HTR-10测温球传热特性研究

Shiyan Sun, Youjie Zhang, Yanhua Zheng, X. Fang, Xiaoyong Yang
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摘要

在高温气冷堆(HTGR)运行过程中,堆芯的热点温度必须低于燃料元件和建筑材料的最高允许温度,以保证反应堆的安全。然而,在球床岩心中不能设置固定的温度测量装置。采用特殊的球形测温装置,使其对反应堆运行的影响尽可能小。里面有几根熔点不同的金属线。将石墨测温球置于HTR-10堆芯顶部,记录并反映堆芯在球床中流动时不同位置的最高温度。在进行HTR-10堆芯测温实验之前,必须对石墨测温球的传热特性进行研究,找出熔化条件与堆芯温度之间的关系。建立了石墨测温球的三维模型,采用CFD方法研究计算了球内金属丝与球外热流体之间的热平衡时间和温差。模拟了多种情况,全面研究了测温球的传热过程。热对流被证明是最重要的方面。热平衡可以在19分钟内实现,远远短于球体流过核心的时间。仿真结果也可用于热流体温度的反演。
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Research on Heat Transfer Characteristics of the Thermometric Sphere in HTR-10
During the operation of the High Temperature Gas-cooled Reactor (HTGR), the hot-spot temperature in the reactor core must be lower than the maximum permissible temperature of the fuel elements and the materials of construction, so that the reactor kept safe. However, no fixed temperature-measuring devices can be set in a pebble-bed core. A special spherical temperature-measuring device is adopted to make sure it brings as small impact to the reactor operation as possible. There are several metal wires with different melting points inside. The graphite thermometric balls will be put onto the top of HTR-10 reactor core, and they record and reflect the highest temperature in different positions in the core when flowing in the pebble bed. Before the reactor core temperature-measuring experiment of HTR-10, we must study the heat transfer characteristics of the graphite thermometric sphere to find out the relationship of the melting conditions and the temperature in the reactor core. A 3-D model of the graphite thermometric ball is established, and CFD method is adopted to research and figure out the thermal equilibrium time and temperature difference between the metal wires in the ball and the hot fluid outside the balls. Multiple situations are simulated, and the heat transfer process of the thermometric sphere is comprehensively studied. The heat convection is certified the most important aspect. Thermal equilibrium can be achieved within 19 minutes, far shorter than the period while the spheres flowing through the core. The simulation results can also applied to derive the thermal fluid temperature backward.
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