离线弃井SIMOPs:东南亚81口井一期和二期案例研究,可降低ABEX

S. A. Canny, Jane Amarin, V. Pinprayong, Chumpae Sratongroy, Pancharat Pitchayang, Vijak Patanapoothong, Thatree Sonsai
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引用次数: 0

摘要

在油田设施生命周期的退役阶段,重点从正净现值转向执行维护和保护,然后在最安全和最环保的庄园中退役,并以最低的总拥有成本。资产退役义务(ARO)是资产负债表上的一项长期负债,作为将井场恢复到勘探前状态的成本准备。在执行合规作业时,减少弃井和退役支出(ABEX)是一个关键的业务绩效因素,对于比计划更早地执行更多的井至关重要。在此过程中,公司股东、居民、行业和政府层面的利益相关者的价值最大化。在案例研究中,介绍了一个离线预弃井和第一阶段主要油藏隔离项目,该项目旨在通过离线井筒干预,通过无钻机技术对井筒进行主要油藏隔离,从而最大化项目的净效率。这种方法使每口井的ABEX降低了40%,与计划的支出批准(AFE)规定相比。项目执行结构采用离线干预和第一阶段的81口井的初级油藏隔离,跨越5个井口平台,连续运行47天。作业是同步作业(SIMOPS)项目的一部分,作为位于井口平台(WHP)天气甲板上的离线工作前沿。第二阶段和第三阶段弃井作业的第二个工作锋面同时进行,从WHP上方的自升式钻机悬臂上进行。在第一阶段通过采油树(XT)和压力控制设备,在第二阶段和第三阶段通过钻井隔水管和防喷器,同时进行现场作业,以最大限度地提高钻机在现场的生产率。作业范围包括井口鉴定、井筒进入和准备、压井、注入性测试、各种井筒准备和固井技术、压力测试和井筒润滑。作业者的系统工程、作业设计和规划灵活性是其成功的关键。重点放在分批进行业务和分阶段提供这些业务,以提高生产力和通过重复任务保持高水平的服务提供。该项目成功执行了无事故作业(IFO),生产时间达到100%,并促进了项目的综合绩效,比计划的AFE提前了44%。为了实现这一目标,下入了超过419万英尺的钢丝绳,输送了428个底部钻具组合(bha),为隔离804个主要储层和2个中间储层做好了准备。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Offline Well Abandonment SIMOPs: An 81 Well Phase I & II Case Study Enabling ABEX Reduction in South East Asia
In the decommissioning phase of oilfield facility lifecycles, focus pivots from positive net present value to executing the care and preservation, then decommissioning in the safest and most environmentally sensitive manor, and at the lowest total cost of ownership. Asset Retirement Obligation (ARO) is a long-term liability carried on the balance sheet, as a provision for the cost to return a wellsite to pre-exploration condition. The reduction of abandonment and decommissioning expenditure (ABEX) in executing compliant operations is a key business performance factor, and critical in executing higher volumes of wells earlier than planned. In doing so maximizing value to company shareholders, residents, industries and government level stakeholders. In the case study, an offline pre-abandonment and Phase I primary reservoir isolation project is presented, which seeks to maximize net project efficiency via offline wellbore intervention, executing the primary reservoir isolation of the wellbore via rigless techniques. This approach contributed to ABEX reductions by up to 40% per well vs the planned approval for expenditure (AFE) provisions taken for the operations. The project execution structure utilized offline intervention and Phase I primary reservoir isolation of 81 wellbores, across 5 wellhead platforms and 47 days continuous operations. Operations were part of a simultaneous operation (SIMOPS) project, as an offline work front located on the wellhead platform (WHP) weather deck. A second work front for Phase II and Phase III well abandonment operations, is executed concurrently, from the jack-up rig cantilever above the WHP. Live well operations are conducted concurrently by both work fronts, through the Christmas Tree (XT) and pressure control equipment in Phase I, and through the drilling riser and blowout preventor for Phase II and Phase III, to maximize productivity when the rig is on location. The scope of operations included wellhead qualification, wellbore access and preparation, well kill, injectivity testing, various wellbore preparation and cement placement techniques, pressure testing and lubrication of the wellbore. The operator's system engineering, design of operations and planning agility are key to its success. Acute focus was given to the batching of operations and delivery of these in a phased approach to increase productivity and maintain high service delivery through repetition of tasks. The project successfully executed Incident Free Operations (IFO) with 100% productive time and facilitated combined project performance, which delivered wells up to 44% ahead of the planned AFE. To enable this, over 4.19 million feet of slickline was run, conveying 428 bottom hole assemblies (BHAs), preparing the wellbores to isolate 804 primary reservoirs, and 2 intermediate reservoirs.
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