Cheng Rongchao, Lei Zhen, Bai Yang, Zhang Jie, Hao Huijun, Xie Gang
CNPC Engineering Technology R&D Company Limited, Beijing 102200, China.
Southwest Petroleum University, Chengdu 610500, China.
ACS Omega. 2022 Aug 3;7(32):28304-28312. doi: 10.1021/acsomega.2c02784. eCollection 2022 Aug 16.
In response to the current problem that micron-scale plugging agents cannot effectively plug shale nanopores and fractures, tetrameric poly(VS-St-BMA-BA) nanoparticles were synthesized by the Michael addition reaction using sodium vinyl sulfonate, styrene, butyl methacrylate, and butyl acrylate as raw materials. The nanoparticles poly(VS-St-BMA-BA) were characterized by infrared spectroscopy, particle size analysis, and thermogravimetric analysis. The particle size distribution of poly(VS-St-BMA-BA) at room temperature ranged from 62.17 to 96.44 nm, with a median particle size of 75.8 nm, and could withstand high temperature of 359.5 °C. The effects of poly(VS-St-BMA-BA) on the rheological parameters of drilling fluid and the effects of different temperatures on the median particle size were investigated by the drilling fluid performance testing methods and high-temperature stability testing methods. The results showed that the apparent viscosity, plastic viscosity, yield point, and high temperature and high pressure water loss of drilling fluid gradually decreased with the increase in poly(VS-St-BMA-BA) dosage; when the addition of poly(VS-St-BMA-BA) was 2.0%, the overall performance of drilling fluid was better, the filtration loss was 4.4 mL, and the drilling fluid had good water loss wall building performance. The median particle size of poly(VS-St-BMA-BA) was 132.60 nm (the particle size at room temperature was 75.8 nm) after standing for 16 h at 180 °C, indicating that poly(VS-St-BMA-BA) has good high-temperature stability and dispersion stability. The plugging performance and plugging mechanism of poly(VS-St-BMA-BA) under extreme conditions (high temperature) were investigated by the plugging performance test method and pressure transfer method. The results showed that the plugging rate of artificial mud cake and artificial core reached 48.18 and 88.75%, respectively, when the amount of poly(VS-St-BMA-BA) was added at 2.0%. In the pressure-transfer experiments, poly(VS-St-BMA)-BA) could invade the 2 mm position of the nanopore fracture on the core surface and form a sealing barrier layer to prevent the further invasion of liquid. Combined with the pressure-transfer experiment, it shows that poly(VS-St-BMA-BA) can enter the nanopore and fracture at a certain distance under the action of formation pressure and keep accumulating to form a tight blockage, which can effectively prevent the filtrate from entering the nanopore fracture of the shale formation. Poly(VS-St-BMA-BA) is expected to be used as a promising nano-plugging agent in water-based drilling fluids.
针对目前微米级封堵剂无法有效封堵页岩纳米孔隙和裂缝的问题,以乙烯基磺酸钠、苯乙烯、甲基丙烯酸丁酯和丙烯酸丁酯为原料,通过迈克尔加成反应合成了四聚体聚(VS-St-BMA-BA)纳米颗粒。采用红外光谱、粒度分析和热重分析对聚(VS-St-BMA-BA)纳米颗粒进行了表征。聚(VS-St-BMA-BA)在室温下的粒径分布范围为62.17至96.44 nm,中位粒径为75.8 nm,可耐受359.5℃的高温。通过钻井液性能测试方法和高温稳定性测试方法,研究了聚(VS-St-BMA-BA)对钻井液流变参数的影响以及不同温度对中位粒径的影响。结果表明,随着聚(VS-St-BMA-BA)加量的增加,钻井液的表观粘度、塑性粘度、屈服点和高温高压失水逐渐降低;当聚(VS-St-BMA-BA)加量为2.0%时,钻井液的综合性能较好,滤失量为4.4 mL,钻井液具有良好的失水造壁性能。聚(VS-St-BMA-BA)在180℃下静置16 h后的中位粒径为132.60 nm(室温下粒径为75.8 nm),表明聚(VS-St-BMA-BA)具有良好的高温稳定性和分散稳定性。通过封堵性能测试方法和压力传递方法,研究了聚(VS-St-BMA-BA)在极端条件(高温)下的封堵性能和封堵机理。结果表明,当聚(VS-St-BMA-BA)加量为2.0%时,人造泥饼和人造岩心的封堵率分别达到48.18%和88.75%。在压力传递实验中,聚(VS-St-BMA)-BA)可侵入岩心表面纳米孔隙裂缝2 mm位置并形成密封阻挡层,防止液体进一步侵入。结合压力传递实验表明,聚(VS-St-BMA-BA)能在地层压力作用下进入纳米孔隙和裂缝一定深度并不断堆积形成紧密封堵,可有效阻止滤液进入页岩地层的纳米孔隙裂缝。聚(VS-St-BMA-BA)有望作为一种有前景的纳米封堵剂用于水基钻井液。