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Cement Considerations for Tight-gas Completions

机译:用于紧煤层的水泥考虑因素

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Recent advancements in completion technology have made tight-gas bearing formations more attractive for production. However, long horizontal sections with multiple fracture treatments can influence the effectiveness of the seal provided by the cemented annulus which, in turn, can affect the productivity of the completed well. Therefore, planning for cementing, followed with proper design and execution, is important to overcome the challenges associated with tight-gas well completions and production.It is challenging to centralize casing strings placed in highly deviated wellbore sections. Poor centralization results in a non-uniform annular-flow profile as fluids tend to flow along the path of least resistance. If this phenomenon exists during cement-slurry placement, an uncemented channel can result on the narrow side of the annulus creating a flow path for fluids to migrate within the annulus.Effective cement slurry placement resulting in an initial annular seal does not guarantee that the seal will be maintained through subsequent completion events. A cement sheath is, by nature, brittle when it is exposed to the stress environment that high pressure hydraulic stimulation produces. The cement sheath can crack, resulting in unwanted flow paths. In addition, fracture attempts early in the completion of a tight-gas well can weaken the hardened cement through fatigue, breaking the cements' sealing capability.The lack of a cemented annular seal can result in the inability to control wellbore fluids affecting both the fracture treatments and subsequent production. If the cement sheath allows fracturing fluids an alternative path, then fracture initiation points might not occur at the desired location, minimizing the stimulation effectiveness. Production gases can also follow an alternative path, which allows for uncontrolled flow to thief zones and to the surface.This paper discusses cement-slurry placement and enhanced sealing properties that a cement system should possess to help withstand the tight-gas completions.
机译:完工技术的最新进步使得紧身轴承轴承形成更具吸引力。然而,具有多个骨折处理的长水平部分可以影响由胶水环设置的密封的有效性,这反过来可以影响完成的井的生产率。因此,巩固的规划,随后具有适当的设计和执行,对克服与紧的气井完井和生产相关的挑战是很重要的。它是挑战,使得集中在高度偏离的井筒部分中放置的套管串。随着流体倾向于沿着最小阻力的路径倾向于流动,可差的集中化导致不均匀的环形流动曲线。如果在水泥浆料放置期间存在这种现象,则可能导致环形的窄侧产生用于迁移在环形内的流体的流动路径。初始环形密封件导致的初始环形密封件的有效水泥浆料放置不保证密封件不保证密封件将通过后续完成事件进行维护。大自然,当暴露于高压液压刺激产生的应力环境时,水泥护套是脆性的。水泥护套可以破裂,导致不需要的流动路径。此外,在完成紧的气井完成时,骨折尝试可以通过疲劳削弱硬化的水泥,破坏了水泥的密封能力。缺乏粘合的环形密封件可能导致无法控制影响骨折的井筒流体治疗和随后的生产。如果水泥护套允许压裂流体替代路径,则可能在所需位置处不发生断裂引发点,最小化刺激效果。制造气体还可以遵循替代路径,这允许不受控制的流向小偷区域和表面。本文讨论了水泥浆料放置和增强的密封性能,使水泥系统应具有帮助抵御紧煤层。

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