Mahmoud Ali, Gajbhiye Rahul, Elkatatny Salaheldin
Department of Petroleum Engineering, King Fahd University of Petroleum & Minerals, Dhahran 31261, Saudi Arabia.
ACS Omega. 2024 Mar 6;9(11):12866-12880. doi: 10.1021/acsomega.3c08967. eCollection 2024 Mar 19.
This study provides a detailed characterization and evaluation of Claytone-EM as a rheological additive to enhance the performance of oil-based drilling fluids (OBDFs) under high-pressure, high-temperature (HPHT) conditions. It also offers a comparative evaluation of the effectiveness of Claytone-EM with an existing organoclay, analyzing their mineral and chemical compositions, morphologies, and particle sizes. A series of experiments are performed to evaluate Claytone-EM's influence on crucial drilling mud properties, such as mud density, electrical stability, sagging tendency, rheology, viscoelastic properties, and filtration properties, to formulate a stable and high-performing OBDF. Results indicated that Claytone-EM had no significant impact on mud density but remarkably enhanced emulsion stability. Claytone-EM effectively mitigated sagging issues under both static and dynamic conditions, leading to improvements in the plastic viscosity (PV), yield point (YP), apparent viscosity (AV), and YP/PV ratio. The PV, YP, AV, and YP/PV ratios were improved by 11, 85, 28, and 66% increments, respectively, compared with those of the drilling fluid formulated with MC-TONE. The addition of Claytone-EM resulted in enhancing gel strength and improving the filtration properties of the drilling fluid. The filtration volume was reduced by 2% from 5.0 to 4.9 cm, and the filter cake thickness had a 13% reduction from 2.60 to 2.26 mm. These findings highlight Claytone-EM as a valuable additive for enhancing OBDF performance, particularly under challenging HPHT conditions. Its ability to provide emulsion stability, reduce static and dynamic sag, and control filtration holds the potential to enhance drilling operations, minimize downtime, and bolster wellbore stability. This study acknowledges certain limitations, including its temperature range, which could benefit from exploration at extreme temperatures. Additionally, the absence of flow experiments limits a comprehensive understanding of sag effects, and further research and field-scale evaluations are recommended to validate and optimize the application of Claytone-EM in OBDFs.
本研究详细表征和评估了Claytone-EM作为流变添加剂在高压高温(HPHT)条件下增强油基钻井液(OBDF)性能的效果。它还对Claytone-EM与现有有机黏土的有效性进行了对比评估,分析了它们的矿物和化学成分、形态以及粒径。进行了一系列实验来评估Claytone-EM对关键钻井泥浆性能的影响,如泥浆密度、电稳定性、下垂趋势、流变学、粘弹性性能和过滤性能,以配制出稳定且高性能的油基钻井液。结果表明,Claytone-EM对泥浆密度没有显著影响,但显著提高了乳液稳定性。Claytone-EM在静态和动态条件下均有效减轻了下垂问题,使塑性粘度(PV)、屈服点(YP)、表观粘度(AV)和YP/PV比得到改善。与用MC-TONE配制的钻井液相比,PV、YP、AV和YP/PV比分别提高了11%、85%、28%和66%。添加Claytone-EM导致凝胶强度增强,钻井液的过滤性能得到改善。过滤体积从5.0厘米减少到4.9厘米,减少了2%,滤饼厚度从2.60毫米减少到2.26毫米,减少了13%。这些发现凸显了Claytone-EM作为增强油基钻井液性能的宝贵添加剂的价值,特别是在具有挑战性的高压高温条件下。它提供乳液稳定性、减少静态和动态下垂以及控制过滤的能力,有可能改善钻井作业、减少停机时间并增强井筒稳定性。本研究承认存在某些局限性,包括其温度范围,在极端温度下进行探索可能会有所助益。此外,缺乏流动实验限制了对下垂效应的全面理解,建议进一步开展研究和现场规模评估,以验证和优化Claytone-EM在油基钻井液中的应用。