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Improvement of Transpassive Intergranular Corrosion Resistance of 304 Austenitic Stainless Steel by Thermomechanical Processing for Twin-induced Grain Boundary Engineering

机译:双晶晶粒边界工程的热机械处理提高304奥氏体不锈钢的耐晶间腐蚀性。

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Grain boundary engineering (GBE) primarily aims to prevent the initiation and propagation of intergranular degradation along grain boundaries by frequent introduction of coincidence site lattice (CSL) boundaries into the grain boundary networks in materials. It has been reported that GBE is effective to prevent passive intergranular corrosion such as sensitization of austenitic stainless steels, but the effect of GBE on transpassive corrosion has not been clarified. In the present study, a twin-induced GBE utilizing optimized thermomechanical processing with small pre-strain and subsequent annealing was applied to introduce very high frequencies of CSL boundaries into type 304 austenitic stainless steels containing different phosphorus concentrations. The resulting steels showed much higher resistance to transpassive intergranular corrosion during the Coriou test, in comparison with the as-received ones. The high CSL frequency resulted in a very low percolation probability of random boundary networks in the over-threshold region and remarkable suppression of intergranular deterioration during GBE.
机译:晶界工程(GBE)的主要目的是通过将重合位点晶格(CSL)边界频繁引入材料中的晶界网络来防止沿晶界的晶间降解的引发和传播。据报道,GBE对防止诸如奥氏体不锈钢敏化之类的被动晶间腐蚀是有效的,但是尚未阐明GBE对穿越钝化腐蚀的作用。在本研究中,采用双诱导GBE,利用优化的热机械加工工艺,并具有较小的预应变和随后的退火处理,以将非常高的CSL边界频率引入到含不同磷浓度的304型奥氏体不锈钢中。与原样相比,所得的钢在Coriou试验中表现出更高的耐穿透性晶间腐蚀性能。高CSL频率导致超阈值区域中随机边界网络的渗滤概率非常低,并且显着抑制了GBE期间的晶间变质。

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