Corrosion Behavior and Mechanism Analysis of Oilwell Cement Under CO2 and H2S Conditions

Chengyu Zhou, Linghao Zeng, Yuan Sun, Min Zhou, Mingyao Lei, W. Wan, Yufeng Luo, Bo-Wei Wu, Peng Zhang, Ying Xiao
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引用次数: 1

Abstract

In order to explore the corrosion effect of CO2 and H2S in oilwell cement, the samples were exposed to a CO2/H2S environment. The permeability, microstructure, chemical composition, and tensile strength of the cement samples were measured by a pulse pore-permeability tester, scanning electron microscope (SEM), X-ray diffraction (XRD), and rock tensile compression tester, respectively. The corrosion behavior and mechanism of the cement samples were analyzed. The experimental results show that the corrosion degree increases with the exposure time, and the permeability increases from 0.0003 md on the seventh day to 0.0646 md on the thirtieth day. It can be concluded from the microscopic morphology that the internal structure of the corroded cement sample is compact, without an obvious loose structure, but there are some particles with different particle sizes. The composition phases of the products after corrosion are mainly calcium carbonate and silica, and the content of calcium carbonate in the corrosion area increases obviously. The tensile strength of the tested cement sample is only 9.8 MPa. The reaction of gaseous CO2 and H2S with calcium-bearing phases in a cement sample is known to cause a lowering of alkalinity, leading to the corrosion of the cement sample. Due to the existence of carbonation, carbon dioxide will gradually diffuse into the interior of the cement sample and react with hydrogen ions, calcium ions, and bicarbonate ions in the pore fluid of the cement sample to form varieties of calcium carbonate, resulting in the shrinkage of the cement sample, surface cracks, and ultimately affecting the compactness and sealing effect of the cement sample.
油井水泥在CO2和H2S条件下的腐蚀行为及机理分析
为了探索CO2和H2S在油井水泥中的腐蚀作用,将样品暴露在CO2/H2S环境中。采用脉冲孔隙渗透率测试仪、扫描电镜(SEM)、x射线衍射仪(XRD)和岩石拉伸压缩测试仪分别对水泥样品的渗透率、微观结构、化学成分和抗拉强度进行了测定。分析了水泥试样的腐蚀行为和腐蚀机理。实验结果表明,腐蚀程度随暴露时间的增加而增加,渗透率从第7天的0.0003 md增加到第30天的0.0646 md。从微观形貌可以看出,腐蚀水泥试样内部结构致密,没有明显的松散结构,但存在一些颗粒大小不一的颗粒。腐蚀后产物的组成相主要为碳酸钙和二氧化硅,腐蚀区碳酸钙含量明显增加。试验水泥试样的抗拉强度仅为9.8 MPa。已知气体CO2和H2S与水泥样品中含钙相的反应会导致碱度降低,从而导致水泥样品的腐蚀。由于碳化作用的存在,二氧化碳会逐渐扩散到水泥试样内部,并与水泥试样孔隙流体中的氢离子、钙离子、碳酸氢盐离子发生反应,形成各种碳酸钙,导致水泥试样收缩、表面开裂,最终影响水泥试样的密实性和密封效果。
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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