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Thermal stability of a highly-deformed warm-rolled tungsten plate in the temperature range 1100 °C to 1250 °C

机译:高变形热轧钨板在1100°C至1250°C温度范围内的热稳定性

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摘要

Pure tungsten is considered as armor material for the most critical parts of fusion reactors (i.e. the divertor and the first wall), among other reasons due to its high melting point (3422 °C) and recrystallization temperature. The thermal stability of a pure tungsten plate warm-rolled to a high plastic strain by 90% thickness reduction was investigated by isothermal annealing for up to 190 h in the temperature range between 1100 °C and 1250 °C. Vickers hardness testing allowed tracking the changes in mechanical properties caused by recovery and recrystallization. The hardness evolution could be rationalized in terms of a logarithmic recovery kinetics and a Johnson-Mehl-Avrami-Kolmogorov recrystallization kinetics accounting for an incubation time of recrystallization. The observed time spans for recrystallization and the corresponding recrystallization activation energy for this highly deformed plate suggest that large plastic deformations (e.g. applied during shaping) are only suitable to produce tungsten components to be used at relatively low temperatures (up to 900 °C for a 2 years lifespan). Higher operation temperatures will lead to fast degradation of the microstructure during operation.
机译:纯钨被认为是聚变反应堆最关键部分(即分流器和第一壁)的装甲材料,这是由于其高熔点(3422°C)和重结晶温度所致。通过在1100°C和1250°C之间的温度下进行长达190 h的等温退火,研究了通过90%的厚度减小而热轧成高塑性应变的纯钨板的热稳定性。维氏硬度测试允许跟踪由恢复和重结晶引起的机械性能变化。可以考虑对数恢复动力学和考虑重结晶孵育时间的Johnson-Mehl-Avrami-Kolmogorov重结晶动力学来合理化硬度演变。观察到的重结晶时间跨度和该高变形板的相应重结晶活化能表明,大的塑性变形(例如,在成型过程中施加)仅适合于生产钨组件,以便在相对较低的温度下(最高900°C的温度) 2年寿命)。较高的操作温度将导致操作过程中微结构的快速降解。

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