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CFD SIMULATION OF THERMAL-HYDRAULIC CHARACTERISTICS OF WATER SEAL STRUCTURE IN PWR PRESSURIZER

机译:压水堆水压机水封结构热工水力特性的CFD模拟

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The pressurizer is the fundamental equipment in nuclear power plant, maintaining the pressure in the primary side. A U-shaped tube filled with water, as the water seal structure, was installed in front of the safety valve with the purpose of reducing the non-condensable gas leaked through the safety valve. When the safety valve opens, water slug in the U-shaped tube moves through the safety valve, causing a large number of thermal-hydraulic loads on the safety valve and downstream line. In order to reduce the thermal-hydraulic loads on the safety valve system, the U-shaped tube water seal structure was placed inside the pressurizer dome and replaced by a scoop-shaped structure. Thermal-hydraulics characteristics of the water seal structure are simulated based on the geometric model with a scale ratio of 1:1 to investigate the condensation and formation of water seal. The key parameters in the water seal formation process are investigated under different pressure and heat dissipating capacity. The species transport model is utilized to describe the impact of non-condensable gas under various mass fractions. Three-dimensional distributions of pressure and temperature are obtained from the calculation by using the CFD code ANSYS FLUENT. The water seal formation time is calculated by using the condensation rate and the geometric model. The result reveals that water seal formation can be completed within the required time, even under a high mass fraction of non-condensable gas. Water seal formation time reduces when the system pressure increases. The temperature difference across the water seal is lower than 20K.
机译:增压器是核电站的基本设备,可保持初级侧的压力。为了减少通过安全阀泄漏的不可冷凝气体,在安全阀的前面安装了一个装有水的U形管作为水封结构。当安全阀打开时,U形管中的水塞会流过安全阀,从而在安全阀和下游管线上产生大量的热液载荷。为了减少安全阀系统上的热工液压负载,将U形管水封结构放置在增压器圆顶内,并取而代之的是勺形结构。基于比例为1:1的几何模型,模拟了水封结构的热工水力特性,以研究水封的凝结和形成过程。研究了在不同压力和散热能力下水封形成过程中的关键参数。物质迁移模型用于描述不可冷凝气体在各种质量分数下的影响。通过使用CFD代码ANSYS FLUENT从计算中获得压力和温度的三维分布。通过使用冷凝速率和几何模型来计算水封形成时间。结果表明,即使在不凝性气体的质量分数较高的情况下,也可以在要求的时间内完成水封的形成。当系统压力增加时,水封形成时间会减少。水封之间的温差低于20K。

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