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Micronized Sealing Polymer Improves Wellbore Strengthening Minimizes Differential Sticking Problems in Highly Depleted Formations

机译:微粉化密封聚合物改善了井眼强化并最大限度地减少了高耗尽的地层中的差异粘性问题

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It is a challenge to drill a highly deviated or horizontal hole in high permeable formations. High differential pressures may lead to several problems like tight holes, wellbore instability, differential sticking and mud loss while drilling across these permeable or fractured formations. It was always preferred to drill these wells with Oil base muds which showed some success. While operators always prefer the standard solution, which is casing isolation for problematic sections, challenges have increased due to continuously drilling in depleted reservoirs which leads to considerable nonproductive time. The other solution to overcome such problematic sections was to re-design a fluid system that would target drilling through serious of highly permeable sand and shale formations. The fluid system would primarily address shale inhibition along with effective bridging, minimizing pore pressure transmission and wellbore strengthen with increased hoop stress in the wellbore. Software modelling and permeability plugging tests were performed to evaluate the fluid behavior under downhole conditions and to predict the characteristics of induced micro fractures based on rock mechanics. Porosity, permeability and induced micro fractures were considered to optimize the bridging mechanism. It was identified that normal bridging solutions involving calcium carbonates and graphite material were not enough to address the pore pressure transmission problem. It was essential to include a micronized sealing deformable polymer along with normal bridging material was effective in plugging pore throats and minimizing fluid invasion. The deformable polymer component is able to re-shape itself to fit a broad range of pore throat sizes which was previously unattainable with conventional bridging technology which was confirmed by particle plugging tests. A one well was identified to be drilled in highly depleted reservoir at an inclination of almost 45 degrees. The section involving the highly depleted and permeable sand involved drilling highly stressed shale formations which requires high mud weight for their stability. This was the first attempt on a highangle well with development drilling operations in Kuwait and was performed to facilitate the successful drilling of the reservoir. Drilling and logging were successfully performed along with logging and LWD runs with no recordable differential sticking or losses incidents. This paper also presents 2 successful applications in the same field with the application of proper bridging and utilization of deformable sealing polymer to address drilling problems through highly depleted and permeable formations while managing over balance of 3500 psi across them.
机译:在高可渗透的地层中钻一个高度偏向或水平孔是一项挑战。高差压可能导致几个问题,如紧密孔,井筒不稳定,差动粘连和泥浆损失,同时钻孔横跨这些可渗透或裂缝的形成。总是优选用油地泥浆钻这些井,表现出一些成功。虽然操作员始终更喜欢标准解决方案,其套件隔离有问题的部分,由于在耗尽储层中持续钻井,挑战增加了,这导致相当大的非培养时间。克服此类问题部分的另一个解决方案是重新设计一种流体系统,该流体系统将通过严重渗透砂和页岩形成来瞄准钻井。流体系统主要通过有效的桥接以及有效的桥接来解决页岩抑制,并在井筒中增加箍应力增加,使孔隙压力传递和井筒增强。进行软件建模和渗透性堵塞试验以评估井下条件下的流体行为,并预测基于岩石力学的诱导微骨折的特征。认为孔隙度,渗透性和诱导的微骨折优化桥接机制。鉴定了涉及碳酸钙和石墨材料的正常桥接溶液不足以解决孔隙压力传递问题。必须包括微粉化密封可变形聚合物以及正常的桥接材料在堵塞孔喉部并最小化流体侵袭。可变形的聚合物组分能够重新塑造本身以适应宽范围的孔喉尺寸,该孔型以通过颗粒堵塞试验证实的常规桥接技术是无法实现的。鉴定了一种孔,以近45度的倾斜在高度耗尽的储层中钻孔。涉及高度耗尽和渗透性砂的段涉及钻探高度应激的页岩形成,这需要高泥浆重量的稳定性。这是在科威特在科威特开发钻井业务的首次尝试,并进行了促进水库的成功钻探。钻孔和记录以及Legging和LWD运行,没有可录取的差异粘贴或损失事件。本文还具有2个成功的应用,在相同领域中应用了适当的桥接和利用可变形密封聚合物,通过高度耗尽和可渗透的构造来解决钻孔问题,同时在它们穿过3500 psi的平衡。

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