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High-Resolution Characterizations of Grain Boundary Damage and Stress Corrosion Cracks in Cold-Rolled Alloy 690

机译:690合金的晶界损伤和应力腐蚀裂纹的高分辨率表征

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Unidirectional cold rolling has been shown to promote intergranular stress corrosion cracking (IGSCC) in alloy 690 tested in PWR primary water. High-resolution scanning (SEM) and transmission electron microscopy (TEM) have been employed to investigate the microstructural reasons for this enhanced susceptibility in two stages, first examining grain boundary damage produced by cold rolling and second by characterization of stress corrosion crack tips. The degree of permanent grain boundary damage from cold rolling was found to depend directly on the initial IG precipitate distribution. Cold rolling to high levels of reduction was discovered to produce small IG voids and cracked carbides in alloys with a high density of grain boundary carbides. For the same degree of cold rolling, alloys with few IG carbides exhibited much less permanent damage. Although this difference in grain boundary damage appears to correlate with measured SCC growth rates, crack tip examinations reveal no interaction between the preexisting voids and cracked carbides with the propagation. In many cases, these features appeared to blunt propagation of IGSCC cracks. High-resolution characterizations are described for cold-rolled alloy 690 CRDM tubing and plate materials to gain insights into IGSCC mechanisms.
机译:已经证明,单向冷轧可促进在压水堆原水中测试的690合金中的晶间应力腐蚀开裂(IGSCC)。高分辨率扫描(SEM)和透射电子显微镜(TEM)已被用于研究这种敏感性提高的微观结构原因,分两个阶段进行,首先是检查冷轧产生的晶界损伤,其次是通过应力腐蚀裂纹尖端的表征。发现冷轧造成的永久性晶界损伤程度直接取决于初始IG析出物分布。发现冷轧至高还原度会在具有高晶界碳化物密度的合金中产生较小的IG空隙和破裂的碳化物。对于相同程度的冷轧,具有少量IG碳化物的合金表现出的永久性损伤要少得多。尽管这种晶界损伤的差异似乎与测量的SCC增长率有关,但裂纹尖端检查显示,先前存在的空隙与裂纹碳化物之间没有相互作用。在许多情况下,这些特征似乎使IGSCC裂纹的钝化扩展。描述了冷轧合金690 CRDM管和板材的高分辨率特性,以深入了解IGSCC机理。

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