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Studies on cooling by two-dimensional confined jet flow of high heat heat flux surface in fusion reactor

机译:聚变堆高热通量表面二维约束射流冷却的研究

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Divertor surface of a magnetic confinement fusion reactor is exposed to strong radiative heating. According to standard design of the ITER, maximum heat flux on the divertor surface becomes locally near 30 MW m~-2. To cool such high heat flux surface by water flow, it is necessary to establish a cooling method which enhanced the critical heat flux (CHF). We proposed a cooling by a planar impinging jet with free surface in the previous report. In the jet cooling on flat surface, high CHF was obtained in the limited region where the jet flow hits directly. As apart from the region, the CHF decreases abruptly with the distance from the center. To overcome this difficulty, it was proposed that the planar jet is applied to cool concave surface where the centrifugal force is efficiently used to enhance the CHF. In this study, the CHFs were investigated in the confined jet flow which was guarded by a wall on the other side of the heated wall, because the guard wall works to protect splash of water from liquid film by violent boiling and expects further enhancement of the CHF. In this study, the CHFs were investigated in the confined flow of two-dimensional jet on flat and concave surfaces in the various flow conditions and got a correlation for the CHF. Applicability of this cooling for divertor surface was assessed by using the experimental results.
机译:磁约束聚变反应堆的转向器表面暴露于强烈的辐射加热下。根据ITER的标准设计,偏滤器表面上的最大热通量局部变为30 MW m〜-2附近。为了通过水流冷却这种高热通量表面,有必要建立一种增强临界热通量(CHF)的冷却方法。在先前的报告中,我们提出了通过具有自由表面的平面撞击射流进行冷却的方法。在平面上的射流冷却中,在射流直接撞击的有限区域中获得了较高的CHF。除该区域外,CHF随距中心的距离突然减小。为了克服该困难,提出了将平面射流应用于冷却凹面,其中有效利用离心力来提高CHF。在这项研究中,对CHF的研究是在受热壁另一侧的壁保护的密闭射流中进行的,因为该保护壁的作用是通过猛烈沸腾保护水从液膜中飞溅出来,并期望进一步增强瑞士法郎。在这项研究中,在各种流动条件下,在平面和凹面二维射流的密闭流中研究了CHF,并获得了与CHF的相关性。利用实验结果评估了这种冷却对偏滤器表面的适用性。

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