Wear analysis and life prediction of sucker rod and tubing under ternary emulsion lubrication in Daqing oilfield: a case study in block H

IF 2.4 4区 工程技术 Q3 ENERGY & FUELS Journal of Petroleum Exploration and Production Technology Pub Date : 2023-09-27 DOI:10.1007/s13202-023-01701-7
Chengting Liu, Chuanfeng Hu, Tian Chen, Zhao Yang, Luna Wang
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Abstract

Abstract Daqing Oilfield as the world’s largest application area of alkali–surfactant–polymer (ASP) flooding, in recent years, with the increase in aging wells, the eccentric wear and deformation of sucker rod and pipe during oil production has become more and more serious. In order to study the effect of emulsion lubrication in ternary composite flooding on eccentric wear of sucker rod and tubing, this paper establishes a calculation model for the depth of tubing wear under different emulsion lubrication conditions through indoor friction and wear experiments combined with White and Dawson wear efficiency theory. Based on this, the finite element method is used to predict the safe wear life of tubing under different component emulsion lubrication. The results show that compared to intact oil pipes, the residual internal pressure strength of oil pipes with defects decreases, and stress concentration occurs at the edges and middle of the defects. The wear life of oil pipes decreases with the increase in pump depth and wear coefficient under emulsion lubrication. The water content and alkali concentration have the most significant effects on the wear life of oil pipes under emulsion lubrication conditions. The safe wear life of sucker rod pipes under emulsion lubrication with a water content of 75% will be increased by 37.8% compared to those in emulsion lubrication with a water content of 95%, and under emulsion lubrication with an alkali concentration of 500 mg/l, the safe wear life will be increased by 50.6% compared to those in emulsion lubrication with a concentration of 2000 mg/l. The research results can provide theoretical and technical support for oilfield enterprises to reduce rod and pipe wear in ASP flooding oil wells, improve the pump inspection cycle of pumping wells, and ensure the safety of oil well work.

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大庆油田三元乳化液润滑下抽油杆、油管磨损分析及寿命预测——以H区块为例
大庆油田作为世界上最大的碱-表面活性剂-聚合物(ASP)驱应用区域,近年来随着老化井的增多,采油过程中抽油杆和油管的偏心磨损和变形问题日益严重。为了研究三元复合驱中乳化液润滑对抽油杆和油管偏心磨损的影响,本文通过室内摩擦磨损实验,结合White和Dawson磨损效率理论,建立了不同乳化液润滑条件下油管磨损深度的计算模型。在此基础上,采用有限元方法对不同组分乳化液润滑下油管的安全磨损寿命进行了预测。结果表明:与完整油管相比,存在缺陷的油管残余内压强度降低,且在缺陷边缘和中部出现应力集中;在乳化液润滑下,随着泵深和磨损系数的增加,油管的磨损寿命减小。乳化液润滑条件下,含水量和碱浓度对油管磨损寿命的影响最为显著。水含量为75%的乳化液润滑条件下,抽油杆的安全磨损寿命比水含量为95%的乳化液润滑条件下提高37.8%;碱浓度为500 mg/l的乳化液润滑条件下,抽油杆的安全磨损寿命比碱浓度为2000 mg/l的乳化液润滑条件下提高50.6%。研究成果可为油田企业减少三元复合驱油井杆管磨损、缩短抽油井泵检周期、保证油井安全作业提供理论和技术支持。
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来源期刊
CiteScore
5.90
自引率
4.50%
发文量
151
审稿时长
13 weeks
期刊介绍: The Journal of Petroleum Exploration and Production Technology is an international open access journal that publishes original and review articles as well as book reviews on leading edge studies in the field of petroleum engineering, petroleum geology and exploration geophysics and the implementation of related technologies to the development and management of oil and gas reservoirs from their discovery through their entire production cycle. Focusing on: Reservoir characterization and modeling Unconventional oil and gas reservoirs Geophysics: Acquisition and near surface Geophysics Modeling and Imaging Geophysics: Interpretation Geophysics: Processing Production Engineering Formation Evaluation Reservoir Management Petroleum Geology Enhanced Recovery Geomechanics Drilling Completions The Journal of Petroleum Exploration and Production Technology is committed to upholding the integrity of the scientific record. As a member of the Committee on Publication Ethics (COPE) the journal will follow the COPE guidelines on how to deal with potential acts of misconduct. Authors should refrain from misrepresenting research results which could damage the trust in the journal and ultimately the entire scientific endeavor. Maintaining integrity of the research and its presentation can be achieved by following the rules of good scientific practice as detailed here: https://www.springer.com/us/editorial-policies
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