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Numerical Model for helium flow in a dual-channel Cable-In-Conduit-Conductor

机译:双通道导管内氦气流动的数值模型

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The dual-channel CICC has been adopted for the ITER magnet system. Basically, in a quench analysis, designers describe the flow behaviour using a hydraulic radius model in which a characteristic length is equal to four times the flow area divided by the total wetted perimeter. The flow velocity is then considered uniform and unidirectional across the section of the conductor. But fluid transport through the cable bundle is characterised by complex directional changes due to the interactions with the strands. A new approach for fluid flow analysis through the cable bundle is to model the cable bundle as a classical saturated porous medium. Indeed experimental results have confirmed that the CICC cable bundle can be classified as a saturated porous medium. In this case, the Brinkman-Forchheimer-extended Darcy model can be applied to predict fluid momentum transport. This paper presents a numerical model of the helium flow in the dual-channel CICC. The effects of the main parameters on the hydrodynamic characteristics of the model are discussed.
机译:ITER磁体系统已采用双通道CICC。基本上,在急冷分析中,设计人员使用液压半径模型描述流动行为,其中特征长度等于流动面积的四倍除以总润湿周长。然后,在整个导体截面上,流速被认为是均匀且单向的。但是,由于电缆束之间的相互作用,流体通过电缆束的传输具有复杂的方向变化。通过电缆束进行流体流动分析的新方法是将电缆束建模为经典的饱和多孔介质。实际上,实验结果已经证实CICC电缆束可以归类为饱和多孔介质。在这种情况下,可以将Brinkman-Forchheimer扩展的Darcy模型应用于预测流体动量传输。本文提出了双通道CICC中氦气流动的数值模型。讨论了主要参数对模型水动力特性的影响。

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