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Thermal fatigue behavior of functionally graded W/EUROFER-layer systems using a new test apparatus

机译:使用新型测试装置功能级W / Eurofer层系统的热疲劳行为

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In future fusion reactors tungsten coatings shall protect First Wall components, made of reduced activation ferritic martensitic steel, against the plasma, because of tungsten's favourable thermo-mechanical properties and low sputtering yield. Functionally graded material layers implemented between the coating and the steel substrate, compensate the difference in the coefficient of thermal expansion. By using the vacuum plasma spraying technique several layer systems were successfully produced and tested, among other aspects, in regard to their thermal fatigue behaviour up to 500 thermal cycles in a vacuum furnace. However, higher numbers of thermal cycles are anticipated for future fusion reactors and, therefore, a less time consuming approach for thermal fatigue testing is required.Hence, a new testing apparatus with induction heating and inert gas cooling was built and first thermal fatigue experiments with up to 5000 cycles were carried out on different functionally graded tungsten/steel layers systems. The subsequent investigations of these samples show that the layer systems are stable for the applied number of thermal cycles and their properties are solely determined during their respective coating processes.
机译:在未来的融合反应堆中,钨​​涂层应保护第一壁部件,由钨的良好的热机械性能和低溅射产率抗血浆。在涂层和钢基板之间实现的功能渐变材料层补偿了热膨胀系数的差异。通过使用真空等离子体喷涂技术,在真空炉中,在其他方面,成功地生产并测试了几种层系统,以及其热疲劳行为在真空炉中高达500个热循环。然而,预期未来熔融反应堆的较高数量的热循环,因此,需要较少的耗时的热疲劳测试方法。在较低的热疲劳测试方法中,建造了一种具有感应加热和惰性气体冷却的新测试装置,并进行了第一热疲劳实验在不同的功能分级钨/钢层系统上进行多达5000个循环。随后对这些样品的研究表明,该层系统对于施加的热循环数是稳定的,并且它们的性质仅在其各自的涂覆方法期间确定。

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