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Development of predictive models of flow induced and localized corrosion.

机译:流动诱发和局部腐蚀预测模型的开发。

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Corrosion is a serious industrial concern. In this work, mechanistic models of localized and flow influenced corrosion were constructed and these influences on corrosion were simulated.; A rigourous description of mass transport is paramount for accurate corrosion modelling. A new moderately dilute mass transport model was developed. A customized hybrid differencing scheme was used to discretize the model. The scheme calculated an appropriate upwind parameter based upon the Peclet number. Charge density effects were modelled using an algebraic charge density correction. Activity coefficients were calculated using Pitzer's equations. This transport model was computationally efficient and yielded accurate simulation results relative to experimental data. Use of the hybrid differencing scheme with the mass transport equation resulted in simulation results which were up to 87% more accurate (relative to experimental data) than other conventional differencing schemes. In addition, when the charge density correction was used during the solution of the electromigration-diffusion equation, rather than solving the charge density term separately, a sixfold increase in the simulation time to real time was seen (for equal time steps in both simulation strategies). Furthermore, the charge density correction is algebraic, and thus, can be applied at larger time steps that would cause the solution of the charge density term to not converge.; The validated mass transport model was then applied to simulate crevice corrosion initiation of passive alloys. The cathodic reactions assumed to occur were crevice-external oxygen reduction and crevice-internal hydrogen ion reduction. Dissolution of each metal in the alloy occurred at anodic sites. The predicted transient and spatial pH profile for type 304 stainless steel was in good agreement with the independent experimental data of others. Furthermore, the pH predictions of the new model for 304 stainless steel more closely matched experimental results than previous models.; The mass transport model was also applied to model flow influenced CO 2 corrosion. The CO2 corrosion model accounted for iron dissolution, H+, H2CO3 and water reduction, and FeCO 3 film formation. The model accurately predicted experimental transient corrosion rate data. (Abstract shortened by UMI.)
机译:腐蚀是严重的工业问题。在这项工作中,建立了局部腐蚀和流动影响腐蚀的力学模型,并模拟了这些对腐蚀的影响。对于精确的腐蚀建模,严格描述质量传输至关重要。开发了一种新的适度稀释的大众运输模型。使用定制的混合差分方案来离散化模型。该方案基于Peclet编号计算了适当的迎风参数。使用代数电荷密度校正对电荷密度效应进行建模。活度系数是使用Pitzer方程计算的。该运输模型计算效率高,并且相对于实验数据产生了准确的模拟结果。将混合差分方案与传质方程配合使用,得出的模拟结果比其他常规差分方案的准确度高出87%(相对于实验数据)。另外,当在电迁移扩散方程的求解过程中使用电荷密度校正时,而不是单独求解电荷密度项时,仿真时间到实时的增加了六倍(两种仿真策略中的时间相等) )。此外,电荷密度校正是代数的,因此可以在较大的时间步上应用,这将导致电荷密度项的解不收敛。然后,将经过验证的质量传输模型应用于模拟钝态合金的缝隙腐蚀引发。假定发生的阴极反应是缝隙-外部氧还原和缝隙-内部氢离子还原。每种金属在合金中的溶解均发生在阳极部位。 304型不锈钢的预测瞬态和空间pH曲线与其他独立实验数据非常吻合。此外,与以前的模型相比,新模型对304不锈钢的pH值预测更接近实验结果。传质模型也被用于模拟流量影响的CO 2腐蚀。 CO2腐蚀模型解释了铁的溶解,H +,H2CO3和水的还原以及FeCO 3膜的形成。该模型可准确预测实验瞬态腐蚀速率数据。 (摘要由UMI缩短。)

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