首页> 外文期刊>International Journal of Refractory Metals & Hard Materials >Surface damage during transient thermal load of 50% thickness reduced W-2% (Vol.) Y2O3 sheet with different recrystallization volume fraction
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Surface damage during transient thermal load of 50% thickness reduced W-2% (Vol.) Y2O3 sheet with different recrystallization volume fraction

机译:表面损坏在瞬态热载荷厚度为50%的厚度减少W-2%(Vol.)Y2O3片材,具有不同的再结晶体积分数

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摘要

Thermal shock damage of tungsten as a plasma facing material (PFM) depends on thermal shock power density level, duration and repeated time, and microstructure of the sample. The recrystallization process will degrade the mechanical property of material and thus change the its thermal shock resistance. The effects of recrystallization volume fraction on thermal shock response of W-Y2O3 under different power density levels (0.22-0.44 GW/m(2)) has been systematically studied. Electron beam pulse of duration of 1 ms with 100 recycles was used to simulate the transient thermal load of fusion device. The changes of morphology, distance, depth, width of crack and surface roughness on the rolling direction-normal direction (RD-ND) surfaces of W-Y2O3 samples with different recrystallization volume fraction were investigated. The results showed that recrystallization process have significant influence on the thermal shock resistance of W-Y2O3 samples. For the rolled sample, crack depth, width and surface roughness increased with the increased of power density level while crack distance decreased. The partially and fully recrystallized samples showed significant wider crack networks and severe surface modification.
机译:钨的热冲击损伤作为等离子体面向材料(PFM)取决于热冲击功率密度水平,持续时间和重复时间,以及样品的微观结构。重结晶过程将降低材料的机械性能,从而改变其热抗冲击性。重结晶体积分数对不同功率密度水平下W-Y2O3的热冲击响应的影响(0.22-0.44 gw / m(2))已得到系统研究。使用100回收的电子束脉冲为1 ms,用于模拟融合装置的瞬态热负荷。研究了用不同重结晶体积分数的W-Y2O3样品的轧制方向正常方向(RD-Nd)表面上的裂缝和表面粗糙度的形态,距离,深度,表面粗糙度的变化。结果表明,重结晶过程对W-Y2O3样品的热抗冲击性具有显着影响。对于卷起的样品,裂纹深度,宽度和表面粗糙度随着功率密度水平的增加而增加,而裂缝距离降低。部分和完全重结晶的样品显示出显着的更宽裂缝网络和严重的表面改性。

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