Citation: | ZHANG Xiaocheng, HUO Hongbo, LIN Jiayu, et al. Integrated geology-engineering early warning technologies for lost circulation of fractured reservoirs in Bohai Oilfield [J]. Petroleum Drilling Techniques,2022, 50(6):72-77. DOI: 10.11911/syztjs.2022025 |
In order to solve the problems of downhole leakage caused by faults and fractures in the drilling process of fractured reservoirs in Bohai Oilfield, integrated geology-engineering early warning technologies for lost circulation were proposed. Using large and medium-scale fault characterization in post-stack seism, special treatments such as filtering and fault enhancement were carried out to optimize attributes, fuse multiple attributes, finely describe small and medium-scale fractures, and a three-dimensional spatial distribution model of multi-scale fractures was established. In the design of the wellbore trajectory, drilling in the layers with leakage was avoided. The model was used to develop risk warnings before drilling and guide drilling operations in taking countermeasures for preventing and plugging leakage. During the drilling process, the tracking technology for lost circulation risk was implemented, and the prediction results of the risk were adjusted and fed back in real time. As a result, the wellbore trajectory was optimized in a timely manner, and a dynamic technology for avoiding layers with leakage while drilling was formed, which fully guaranteed the safety of drilling operations and reduced operating costs. The above-mentioned technologies such as risk prediction before drilling, tracking for lost circulation during drilling, and real-time optimization of the wellbore trajectory while drilling were successfully applied in Lvda X Oilfield and avoided leakage sections of the faults in one trip. The integrated geology-engineering early warning technologies for lost circulation can effectively minimize drilling risks and ensure operational safety in fractured reservoirs, which provides technical support for increasing reserves and production of Bohai Oilfield.
[1] |
刘海龙,许杰,谢涛,等. 渤海中深层井壁稳定流固耦合研究[J]. 石油机械,2019,47(4):1–7. doi: 10.16082/j.cnki.issn.1001-4578.2019.04.001
LIU Hailong, XU Jie, XIE Tao, et al. Study on fluid-solid coupling for borehole wall stability of medium-deep wellbore in Bohai Sea[J]. China Petroleum Machinery, 2019, 47(4): 1–7. doi: 10.16082/j.cnki.issn.1001-4578.2019.04.001
|
[2] |
康毅力,郭昆,游利军,等. 考虑地应力及缝宽/粒径比的钻井堵漏材料抗压能力评价[J]. 石油钻采工艺,2021,43(1):39–47.
KANG Yili, GUO Kun, YOU Lijun, et al. Evaluation on the compression strength of lost circulation materials considering in-situ stress and fracture width/particle size ratio[J]. Oil Drilling & Production Technology, 2021, 43(1): 39–47.
|
[3] |
HE Wenhao, CHEN Keyong, HAYATDAVOUDI A, et al. Effects of clay content, cement and mineral composition characteristics on sandstone rock strength and deformability behaviors[J]. Journal of Petroleum Science and Engineering, 2019, 176: 962–969. doi: 10.1016/j.petrol.2019.02.016
|
[4] |
杨仲涵,罗鸣,陈江华,等. 莺歌海盆地超高温高压井挤水泥承压堵漏技术[J]. 石油钻探技术,2020,48(3):47–51. doi: 10.11911/syztjs.2020012
YANG Zhonghan, LUO Ming, CHEN Jianghua, et al. Cement squeezing for pressure-bearing plugging in ultra-high temperature and high pressure wells in the Yinggehai Basin[J]. Petroleum Drilling Techniques, 2020, 48(3): 47–51. doi: 10.11911/syztjs.2020012
|
[5] |
康毅力,许成元,唐龙,等. 构筑井周坚韧屏障:井漏控制理论与方法[J]. 石油勘探与开发,2014,41(4):473–479. doi: 10.11698/PED.2014.04.13
KANG Yili, XU Chengyuan, TANG Long, et al. Constructing a tough shield around the wellbore: theory and method for lost-circulation control[J]. Petroleum Exploration and Development, 2014, 41(4): 473–479. doi: 10.11698/PED.2014.04.13
|
[6] |
卢小川,狄明利,王伟. 渤海油田井漏对策探讨[J]. 长江大学学报(自科版),2017,14(11):46–49. doi: 10.16772/j.cnki.1673-1409.2017.11.010
LU Xiaochuan, DI Mingli, WANG Wei. Treating methods for lost circulation in Bohai Oilfield[J]. Journal of Yangtze University(Natural Science Edition), 2017, 14(11): 46–49. doi: 10.16772/j.cnki.1673-1409.2017.11.010
|
[7] |
LI Yong, HOU Guiting, HARI K R, et al. The model of fracture development in the faulted folds: The role of folding and faulting[J]. Marine and Petroleum Geology, 2018, 89(Part 2): 243 − 251.
