REN Lan, ZHAO Jinzhou, LIN Ran, ZHOU Changlin. A Dynamic Evolution Model for the Stimulated Reservoir Volume of the Staged Fractured Horizontal Well in Shale Gas Reservoir[J]. Applied Mathematics and Mechanics, 2018, 39(10): 1099-1114. doi: 10.21656/1000-0887.380268
Citation: REN Lan, ZHAO Jinzhou, LIN Ran, ZHOU Changlin. A Dynamic Evolution Model for the Stimulated Reservoir Volume of the Staged Fractured Horizontal Well in Shale Gas Reservoir[J]. Applied Mathematics and Mechanics, 2018, 39(10): 1099-1114. doi: 10.21656/1000-0887.380268

A Dynamic Evolution Model for the Stimulated Reservoir Volume of the Staged Fractured Horizontal Well in Shale Gas Reservoir

doi: 10.21656/1000-0887.380268
Funds:  The National Natural Science Foundation of China(Major Program)(51490653); The National Science Fund for Young Scholars of China(51404204)
  • Received Date: 2017-09-30
  • Rev Recd Date: 2018-04-24
  • Publish Date: 2018-10-01
  • For shale gas reservoir, hydraulic fracturing in horizontal well is the key technology to guarantee its commercial exploitation, and the stimulated reservoir volume (SRV) is a critical parameter deciding the post-fracturing performance. The SRV estimation plays an important role in shale gas fracturing design as well as post-fracturing evaluation, so it has become a hot topic in shale fracturing research. Based on the limitations of existing SRV estimation methods, a dynamic evolution model was built to simulate the forming process of the SRV, which coupled several vital processes during shale fracturing, including the formation stress changing, the reservoir pressure rising and the natural fracture failure mechanism. The real physical process of the SRV formation was fully considered in this model, e.g., the non-planar propagation of multiple hydraulic fractures and the SRV extending with the reservoir permeability, etc., so the model can yield more reliable results for field application. The model was firstly validated with calculated results compared with on-site micro-seismic monitored data for a fractured horizontal well in the Weiyuan shale gas field in southwest China, then it was applied to analyze the forming process and extending behavior of the SRV. The research can not only improve the SRV estimation reliability of multi-stage and multi-cluster fracturing in horizontal shale gas wells, but also provide theoretical guidelines and potential applications for fracturing design and post-fracturing evaluation.
  • loading
  • [1]
    CIPOLLA C L, WARPINSKI N R, MAYERHOFER M J, et al. The relationship between fracture complexity, reservoir properties, and fracture treatment design: SPE 115769[R]. 2008.
    [2]
    MAYERHOFER M J, LOLON E P, WARPINSKI N R, et al. What is stimulated reservoir volume?[J]. SPE Production & Operations,2010,〖STHZ〗 25(1): 89-98.
    [3]
    ZHAO Y L, ZHANG L H, LUO J X, et al. Performance of fractured horizontal well with stimulated reservoir volume in unconventional gas reservoir[J]. Journal of Hydrology,2014,512(10): 447-456.
    [4]
    刘尧文, 廖如刚, 张远, 等. 涪陵页岩气田井地联合微地震监测气藏实例及认识[J]. 天然气工业, 2016,36(10): 56-62.(LIU Yaowen, LIAO Rugang, ZHANG Yuan, et al. Application of surface-downhole combined microseismic monitoring technology in the fuling shale gas field and its enlightenment[J]. Natural Gas Industry,2016,36(10): 56-62.(in Chinese))
    [5]
    NANAYAKKARA A S, ROADARMEL W H, MARSIC S D. Characterizing the stimulated reservoir with a hydraulic deformation index using tiltmeter-based surface microdeformation: SPE 173381[R]. 2015.
    [6]
    PALISCH T, Al-TAILJI W, BARTEL L, et al. Recent advancements in far-field proppant detection: SPE 179161[R]. 2016.
    [7]
    SHAPIRO S A, DINSKE C. Fluid-induced seismicity: pressure diffusion and hydraulic fracturing[J]. Geophysical Prospecting,2009,57(2): 301-310.
    [8]
    YU G, AGUILERA R. 3D analytical modeling of hydraulic fracturing stimulated reservoir volume: SPE 153486[R]. 2012.
    [9]
