膨胀水泥力学完整性评价

Harshkumar Patel, S. Salehi, C. Teodoriu
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引用次数: 15

摘要

水泥环是维持油井完整性的关键屏障。由于体积收缩和/或压力/温度变化而形成的微环空是实现良好液压密封的主要挑战。水泥充填后膨胀是解决这一问题的有效方法。膨胀水泥可以潜在地封闭微环空,进一步达到预应力状态。本文的主要目的是研究不同预应力水泥体系在加载条件下的力学完整性。为了实现这一目标,采用了有限元建模方法。建立了由尾管、水泥环和套管组成的三维计算机模型。通过模拟水泥-套管界面处的接触干涉,生成了预应力条件。三种水泥(延性,中等延性和脆性)被考虑用于模拟案例。施加井筒和环空压力。研究了水泥-管道界面的合成、径向、环向和最大剪应力,以评估机械完整性。为了进行比较,使用无预应力的水泥环和具有均匀体积收缩和存在微环空的水泥体系进行了类似的模拟。在井筒压力恒定的情况下,三种水泥体系的径向应力基本相似,且随着预应力的增加而减小。环向应力也随着预压载荷的增加而减小。但其绝对值在不同水泥类型中存在差异。上述结果表明,施加预压载荷的水泥体系通过提供补偿压应力,可以显著降低径向裂缝破坏的风险。相反,在水泥-管道界面处产生的最大剪应力由于预载荷的作用而增大。这可能会降低剪切破坏的安全裕度,从而损害机械完整性。因此,在选择膨胀水泥时,应仔细权衡径向破坏/脱粘风险的降低与剪切破坏风险的增加。本文从力学应力和完整性的角度提供了膨胀水泥的新信息。本研究中讨论的建模方法可用于估计在预期井筒载荷下选定水泥体系所需的预应力量。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Assessing Mechanical Integrity of Expanding Cement
Cement sheath is a critical barrier for maintaining well integrity. Formation of micro-annulus due to volume shrinkage and/or pressure/temperature changes is the major challenge in achieving good hydraulic seal. Expansion of cement after the placement is a promising solution to this problem. Expanding cement can potentially close micro-annulus and further achieve pre-stress condition because of the confinement. Primary aim of this paper is to investigate mechanical integrity of different pre-stressed cement system under loading condition. To achieve the objectives, finite element modelling approach was employed. Three dimensional computer models consisting of liner, cement sheath, and casing were developed. Pre-stress condition was generated by modelling contact interference at the cement-casing interface. Three cement (ductile, moderately ductile, and brittle) were considered for simulation cases. Wellbore and annulus pressure were applied. Resultant, radial, hoop, and maximum shear stresses were investigated at the cement-pipe interface to assess mechanical integrity. For comparison purpose, similar simulations were conducted using cement sheath without pre-stress and cement system representing uniform volume shrinkage and presence micro-annulus. For constant wellbore pressure, the radial stresses observed in all three types of cement system were practically similar and decreased as pre-stress was increased. Hoop stress also reduced with increase in compressive pre-load. However, their absolute values were distinct for different cement types. These results indicate that cement system with compressive pre-load can notably reduce the risk of radial crack failure by providing compensatory compressive stress. However, on the contrary, the maximum shear stress developed at cement-pipe interface, increased because of pre-load. This can compromise the mechanical integrity by reducing the safety margin on shear failure. Thus, the selection of expansive cement should be made after carefully weighing reduced risk of radial failure/debonding against the increased risks of shear failure. This paper provides novel information on expanding cement from the perspective of mechanical stresses and integrity. Modelling approach discussed in this work, can be used to estimate amount of pre-stress required for a selected cement system under anticipated wellbore loads.
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