Perforating Using MPD Techniques: Design and Execution

André Alonso Fernandes, Davi Valle Ferreira, E. Schnitzler, Fabiano Hamilton de Castro, Isadora Luisa de Paiva Goncalves do Carmo, Pedro Menezes Santana, Roger Savoldi Roman
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引用次数: 1

Abstract

An appraisal well was drilled in Brazilian pre-salt area using overbalance drilling fluid, with conventional techniques. While drilling reservoir (in a 12 1/4" phase), total losses were found. Unsuccessful attempts with LCM and cement pills revealed that only MPD/PMCD techniques could deliver the well to TD. It was decided to anticipate the installation of the 9 5/8" casing, covering only the upper portion of the reservoir, and well was suspended. The remaining reservoir could be drilled later with a rig equipped with MPD system. This well was designed as a 2-zones intelligent completion in cased hole configuration. Due to the fluid losses a new design had to be considered. Due to reservoir uncertainties, definition on the separation between zones would only be taken after drilling the remaining reservoir section. To overcome this challenge without adding time and complexity to the overall design, the best solution was to perforate the cased hole section after drilling the remaining section, meaning doing it with reservoir communicated to the wellbore and in PMCD mode. Several options were evaluated to design the TCP operation in PMCD. Well control strategies, contingencies, thermal effects, and dynamic shocks were considered. The solution consisted in running the TCP with a closed string, without NRVs and having robust contingencies in case of washout or drillpipe failure after perforating. The well was drilled, and total fluid losses occurred again. It was then successfully perforated still in PMCD, then lower and upper completion were installed. Despite these challenges, this was the fastest intelligent completion in all Petrobras pre-salt fields so far.
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MPD射孔技术:设计与实施
在巴西盐下地区,采用常规技术,使用过平衡钻井液进行了一口评价井的钻探。在钻井储层时(在12 1/4”阶段),发现了总漏失。使用LCM和水泥丸的失败尝试表明,只有MPD/PMCD技术才能将井送到TD。最终决定提前安装9 5/8”套管,仅覆盖储层上部,然后暂停钻井。剩下的储层可以稍后使用配备MPD系统的钻机进行钻探。该井被设计为两层套管井智能完井结构。由于流体损失,必须考虑新的设计。由于储层的不确定性,只有在钻完剩余的储层段后才能确定层间的分隔。为了在不增加整体设计时间和复杂性的情况下克服这一挑战,最好的解决方案是在钻完剩余部分后对套管井段进行射孔,这意味着在PMCD模式下进行储层与井筒连通的射孔。评估了几种方案,以设计PMCD中的TCP操作。考虑了井控策略、意外事故、热效应和动态冲击。该解决方案包括使用封闭管柱下入TCP,不使用nrv,并且在射孔后冲蚀或钻杆失效的情况下具有强大的应急能力。钻完井后,再次发生全失液。然后在PMCD中成功射孔,然后安装下部和上部完井。尽管存在这些挑战,但这是迄今为止Petrobras所有盐下油田中最快的智能完井。
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