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Establishment of reasonable 2-D model to investigate heat transfer and flow characteristics by using scale model of vessel cooling system for HTTR

机译:建立合理的2-D模型,以利用HTTR血管冷却系统规模模型研究传热和流动特性

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摘要

In this study reasonable 2D model was established by using FLUENT for start-up of analysis and evaluation of heat transfer flow characteristics in 1/6 scale model of VCS for HTTR. The pressure vessel temperature was set around 200 °C, in which the ratio of heat transfer via natural convection has been numerically predicted to be around 20-30% of total heat removal in previous studies. This temperature is useful for the analysis code validation in the prediction of temperature distribution of components such as pressure vessel which is heated up by turbulent flow of natural convection. The numerical results of upper head of pressure vessel by the k-ω-SST intermittency transition model, which can adequately reproduce the separation, re-attachment and transition, reproduced the test results including temperature distribution well in contrast to those by the k-ε model in both cases that helium gas is evacuated or filled in the pressure vessel. It was emerged that any local hot spot did not appear on the top of upper head of pressure vessel where natural convection flow of air is separated in both cases. In addition, the plume of high temperature helium gas generated by the heating of heater was well mixed in the upper head and uniformly heated the inner surface of upper head without generating hot spots.
机译:在本研究中,通过使用Fluent进行分析和评估HTTR中的VCS的1/6规模模型的传热流动特性的分析和评估的启动来建立合理的2D模型。压力容器温度设定在200℃约为200℃,其中通过自然对流的热传递比率已经数量预测预计在先前研究中总热除去的20-30%。该温度对于分析码验证在预测的分析代码验证,例如通过自然对流的湍流加热的压力容器的温度分布。通过K-ω-SST间歇转换模型的压力容器上部头部的数值结果,可以充分再现分离,重新附着和转变,再现与K-ε相反的温度分布的测试结果,包括温度分布两种情况下的模型在压力容器中抽空或填充氦气。它出现了任何局部热点未出现在压力容器上部头顶上,在两种情况下都分开了空气的自然对流流。另外,通过加热加热器产生的高温氦气的羽流在上头中很好地混合,并均匀地加热上头的内表面而不产生热点。

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