|
[8] |
刘伟,周英操,石希天,等. 塔里木油田库车山前超高压盐水层精细控压钻井技术[J]. 石油钻探技术,2020,48(2):23–28. doi: 10.11911/syztjs.2020034
LIU Wei, ZHOU Yingcao, SHI Xitian, et al. Precise managed pressure drilling technology for ultra-high pressure brine layer in the Kuqa Piedmont of the Tarim Oilfield[J]. Petroleum Drilling Techniques, 2020, 48(2): 23–28. doi: 10.11911/syztjs.2020034
|
[9] |
谭忠健,胡云,袁亚东,等. 渤海海域裂缝性地层井漏机理研究:以渤中34-9油田为例[J]. 中国石油勘探,2021,26(2):127–136. doi: 10.3969/j.issn.1672-7703.2021.02.013
TAN Zhongjian, HU Yun, YUAN Yadong, et al. Study on lost circulation mechanism in fractured formation: a case study of BZ34-9 Oilfield, Bohai Sea, East China[J]. China Petroleum Exploration, 2021, 26(2): 127–136. doi: 10.3969/j.issn.1672-7703.2021.02.013
|
[10] |
卢志远,张晓黎,张万龙,等. 一种地震裂缝预测与岩石力学相结合评估井漏风险的新方法:以准噶尔盆地玛湖油田A井区为例[J]. 天然气地球科学,2020,31(10):1453–1465.
LU Zhiyuan, ZHANG Xiaoli, ZHANG Wanlong, et al. A new method of leakage risk evaluation based on seismic fracture prediction and rock mechanics: case study in a wellblock of Mahu Oilfield in Junggar Basin[J]. Natural Gas Geoscience, 2020, 31(10): 1453–1465.
|
[11] |
THOMSEN L. Reflection seismology over azimuthally anisotropic media[J]. Geophysics, 1988, 53(3): 304–313. doi: 10.1190/1.1442464
|
[12] |
GRAY D, HEAD K. Fracture detection in Manderson Field: a 3-D AVAZ case history[J]. The Leading Edge, 2000, 19(11): 1214–1221. doi: 10.1190/1.1438508
|
[13] |
TSVANKIN I, GAISER J, GRECHKA V, et al. Seismic anisotropy in exploration and reservoir characterization: an overview[J]. Geophysics, 2010, 75(5): 75A15–75A29. doi: 10.1190/1.3481775
|
[14] |
高永德,刘鹏,杜超,等. 随钻地震技术在莺歌海盆地高温高压地层钻井中的应用[J]. 石油钻探技术,2020,48(4):63–71. doi: 10.11911/syztjs.2020049
GAO Yongde, LIU Peng, DU Chao, et al. The application of seismic while drilling in high temperature, high pressure reservoirs of the Yinggehai Basin[J]. Petroleum Drilling Techniques, 2020, 48(4): 63–71. doi: 10.11911/syztjs.2020049
|
[15] |
梁舒艺,洪扬,崔立杰. 盆腹区张扭断裂带与盆缘造山带成因关系及油气成藏控制:以准噶尔盆地盆1井西凹陷东环带侏罗系为例[J]. 断块油气田,2021,28(6):805–809.
