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首页> 外文期刊>Journal of Nuclear Materials: Materials Aspects of Fission and Fusion >Appling grain boundary engineering to Alloy 690 tube for enhancing intergranular corrosion resistance
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Appling grain boundary engineering to Alloy 690 tube for enhancing intergranular corrosion resistance

机译:将晶界工程应用于690合金管以增强耐晶间腐蚀

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摘要

The feasibility of applying the grain boundary engineering (GBE) processing to Alloy 690 tube manufacturing for improving the intergranular corrosion resistance was studied. Through small amount of deformation by cold drawing using a draw-bench on a production line and subsequent short time annealing at high temperature, the proportion of low Σ coincidence site lattice (CSL) grain boundaries of the Alloy 690 tube can be enhanced to about 75% which mainly were of Σ3~n (n = 1, 2, 3, ?) type. In this case, the grain boundary network (GBN) was featured by the formation of highly twinned large size grain-clusters produced by multiple twinning during recrystallization. All of the grains inside this kind of cluster had Σ3~n mutual misorientations, and hence all the boundaries inside the cluster were of Σ3n type and formed many interconnected Σ3~n type triple junctions. The weight losses due to grain dropping during intergranular corrosion for the samples with the modified GBN were much less than that with conventional microstructure. Based on the characterization by scanning electron microscopy (SEM) and electron backscatter diffraction (EBSD) technique, it was shown that the highly twinned large size grain-cluster microstructure played a key role in enhancing the intergranular corrosion resistance: (1) the large grain-cluster can arrest the penetration of intergranular corrosion; (2) the large grain-cluster can protect the underlying microstructure.
机译:研究了将晶界工程(GBE)工艺应用于690合金管材制造以提高耐晶间腐蚀性的可行性。通过在生产线上使用拉拔机进行冷拉拔进行少量变形,然后在高温下进行短时间退火,合金690管的低Σ重合位点晶格(CSL)晶界所占的比例可以提高到约75 %,主要是Σ3〜n(n = 1、2、3,α)型。在这种情况下,晶界网络(GBN)的特征是在重结晶过程中多次孪晶形成了高度孪晶的大尺寸晶粒团簇。这种团簇内部的所有晶粒都具有Σ3〜n相互错误取向,因此,团簇内部的所有边界均为Σ3n型,并形成了许多相互连接的Σ3〜n型三重结。具有改进的GBN的样品在晶间腐蚀过程中由于晶粒掉落而引起的重量损失要比常规显微组织的要少得多。基于扫描电子显微镜(SEM)和电子背散射衍射(EBSD)技术的表征,表明高孪晶大尺寸晶粒簇微结构在增强耐晶间腐蚀性方面起着关键作用:(1)大晶粒-团簇可以阻止晶间腐蚀的渗透; (2)大晶粒簇可以保护下面的微观结构。

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