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Prediction and Computation of Corrosion Rates of A36 Mild Steel in Oilfield Seawater

机译:油田海水A36温和钢腐蚀速率的预测与计算

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The parameters which primarily control the corrosion rate and life of steel structures are several and they vary across the different ocean and seawater as well as along the depth. While the effect of single parameter on corrosion behavior is known, the conjoint effects of multiple parameters and the interrelationship among the variables are complex. Millions sets of experiments are required to understand the mechanism of corrosion failure. Statistical modeling such as ANN is one solution that can reduce the number of experimentation. ANN model was developed using 170 sets of experimental data of A35 mild steel in simulated seawater, varying the corrosion influencing parameters SO~(4)_(2?), Cl_(?), HCO~(3)_(?),CO~(3)_(2?), CO~(2), O~(2), pH and temperature as input and the corrosion current as output. About 60% of experimental data were used to train the model, 20% for testing and 20% for validation. The model was developed by programming in Matlab. 80% of the validated data could predict the corrosion rate correctly. Corrosion rates predicted by the ANN model are displayed in 3D graphics which show many interesting phenomenon of the conjoint effects of multiple variables that might throw new ideas of mitigation of corrosion by simply modifying the chemistry of the constituents. The model could predict the corrosion rates of some real systems.
机译:主要控制钢结构腐蚀速率和寿命的参数有几个,它们在不同的海洋和海水中以及沿着深度变化。虽然单参数对腐蚀行为的影响是已知的,但多个参数的联合效应以及变量之间的相互关系是复杂的。为了理解腐蚀失效的机理,需要进行数百万组实验。诸如ANN之类的统计建模是一种可以减少实验次数的解决方案。采用170组A35低碳钢在模拟海水中的实验数据,改变腐蚀影响参数SO~(4)2?,建立了ANN模型,Cl_(?),HCO~(3)(?),CO~(3)U2,以co2、o2、pH和温度为输入,以腐蚀电流为输出。大约60%的实验数据用于训练模型,20%用于测试,20%用于验证。该模型是在Matlab中编程实现的。80%的验证数据能够正确预测腐蚀速率。由ANN模型预测的腐蚀速率以3D图形显示,其中显示了多个变量的联合效应的许多有趣现象,这可能会通过简单地修改组分的化学性质来提出缓解腐蚀的新思路。该模型可以预测一些实际系统的腐蚀速率。

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