Method of Evaluating Flushing Efficiency of Cementing Ahead Fluids
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摘要: 固井前置液的冲洗效率是影响固井质量的关键因素之一,合理的前置液冲洗效率评价方法及实验对象是优选前置液配方及用量的关键。针对目前前置液评价方法无法客观、真实反应实钻井壁的冲洗效果这一问题,以制作的含有不同深度孔洞的岩心作为改进后的实验对象,模拟实钻凹凸不平的井壁,借助磁力搅拌器模拟前置液冲洗井壁的全过程,构建了一种前置液冲洗效率的评价方法,并验证了该评价方法的合理性。结果表明:该前置液冲洗效率评价方法模拟了实钻井壁凹凸不平的真实情况,考虑了钻井液、隔离液中重晶石粉在实钻井壁孔洞内、表面的滞留、吸附对冲洗效率的影响,评价结果更客观,能够更真实地反应前置液的冲洗效果,可为前置液配方优化及用量设计提供技术参考和依据。利用该评价方法,评价了不同密度、不同接触时间条件下冲洗隔离液的冲洗效率,实验结果可重复性强,可以客观、真实地反应冲洗剂的性能。借助该评价方法,对东海某气田固井前置液配方及用量进行了优化改进,优化后前置液冲洗效率可达97%,固井质量较应用前提升10.3%。Abstract: The flushing efficiency of a cementing ahead fluid is one of the key factors affecting the job quality of well cementing. A reasonable method for evaluating the flushing efficiency of an ahead fluid and a reasonable experimental object are key factors for selecting ahead fluid formulation and volume. The evaluation results obtained with the methods presently in use for evaluating the flushing efficiency of ahead fluids cannot objectively and truthfully reflect the flushing effect of an ahead fluid. To solve this problem, cores made with pores of different depths are used as the experimental object to simulate the actual rough borehole walls, and a magnetic agitator is used to simulate the whole process of flushing action of the ahead fluid on the borehole wall. The cores with pores and the magnetic agitator composed of the new evaluation method and the feasibility of this method is verified. The experimental results obtained show that this new method can simulate the real situation of the uneven borehole walls and takes into account the effects of several factors, such as the detention and adsorption of the barite particles in the drilling fluid and the spacers in the pores and on the surface of the borehole walls. The evaluation results are regarded as being more objective and are able to truthfully reflect the flushing effect of an ahead fluid, and they can be used as the technical reference and the bases for optimization of ahead fluid formulation and for volume design of an ahead fluid. Using this method, the flushing efficiencies of several ahead fluids of different densities and contact time lengths are evaluated. The evaluation test gives results that are repeatable, and objectively and truthfully reflect the performance of the flushing additives. With this method, the composition and volume of an ahead fluid for cementing a well drilled in a gas field in East China Sea is optimized and modified. The flushing efficiency of the ahead fluid after optimization is 97%, and the job quality of the well cementing operation is improved by 10.3%.
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Key words:
- Well cementing /
- Ahead fluid /
- Evaluation method /
- Flushing efficiency
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表 1 相同接触时间下不同前置液的冲洗效率对比
编号 前置液组合 冲洗效率/% C1 7.5 min冲洗隔离液(冲洗剂浓度5%)+
2.5 min冲洗液(冲洗剂浓度15%)92.70 C2 7.5 min冲洗隔离液(冲洗剂浓度8%)+
2.5 min冲洗液(冲洗剂浓度15%)95.60 C3 10 min冲洗隔离液
(冲洗剂浓度5%)79.50 C4 10 min冲洗隔离液
(冲洗剂浓度8%)81.70 表 2 不同接触时间下前置液组合的冲洗效率对比
序号 前置液组合 冲洗效率/% D1 8 min冲洗隔离液+2.5 min冲洗液 95.50 D2 9 min冲洗隔离液+2.5 min冲洗液 95.90 D3 10 min冲洗隔离液+2.5 min冲洗液 96.70 D4 12 min冲洗隔离液+2.5 min冲洗液 97.10 D5 14 min冲洗隔离液+2.5 min冲洗液 97.20 D6 8 min冲洗隔离液+3.5 min冲洗液 96.20 D7 9 min冲洗隔离液+3.5 min冲洗液 96.70 D8 10 min冲洗隔离液+3.5 min冲洗液 97.30 D9 12 min冲洗隔离液+3.5 min冲洗液 98.70 D10 14 min冲洗隔离液+3.5 min冲洗液 98.80 -
[1] 王中华. 国内钻井液技术现状与发展建议[J]. 石油钻探技术,2023,51(4):114-123. doi: 10.11911/syztjs.2023028WANG Zhonghua. Current situation and development suggestions for drilling fluid technologies in China[J]. Petroleum Drilling Techniques, 2023, 51(4):114-123. doi: 10.11911/syztjs.2023028 [2] 张海山. 中国海洋石油大位移井钻井技术现状及展望[J]. 石油钻采工艺,2023,45(1):1-11.ZHANG Haishan. Status and prospect of CNOOC's extended reach well drilling technologies[J]. Oil Drilling & Production Technology, 2023, 45(1):1-11. [3] 孙金声,蒋官澄,贺垠博,等. 油基钻井液面临的技术难题与挑战[J]. 中国石油大学学报(自然科学版),2023,47(5):76-89.SUN Jinsheng, JIANG Guancheng, HE Yinbo, et al. Technical difficulties and challenges faced by oil-based drilling fluid[J]. Journal of China University of Petroleum (Edition of Natural Science) , 2023, 47(5):76-89. [4] 李仲,欧红娟,陈思韵,等. 油基钻井液混浆对水泥浆性能的影响[J]. 钻采工艺,2022,45(1):122-127. doi: 10.3969/J.ISSN.1006-768X.2022.01.021LI Zhong, OU Hongjuan, CHEN Siyun, et al. Influence of oil-based drilling fluid on the performance and structure of oil well cement[J]. Drilling & Production Technology, 2022, 45(1):122-127. doi: 10.3969/J.ISSN.1006-768X.2022.01.021 [5] 李国栋. 胜利油田东部油区页岩油气水平井固井技术[J]. 天然气勘探与开发,2023,46(1):132-140. doi: 10.12055/gaskk.issn.1673-3177.2023.01.017LI Guodong. Cementing technologies for shale oil and gas horizontal wells, eastern oil block, Shengli oilfield[J]. Natural Gas Exploration and Development, 2023, 46(1):132-140. doi: 10.12055/gaskk.issn.1673-3177.2023.01.017 [6] 童杰,李明,魏周胜,等. 油基钻井液钻井的固井技术难点与对策分析[J]. 钻采工艺,2014,37(6):17-20. doi: 10.3969/J.ISSN.1006-768X.2014.06.06TONG Jie, LI Ming, WEI Zhousheng, et al. Difficulties and countermeasures of cementing technology in oil-base drilling[J]. Drilling & Production Technology, 2014, 37(6):17-20. doi: 10.3969/J.ISSN.1006-768X.2014.06.06 [7] 何斌斌,张军义,黄佩,等. 东海盆地大位移井固井工艺技术研究[J]. 复杂油气藏,2022,15(3):111-117.HE Binbin, ZHANG Junyi, HUANG Pei, et al. Research on cementing technology of extended reach wells in the East China sea basin[J]. Complex Hydrocarbon Reservoirs, 2022, 15(3):111-117. [8] MORADI S S T, NIKOLAEV N L. Optimization of cement spacer system for zonal isolation in high-pressure high-temperature wells[C]//SPE Russian Oil and Gas Exploration & Production Technical Conference and Exhibition. Moscow, Russia, 2014. SPE-171282-MS. [9] 涂思琦,谢飞燕,敖康伟,等. 一种适用于长宁页岩气井的高效洗油隔离液[J]. 钻井液与完井液,2022,39(1):82-86. doi: 10.12358/j.issn.1001-5620.2022.01.014TU Siqi, XIE Feiyan, AO Kangwei, et al. A high efficiency oil Wash spacer for shale gas wells in Changning oilfield[J]. Drilling Fluid & Completion Fluid, 2022, 39(1):82-86. doi: 10.12358/j.issn.1001-5620.2022.01.014 [10] 赵启阳,张成金,严海兵,等. 提高油基钻井液固井质量的冲洗型隔离液技术[J]. 钻采工艺,2017,40(5):88-90,94. doi: 10.3969/J.ISSN.1006-768X.2017.05.27ZHAO Qiyang, ZHANG Chengjin, YAN Haibing, et al. Flush type spacer fluid technology used to improving cementing quality of OBM drilling wells[J]. Drilling & Production Technology, 2017, 40(5):88-90,94. doi: 10.3969/J.ISSN.1006-768X.2017.05.27 [11] PERNITES R, KHAMMAR M, SANTRA A. Robust spacer system for water and oil based mud[C]//SPE Western Regional Meeting. Garden Grove, California, USA, 2015: SPE-174005-MS. [12] 齐奔,林志辉,朱禹,等. 固井用冲洗液BH-Q812L的研制与应用[J]. 油田化学,2018,35(4):603-607.QI Ben, LIN Zhihui, ZHU Yu, et al. Development and application of flushing fluid BH-Q812L for cementing[J]. Oilfield Chemistry, 2018, 35(4):603-607. [13] FARAHANI H S, BUDIAWAN A, BRANDL A, et al. Application of an innovative cement spacer to improve zonal isolation-Indonesia case histories[C]//SPE Asia Pacific Oil & Gas Conference and Exhibition. Adelaide, Australia, 2014: SPE-171490-MS. [14] 王广雷,谌德宝,王海淼,等. 一种新型的冲洗效率评价方法[J]. 钻井液与完井液,2011,28(3):45-46. doi: 10.3969/j.issn.1001-5620.2011.03.013WANG Guanglei, CHEN Debao, WANG Haimiao, et al. A new method for the evaluation of flushing fluid[J]. Drilling Fluid & Completion Fluid, 2011, 28(3):45-46. doi: 10.3969/j.issn.1001-5620.2011.03.013 [15] 李韶利,姚志翔,李志民,等. 基于油基钻井液下固井前置液的研究及应用[J]. 钻井液与完井液,2014,31(3):57-60. doi: 10.3969/j.issn.1001-5620.2014.03.015LI Shaoli, YAO Zhixiang, LI Zhimin, et al. Research and application of cementing ahead fluid in wells drilled with oil base drilling fluid[J]. Drilling Fluid & Completion Fluid, 2014, 31(3):57-60. doi: 10.3969/j.issn.1001-5620.2014.03.015 [16] 辜涛,郑有成,郑友志,等. 固井前置液冲洗效率评价方法——改进的旋转黏度计法[J]. 天然气工业,2020,40(11):120-126. doi: 10.3787/j.issn.1000-0976.2020.11.014GU Tao, ZHENG Youcheng, ZHENG Youzhi, et al. A method for evaluating the flushing efficiency of cementing preflush: an improved rotary viscometer method[J]. Natural Gas Industry, 2020, 40(11):120-126. doi: 10.3787/j.issn.1000-0976.2020.11.014 [17] 王翀,谢飞燕,刘爱萍. 固井前置液室内评价方法探讨[J]. 钻井液与完井液,2014,31(4):92-94. doi: 10.3969/j.issn.1001-5620.2014.04.027WANG Chong, XIE Feiyan, LIU Aiping. Discussion on indoor evaluation method of cementing prenuid[J]. Drilling Fluid & Completion Fluid, 2014, 31(4):92-94. doi: 10.3969/j.issn.1001-5620.2014.04.027 [18] 由福昌,许明标. 一种固井前置冲洗液冲洗效率的评价方法[J]. 钻井液与完井液,2009,26(6):47-48. doi: 10.3969/j.issn.1001-5620.2009.06.016YOU Fuchang, XU Mingbiao. A method for the evaluation of a prepad flushing fluid for cementing[J]. Drilling Fluid & Completion Fluid, 2009, 26(6):47-48. doi: 10.3969/j.issn.1001-5620.2009.06.016 -