LIANG Shuyi, HONG Yang, CUI Lijie. Genetic relationship between transtensional fault zones in the hinterland of the basin and orogenic belts in the margin of the basin and its control on hydrocarbon accumulation: A case study of Jurassic in the east belt around Pen-1 Well west sag, Junggar Basin[J]. Fault-Block Oil & Gas Field, 2021, 28(6): 805–809.
|
[16] |
唐琪凌,苏波,王迪,等. 蚂蚁算法在断裂系统解释中的应用[J]. 特种油气藏,2009,16(6):30–33. doi: 10.3969/j.issn.1006-6535.2009.06.009
TANG Qiling, SU Bo, WANG Di, et al. Application of ant colony algorithm in fault system interpretation[J]. Special Oil & Gas Reservoirs, 2009, 16(6): 30–33. doi: 10.3969/j.issn.1006-6535.2009.06.009
|
[17] |
黄苇,周捷,高利君,等. 基于同步挤压改进短时傅立叶变换的分频蚂蚁追踪在断裂识别中的应用[J]. 物探与化探,2021,45(2):432–439.
HUANG Wei, ZHOU Jie, GAO Lijun, et al. The application of frequency division ant tracking based on synchronous extrusion improvement of short time Fourier transform in crack detection[J]. Geophysical and Geochemical Exploration, 2021, 45(2): 432–439.
|
[18] |
林昕,苑仁国,秦磊,等. 地质导向钻井前探技术现状及进展[J]. 特种油气藏,2021,28(2):1–10. doi: 10.3969/j.issn.1006-6535.2021.02.001
LIN Xin, YUAN Renguo, QIN Lei, et al. Present situation and progress of geosteering drilling pre-prospecting technology[J]. Special Oil & Gas Reservoirs, 2021, 28(2): 1–10. doi: 10.3969/j.issn.1006-6535.2021.02.001
|
[19] |
孙永兴,贾利春. 国内3 000 m长水平段水平井钻井实例与认识[J]. 石油钻采工艺,2020,42(4):393–401.
SUN Yongxing, JIA Lichun. Cases and understandings on the drilling of horizontal well with horizontal section of 3 000 m long in China[J]. Oil Drilling & Production Technology, 2020, 42(4): 393–401.
|
[20] |
赵少伟,范白涛,张晓诚,等. 随钻陀螺测量系统研发及应用[J]. 钻采工艺,2017,40(2):63–66. doi: 10.3969/J.ISSN.1006-768X.2017.02.19
ZHAO Shaowei, FAN Baitao, ZHANG Xiaocheng, et al. Development and application of gyro measurement while drilling system[J]. Drilling & Production Technology, 2017, 40(2): 63–66. doi: 10.3969/J.ISSN.1006-768X.2017.02.19
|
[21] |
王恒,孙明光,张进双,等. 静态推靠式旋转导向工具造斜率预测分析[J]. 石油机械,2021,49(2):15–21. doi: 10.16082/j.cnki.issn.1001-4578.2021.02.003
WANG Heng, SUN Mingguang, ZHANG Jinshuang, et al. Buildup rate prediction of a static push-the-bit rotary steerable tool[J]. China Petroleum Machinery, 2021, 49(2): 15–21. doi: 10.16082/j.cnki.issn.1001-4578.2021.02.003
|
[22] |
林家昱,王晓鹏,张羽臣,等. 渤海油田丛式井综合调整加密防碰技术[J]. 石油工业技术监督,2019,35(11):1–4. doi: 10.3969/j.issn.1004-1346.2019.11.001
LIN Jiayu, WANG Xiaopeng, ZHANG Yuchen, et al. Comprehensive infilling and anti-collision technology of cluster wells in Bohai Oilfield[J]. Technology Supervision in Petroleum Industry, 2019, 35(11): 1–4. doi: 10.3969/j.issn.1004-1346.2019.11.001
|
