Huang Xianbin, Meng Xu, Wu Leping, Gao Chongyang, Lv Kaihe, Sun Baolu
Key Laboratory of Unconventional Oil & Gas Development (China University of Petroleum (East China)), Ministry of Education, Qingdao, China.
School of Petroleum Engineering, China University of Petroleum (East China), Qingdao, China.
Front Chem. 2022 May 30;10:890478. doi: 10.3389/fchem.2022.890478. eCollection 2022.
Drilling fluid invasion and pressure transmission caused by the development of micropores and fractures in shale oil and gas formations are the major factors contributing to wellbore instability during drilling using oil-based drilling fluids (OBFs). In this study, a modified polystyrene latex (MPL) material was synthesized through emulsion polymerization and was characterized using Fourier transform infrared spectroscopy (FTIR), thermogravimetric analysis (TGA), particle size analysis, scanning electron microscopy (SEM) observations, and contact angle testing. The influence of the MPL on the stability of a water-in-oil emulsion was analyzed sedimentation observations and electrical stability tests. The effects of the MPL on the plugging mechanism of white oil and water-in-oil emulsions were evaluated using 0.1-1.0 μm micro-porous filtration films. The experimental results revealed that the MPL has a favorable thermal stability, with an initial thermal decomposition temperature of 363°C, a median particle size (D50) of 233 nm, and a three-phase contact angle of 103.5°. The MPL can enhance the sedimentation stability of an emulsion to a considerable extent and can improve the electrical stability (ES) of the emulsion, which is conducive to the stability of OBFs. Due to the deformability of the MPL, it has a wide range of adaptations for micro-scale pores and fractures. In both the white oil and water-in-oil emulsions, the MPL can reduce the filtration loss through microporous membranes with pore sizes of 0.1-1.0 μm to within 10 ml. This paper details the methodology of the synthesis of nanomaterials that can effectively plug a formation's nanopores and fractures; thereby, stabilizing OBFs.
页岩油气地层中微孔和裂缝的发育导致钻井液侵入和压力传递,是使用油基钻井液(OBF)钻井过程中造成井眼不稳定的主要因素。在本研究中,通过乳液聚合合成了一种改性聚苯乙烯胶乳(MPL)材料,并采用傅里叶变换红外光谱(FTIR)、热重分析(TGA)、粒度分析、扫描电子显微镜(SEM)观察和接触角测试对其进行了表征。通过沉降观察和电稳定性测试分析了MPL对油包水乳液稳定性的影响。使用0.1 - 1.0μm的微孔滤膜评估了MPL对白油和油包水乳液封堵机理的影响。实验结果表明,MPL具有良好的热稳定性,初始热分解温度为363°C,中位粒径(D50)为233nm,三相接触角为103.5°。MPL能在很大程度上提高乳液的沉降稳定性,并能改善乳液的电稳定性(ES),这有利于OBF的稳定性。由于MPL的可变形性,它对微尺度的孔隙和裂缝具有广泛的适应性。在白油和油包水乳液中,MPL都能将通过0.1 - 1.0μm孔径微孔膜的滤失量降低到10ml以内。本文详细介绍了能够有效封堵地层纳米孔隙和裂缝从而稳定OBF的纳米材料的合成方法。