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ANALYSIS OF HEAT TRANSFER AND FLOW CHARACTERISTICS OF AP1000 PASSIVE RESIDUAL HEAT REMOVAL HEAT EXCHANGER

机译:AP1000被动余热除热换热器的传热及流动特性分析

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In this paper, the computational fluid dynamics (CFD) method is applied to the thermal-hydraulic analysis, while the porous media model is used to simplify AP1000 passive residual heat removal heat exchanger tube. The temperature as well as flow distribution in the secondary side of the heat exchanger are obtained, aiming at analysis of natural circulation ability. It can be noted that the fluid in the secondary side of heat exchanger moves driven by the effect of thermal buoyancy, forming the natural cycle, which takes away heat in tube bundle region. The heat transfer in water tank is mainly enhanced by vortex and turbulent flow, caused by the large resistance of tube bundle region as well as large temperature difference. This phenomenon is obvious especially for the recirculation of flow near the tube bundle. The enduring change of flow rate and direction enhance the heat transfer. Besides, the big temperature difference helps to increase the driving effect of natural circulation. Consequently, the heat transfer of the tank is enhanced by above mechanism. The results of this study contribute to the capacity analysis of passive residual heat removal of natural circulation system, providing valuable information for safe operation of AP1000.
机译:本文将计算流体动力学(CFD)方法应用于热工水力分析,而多孔介质模型则用于简化AP1000被动余热除热换热器管。针对自然循环能力的分析,获得了换热器二次侧的温度以及流量分布。可以注意到,在热交换器的次级侧中的流体在热浮力的作用下运动,从而形成自然循环,该自然循环带走了管束区域中的热量。管束区域的阻力大和温差大,导致水箱内的传热主要由涡流和湍流引起。这种现象在管束附近的流体再循环时尤其明显。流量和方向的持久变化增强了热传递。此外,较大的温差有助于增加自然循环的驱动效果。因此,通过上述机构,罐的热传递得以增强。这项研究的结果有助于自然循环系统的被动余热去除能力分析,为AP1000的安全运行提供有价值的信息。

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