The development of volume fracturing technique is still in its infancy. A large number of domestic oilfields have attempted ways of hydraulic fracturing, among which Changqing oilfield has made great progress by developing a new technique named segmented multi-cluster fracturing. As the seepage flow mechanism of volume fractured reservoir is still far from perfection, this article tries to propose a basic model for volume fractured vertical wells, which is based on the concept of SRV. Firstly, the seepage flow underground is divided into two processes:seepage flow in reservoir and seepage flow in fracture. Then the seepage in reservoir is studied with Green function and line source function, while the seepage in fracture is assumed as the Darcy flow. Finally, the two processes are coupled at the fracture surface with equivalent pressure and flow rates. The pressure and pressure derivative type curves are obtained by solving flow matrix equations, and the factors related to the type curve are studied. In the end this model is proven to be an efficient model coupling vertical fractured wells, two porosity system and radial composite reservoir, which is a foundation for pressure transient analysis of volume fractured wells.
LIAO Xinwei
,
CHEN Xiaoming
,
ZHAO Xiaoliang
,
WANG Huan
. Pressure transient analysis of volume fracturing well in low permeability oil reservoir[J]. Science & Technology Review, 2016
, 34(7)
: 117
-122
.
DOI: 10.3981/j.issn.1000-7857.2016.07.011
[1] Mayerhofer M J, Lolon E P, Youngblood J E, et al. Integration of microseismic fracture mapping results with numerical fracture network production modeling in the Barnett Shale[R]. Texas:Society of Petroleum Engineers, 2006.
[2] Mayerhofer M J, Lolon E P, Warpinski N R, et al. What is stimulated rock volume?[J]. SPE Journal Paper, 2010, 25(1):89-98.
[3] 陈作, 薛承瑾, 蒋廷学. 页岩气井体积压裂技术在我国的应用建议[J]. 天然气工业, 2010, 30(10):30-32. Chen Zuo, Xue Chengjin, Jiang Tingxue. Proposals for the application of fracturing by stimulated reservoir volume (SRV) in shale gas wells in China[J]. Natural Gas Industry, 2010, 30(10):30-32.
[4] 吴奇, 胥云, 刘玉章. 美国页岩气体积改造技术现状及对我国的启示[J]. 石油钻采工艺, 2011, 33(2):1-7. Wu Qi, Xu Yun, Liu Yuzhang. The current situation of stimulated reservoir volume for shale in U.S. and its inspiration to China[J]. Oil Drilling & Production Technology, 2011, 33(2):1-7.
[5] 吴奇, 胥云, 王晓泉. 非常规油气藏体积改造技术-内涵, 优化设计与实现[J]. 石油勘探与开发, 2012, 39(3):352-358. Wu Qi, Xu Yun, Wang Xiaoquan. Volume fracturing technology of unconventional reservoirs:Connotation, optimization design and implementation[J]. Petroleum Exploration & Development, 2012, 39(3):352-358.
[6] 吴奇, 胥云, 张守良. 非常规油气藏体积改造技术核心理论与优化设计关键[J]. 石油学报, 2014, 35(4):706-714. Wu Qi, Xu Yun, Zhang Shouliang. The core theories and key optimization designs of volume stimulation technology for unconventional reservoirs[J]. Acta petrolei Sinica, 2014, 35(4):706-714.
[7] Medeiros F, Ozkan E, Kazemi H. Productivity and drainage area of fractured horizontal wells in tight gas reservoirs[R]. Denver, Colorado, Society of Petroleum Engineers, 2007.
[8] Clarkson C, Pedersen P. Tight oil production analysis:Adaptation of existing rate-transient analysis techniques[R]. Calgary, Alberta, Society of Petroleum Engineers, 2010.
[9] Brown M, Ozkan E, Raghavan R, et al. Practical solutions for pressure transient responses of fractured horizontal wells in unconventional reservoirs[R]. New Orleans, Louisiana:Society of Petroleum Engineers, 2009.
[10] Brohi I, Pooladi-Darvish M, Aguilera R. Modeling fractured horizontal wells as dual porosity composite reservoirs-application to tight gas, shale gas and tight oil cases[R]. Anchorage, Alaska:Society of Petroleum Engineers, 2011.
[11] Zhou W T, Banerjee R, Poe B. Semi-analytical production simulation of complex hydraulic fracture networks[R]. Doha, Qatar:Society of Petroleum Engineers, 2012.
[12] Xu B X, Li X F, Haghighi. Development of new type cureves for production analysis in naturally fractured shale gas/tight gas reservoirs[C]. Beijing:International Petroleum Technology Conference, 2013.
[13] Cinco L, Samaniego V, Dominguez A. Transient pressure behavior for a well with a finite-conductivity vertical fracture[J]. Society of Petroleum Engineers Journal, 1978, 18(4):253-264.
[14] Cinco-Ley H, Samaniego F V. Transient pressure analysis for fractured wells[J]. Journal of Petroleum Technology, 1981, 33(9):1749-1766.
[15] Cinco-Ley H, Meng H-Z. Pressure transient analysis of wells with finite conductivity vertical fractures in double porosity reservoirs[R]. Houston, TX:Society of Petroleum Engineers, 1988.
[16] 陈晓明, 廖新维, 李东晖, 等. 直井体积压裂不稳定试井研究——双孔双区模型[J]. 油气井测试, 2014, 23(4):4-8. Chen Xiaoming, Liao Xinwei, Li Donghui, et al. Pressure transient analysis of volume fracturing vertical well:Double-porosity doublezone model[J]. Well Testing, 2014, 23(4):4-8.
[17] Warren J E, Root P J. The behavior of naturally fractured reservoirs[J]. SPE Journal Paper, 1963, 3(3):245-255.
[18] 廖新维, 沈平平. 现代试井分析[M]. 北京:石油工业出版社, 2002. Liao Xinwei, Shen Pingping. Modern well test[M]. Beijing:Petroleum Industry Press, 2002.
[19] Fu Z J, Chen W, Yang H T. Boundary particle method for Laplace transformed time fractional diffusion equations[J]. Journal of Computational Physics, 2013, 235:52-66.
[20] 同登科, 陈钦雷. 关于Laplace数值反演Stehfest方法的一点注记[J]. 石油学报, 2001, 22(6):91-92. Tong Dengke, Chen Qinlei. Note on stehfest method of Laplace numerical inversion[J]. Acta Petrolei Sinica, 2001, 22(6):91-92.