    MAULIANDA B T, HARELAND G, CHEN S. Geomechanical consideration in stimulated reservoir volume dimension models prediction during multi-stage hydraulic fractures in horizontal wells-glauconite tight formation in hoadley field[C]// The 〖STBX〗48th US Rock Mechanics/Geomechanics Symposium.Minneapolis, Minnesota, 2014.
    [10]
    任岚, 林然, 赵金洲, 等. 基于最优SRV的页岩气水平井压裂簇间距优化设计[J]. 天然气工业, 2017,37(4): 69-79.(REN Lan, LIN Ran, ZHAO Jinzhou, et al. Cluster spacing optimal design for staged fracturing in horizontal shale gas wells based on optimal SRV[J]. Natural Gas Industry,2017,〖STHZ〗 37(4): 69-79.(in Chinese))
    [11]
    WU K, OLSON J E. Simultaneous multifracture treatments: fully coupled fluid flow and fracture mechanics for horizontal wells[J].SPE Journal,2015,20(2): 337-346.
    [12]
    WENG X, KRESSE O, COHEN C E, et al. Modeling of hydraulic fracture network propagation in a naturally fractured formation[J]. SPE Production & Operations,2011,26(4): 368-380.
    [13]
    MEYER B R, BAZAN L W. A discrete fracture network model for hydraulically induced fractures-theory, parametric and case studies: SPE 140514[R]. 2011.
    [14]
    WANG Y, LI X, ZHANG B, et al. Optimization of multiple hydraulically fractured factors to maximize the stimulated reservoir volume in silty laminated shale formation, Southeastern Ordos Basin, China[J]. Journal of Petroleum Science and Engineering,2016,145: 370-381.
    [15]
    VALK P, ECONOMIDES M J. Hydraulic Fracture Mechanics [M]. New York: Wiley,1995.
    [16]
    ERDOGAN F, SIH G C. On the crack extension in plates under plane loading and transverse shear[J]. Journal of Basic Engineering,1963,85(4): 519-525.
    [17]
    OLSON J E. Fracture aperture, length and pattern geometry development under biaxial loading: a numerical study with applications to natural, cross-jointed systems[J]. Geological Society London Special Publications,2007,289(1): 123-142.
    [18]
    ELBEL J L, PIGGOTT A R, MACK M G. Numerical modeling of multilayer fracture treatments: SPE 23982[R]. 1992.
    [19]
    CROUCH S. Solution of plane elasticity problems by the displacement discontinuity method I: infinite body solution[J]. International Journal for Numerical Methods in Engineering,1976,10(2): 301-343.
    [20]
    OLSON J E, WU K. Sequential vs. simultaneous multizone fracturing in horizontal wells: insights from a non-planar, multifrac numerical model: SPE 152602[R]. 2012.
    [21]
    张烈辉. 油气藏数值模拟基本原理[M]. 北京: 石油工业出版社, 2014.(ZHANG Liehui. Introduction for Numerical Simulation of Oil and Gas Reservoir [M]. Beijing: Petroleum Industry Press, 2014.(in Chinese))
    [22]
    WENG X, SESETTY V, KRESSE O. Investigation ofshear-induced permeability in unconventional reservoirs[C]// The 〖STBX〗49th US Rock Mechanics/Geomechanics Symposium.San Francisco, California, USA, 2015.
    [23]
    HOSSAIN M M, RAHMAN M K, RAHMAN S S. A shear dilation stimulation model for production enhancement from naturally fractured reservoirs[J]. SPE Journal,2002,7(2): 183-195.
    [24]
    GUO J, LIU Y. A comprehensive model for simulating fracturing fluid leakoff in natural fractures[J]. Journal of Natural Gas Science and Engineering,2014,21: 977-985.
    [25]
    WARPINSKI N R, TEUFEL L W. Influence of geologic discontinuities on hydraulic fracture propagation[J]. Journal of Petroleum Technology,1987,39(2): 209-220.
    [26]
    LASS H, WALKER M. Vector and Tensor Analysis [M]. McGraw-Hill, 1950.
    [27]
    吕同富, 康兆敏, 方秀男. 数值计算方法[M]. 北京: 清华大学出版社, 2008.(L Tongfu, KANG Zhaomin, FANG Xiunan. Numerical Computation Method [M]. Beijing: Tsinghua University Press, 2008.(in Chinese))
    [28]
    ITO Y, OBARA K. Very low frequency earthquakes within accretionary prisms are very low stress-drop earthquakes[J]. Geophysical Research Letters,2006,33(9): 72-88.
  • 加载中

Catalog

    通讯作者: 陈斌, bchen63@163.com
    • 1. 

      沈阳化工大学材料科学与工程学院 沈阳 110142

    1. 本站搜索
    2. 百度学术搜索
    3. 万方数据库搜索
    4. CNKI搜索

    Article Metrics

    Article views (1191) PDF downloads(954) Cited by()
    Proportional views
    Related

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return