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Design and evaluation of an optimized W/Cu interlayer for W monoblock components

机译:针对W整体组件优化的W / Cu中间层的设计和评估

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摘要

Divertor plasma-facing components of future fusion reactors should be able to withstand heat fluxes of 10-20 MW/m~2 in stationary operation. Tungsten blocks with an inner cooling tube made of CuCrl Zr, so-called monoblocks, are potential candidates for such water-cooled components. To increase the strength and reliability of the interface between the W and the cooling tube of a Cu-based alloy (CuCrl Zr), a novel advanced W-fibre/Cu metal matrix composite (MMC) was developed for operation temperatures up to 550 ℃ Based on optimization results to enhance the adhesion between fibre and matrix, W fibres (Wf) were chemically etched, coated by physical vapour deposition with a continuously graded W/Cupvd interlayer and then heated to 800 ℃ The W_f/Cu MMC was implemented by hot-isostatic pressing and brazing process in monoblock mock-ups reinforcing the interface between the plasma-facing material and the cooling channel. The suitability of the MMC as an efficient heat sink interface for water-cooled divertor components was tested in the high heat flux (HHF) facility GLADIS. Predictions from finite element simulations of the thermal behaviour of the component under loading conditions were confirmed by the HHF tests. The W_f/Cu MMC interlayer of the mock-ups survived cyclic heat loads above 10 MW/m~2 without any damage. One W block of each tested mock-up showed stable thermal behaviour at heat fluxes of up to 10.5 MW/m~2.
机译:未来聚变反应堆的面向变流器面向等离子体的组件在固定运行中应能够承受10-20 MW / m〜2的热通量。具有由CuCrl Zr制成的内部冷却管的钨块(所谓的整体块)是此类水冷组件的潜在候选者。为了提高W和铜基合金(CuCrl Zr)的冷却管之间的界面的强度和可靠性,开发了一种新型的先进W纤维/ Cu金属基复合材料(MMC),其最高工作温度为550℃根据优化结果以增强纤维与基体之间的粘合力,化学蚀刻W纤维(Wf),通过物理气相沉积法涂覆连续梯度的W / Cupvd中间层,然后加热到800℃。通过热法实现W_f / Cu MMC整体模型中的等静压压制和钎焊工艺增强了面向等离子体的材料和冷却通道之间的界面。在高热通量(HHF)设备GLADIS中测试了MMC是否适合作为水冷分流器组件的有效散热器接口。 HHF测试证实了在负载条件下组件热行为的有限元模拟预测。模型的W_f / Cu MMC中间层可以承受10 MW / m〜2以上的循环热负荷,而不会受到任何损坏。每个测试模型的一个W块在高达10.5 MW / m〜2的热通量下表现出稳定的热性能。

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