井下完整性技术在石油工业中的应用——以水平井为例

Li Tao, C. Qiang, S. Qiang, Han Weiye, Huang Shouzhi, Liu Longda
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摘要

在中国,井眼完整性是一个棘手的问题,因为每年需要修复数十万口井,导致成本增加和生产延迟。考虑到井下工具卡死的高风险,这个问题在长水平井筒中变得更加棘手。到目前为止,水平井筒中的套管损坏要么是化学堵塞,要么是桥塞隔离,这对储层和未来的作业构成了巨大的威胁。固体膨胀管是井下修井领域的后起之秀,它在水平井中的应用将进一步丰富我们的技术储备,提高井筒完整性。本文介绍了水平井井筒修井作业面临的挑战;介绍了可扩展技术,并对其进行了创新,以适应挑战,最后对其现场应用进行了描述,并对相关经验进行了总结。结果表明,随着水平井数量的急剧增加,套管损坏、堵砂等问题的发生频率越来越高,井下工具通常需要额外的力才能在水平段向前推进以完成测井或其他作业,为了防止井下工具卡钻,需要保证套管的完整性。固体膨胀管是一项经过现场验证的技术,为了克服过程中起下钻、不规则井眼轨迹中的膨胀障碍等问题,从根本上对固体膨胀管的结构进行了优化。首先将膨胀后的管柱材料改为N80钢级,调整管柱外径,使套管与管柱之间的环空空间最大化。其次,对螺纹进行了重组,进一步提高了其强度。最后,对管柱外部的橡胶进行了创新,以尽可能防止其在与水平井筒摩擦时被磨损。在中国西部进行现场作业,将18m长度的膨胀管送入327m水平井筒末端,开始膨胀过程,记录了41MPa的膨胀力。本文丰富了我们处理水平井修井作业的能力,其内容有助于更好地理解该技术的原理、程序和潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Application of Downhole Well Integrity Technology in the Petroleum Industry, A Case Study in the Horizontal Wellbore
Wellbore integrity was a thorny issue in China since hundreds of thousands of wells needed to be repaired annually, leading to cost increase and production delay. This problem became more excruciating in the long horizontal wellbore considering the high risk of downhole tools stuck. So far casing damage in the horizontal wellbore was either chemically plugged or separated by bridge plug, posing huge threat to the reservoir and future operations. Solid expandable tubular was a rising star in the downhole workover programme, its application in the horizontal wellbore would further enrich our technical warehouse to enhance the wellbore integrity. In this paper, the challenges of horizontal wellbore workover operations were presented; the expandable technology was introduced and then innovated the adapt to the challenges, finally its field operation was described and relevant summaries of lessons were demonstrated. The results indicated that as the number of horizontal well increased dramatically, problems such as casing damage, sand plugging occurred more frequently, downhole tools usually needed additional force to forward in the horizontal part to finish well logging or other activities, casing integrity was necessary to prevent the stuck of downhole tools. Solid expandable tubular was a field proven technology, in order to overcome issues like tripping in process, expansion hurdles in the irregular well trajectory, the structure of solid expandable tubular was optimized radically. First the material of tubular was changed to achieve N80 steel grade after expansion, the OD of tubular was adjusted to maximize the annulus space between the casing and the tubular. Second the thread was restructured the further enhance its strength. Finally the rubber outside the tubular was innovated to prevent being worn out as much as possible during its friction with the horizontal wellbore. Field operation was carried out in west China, 18m length of expandable tubular was deliver into the end of 327m horizontal wellbore, expansion process was started and 41MPa expansion force was recorded. This paper served to enrich our capabilities to deal with workover operation in the horizontal wellbore, its content helped better understand the principle, procedure and potential of this enable technology.
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