Zhang Bowen, Wang Qingchen, Chang Xiaofeng, Du Weichao, Zhang Fan, Kuruc Michal, Slaný Michal, Chen Gang
Shaanxi Province Key Laboratory of Environmental Pollution Control and Reservoir Protection Technology of Oilfields, Xi'an Shiyou University, Xi'an 710065, China.
Shaanxi University Engineering Research Center of Oil and Gas Field Chemistry, Xi'an Shiyou University, Xi'an 710065, China.
Gels. 2023 Jun 25;9(7):513. doi: 10.3390/gels9070513.
In order to solve the problem of poor dispersion and stability of mixed metal hydroxide (MMH), a kind of mixed metal hydroxide-like compound (MMHlc) gel was synthesized for use as the base mud in drilling fluid instead of bentonite gel. NaCO, NaSiO, and CHCONa were used as precipitants to form MMHlc with larger interlayer spacing and smaller particle size. MMHlc was synthesized by the coprecipitation method at 25 °C with a metal molar ratio of Mg:Al:Fe = 3:1:1. The performance evaluation of the treated drilling fluid showed that MMHlc (S2) synthesized using NaSiO as the precipitant had the characteristics of low viscosity, low filtration, and a high dynamic plastic ratio at 25 °C, which fully met the requirements of oil field application, and it maintained its excellent properties after being aged at 250 °C for 16 h. Linear expansion and rolling recovery experiments showed that the S2 sample had excellent rheological properties and good inhibition. X-ray diffraction and FT-IR experiments showed that S2 had the most complete crystal structure, its interlayer distance was large, and its ion exchange capacity was strong. The thermogravimetric experiment showed that the S2 crystal was stable and the temperature resistance of the crystal could reach 340 °C. Zeta potential, particle size analysis, SEM, and TEM results showed that S2 is a nanomaterial with a complete morphology and uniform distribution. The drilling fluid of this formula had the characteristics of low viscosity, low filtration loss, and a high dynamic plastic ratio, and it met the conditions for oil field application. Considering these results, the new MMH prepared by our research institute is a drilling fluid material that can be used at ultra-high temperatures and can provide important support for drilling ultra-deep wells.
为解决混合金属氢氧化物(MMH)分散性和稳定性差的问题,合成了一种类混合金属氢氧化物化合物(MMHlc)凝胶,以替代膨润土凝胶用作钻井液的基浆。使用NaCO、NaSiO和CHCONa作为沉淀剂来形成具有更大层间距和更小粒径的MMHlc。MMHlc通过共沉淀法在25℃下合成,金属摩尔比为Mg:Al:Fe = 3:1:1。对处理后的钻井液进行性能评价表明,以NaSiO作为沉淀剂合成的MMHlc(S2)在25℃下具有低粘度、低滤失和高动塑比的特点,完全满足油田应用要求,并且在250℃下老化16小时后仍保持其优异性能。线性膨胀和滚动回收实验表明,S2样品具有优异的流变性能和良好的抑制性。X射线衍射和傅里叶变换红外光谱实验表明,S2具有最完整的晶体结构,其层间距大,离子交换能力强。热重实验表明,S2晶体稳定,晶体的耐温性可达340℃。zeta电位、粒度分析、扫描电子显微镜和透射电子显微镜结果表明,S2是一种形态完整、分布均匀的纳米材料。该配方的钻井液具有低粘度、低滤失和高动塑比的特点,满足油田应用条件。综合这些结果,我们研究所制备的新型MMH是一种可在超高温下使用的钻井液材料,可为钻超深井提供重要支撑。