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Effects of CO_2 and H_2S on Corrosion of Martensitic Steels in NaCl at Low Temperature

机译:低温下CO_2和H_2S对马氏体钢在NaCl中腐蚀的影响

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Corrosion studies were conducted for martensitic carbon steels in brine solutions at 4 °C and 10 MPa (1450 psi), which simulated the subsurface environments encountered in Arctic drilling. Three environments with a 5 % wt. NaCl brine were used: (1) 0.312 mole of CO_2 per mole of H_2O in brine, (2) 3.12 × 10~(-4) mole of H_2S per mole of H_2O in brine, and (3) a mixture of 3.12 × 10~(-4) mole H_2S and 0.312 mole CO_2 per mole of H_2O in brine. Two martensitic carbon steels were selected for the investigations: a high strength low alloy (HSLA) carbon steel commonly used for drill pipe (G41000) and a newly designed ultra-high strength low alloy (UHSLA) steel (G41300). Electrochemical and mass loss measurements found corrosion rates on the order of 0.05 mm y~(-1) in the systems containing H_2S and CO_2+H_2S, while the CO_2 systems saw corrosion rates between 0.5 and 2 mm y~(-1). Surface analyses of the tested samples were performed using scanning electron microscopy and energy dispersive X-ray spectroscopy to identify corrosion products. The corrosion products were unstable and oxidized quickly after taking out of the system. All samples had a high oxygen content across the surface, though the samples exposed to H_2S and CO_2+H_2S had relatively higher levels of sulfur present in an inner region of the film. Experimental corrosion rates were compared to model predictions, and a good agreement was found for the CO_2 and H_2S cases. However, the model predicted that corrosion rates in the mixed case would match those of the CO_2-only system. The experimental results showed that CO_2:H_2S ratios as high as 1000 can result in predominantly sour corrosion at the low temperature, high pressure conditions tested.
机译:马氏体碳钢在4°C和10 MPa(1450 psi)的盐水溶液中进行了腐蚀研究,模拟了北极钻井中遇到的地下环境。重量百分比为5%的三种环境。使用NaCl盐水:(1)盐水中每摩尔H_2O含0.312摩尔CO_2,(2)盐水中每摩尔H_2O含3.12×10〜(-4)摩尔H_2S,以及(3)3.12×10的混合物盐水中每摩尔H_2O约(-4)摩尔H_2S和0.312摩尔CO_2。研究中选择了两种马氏体碳钢:一种通常用于钻杆的高强度低合金(HSLA)碳钢(G41000)和一种新设计的超高强度低合金(UHSLA)钢(G41300)。电化学和质量损失测量发现,在含有H_2S和CO_2 + H_2S的系统中,腐蚀速率约为0.05 mm y〜(-1),而CO_2系统的腐蚀速率在0.5至2 mm y〜(-1)之间。使用扫描电子显微镜和能量色散X射线光谱仪对测试样品进行表面分析,以识别腐蚀产物。从系统中取出后,腐蚀产物不稳定并迅速被氧化。尽管暴露于H_2S和CO_2 + H_2S的样品在膜的内部区域中存在相对较高的硫含量,但所有样品的整个表面都具有较高的氧含量。将实验腐蚀速率与模型预测值进行了比较,发现CO_2和H_2S情况具有很好的一致性。但是,该模型预测混合情况下的腐蚀速率将与仅CO_2系统的腐蚀速率匹配。实验结果表明,在所测试的低温,高压条件下,高达1000的CO_2:H_2S比可导致酸腐蚀。

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