Lithologic Reservoirs ›› 2012, Vol. 24 ›› Issue (4): 115-120.doi: 10.3969/j.issn.1673-8926.2012.04.023

Previous Articles     Next Articles

Study on fracturing potential of water driving oil wells in extra-high water cut stage

ZHANG Wen1, WANG Luchun 1,2, GUO Weiqi2, ZHAO Xin3   

  1. 1. College of Petroleum Engineering, Northeast Petroleum University, Daqing 163318, China; 2. Research Institute of Exploration and Development, PetroChina Daqing Oilfield Company Ltd., Daqing 163712, China; 3. No. 9 Oil Production Plant, PetroChina Daqing Oilfield Company Ltd., Daqing 163853, China
  • Online:2012-08-20 Published:2012-08-20

Abstract:

Along with the oilfield entering into extra high water cut stage,the fracturing objects of water driving oil wells are becoming poor,and also the selection of fracturing wells and layers is more and more difficult. Based on reservoir engineering and real oilfield situation,we selected and analyzed the main influencing factors of fracturing effects by using multiple correlation and grey association methods, including effective thickness of the fracturing layers,permeability of the fracturing layers,ratio of formation coefficient of the fracturing layers to formation coefficient of the whole well,water cut of the whole oil well before fracturing, fluid quantity per day of the whole oil well before fracturing and pressure difference before fracturing. We used the group method of data handling (GMDH)to establish the regression model between the fracturing oil production enhancement and the main influencing factors, used the input-output principle of economics to establish the economic limit model of fracturing oil production enhancement,and defined that whether the fracturing oil production enhancement is economic or not is related to fracturing inputs and corresponding change of cost.

Key words: horizontal well, carbonate rocks, fracture reservoirs, dual laterolog response, numerical simulation

