碳酸盐气藏开发中高温高压完井设计面临的挑战

C. Grant, Nuttapon Piyakunkiat, P. Bandyopadhyay, Kittipat Wejwittayaklung, Swee Hong Gary Ong, J. Manson, Pornchuda Konganuntragul, Khairul Abdul Rashid, Wararit Toempromraj, C. Chanpen, Mohamad Kamal Bin Hamdan, Prapapor Jantasuwanna, David Lewis
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摘要

Field-X是一个大型海上天然气结构,位于马来西亚Miri市50海里处。该储层为高压高温(HPHT)碳酸盐地层,含高污染物,即1.8% mol硫化氢(H2S)和18% mol二氧化碳(CO2)。本文详细介绍了该开发项目高速率井的完井设计。与世界上其他高温高压开发项目相比,勘探和评价井显示出了“独特”的储层特性。包括高温高压钻井和完井专家、生产技术人员、油藏工程师、外部专家顾问和设施工程师在内的多学科工程团队都在一个团队一个目标的心态下工作,以解决该碳酸盐岩储层完井的挑战。本文讨论的一些完井设计挑战包括环空压力管理(APM)系统、长井段射孔策略、修井理念、压实和沉降载荷、由于平台井槽邻近而造成的热干扰、高温高压单管完井设备的设计、认证以及由于供应商数量有限、交货时间长而导致的可用性。本文解决的另一个关键挑战是材料的广泛选择过程,以承受极具腐蚀性的井液、高温和潜在的材料开裂,这些都会导致灾难性的后果。由于环境的原因,在大量的实验室试验和计算机模拟的基础上,提出了奇异的管状材料。三维时程地质力学和储层模型清晰地描述了井下管柱在其寿命期内暴露的位移压实场。任何环空压力积聚都将由APM系统处理,该系统定位于A、B和C环空,并安装了永久性井下压力表(PDG),用于监测油管和环空的压力和温度。这些都是解决和解决的井设计挑战的一些例子。项目目前处于设计阶段,所有的思维过程和设计理念都将在这个领域进行测试。作者希望吸取的经验教训、工程方法和设计结果将对未来的高温高压完井开发有用。
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Challenges of a HPHT Completion Design with Extreme H2S and CO2 in a Carbonate Gas Development
Field-X is a large offshore gas structure located 50 nautical miles from Miri City, Malaysia. The reservoir is a High-Pressure High-Temperature (HPHT) carbonate formation with high contaminants i.e., 1.8% mol of Hydrogen Sulfide (H2S) and 18% mol of Carbon Dioxide (CO2). This paper dwells on the completion design for the high-rate wells planned for this development. Exploration and appraisal wells showed severe reservoir properties that are "unique" as compared to other HPHT developments around the world. A multidisciplinary engineering team including HPHT drilling and completion specialists, production technologists, reservoir engineers, external specialist consultants, and facilities engineers are all working with a One Team One Goal mindset to address the challenges of completing this carbonate reservoir. Some of the completion design challenges addressed in this paper are Annular Pressure Management (APM) systems, perforation strategy for long intervals, well intervention philosophy, compaction and subsidence loading, thermal well interference due to the proximity of the platform well slots, HPHT monobore completion equipment design, qualification, and availability due to a very limited number of suppliers with long lead times. Another critical challenge addressed in this paper is an extensive material selection process to withstand the extremely corrosive well fluids, high temperature, and potential material cracking that historically has led to catastrophic consequences. As a result of the environment, exotic tubular materials are proposed based on intensive laboratory tests and computer simulations. Three-dimensional time history geomechanical and reservoir models explicitly detail the displacement compaction field which the downhole tubulars will be exposed in their lifetimes. Any annular pressure build-up will be handled by an APM system addressing the A, B, and C annuli with a permanent downhole gauge (PDG) installed for pressure and temperature monitoring tubing and annuli. These are some examples of the well design challenges tackled and resolved. The project is currently at the design phase, and all the thought process and design philosophies would be tested in this field. The authors wish that the lessons learned, engineering approaches, and design results will be useful in future sour HPHT completion developments.
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