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Modelling and Analysis of the Corrosion Characteristics of Ferritic-Martensitic Steels in Supercritical Water

机译:铁素体-马氏体钢在超临界水中的腐蚀特性建模与分析

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摘要

The dependencies of weight gain of 9-12 Cr ferritic-martensitic steels in supercritical water on each of seven principal independent variables (temperature, oxygen concentration, flow rate, exposure time, and key chemical composition and surface condition of steels) have been predicted using a supervised artificial neural network (ANN). The relative significance of each independent variable was uncovered by fuzzy curve analysis, which ranks temperature and exposure time as the most important. The optimized ANN, not only satisfactorily represents the experimentally-known non-linear relationships between the corrosion characteristics of F-M steels and the key independent variables (demonstrating the effectiveness of this technique), but also predicts and reveals that the effects of oxygen concentration on the weight gains, to a certain degree, is influenced by the flow rate and temperature. Finally, according to the ANN predicted-results, departure of oxidation kinetics from the parabolic law, and basic cause of chromium content in steel substrate influencing the corrosion rate, and the synergetic effects of dissolved oxygen concentration, flow rate, and temperature, are discussed and analyzed.
机译:预测了9-12 Cr铁素体-马氏体钢在超临界水中的增重与七个主要独立变量(温度,氧气浓度,流速,暴露时间以及关键化学成分和表面状况)的依赖性。有监督的人工神经网络(ANN)。通过模糊曲线分析发现了每个自变量的相对重要性,该曲线将温度和暴露时间列为最重要的。优化的人工神经网络不仅可以令人满意地表示FM钢的腐蚀特性与关键自变量之间的实验已知非线性关系(证明了该技术的有效性),而且还预测并揭示了氧浓度对合金的影响。重量增加在一定程度上受流速和温度的影响。最后,根据人工神经网络的预测结果,讨论了氧化动力学与抛物线定律的偏离,以及钢基底中铬含量影响腐蚀速率的基本原因,以及溶解氧浓度,流量和温度的协同效应。并进行分析。

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