地面阴极保护系统变形阳极中的腐蚀沉积:三维瞬态研究

M. J. Shirshahi, Abraham Mansouri, Peyman Taheri, S. F. Chini
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引用次数: 0

摘要

阴极保护作为一种补充技术,在选择合适的材料和考虑有效涂层的同时,也被业界广泛采用。在阴极保护(CP)中,阳极产生电流输出以保护结构(阴极),部分电流输出被接地系统浪费掉。我们开发了一个三维和随时间变化的数值模型,以模拟阳极腐蚀(采用任意拉格朗日-欧勒方法)、沉积物形成(采用界面跟踪水平集方法)、阳极质量损失和接地系统浪费的电流。我们还将阳极质量损失乘以结构接收的电流百分比定义为 CP 效率。CP 效率可用于阳极数量和放置模式。结果表明,当腐蚀产物(沉积物)的电导率低于土壤的电导率时,阳极输出的电流会随着时间的推移而减少。当沉积物的电导率高于土壤的电导率时,阳极输出的电流会随着时间的推移而增加,达到一个峰值,然后减小。这是由于阳极表面增加、介质电导率变化和沉积层的抑制作用这三个因素之间的竞争造成的。在所研究的案例中,阳极电流的近 54% 被接地系统浪费掉了。为了说明 CP 效率的重要性,本研究将三种阳极配置与原始设计进行了比较。研究发现,对于 14.5 千克的阳极,将阳极埋深 2 米可将结构上的平均电位分布提高 4%。此外,采用 7.7 千克阳极的配置因其优越的尺寸设计,与其他配置相比性能有所提高。
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Corrosion deposition in deforming anodes of in-ground cathodic protection systems: A three-dimensional transient study
Cathodic protection as a complementary technique is widely considered in the industry along with the selection of suitable materials as well as efficient coating considerations. In cathodic protection (CP), anode produces a current output to protect the structure (cathode) and part of the current output is wasted by the grounding system. We developed a 3D, and time-dependent numerical model to simulate the anode corrosion (using arbitrary Lagrangian-Eulerian method), find the deposit formation (by interface tracking level set method), anode mass loss and current wasted by the grounding system. We also defined a CP efficiency as anode mass loss times the current percentage received by the structure. The CP efficiency can be utilized for anode quantity and placement pattern. The results showed when the conductivity of corrosion products (deposit) is lower than that of soil, the current output from the anode decreases over time. When the deposit conductivity is higher than that of soil, the current output from the anode increases in time, reaches a peak, then decreases. This is due to the competition among three factors: anode surface increase, medium conductivity change, and inhibition effect of the deposition layer. For the studied case, almost 54% of the current from the anode is wasted by the grounding system. To illustrate the significance of CP efficiency, this study compares three alternative anode configurations with the original design. It is observed that for a 14.5 kg anode, burying the anodes 2 m deeper enhances the mean potential distribution on the structure by 4%. Additionally, the configuration featuring the 7.7 kg anode, owing to its superior dimensional design, demonstrates improved performance compared to other configurations.
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