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Drilling Statically Underbalanced Gas Well with Managed-Pressure Drilling to Target Depth Safely and Efficiently

机译:用管理压力钻井钻井静止的气体,以安全有效地瞄准深度

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Drilling a statically underbalanced well means that the hydrostatic head exerted by the fluid used for drilling is lower than the formation pressure. However, by utilizing Managed Pressure Drilling (MPD) equipment, such as a Rotating Control Device (RCD), an automated MPD choke manifold, and a downhole isolation valve (DIV), and employing MPD techniques, such as Constant Bottomhole Pressure (CBHP) and Pressurized Mud Cap Drilling PMCD), surface backpressure can be exerted during drilling and a dynamically overbalanced condition can be established during the operation, thereby preventing the constant flow of reservoir fluids to surface. The CBHP variant of MPD was initially deployed with statically underbalanced drilling fluid to minimize damage to the reservoir until severe circulation losses were encountered, once the high permeability areas being targeted for the big-bore gas wells were penetrated. Thereafter, the same drilling fluid was to be utilized to make the transition to another MPD variant, PMCD, faster and easier. PMCD was utilized in order to continue drilling the well to target depth without needing to restore circulation and pump lost circulation material (LCM) and cement, which will also impair the productivity of the gas reservoir. This paper focuses on how these combinations of MPD techniques were successfully utilized in order to drill high-rate gas wells in South Sumatra safely and efficiently. Details of how the system was safely and efficiently installed and subsequently deployed, as well as the set-up and procedures utilized will be elaborated. Further improvements to the system and to the operation are also discussed for future applications. Finally, the evolution of MPD methods used in drilling the gas reservoir is also described in relation to the changes that have occurred to the reservoir after it has already been put in production for a number of years.
机译:钻孔静底井意味着由用于钻孔的流体施加的静压头低于地层压力。然而,通过利用控制压力钻井(MPD)的设备,如一个旋转控制装置(RCD),但自动化MPD扼流圈歧管,和一个井下隔离阀(DIV),以及使用MPD技术,诸如恒定井底压力(CBHP)和加压泥浆盖帽钻井PMCD),表面背压可以在钻井过程中施加,并且可以在操作过程中建立一个动态过平衡状态,从而防止储层流体的恒定流表面。 MPD的CBHP变体最初用静态凹陷的钻井液部署,以最小化对储层的损坏,直到遇到严重的循环损失,一旦瞄准大孔气井的高渗透区域被渗透。此后,使用相同的钻井液来实现转换到另一MPD变体,PMCD,更快更容易。利用PMCD以继续钻井井来瞄准深度而无需恢复循环和泵丢失的循环材料(LCM)和水泥,这也会损害气体储层的生产率。本文重点介绍了MPD技术的这些组合如何成功地利用,以便安全有效地利用南苏门答腊的高速燃气井。系统如何安全有效地安装并随后部署以及所使用的设置和程序的详细信息。还讨论了对未来的应用程序对系统和操作的进一步改进。最后,在钻井气液储存器中使用的MPD方法的演变也与水库已经发生在已经在生产的多年后发生的变化有关。

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