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Role of Silicon in the Formation of the Corrosion Resistance of Austenitic Materials for Cryogenic Engineering

机译:硅在低温工程用奥氏体材料耐蚀性形成中的作用

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The effect of silicon on the operational efficiency and corrosion resistance of low-temperature equipment made of 12Kh18N12T chromium-nickel steel has been studied. The specific features of the cryogenic equipment consist in high-temperature heating procedures between operation periods. Equipment for gas liquefaction and cleaning aimed at the restoration of the operational efficiency of filtration and catalysis systems serves as an example. The heating temperature of this equipment can reach 800 deg C. Experimental steels containing 0.09-1.03 wt percent Si are subjected to intercrystalline corrosion tests. Upon heating to 550-600 deg C, silicon is found to increase the corrosion resistance of the steel, and, upon heating at higher temperatures, silicon plays a negative role. This is caused by the distribution of silicon atoms along grain boundaries, namely, a nonuniform silicon distribution with the formation of high- and low-concentration regions, i.e., the formation of clusters of silicon-phase preprecipitates.
机译:研究了硅对12Kh18N12T铬镍钢低温设备运行效率和耐蚀性的影响。低温设备的特殊功能在于运行期间之间的高温加热程序。旨在恢复过滤和催化系统运行效率的气体液化和清洁设备就是一个例子。该设备的加热温度可以达到800摄氏度。含0.09-1.03 wt%硅的实验钢要经受晶间腐蚀试验。加热到550-600摄氏度时,发现硅可以提高钢的耐腐蚀性,而在更高的温度下加热时,硅起着负面作用。这是由于硅原子沿晶界的分布引起的,即硅的不均匀分布,形成了高浓度和低浓度区域,即形成了硅相沉淀簇。

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