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MORPHOLOGY OF CAVITIES FORMED ON GRAIN BOUNDARY OF CRACKED ALLOY TT690

机译:TT690裂纹合金晶界上的型腔形态

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The cross sections and fracture surfaces of cracks inAlloy TT690 specimens were observed from the viewpointof cavity formation as a SCC mechanistic study. Clearevidence of cavity formation was confirmed ahead of SCCin Alloy TT690 (30%CW) tested in simulated PWRprimary water at 360°C for 26,576 h. In one specificgrain boundary, approximately half of the bondingstrength was lost before the SCC propagation. However,the results also implied that the cracks were not alwaysassociated with a large number of cavities.The aggregation of traces of 100-500 nm diametercavities was observed on the fracture surfaces. Thesepatterns could be found in 7 of 12 crack growthspecimens, showing the number of traces of cavitiestended to increase with the cold work and testtemperature. The morphology of the traces of cavities wassimilar to that formed in high temperature air at 450°Cand hydrogen gas at 380°C, and that implied the fracturesurfaces were formed through a similar cracking process.Since some of the test conditions did not result in anytraces of cavities, it was thought that the phenomenon wasnot essential for the crack propagation in PWR primarywater. However, the decrease of bonding strength ofgrain boundaries due to the cavity formation could havean important role for the material aging process,especially for highly cold worked alloys at hightemperature.
机译:裂纹的横截面和断裂面 从角度观察了TT690合金样品 腔形成的过程作为SCC机理研究。清除 在SCC之前已确认腔形成的证据 在模拟PWR中测试的TT690合金(30%CW)中的含量 一次水在360°C下持续26,576小时。在一个特定的 晶界,大约一半的键合 SCC传播之前,强度已经丧失。然而, 结果还暗示裂纹并不总是 与大量的腔相关联。 直径为100-500 nm的迹线的聚集 在断口表面观察到空洞。这些 在12个裂纹扩展中的7个中可以找到模式 标本,显示出空洞的痕迹数量 随着冷工作和测试的增加而增加 温度。腔痕的形态为 与在450°C的高温空气中形成的类似 和氢气在380°C时,这暗示着断裂 表面是通过类似的开裂过程形成的。 由于某些测试条件没有导致任何 痕迹的空洞,被认为是这种现象是 对于PWR初级裂纹扩展不是必需的 水。但是,粘结强度的降低 由于空洞形成而产生的晶界可能具有 在材料老化过程中起着重要的作用, 特别适用于高温下的高冷加工合金 温度。

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