Application of an Innovative Drilling Simulator Set Up to Test Inhibitive Mud Systems for Drilling Shales

Nabe Konate, C. Ezeakacha, S. Salehi, M. Mokhtari
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引用次数: 2

Abstract

Wellbore instability is caused by the radical change in the mechanical strength as well as chemical and physical alterations when exposed to drilling fluids. A set of unexpected events associated with wellbore instability in shales account for more than 10% of drilling cost, which is estimated to one billion dollars per annum. Understanding shale-drilling fluid interaction plays a key role in minimizing drilling problems in unconventional resources. The need for efficient inhibitive drilling fluid system for drilling operations in unconventional resources is growing. This study analyzes different drilling fluid systems and their compatibility in unconventional drilling to improve wellbore stability. A set of inhibitive drilling muds including cesium formate, potassium formate, and diesel-based mud were tested on shale samples with drilling concerns due to high-clay content. An innovative high-pressure high temperature (HPHT) drilling simulator set-up was used to test the mud systems. The results from the test provides reliable data that will be used to capture more effective drilling fluid systems for treating reactive shales and optimizing unconventional drilling. This paper describes the use of an innovative drilling simulator for testing inhibitive mud systems for reactive shale. The effectiveness of inhibitive muds in high-clay shale was investigated. Their impact on a combination of problems, such high torque and drag, high friction factor, and lubricity was also assessed. Finally, the paper evaluates the sealing ability of some designed lost circulation material (LCM) muds in a high pressure high temperature environment.
创新钻井模拟器在页岩钻井抑制泥浆系统测试中的应用
井筒不稳定是由于接触钻井液时机械强度的剧烈变化以及化学和物理变化造成的。在页岩中,与井筒不稳定相关的一系列意外事件占钻井成本的10%以上,每年的钻井成本估计为10亿美元。了解页岩与钻井液的相互作用对于减少非常规资源的钻井问题至关重要。在非常规资源钻井作业中,对高效抑制钻井液体系的需求日益增长。本文分析了不同钻井液体系及其在非常规钻井中的配伍性,以提高井筒稳定性。在页岩样品上测试了一系列抑制钻井液,包括甲酸铯、甲酸钾和柴油基钻井液,这些钻井液由于粘土含量高而存在钻井问题。采用了一种创新的高压高温(HPHT)钻井模拟器来测试泥浆系统。测试结果提供了可靠的数据,可用于捕获更有效的钻井液系统,用于处理活性页岩和优化非常规钻井。本文介绍了一种创新的钻井模拟器,用于测试活性页岩的抑制泥浆系统。研究了高粘土页岩中抑制泥浆的效果。研究人员还评估了它们对高扭矩、高阻力、高摩擦系数和润滑性等综合问题的影响。最后,对设计的几种漏失材料(LCM)泥浆在高压高温环境下的密封性能进行了评价。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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