首页> 外文会议>Abu Dhabi International Petroleum Exhibition Conference >When Magnifying Your Reservoir Shows More than Expected Details: How Logging-While-Drilling Electrical Images were Used to Perfect Drilling Practices and Minimize Borehole Impact
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When Magnifying Your Reservoir Shows More than Expected Details: How Logging-While-Drilling Electrical Images were Used to Perfect Drilling Practices and Minimize Borehole Impact

机译:放大器时,您的水库显示出超过预期的详细信息:如何使用钻井电气图像来完善钻井实践并最大限度地减少钻孔影响

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Ultrahigh-resolution electrical images (UHRIs) acquired with logging while drilling (LWD) tools have brought to light different side effects of using drilling tools such as rotary steerable systems (RSSs) and bits when drilling a horizontal borehole. This paper will go through the extensive analysis and simulations that followed, gathering data from almost thirty wells, to try and understand the root causes behind these side effects, along with the actions put in place to mitigate it. UHRIs were used while drilling a 6-in horizontal hole to achieve a 100% net-to-gross and perform advanced formation evaluation to optimize well production. Surprisingly, these images revealed more details: wellbore threading–a type of spiral–inside the formation. To understand the cause behind such marks, RSS and bit data was gathered from around thirty wells, compared, and analyzed. Simulations were run over months, considering rock types, drilling parameters, and bottom hole assembly (BHA) design to reproduce the issue and propose the best solution to prevent these events from reoccurring. After the data compilation, a trend emerged. Wellbore threading was observed in soft, high-porosity reservoir formations. It also appeared in tandem with controlled rate of penetration (ROP), low weight on bit (WOB), and a low steering ratio. At this point, advanced analysis and simulations were needed to determine the root cause of this phenomenon. A Finite Element Analysis (FEA) based 4D modeling software showed that the bit gauge pad length, combined with the RSS pad force, contributed to this threading. A pad pressure force higher than 7,000 N in conjunction with a short-gauge bit increased the likelihood of having this borehole deformation. Simulations comparing different size tapered and nominal bit gauge pad lengths were run to determine the effect on the borehole and on the steerability. Bit design is directly linked to the wellbore threading effect. It is more pronounced when associated with a powerful rotary steerable system and in a soft formation environment. However, altering a specific bit design can have a direct and undesirable effect on the steerability of the BHA. UHRI revealed details of borehole deformation that new drilling technologies are causing. It enabled an in-depth analysis of the different causes behind it, revealing ad-hoc solutions.
机译:在钻孔(LWD)工具的同时采用钻井(LWD)工具的超高分辨率电气图像(UHRIS)已经通过钻孔工具(如旋转转向系统(RSS)和钻孔时的位)轻微呈现不同的副作用。本文将经历广泛的分析和模拟,然后从近三层井中收集数据,试图理解这些副作用背后的根本原因,以及所建立的行动来减轻它。使用UHRIS在钻孔一个6英寸水平孔时使用,以实现100%的净毛,并进行高级地层评估以优化良好的生产。令人惊讶的是,这些图像揭示了更多细节:井筒穿线 - 一种螺旋形螺旋形。要了解这些标记背后的原因,比较和分析了RSS和位数据。考虑岩石类型,钻孔参数和底部孔组件(BHA)设计来重现岩石类型,钻孔参数和底部孔组件(BHA)设计,以重现问题,并提出最佳解决方案,以防止这些事件再次传递。数据汇编后,出现了一个趋势。在柔软的高孔隙储层组中观察到井筒穿线。它还串联出现在受控渗透速率(ROP),钻头(WOB)的低重量和低转向比。此时,需要高级分析和模拟来确定这种现象的根本原因。基于有限元分析(FEA)的4D建模软件显示钻头表垫长度与RSS焊盘力相结合,促进了该螺纹。垫压力高于7,000n,结合短尺寸钻头增加了使该钻孔变形的可能性。采用比较不同尺寸锥形和标称钻头长度的模拟,以确定对钻孔的影响和对钻孔的影响。位设计直接连接到井筒穿线效果。与强大的旋转转向系统和软形成环境相关联时更加明显。然而,改变特定的位设计可以对BHA的可操纵性具有直接和不期望的影响。 UHRI透露了新的钻孔技术导致的钻孔变形的细节。它使其在其背后的不同原因进行了深入的分析,揭示了Ad-hoc解决方案。

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