Mahmoud Ali, Gajbhiye Rahul, Elkatatny Salaheldin
Department of Petroleum Engineering, King Fahd University of Petroleum & Minerals, Dhahran, Saudi Arabia.
Sci Rep. 2025 Jul 1;15(1):22447. doi: 10.1038/s41598-025-05864-7.
Ensuring wellbore stability and efficient drilling in high-pressure and high-temperature (HPHT) environments remains a persistent challenge in the oil and gas industry. This study evaluates the performance of Claytone-II, a novel organophilic phyllosilicate, as a rheological additive for oil-based drilling fluids (OBDFs) under HPHT conditions. Its intrinsic hydrophobicity, swelling capacity, and high surface area suggest potential for enhancing OBDF rheology and stability. Comparative characterization with a commercial organoclay (MC-TONE) was performed using X-ray diffraction (XRD), X-ray fluorescence (XRF), scanning electron microscopy (SEM), and particle size distribution (PSD). Key fluid properties, including density, electrical stability, sag resistance, rheology, viscoelasticity, and filtration, were systematically evaluated. Claytone-II improved emulsion stability by 8%, reduced dynamic sag, and increased low-shear yield point (LSYP), enhancing suspension and hole cleaning. Rheological analysis showed higher shear stress and viscosity across all shear rates, with the Herschel-Bulkley model confirming stronger shear-thinning behavior and a higher consistency index. Filtration tests revealed an 8% reduction in fluid loss and 12.5% thinner filter cakes, indicating more effective fluid control. These reductions fall within operationally significant thresholds for HPHT drilling, contributing to enhanced wellbore stability and reduced risk of formation damage. Claytone-II demonstrated superior performance compared to MC-TONE across all major criteria, meeting or exceeding industry benchmarks. Its integration into OBDFs offers enhanced operational reliability and efficiency in HPHT drilling environments, with implications for reduced non-productive time (NPT) and improved economic outcomes.
在高压高温(HPHT)环境中确保井筒稳定性和高效钻井仍然是石油和天然气行业持续面临的挑战。本研究评估了新型亲有机层状硅酸盐Claytone-II作为油基钻井液(OBDF)在HPHT条件下的流变添加剂的性能。其固有的疏水性、膨胀能力和高比表面积表明它具有增强OBDF流变学和稳定性的潜力。使用X射线衍射(XRD)、X射线荧光(XRF)、扫描电子显微镜(SEM)和粒度分布(PSD)对其与商用有机粘土(MC-TONE)进行了对比表征。系统评估了关键的流体性能,包括密度、电稳定性、抗沉降性、流变学、粘弹性和过滤性能。Claytone-II使乳液稳定性提高了8%,减少了动态沉降,并提高了低剪切屈服点(LSYP),增强了悬浮和井眼清洁能力。流变分析表明,在所有剪切速率下,剪切应力和粘度都更高,Herschel-Bulkley模型证实了更强的剪切变稀行为和更高的稠度指数。过滤测试显示滤失量减少了8%,滤饼变薄了12.5%,表明流体控制更有效。这些减少幅度处于HPHT钻井的操作重要阈值范围内,有助于增强井筒稳定性并降低地层损害风险。在所有主要标准方面,Claytone-II的性能均优于MC-TONE,达到或超过了行业基准。将其集成到OBDF中可提高HPHT钻井环境中的操作可靠性和效率,对减少非生产时间(NPT)和改善经济成果具有重要意义。