Innovative Tailored Spacer System Helps Mitigate Losses and Enhance Cement Bond Log in a High-Lost Circulation Zone on the Largest UAE Offshore Field

Ahmedagha Hamidzada, Azza Elhassan, Adelson Jose De Barros, Ahmed Rashed Alaleeli, Javier Torres, R. Medina, Bilal Baouia, K. Agapiou
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Abstract

Lost circulation (LC) is commonly encountered in drilling and cementing operations and can be a costly problem that increases nonproductive time (NPT). Various methods can be applied to control losses—from applying best operational practices to incorporating LC control materials in treatment fluids and cement slurries. Among the cementing challenges, the loss of circulation can also be associated with poor zonal isolation and becomes more critical when zones between reservoirs should be covered to avoid sustained casing pressure (SCP) in the future and to extend the life of the well. The application for this tailored spacer was the first one globally. Challenges addressed in the largest offshore field loss zone in the UAE included a high likelihood for losses during initial cementing, narrow equivalent circulating density (ECD) gradient, uncertainty in bringing cement to surface in the casing operation, and zonal isolation between reservoirs, formation, and caprock. As part of the best cementing practices, the design and tailoring of the spacers should be considered. Correct use allows the cement to cover zones of interest with less contamination, and cement properties can develop and interact efficiently with the formation. Using a tailored spacer fluid system engineered to effectively and efficiently help prevent LC and maintain wellbore stability while preparing the wellbore to receive cement is discussed. The tailored spacer system uses additive synergies to help prevent LC in porous and fractured formations and enables control of rheological hierarchy and wellbore fluid displacement efficiency. The spacer was designed to optimize cementing operations where losses are observed and, in this case, incorporate additional LC materials to help prevent severe losses and achieve the desired top of cement (TOC). The tailored spacer system was pumped ahead of the cement slurry, to reduce permeability across the formation, with superior properties that help prevent fluid loss of the cement to the permeable formations. Enhancing the cement bond and allowing an effective mud removal differentiate it from a conventional spacer. Using this spacer system enabled cementing goals to be achieved. Cement was brought to the surface, casedhole logs exhibited excellent cement bonding, and no SCP was registered, helping eliminate the need for unwanted remedial operations to secure the zonal isolation, which saves rig time.
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在阿联酋最大的海上油田,创新的定制隔离系统有助于减少漏失,提高水泥胶结测井效率
井漏(LC)是钻井和固井作业中常见的问题,并且会增加非生产时间(NPT),成本高昂。可以采用各种方法来控制漏失,从采用最佳操作方法到在处理液和水泥浆中加入LC控制材料。在固井挑战中,循环漏失也可能与层间隔离不良有关,当需要覆盖储层之间的区域以避免未来的持续套管压力(SCP)并延长井的寿命时,循环漏失变得更加关键。这是全球第一次应用这种定制的隔离器。阿联酋海上油田最大的漏失区面临的挑战包括:初始固井期间漏失的可能性高、等效循环密度(ECD)梯度窄、在套管作业中将水泥注入地面的不确定性,以及储层、地层和盖层之间的层间隔离。作为最佳固井作业的一部分,应该考虑隔离器的设计和定制。正确的使用可以使水泥覆盖更少污染的区域,并且水泥的性能可以与地层有效地相互作用。在准备井筒接水泥时,使用定制的隔离液系统可以有效地防止LC并保持井筒稳定性。定制的隔离系统使用添加剂协同作用,有助于防止多孔和裂缝地层中的LC,并能够控制流变等级和井筒流体置换效率。该隔离剂的设计目的是优化观察到漏失的固井作业,在这种情况下,加入额外的LC材料有助于防止严重漏失,并达到理想的水泥顶(TOC)。定制的隔离系统在水泥浆之前被泵入,以降低整个地层的渗透率,其优越的性能有助于防止水泥浆的液体流失到可渗透地层中。与传统的隔离剂相比,它增强了水泥胶结性,能够有效地清除泥浆。使用该隔离系统可以实现固井目标。水泥被带到地面,套管井测井显示了良好的水泥胶结,没有SCP记录,这有助于消除不必要的补救操作,以确保层间隔离,从而节省了钻机时间。
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