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首页> 外文期刊>IEEE Transactions on Plasma Science >Comparison of Possible Flow Distribution Systems for PbLi Self-Cooled Blankets With Respect to MHD, Fabrication, and Maintenance
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Comparison of Possible Flow Distribution Systems for PbLi Self-Cooled Blankets With Respect to MHD, Fabrication, and Maintenance

机译:PbLi自冷毛毯在MHD,制造和维护方面可能的流量分配系统比较

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Previous conceptual design studies for liquid-metal (LM) cooled blankets of a fusion power plant often omit details of the complete flow distribution network required to bring the coolant into and out of the blanket, and especially the manifolding required for the transition from a small number of feed pipes to sometimes a large number of parallel channels within the actively heated part of the power core. Manifolding can induce large 3-D magnetohydrodynamics (MHD) currents and therefore dominate the pressure and flow distributions within the entire blanket, which is especially problematic for designs with electrically insulated channels. Especially risky are those elements that require bends which redirect the flow from parallel to perpendicular to the magnetic field and vice versa, because in those cases a bulk of the liquid metal can act as a short circuit. A fully developed flow in insulated ducts normally retains well-balanced electric potentials, preventing large 3-D currents; internal flows parallel to the magnetic field can easily disrupt this delicate balance. Within the ARIES-ACT1 power plant study several design concepts for flow distribution networks have been analyzed. Each system provides pros and cons. MHD effects as well as fabrication and maintenance issues were considered. Using ${rm SiC}_{f}$/SiC as a structural material for blanket and manifolding, and a complex structure for these parts with an inner and outer pipe separated by ribs required a more detailed consideration of manufacturing as well as joining and cutting possibilities. Available technologies have been considered for a possible solution. Tradeoffs associated with the vacuum vessel and structural ring penetrations as well as pipe connections required for maintenance are discussed for the preferred solution. A maintenance scenario and fabrication steps for the latest ARIES-ACT1 manifold design are shown.
机译:以前对聚变电厂的液态金属(LM)冷却毯进行概念设计研究时,通常会省略将冷却剂进出毯所需要的完整的流量分配网络的细节,尤其是从少量过渡所需的歧管。有时在功率芯的受热部分内有大量的平行通道到大量的平行通道。歧管会引起大的3D磁流体动力学(MHD)电流,因此支配整个橡皮布内的压力和流量分布,这对于带有电绝缘通道的设计尤其成问题。特别危险的是那些需要弯曲的元件,这些弯曲需要使流体从平行于磁场的方向重定向到垂直于磁场的方向,反之亦然,因为在这些情况下,大量的液态金属会起到短路的作用。绝缘管道中充分发育的气流通常会保持均衡的电位,从而防止产生较大的3D电流。平行于磁场的内部流动很容易破坏这种微妙的平衡。在ARIES-ACT1电厂研究中,已经分析了流量分配网络的几种设计概念。每个系统都有优点和缺点。考虑了MHD的影响以及制造和维护问题。使用$ {rm SiC} _ {f} $ / SiC作为橡皮布和歧管的结构材料,以及这些部件的复杂结构(内外管被肋骨隔开)需要更详细地考虑制造,连接和连接。削减可能性。已经考虑了可用的技术作为可能的解决方案。对于优选解决方案,讨论了与真空容器和结构环的穿透以及维护所需的管道连接相关的权衡。显示了最新ARIES-ACT1歧管设计的维护方案和制造步骤。

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