[1] | ZHAO Shaowei, YANG Jin, YANG Qiqi, CHEN Xuyue. Comprehensive Treatment Technology for Lost Circulation in Deep Exploration Wells of Bohai Oilfield[J]. Petroleum Drilling Techniques, 2025, 53(3): 84-89. DOI: 10.11911/syztjs.2025068 |
[2] | XU Kun, TAO Lin, LI Wenlong, LI Linbo, TANG Baisong, DI Yifeng, WANG Xu. Key Drilling Technologies for Metamorphic Buried Hill Reservoirs in Bohai Oilfield[J]. Petroleum Drilling Techniques, 2023, 51(3): 16-21. DOI: 10.11911/syztjs.2023070 |
[3] | SU Jian, DOU Peng, CUI Guojie, ZHU Guowei, ZHONG Sheng. Field Test of Fishbone Multi-Branch Hole Stimulation Technology in Bohai Oilfield[J]. Petroleum Drilling Techniques, 2022, 50(5): 102-107. DOI: 10.11911/syztjs.2022050 |
[4] | ZHAO Guangyuan, WANG Tianhui, YANG Shukun, LI Xiang, LV Guosheng, DU Xiaoxia. Key Optimization Technologies of Intelligent Layered Water Injection with Hydraulic Control in Bohai Oilfield[J]. Petroleum Drilling Techniques, 2022, 50(1): 76-81. DOI: 10.11911/syztjs.2021125 |
[5] | SUN Lin, LI Xuguang, HUANG Liping, XIA Guang, YANG Miao. Research and Application of Prolonged-Effect Acidizing Technology for Water Injection Wells in the Bohai Oilfield[J]. Petroleum Drilling Techniques, 2021, 49(2): 90-95. DOI: 10.11911/syztjs.2021029 |
[6] | GUO Hongfeng, YANG Shukun, DUAN Kaibin, JI Gongming, SHI Jingyan, AN Zonghui. An Improved Integrated Reverse Washing, Measuring and Adjusting Zonal Water Injection Process in the Bohai Oilfield[J]. Petroleum Drilling Techniques, 2020, 48(3): 97-101. DOI: 10.11911/syztjs.2020016 |
[7] | LIU Yigang, CHEN Zheng, MENG Xianghai, ZHANG Le, LAN Fei, SONG Xin. Cable Implanted Intelligent Injection Technology for Separate Injection Wells in Bohai Oilfield[J]. Petroleum Drilling Techniques, 2019, 47(3): 133-139. DOI: 10.11911/syztjs.2019044 |
[8] | HOU Guanzhong, XI Jiangjun, HE Pengfei, BIAN Jie, XU Di. Research and Application of the Position-Occupying Drilling String Techniques for Twin Holes in Monobores in Bohai Oilfield[J]. Petroleum Drilling Techniques, 2016, 44(2): 70-75. DOI: 10.11911/syztjs.201602012 |
[9] | Liang Dan, Lü Xin, Jiang Shanshan, Liang Shoucheng, Feng Guozhi. The Technology of Classified Combination of Deep Profile Control in the Bohai Oilfield[J]. Petroleum Drilling Techniques, 2015, 43(2): 104-109. DOI: 10.11911/syztjs.201502018 |
[10] | Fu Jianmin, Han Xueyin, Ma Yingwen, Wang Jia, Ran Hongying. Application of PowerDrive VorteX Rotary Steering Drilling System in Bohai Bay[J]. Petroleum Drilling Techniques, 2014, 42(3): 118-122. DOI: 10.3969/j.issn.1001-0890.2014.03.022 |
1. |
马铭,马峰. 干热岩储层精细地震勘探技术进展综述. 地球物理学进展. 2025(02): 460-471 .
![]() | |
2. |
戴一凡,侯冰,廖志豪. 基于相场法的深层干热岩储层水力压裂模拟研究. 石油钻探技术. 2024(02): 229-235 .
