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首页> 外文期刊>Annals of nuclear energy >Calculation and analysis of thermal-hydraulics fluctuations in pressurized water reactors
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Calculation and analysis of thermal-hydraulics fluctuations in pressurized water reactors

机译:压水堆热工水力波动的计算与分析

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Analysis of thermal-hydraulics fluctuations in pressurized water reactors (e.g., local and global temperature or density fluctuations, as well as primary and charging pumps fluctuations) has various applications in calculation or measurement of the core dynamical parameters (temperature or density reactivity coefficients) in addition to thermal-hydraulics surveillance and diagnostics. In this paper, the thermal-hydraulics fluctuations in PWRs are investigated. At first, the single-phase thermal-hydraulics noise equations (in the frequency domain) are originally derived, without any simplifying assumptions. The fluctuations of all the coolant parameters, as well as the radial distribution of the temperature fluctuations in the fuel, gap and cladding are taken into account. Then, the derived governing equations are discretized using the finite volume method (FVM). Based on the discretized equations and the proposed algorithm of solving, a single heated channel noise calculation code (SHC-Noise) is developed, by which the steady-state and fluctuating parameters of PWR fuel assemblies can be calculated. The noise sources include the inlet coolant temperature and velocity fluctuations, in addition to the power density noises. The developed SHC-Noise code is benchmarked in different cases and scenarios. Furthermore, to show the effects of the power feedbacks, the closed-loop calculations are performed by means of the point kinetics noise theory. Both the space- and frequency-dependence of the temperature fluctuations are analvzed in this work.
机译:分析压水堆中的热工水力波动(例如,局部和全局温度或密度波动,以及主泵和充气泵的波动)在计算或测量堆芯动力学参数(温度或密度反应系数)中具有多种应用。除了热工液压监控和诊断。本文研究了压水堆中的热工水力波动。首先,在没有任何简化假设的情况下,最初推导了单相热工噪声方程(在频域中)。考虑了所有冷却液参数的波动以及燃料,间隙和包层中温度波动的径向分布。然后,使用有限体积法(FVM)离散化导出的控制方程。基于离散方程和提出的求解算法,开发了单个加热通道噪声计算代码(SHC-Noise),从而可以计算出压水堆燃料组件的稳态参数和波动参数。除功率密度噪声外,噪声源还包括入口冷却液温度和速度波动。已开发的SHC-Noise代码在不同情况和场景中进行了基准测试。此外,为了显示功率反馈的影响,通过点动力学噪声理论进行了闭环计算。在这项工作中,温度波动的空间依赖性和频率依赖性都得到了解决。

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