首页> 外文会议>Abu Dhabi International Petroleum Exhibition Conference >Healing Total Losses and Establishing Well Integrity with Engineered Fiber-Based Lost Circulation Control Spacer During Primary Cementing in UAE Offshore
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Healing Total Losses and Establishing Well Integrity with Engineered Fiber-Based Lost Circulation Control Spacer During Primary Cementing in UAE Offshore

机译:在阿联酋海上巩固期间用工程纤维丢失的循环控制间隔术治疗总损失并建立良好的诚信

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Lost circulation (LC) is an expensive and time-consuming problem. It's desirable to minimize losses before cement job to ensure good cement coverage and maximize well integrity. But quite commonly, wells experience induced losses just before cementing, during casing running and circulation. In such a scenario, the options to control losses have been few, with limited results. The paper demonstrates a viable solution that can be successfully applied to reduce or eliminate such induced losses during the cement job. To effectively solve lost circulation with the correct technique, it is necessary to know the severity of the losses and the type of lost circulation zone. In UAE fields, the loss rates range from 150 bbl/h to more than 700 bbl/h in the 17?-and 12?-in open hole sections. During cementing operations, lost circulation causes reduced top of cement, poor zonal isolation, and risks to drill ahead. To solve this problem, a composite fiber-based spacer system based on a novel four-step methodology was designed using advanced software. Before a field trial, rigorous lab-scale and yard-scale testing was conducted to optimize the application. Initially, no losses were witnessed while drilling the 12?-in section. But during casing running and circulation, severe losses of 150 bbl/hr were induced. To counter these losses, the specially designed fiber-based lost circulation spacer system was pumped ahead of the cement slurry using standard surface equipment. At the beginning of the displacement—while cement and spacer were still in the casing string —the loss rate increased to 700 bbl/hr (total losses). This high loss rate in the crucial intermediate section would normally have resulted in costly remedial operations, loss of mud and cement, and expensive rig time. It was observed that the loss rate remained at 700 bbl/hr until the lost circulation spacer arrived at the loss zone. Subsequently, the loss rate kept on declining finally resulting in full returns during remaining displacement. The designed excess of cement was received as returns, thereby ensuring the desired top of cement at surface. This proved that the fiber-based spacer was effective in curing the losses. An advanced cement bond log showed complete cement coverage over the entire section. This further proved the spacer's effectiveness in achieving all well integrity objectives. The successful application of the engineered fiber-based lost circulation control spacer during primary cementing demonstrates a reliable solution to the challenge posed by losses induced immediately before a cement job. The system is easy to deliver and design and can plug the fracture network in the formation during the cement job. Globally, this engineered composite fiber-blend spacer has proved to improve performance during cementing operations by healing losses to maximize well integrity.
机译:丢失的循环(LC)是一个昂贵且耗时的问题。期望最大限度地减少水泥作业前的损失,以确保良好的水泥覆盖率并最大化良好的完整性。但很常见,在套管运行和循环期间,井在胶结之前才能经历损失。在这种情况下,控制损耗的选项很少,结果有限。本文演示了一种可行的解决方案,可以成功地应用于减少或消除水泥工作中的这种诱导的损失。为了有效解决与正确技术的丢失循环,有必要了解损失的严重程度和丢失循环区的类型。在阿联酋领域,在17℃的150 bbl / h到超过700 bbl / h的损失率范围为12? - 12?-in开孔部分。在巩固作业期间,失去的循环导致水泥,差的区间隔离和风险降低,以便前进。为了解决这个问题,使用先进的软件设计了一种基于新型四步方法的基于组合光纤的间隔系统。在现场试验之前,进行了严格的实验室规模和院度规模测试以优化应用。最初,在钻出12的同时没有见证损失。但在套管运行和循环期间,诱导了150磅/小时的严重损失。为了抵消这些损失,使用标准表面设备将特殊设计的纤维丢失的循环间隔系统在水泥浆线前泵送。在位移开始时 - 虽然水泥和间隔仍处于壳体串 - 但损失率增加到700 bbl / hr(总损失)。关键中间部分中的这种高损耗率通常导致昂贵的补救操作,泥浆和水泥丧失,昂贵的钻机时间。观察到,损失率保持在700 bbl / hr,直到丢失的循环间隔达到损失区。随后,在剩余位移期间,损失率保持在下降的损失率。将设计过量的水泥被接收为返回,从而确保表面的所需顶部。这证明了基于纤维的间隔物在治愈损失方面是有效的。高级水泥键盘显示整个部分的完全水泥覆盖。这进一步证明了间谍在实现所有良好诚信目标方面的有效性。在初级胶结期间成功应用工程化纤维的循环控制间隔物证明了在水泥工作前立即引起的损失所带来的挑战的可靠解决方案。该系统易于提供和设计,可以在水泥工作期间插入骨折网络。在全球范围内,通过愈合损失来证明,该工程化复合纤维混合物间隔器已经证明,通过愈合损失来提高粘合操作期间的性能,以最大限度地完整性。

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