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Experimental and numerical investigations on effect of reverse flow on transient from forced circulation to natural circulation

机译:试验对自然循环瞬态反向流动影响的实验性和数值研究

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In a sudden shutdown of primary pump or coolant loss accident in a marine nuclear power plant, the primary flow decreases rapidly in a transition process from forced circulation (FC) to natural circulation (NC), and the lower flow enters the steam generator (SG) causing reverse flow in the U-tube. This can significantly compromise the safety of nuclear power plants. Based on the marine natural circulation steam generator (NCSG), an experimental loop is constructed to study the characteristics of reverse flow under middle-temperature and middle-pressure conditions. The transition from FC to NC is simulated experimentally, and the characteristics of SG reverse flow are studied. On this basis, the experimental loop is numerically modeled using RELAP5/MOD3.3 code for system analysis, and the accuracy of the model is verified according to the experimental data. The influence of the flow variation rate on the reverse flow phenomenon and flow distribution is investigated. The experimental and numerical results show that in comparison with the case of adjusting the mass flow discontinuously, the number of reverse flow tubes increases significantly during the transition from FC to NC, and the reverse flow has a more severe impact on the operating characteristics of the SG. With the increase of flow variation rate, the reverse flow is less likely to occur. The mass flow in the reverse flow U-tubes increases at first and then decreases. When the system is approximately stable, the reverse flow is slightly lower than obverse flow in the same U-tube, while the flow in the obverse flow U-tube increases.
机译:在船舶核电厂中的初级泵或冷却剂损失事故的突然关闭中,在从强制循环(FC)到自然循环(NC)的过渡过程中,主流量迅速降低,下流进入蒸汽发生器(SG )导致U形管中的反向流动。这可能会显着损害核电站的安全性。基于海洋天然循环蒸汽发生器(NCSG),构建实验回路以研究中温和中压条件下逆流的特性。从实验上模拟了从Fc到NC的转变,研究了SG反转流的特性。在此基础上,使用RETAP5 / MOD3.3代码进行数值模拟实验回路,用于系统分析,根据实验数据验证模型的准确性。研究了流动变化率对逆流现象和流动分布的影响。实验性和数值结果表明,与不连续地调节质量流量的情况相比,在从Fc到NC的转变期间反向流管的数量显着增加,并且反向流动对操作特性的影响更大。 SG。随着流动变化率的增加,逆流不太可能发生。反向流动U形管中的质量流动首先增加,然后减少。当系统大致稳定时,反向流量略低于同一U形管中的正面流动,而正极流量U形管中的流量增加。

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