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MHD mixed convection flow in the WCLL: Heat transfer analysis and cooling system optimization

机译:WCLL中的MHD混合对流:传热分析和冷却系统优化

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In the Water-Cooled Lithium Lead (WCLL) blanket, a critical problem faced by the design is to ensure that the breeding zone (BZ) is properly cooled to avoid the loss of mechanical properties in the structural materials. CFD simulations are performed using ANSYS CFX to assess the cooling system performances accounting for the magnetic field effect in the sub-channel closest to the first wall (FW). Here, intense buoyancy forces (Gr approximate to 10(10)) interact with the pressure-driven flow (Re approximate to 10(3)) in a MHD mixed convection regime. A constant magnetic field, parallel to the toroidal direction, is assumed with Ha = 8550. The walls bounding the channel and the water pipes are modeled as perfectly conducting. The magnetic field is found to dampen the velocity fluctuations triggered by the buoyancy forces and the flow is similar to a forced convection regime. The PbLi heat transfer coefficient is reduced to one-third of its ordinary hydrodynamic value and, consequently, hot-spots close to the FW are observed, where T-Max approximate to 1000 K. Optimization strategies for the BZ cooling system layout are proposed and implemented in the CFD model, thus fulfilling the design criterion.
机译:在水冷锂铅(WCLL)毯中,设计面临的一个关键问题是确保对繁殖区(BZ)进行适当冷却,以避免结构材料的机械性能损失。使用ANSYS CFX进行CFD仿真,以评估冷却系统的性能,考虑到最靠近第一壁(FW)的子通道中的磁场效应。在这里,在MHD混合对流方式中,强大的浮力(Gr大约为10(10))与压力驱动的流量(Re大约为10(3))相互作用。假定平行于环形方向的恒定磁场为Ha =8550。限制通道和水管边界的壁被建模为完美导电。发现磁场可以抑制浮力触发的速度波动,其流动类似于强制对流形式。 PbLi的传热系数降低到其通常的流体力学值的三分之一,因此,观察到了接近FW的热点,其中T-Max约为1000K。提出了BZ冷却系统布局的优化策略,并在CFD模型中实施,从而满足设计标准。

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