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Annular Barrier as an Alternative to Squeezes in Challenging Wells: Technology Review and Case Histories

机译:环形屏障作为挑战性井中的替代品:技术审查和病例历史

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The drilling industry has always relied on cement as a primary barrier. Although the cement represents about 5% of the well cost, when squeezes are required, cementing averages 17% of the well cost. Only 50% of the squeezes achieve the objective of establishing a barrier for well integrity. A little bit more than half of the failures can be attributed to operational challenges (pump failure, cement contamination), or design oversights (cement recipe, centralizers). However there are still cement failures with perfect design and field execution. These failures typically exhibit some of the following characteristics: high deviation, high pressure, washouts, natural fractures, long casing section, heterogeneous sands. For these specific conditions, it is beneficial to add an assurance that would maintain the integrity of the well even in case of bad cement. Some of the assurances used include port collars, external casing packers (ECP) and swell packers. Port collars allow a squeeze above the first stage cement, while ECP serves as a base for a second stage cement, and swell packers provides a baffle for sustained casing pressure. A more recent technology is the well annular barrier that can form a combined barrier with cement, and can also be used as a stand-alone primary barrier. The well annular barrier is a metal-expandable barrier that is expanded with hydraulic pressure. It is full bore, highly customizable, and qualified to ISO 14310. The metallurgy allows the packer to shape fit into either an open hole with irregular geometry or inside a casing to preclude annular pressure build up by giving a life-of-well reliable seal. The well annular barrier has been deployed in a variety of wells to achieve well integrity with and without cement, protect the B-annulus from sustained casing pressure, or serve as a barrier between reservoirs that cannot be commingled. This paper performs a review of the technologies used for cement assurance, their advantages and disadvantages. Case histories of well annular barrier deployments are presented, including a case where the well annular barrier was used as a stand-alone well barrier element without the need for dispensation. This paper also discusses how the well annular barrier fits into the regulatory requirements for well construction providing to the drilling industry an alternative to cement for the purpose of well integrity.
机译:钻井行业一直依靠水泥作为主要障碍。虽然水泥代表了井成本的约5%,但是当需要挤压时,粘合平均为17%的井成本。只有50%的挤压率达到了建立良好诚信的屏障的目标。超过一半的故障可能归因于运营挑战(泵故障,水泥污染)或设计监督(水泥配方,胶结器)。然而,仍有水泥故障,具有完美的设计和现场执行。这些故障通常表现出以下一些特性:高偏差,高压,冲洗,天然裂缝,长套管部分,异构砂。对于这些特定条件,增加保证,即使在水泥的情况下,也会保持良好的完整性。使用的一些保证包括端口项圈,外壳包装器(ECP)和膨胀包装器。端口套环允许挤压在第一级水泥上方,而ECP用作第二级水泥的底座,并且膨胀封装机为持续的壳体压力提供挡板。更近期的技术是井环形屏障,可以形成与水泥的组合屏障,也可以用作独立的初级屏障。孔环形屏障是金属可膨胀屏障,其具有液压膨胀。它是全孔,高度可定制的,并符合ISO 14310的资格。冶金允许封隔器以不规则的几何形状或外壳内部的开孔,以防止环形压力通过提供良好的可靠密封来延长环形压力。 。井环形屏障已经展开在各种孔中,以实现具有和无水泥的井完整性,保护B-环从持续的壳体压力,或用作不能混合的储存器之间的屏障。本文对用于水泥保证的技术,其优缺点进行了审查。提出了井环形屏障展开的案例历史,包括井环形屏障用作独立阱屏障元件的情况而不需要分配。本文还讨论了井环形屏障如何符合井建筑的监管要求,为钻井行业提供替代水泥的替代方案,以便诚信地。

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