[1] 卓兴家,郭献广,刘宏,等.低渗透油藏压裂前后在不同驱动方式下的开发效果[J].大庆石油学院学报,2002,26(2):15-17.
[2] 庞彦明,郭洪岩,黄德利,等. 低丰度葡萄花油层压裂投产的模拟效果及现场试验[J].大庆石油学院学报,2001,25(3):70-72 .
[3] 秦同洛,李荡,陈元千,等.实用油藏工程方法[M]. 北京:石油工业出版社,1989:64-65.
[4] 文华,孙娜,田华丰,等. 基于灰色建模法的Logistic 模型在油气田开发中的应用[J].岩性油气藏,2009,21(3):108-110.
[5] 张成栋,吴宝峰.水驱油井压裂效果影响因素及潜力分析[J].内蒙古石油化工,2008,(8):118-119.
[6] 李金洪,王子梅,赵祥庆,等.油井水力压裂影响因素的分析研究[J].内蒙古石油化工,2006,(1):76-77.
[7] 彭得兵,唐海,李呈祥,等.灰色关联法在剩余油分布研究中的应用[J].岩性油气藏,2010,22(3):132- 136 .
[8] 欧阳传湘,涂志勇,付蓉,等.灰色综合评判法优选压裂井[J].岩性油气藏, 2009,21(3):101- 104 .
[9] 杨茜茜,李相方,吴琼,等.开发技术对气藏阶段采收率影响的灰色关联分析[J].岩性油气藏, 2011,23(1):107- 110 .
[10] 李国锋,王德安,成勇,等.应用灰色关联分析法优选大牛地气田压裂井层[J].岩性油气藏,2011,23(1):114- 117 .
[11] 何跃, 鲍爱根,贺昌政,等.自组织建模方法和GDP 增长模型研究[J].中国管理科学,2004,12(2):139- 142 .
[12] 刘光中, 颜科琦, 康银劳,等.基于自组织理论的GMDH 神经网络算法及应用[J].数学的实践与认识,2001,(7):464-469.
[1] CUI Chuanzhi, LI Jing, WU Zhongwei. Simulation of microscopic seepage characteristics of CO2 immiscible flooding under the effect of diffusion and adsorption [J]. Lithologic Reservoirs, 2024, 36(6): 181-188.
[2] YAN Jianping, LAI Siyu, GUO Wei, SHI Xuewen, LIAO Maojie, TANG Hongming, HU Qinhong, HUANG Yi. Research progress on casing deformation types and influencing factors in geological engineering of shale gas wells [J]. Lithologic Reservoirs, 2024, 36(5): 1-14.
[3] LIU Renjing, LU Wenming. Mechanism and field practice of enhanced oil recovery by injection-production coupling in fault block reservoirs [J]. Lithologic Reservoirs, 2024, 36(3): 180-188.
[4] BAO Hanyong, LIU Chao, GAN Yuqing, XUE Meng, LIU Shiqiang, ZENG Lianbo, MA Shijie, LUO Liang. Paleotectonic stress field and fracture characteristics of shales of Ordovician Wufeng Formation to Silurian Longmaxi Formation in southern Fuling area,Sichuan Basin [J]. Lithologic Reservoirs, 2024, 36(1): 14-22.
[5] ZHOU Hao, LIANG Lixia. Calculation method of investigation radius of horizontal wells [J]. Lithologic Reservoirs, 2024, 36(1): 157-168.
[6] YANG Zhaochen, LU Yingbo, YANG Guo, HUANG Chun, YI Dalin, JIA Song, WU Yongbin, WANG Guiqing. Pre-CO2 energy storage fracturing technology in horizontal wells for medium-deep heavy oil [J]. Lithologic Reservoirs, 2024, 36(1): 178-184.
[7] LI Fengfeng, NI Xiaowei, XU Sihui, WEI Xinlu, LIU Diren. Response characteristics and correction of LWD laterolog in anisotropic formations and deviated boreholes [J]. Lithologic Reservoirs, 2023, 35(3): 161-168.
[8] Lü Dongliang, YANG Jian, LIN Liming, ZHANG Kaili, CHEN Yanhu. Characterization model of oil-water relative permeability curves of sandstone reservoir and its application in numerical simulation [J]. Lithologic Reservoirs, 2023, 35(1): 145-159.
[9] LI Guoxin, SHI Yajun, ZHANG Yongshu, CHEN Yan, ZHANG Guoqing, LEI Tao. New progress and enlightenment of oil and gas exploration and geological understanding in Qaidam Basin [J]. Lithologic Reservoirs, 2022, 34(6): 1-18.
[10] ZHANG Wei, LI Lei, QIU Xinwei, GONG Guangchuan, CHENG Linyan, GAO Yifan, YANG Zhipeng, YANG Lei. A/S control on spatiotemporal evolution of deltas in rifted lacustrine basin and its numerical simulation: A case study of Paleogene Wenchang Formation in Lufeng 22 subsag,Pearl River Mouth Basin [J]. Lithologic Reservoirs, 2022, 34(3): 131-141.
[11] DONG Min, GUO Wei, ZHANG Linyan, WU Zhonghai, MA Licheng, DONG Hui, FENG Xingqiang, YANG Yuehui. Characteristics of paleotectonic stress field and fractures of WufengLongmaxi Formation in Luzhou area, southern Sichuan Basin [J]. Lithologic Reservoirs, 2022, 34(1): 43-51.
[12] ZHANG Haoyu, LI Mao, KANG Yongmei, WU Zemin, WANG Guang. Reservoir architecture and fine characterization of remaining oil of Chang 3 reservoir in Zhenbei oilfield,Ordos Basin [J]. Lithologic Reservoirs, 2021, 33(6): 177-188.
[13] CAI Hui, QU Dan, CHEN Minfeng. Reserve producing law of combined well pattern and technology strategy of horizontal well infilling: A case study from HD oilfield in Bohai Sea [J]. Lithologic Reservoirs, 2021, 33(4): 147-155.
[14] YE Tao, WANG Qingbin, DAI Liming, CHEN Rongtao, CUI Puyuan. New method for sequence division of platform facies carbonate rocks: A case study of Ordovician in Bozhong Sag [J]. Lithologic Reservoirs, 2021, 33(3): 95-103.
[15] ZHU Suyang, LI Dongmei, LI Chuanliang, LI Huihui, LIU Xiongzhi. Re-discussion on principle of constant porosity during primary deformation of rock [J]. Lithologic Reservoirs, 2021, 33(2): 180-188.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
[1] PANG Xiongqi,CHEN Dongxia, ZHANG Jun. Concept and categorize of subtle reservoir and problems in its application[J]. Lithologic Reservoirs, 2007, 19(1): 1 -8 .
[2] LEI Bianjun, ZHANG Ji,WANG Caili,WANG Xiaorong, LI Shilin, LIU Bin. Control of high r esolution sequence str atigr aphy on microfacies and reservoir s: A case from the upper Ma 5 member in Tong 5 wellblock, Jingbian Gas Field[J]. Lithologic Reservoirs, 2008, 20(1): 1 -7 .
[3] YANG Jie,WEI Pingsheng, LI Xiangbo. Basic concept, content and research method of petroleum seismogeology[J]. Lithologic Reservoirs, 2010, 22(1): 1 -6 .
[4] WANG Yan-qi1,HU Min-yi1,LIU Fu-yan1,WANG Hui1,HU Zhi-hua1,2. [J]. LITHOLOGIC RESERVOIRS, 2008, 20(3): 44 -48 .
[5] DAI Liming, LI Jianping, ZHOU Xinhuai, CUI Zhongguo, CHENG Jianchun. Depositional system of the Neogene shallow water delta in Bohai Sea area[J]. Lithologic Reservoirs, 2007, 19(4): 75 -81 .
[6] DUAN Youxiang, CAO Jing, SUN Qifeng. Application of auto-adaptive dip-steering technique to fault recognition[J]. Lithologic Reservoirs, 2017, 29(4): 101 -107 .
[7] HUANG Long, TIAN Jingchun, XIAO Ling, WANG Feng. Characteristics and evaluation of Chang 6 sandstone reservoir of Upper Triassic in Fuxian area, Ordos Basin[J]. Lithologic Reservoirs, 2008, 20(1): 83 -88 .
[8] YANG Shiwei, LI Jianming. Characteristics and geological significance of seismites[J]. Lithologic Reservoirs, 2008, 20(1): 89 -94 .
[9] LI Chuanliang, TU Xingwan. Two types of stress sensitivity mechanisms for reservoir rocks:Being favorable for oil recovery[J]. Lithologic Reservoirs, 2008, 20(1): 111 -113 .
[10] LI Jun, HUANG Zhilong, LI Jia, LIU Bo. The pool-forming pattern in the condition of arching in the southeast uplift in Songliao Basin[J]. Lithologic Reservoirs, 2007, 19(1): 57 -61 .
TRENDMD: