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无固相高携屑水基钻磨液研究与应用
Research and Application of Water-Based Drilling and Grinding Fluid with No Solid Phase and High Chip Carrying

DOI: 10.12677/HJCET.2022.122007, PP. 45-51

Keywords: 低渗透油藏,桥塞,钻磨液,耐高温增粘剂,新疆油田
Low Permeability Reservoir
, Bridge Plug, Drill Plug Fluid, High Temperature Resistant Tackifier, Xinjiang Oilfield

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Abstract:

目前现场应用的钻磨液体系大多以瓜胶为主要处理剂,可高温会使其发生热降解,导致钻磨液的粘度、切力明显下降,严重影响桥塞碎屑的井口返出效率,因此构建一套耐高温的高携屑水基钻磨液,对于现场连续油管钻磨桥塞的效率提升有着重要意义。本文通过聚合物分子结构设计、合成原理的研究,得到一种耐温增粘(可达150℃)与抗剪切能力优良的聚合物增粘剂,并以其为核心处理剂构建了一套无固相水基钻磨液。经实验室性能评价与新疆现场试验应用,此钻磨液体系表现出较好的携屑能力和润滑性能,显著地缩短了施工时间,可有效解决现场钻磨液出现的问题。
The drilling and grinding fluid system for field application now mostly takes guar gum powder as the main finishing agent, which can easily suffer from thermal degradation at high temperatures. As a result, the viscosity and shearing force of the drilling and grinding fluid will be decreased dramatically, seriously affecting the rising efficiency of bridge plug clast. Therefore, creating a kind of heat-resisting and water-base drilling and grinding fluid with effective carrying capacity is of great significance to improve the efficiency of on-site drilling and grinding of bridge plugs by coiled tubing. Based on the study on the molecular structure design and synthetic principles of polymer, this paper found a polymer tackifier with both heat-resisting performance (up to 150?C) and excellent shear-resisting capacity. With it as the core finishing agent, the paper constructed a kind of solid-free and water-base drilling and grinding fluid, which showed good carrying capacity and lubricating property according to the laboratory evaluation and filed test application in Xinjiang. It can help shorten the construction period significantly and solve the problems of the current drilling and grinding fluid for field use.

References

[1]  王宝军, 董小刚. 油田低产低效井酸化增产酸液体系配方[J]. 当代化工, 2020, 49(10): 2251-2254+2259.
[2]  徐庆祥, 祝道平, 葛利军, 呼桂艳, 王玉忠, 平恩顺, 等. 连续油管钻塞技术在GD14H井的实践及认识[J]. 钻采工艺, 2019, 42(3): 114-116.
[3]  何吉标, 梁文利, 陈明晓, 陈智远, 刘俊君. 连续油管新型钻塞胶液在JY25-1HF井的应用[J]. 钻井液与完井液, 2016, 33(3): 123-126.
[4]  李爱春. 页岩气水平井连续油管钻塞工艺[J]. 江汉石油职工大学学报, 2016, 29(6): 25-27+31.
[5]  袁发勇, 彭永利. 复合材料桥塞卡瓦试验研究[J]. 石油机械, 2014, 42(2): 77-79.
[6]  逄仁德, 崔莎莎, 韩继勇, 罗晶晶, 刘亚飞, 陈军伟. 水平井连续油管钻磨桥塞工艺研究与应用[J]. 石油钻探技术, 2016, 44(1): 57-62.
[7]  郭建春, 王世彬, 伍林. 超高温改性瓜胶压裂液性能研究与应用[J]. 油田化学, 2011, 28(2): 201-205.
[8]  Bradley, T., Ball, A., Harding, S. and Mitchell, J.R. (1989) Thermal Degradation of Guar Gum. Carbohydrate Polymers, 10, 205-214.
https://doi.org/10.1016/0144-8617(89)90012-X
[9]  传平. 克拉玛依油田砾岩油藏压裂技术及应用研究[D]: [硕士学位论文]. 荆州: 长江大学, 2013.
[10]  来国荣, 安崇清, 范琳沛. 水平井连续油管钻磨桥塞技术分析及应用[J]. 石油工业技术监督, 2016, 32(1): 54-57.
[11]  安智珠. 聚合物分子设计原理[M]. 长沙: 湖南科学技术出版社, 1985.
[12]  左晓兵, 宁春花, 朱亚辉. 聚合物合成工艺学(高等学校教材) [M]. 北京: 化学工业出版社, 2014.
[13]  普雷拉纳?马鲁蒂?帕蒂尔, 莫汉?戈帕里克希纳?库尔卡尼. 具有乙烯基不饱和的水溶性聚合物, 其交联及其制备方法[P]. 中国专利, CN200480043092.6, 2010-04-25.
[14]  任勇, 郭彪, 石孝志, 宋丹. 页岩气套变水平井连续油管钻磨复合桥塞技术[J]. 油气井测试, 2018, 27(4): 61-66.
[15]  孙明卫, 魏秋菊, 曾庆林, 史慧宁. 极压润滑仪磨块与磨环的抛光校正[J]. 钻井液与完井液, 2008, 25(2): 8.

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