetration in a pipe can lead to temperature fluctuations, and have attracted much attention of the researchers who deal with NPPs. In particular, this phenomenon in the pressurizer surge line has been assessed as one of the significant safety and technical issues due to its high rate of occurrence. This work focuses on a fundamental description of the thermal stratification and turbulent penetration in a pressurizer surge line using experiment and computational fluid dynamics (CFD) simulation based on the FLUENT 6.3.26 code. In this study, CFD simulation with the LES turbulence model is proved to be an accurate and effective method of studying thermal stratification in a pressurizer surge line. Details of turbulent penetration have also been studied in this paper. A criterion of determining the depth of turbulent penetration has been proposed, and the main frequency of the velocity fluctuations of turbulent penetration in a surge line is found to be a continuous frequency band, and not a fixed value. (C) 2015 Elsevier Ltd. All rights reserved.
机译:由温度波动引起的过大的热应力会导致核电站(NPP)的管道系统中的热疲劳。管道中的热分层现象和湍流渗透现象可能导致温度波动,并且引起了处理NPP的研究人员的极大关注。特别地,由于增压器喘振线的高发生率,这种现象被认为是重大的安全和技术问题之一。这项工作的重点是使用基于FLUENT 6.3.26代码的实验和计算流体动力学(CFD)模拟对增压器喘振线中的热分层和湍流渗透进行基本描述。在这项研究中,用LES湍流模型进行的CFD模拟被证明是研究增压器喘振线中热分层的一种准确有效的方法。本文还研究了湍流穿透的细节。提出了确定湍流穿透深度的标准,并且发现喘振线中湍流穿透速度波动的主要频率是连续频带,而不是固定值。 (C)2015 Elsevier Ltd.保留所有权利。

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