Simulation of CO2 Corrosion of Carbon Steel in High Pressure and High Temperature Environment (HPHT)

Yuli Panca Asmara
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引用次数: 10

Abstract

In HPHT environments, the mechanism of CO2 corrosion faces a challenge as an effect of chemical-physical reactions on the metal surface. The presence of other elements in the CO2 system complicates corrosion behavior. To provide a realistic mechanism for corrosion process, some corrosion prediction models have developed software using fundamental theories such as electrochemical reactions and thermodynamics theories. Existing methods to predict corrosion rate models in HPHT environments have shown reasonable results. This paper reviews software of corrosion predictions which calculate corrosion rate based on mechanistic theories that study effects of H2S, acetic acid (HAc) concentrations, shear stress, pH in temperature from 25oC – 100oC and pressure from 1–10 bar. From the simulation, corrosion rate increased significantly in the high pressure CO2 environment. Corrosion rate at pH 4 increased to 30 mm/y at a temperature from 15oC to 90oC. While at pH 8 corrosion rate reached 4 mm/y. This lower corrosion rate indicated a tendency for deposits formation at higher pH. Corrosion rate behaves in a different mechanism at high temperatures. The corrosion rate decreased to 4 mm/y when the temperature increased to more than 90oC. Effects H2S gas and HAc were identified to increase corrosion rate. Both elements provide extra cathodic reaction and create limiting current density in the cathodic reaction process based on polarization sweep models. However, the polarization graph calculated using corrosion models could not display passive behavior in the anodic polarization process. Thus, further, improvement should be considered. From the data calculation, it can be shown that corrosion prediction software can predict corrosion rate in HPHT conditions.
碳钢在高压高温环境中CO2腐蚀的模拟
在高温高压环境下,二氧化碳腐蚀机理作为金属表面化学-物理反应的影响而面临挑战。二氧化碳体系中其他元素的存在使腐蚀行为复杂化。为了提供腐蚀过程的真实机制,一些腐蚀预测模型利用电化学反应和热力学理论等基础理论开发了软件。现有的预测高温高压环境腐蚀速率模型的方法已经显示出合理的结果。本文综述了基于H2S、乙酸(HAc)浓度、剪切应力、pH在25℃- 100℃温度和1-10 bar压力下影响的机理理论计算腐蚀速率的腐蚀预测软件。从模拟结果来看,在高压CO2环境中,腐蚀速率明显增加。在15℃~ 90℃的温度范围内,pH值为4的腐蚀速率增加到30mm /y。pH值为8时,腐蚀速率达到4mm /y。较低的腐蚀速率表明在较高的ph值下有沉积的趋势。在高温下,腐蚀速率表现出不同的机制。当温度升高到90oC以上时,腐蚀速率降至4mm /y。H2S气体和HAc的作用是提高腐蚀速率。基于极化扫描模型,这两种元件在阴极反应过程中提供额外的阴极反应并产生限制电流密度。然而,用腐蚀模型计算的极化图不能显示阳极极化过程中的被动行为。因此,应该进一步考虑改进。从数据计算可以看出,腐蚀预测软件可以预测高温高压条件下的腐蚀速率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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