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THERMAL MIXING BEHAVIOR IN THE ANNULUS OF CO-AXIAL DOUBLE-WALLED PIPING IN HTGR

机译:高温气冷堆同轴双壁管环空的热混合行为

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The future HTGR has been designed in JAEA. The HTGR uses the helium gas as the coolant in primary cooling system. The reactor has many merging points of the higher-temperature helium gas and the lower-temperature helium gas in the cooling system. Previously, the reactor inlet coolant temperature was controlled lower than the specific one in the HTTR constructed in JAEA. It was confirmed that this event was caused by the lack of mixing of helium gas thermally at the measurement point of the reactor inlet coolant temperature. From this operational experience, it is needed to clear the thermal mixing characteristics of the helium gas at the annulus of the co-axial double-walled piping in HTGR from the viewpoint of the appropriate temperature control in future HTGR. In this paper, thermal-hydraulic analysis on the helium gas at the annular flow path of the co-axial double pipe with T-junction was conducted to clarify the thermal mixing behavior of the helium gas. It is shown that the thermal mixing behavior is not so much affected by the flow rate helium gases. Moreover it is difficult to mix the helium gas with the smaller height of the annular flow path. This is caused by smaller contact area of higher-and lower-temperature helium gas and the lack of helium gas flow in radial direction. It is confirmed that it is difficult to mix the higher- and the lower-temperature helium gas in the annular flow path of the co-axial double-walled piping by using the hydraulic behavior, and it is necessary to arrange the mixing promotor in the annular flow path in order to mix the higher- and the lower-temperature helium gas.
机译:未来的HTGR已在JAEA中设计。 HTGR在主冷却系统中使用氦气作为冷却剂。该反应器在冷却系统中具有高温氦气和低温氦气的许多合并点。以前,反应堆入口冷却液温度被控制为低于JAEA建造的HTTR中的特定温度。确认该事件是由于在反应器入口冷却液温度的测量点缺乏氦气热混合造成的。从该操作经验中,需要从将来的HTGR中适当的温度控制的观点出发,清除HTGR中同轴双壁管道环空处的氦气的热混合特性。在本文中,对带有T型接头的同轴双管的环形流路处的氦气进行了热工水力分析,以阐明氦气的热混合行为。结果表明,氦气流量对热混合行为的影响不大。此外,难以将氦气与环形流路的较小高度混合。这是由于较高和较低温度的氦气的接触面积较小以及氦气在径向方向上缺乏流动所引起的。可以确认,利用水力特性难以在同轴双壁配管的环状流路中混合高温和低温的氦气,因此需要将混合促进剂配置在轴上。环形流动路径,以混合高温和低温氦气。

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