![]() | |
3. |
陈作,赵乐坤,卫然,刘星. 深层地热热储改造技术进展与发展建议. 石油钻探技术. 2024(06): 10-15 .
![]() | |
4. |
许富强,薛亚斐,宋先知,熊波,莫邵元. 废弃油井转地热井取热性能评价及井型对比. 石油钻探技术. 2024(06): 156-166 .
![]() | |
5. |
陈海雯,宋荣彩,张超,梁元,王迎春,郑峰,王彦力,王洪辉. 基于因子分析法的干热岩地热资源热储评价. 成都理工大学学报(自然科学版). 2023(03): 333-350 .
![]() | |
6. |
刘汉青,胡才博,赵桂萍,石耀霖. 利用热-孔隙流体耦合有限元数值模拟研究干热岩开发温度下降过程——以青海共和盆地恰卜恰地区干热岩开发为例. 地球物理学报. 2023(07): 2887-2902 .
![]() | |
7. |
李厚民,李立兴,李小赛,沈宏飞,孙欣宇. 与花岗岩有关金属成矿系统的时-空-物结构初探. 矿产勘查. 2023(08): 1342-1349 .
![]() | |
8. |
包一翔,李井峰,郭强,蒋斌斌,苏琛. 二氧化碳用于地质资源开发及同步封存技术综述. 煤炭科学技术. 2022(06): 84-95 .
![]() | |
9. |
单丹丹,李玮,闫铁,李卓伦,逯广东,张弦. 增强型地热系统采热性能评价——以共和盆地恰卜恰地区干热岩储层为例. 天然气工业. 2022(10): 150-160 .
![]() | |
10. |
张召峰. 肯尼亚高温地热钻井技术在中国干热岩资源开发中的应用前景. 油气藏评价与开发. 2022(06): 833-842 .
![]() | |
11. |
张德龙,郭强,杨鹏,卢彤,吴烁,翁炜,刘宝林. 地热井花岗岩地层钻进提速技术研究与应用进展. 地质与勘探. 2022(05): 1082-1090 .
![]() | |
12. |
周健,曾义金,陈作,张保平,徐胜强. 青海共和盆地干热岩压裂裂缝测斜仪监测研究. 石油钻探技术. 2021(01): 88-92 .
![]() | |
13. |
宋先知,李嘉成,石宇,许富强,曾义金. 多分支井地热系统注采性能室内实验研究. 石油钻探技术. 2021(01): 81-87 .
![]() | |
14. |
张恒春,王稳石,李宽,王跃伟,闫家,曹龙龙,胡晨. KT178型取心钻具在共和干热岩钻井中的应用. 钻探工程. 2021(02): 29-34 .
![]() | |
15. |
田斌守,邵继新,司双龙,夏斌,蔺瑞山,杨海鸿. 中深层地岩热供暖技术在校园工程中的应用研究. 节能技术. 2021(01): 79-83 .
![]() | |
16. |
罗宏保,李俊萍,吴金生. 高温硬岩空气潜孔锤钻头设计. 钻探工程. 2021(04): 60-65 .
![]() | |
17. |
廖石宝,周玉辉,李伯英. CO_2抽取地热联合驱油封存一体化技术进展. 现代化工. 2021(09): 70-74 .
![]() | |
18. |
CHEN Zuo,XU Guoqing,ZHOU Jian,LIU Jiankun. Fracture Network Volume Fracturing Technology in High-temperature Hard Formation of Hot Dry Rock. Acta Geologica Sinica(English Edition). 2021(06): 1828-1834 .
![]() |
|
19. |
王恒,王磊,张东清,张进双. 干热岩钻井钻具磨损及防磨技术研究. 石油钻探技术. 2020(06): 47-53 .
![]() | |
20. |
陈作,张保平,周健,刘红磊,周林波,吴春方. 干热岩热储体积改造技术研究与试验. 石油钻探技术. 2020(06): 82-87 .
![]() |