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Optimization of W/Cu monoblock mock-up with FGM interlayer for CFETR devertor targets

机译:利用FGM夹层优化W / Cu整体模型以用于CFETR转换器目标

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Thanks to its excellent heat removal capability, good performance under high heat flux (HHF) test and higher critical heat flux (CHF) value, the water cooled monoblock type plasma facing component (PFC) will be the optimal choice for divertor targets of CFETR and future fusion reactor. The conventional ITER-like W/Cu monoblock PFC employs a soft Cu interlayer to relax thermal stress that has deteriorative irradiation effects of swelling and embrittlement by transmutation and would undergo plastic fatigue under HHF loads. To solve these issues, W/Cu monoblock with functional graded material (FGM) interlayer is designed for CFETR and future fusion reactor. The two parameters that are the number and thickness of the FGM layers are optimized via thermal and stress simulation by finite element method. The simulation result shows that FGM interlayer plays an important role in alleviating stress. And it is deduced that the optimized number and thickness of the FGM layers are 3 layers and 0.3 mm of each layer, respectively.
机译:由于其出色的除热能力,在高热通量(HHF)测试下具有良好的性能以及更高的临界热通量(CHF)值,水冷式整体式等离子体面对部件(PFC)将成为CFETR和CFETR分压器目标的最佳选择。未来的聚变反应堆。常规的类似ITER的W / Cu整体PFC使用柔软的Cu中间层来缓和热应力,该热应力具有变质的变质辐射和变质辐射效应,并且在HHF载荷下会发生塑性疲劳。为了解决这些问题,设计了具有功能梯度材料(FGM)夹层的W / Cu单体块,用于CFETR和未来的聚变反应堆。 FGM层的数量和厚度这两个参数是通过有限元方法通过热和应力模拟进行优化的。仿真结果表明,FGM中间层在减轻应力方面起着重要作用。并且推论出,FGM层的最佳数量和厚度分别为3层和每层0.3mm。

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