Stabilized Water-Cut in Carbonate Naturally Fractured Reservoirs With Bottom Water With an Implication in Well Spacing Design for Recovery Optimization

被引:6
|
作者
Prasun, Samir [1 ]
Wojtanowicz, Andrew K. [2 ]
机构
[1] Louisiana State Univ, Dept Petr Engn, Apt 1252,275 West Roosevelt St, Baton Rouge, LA 70802 USA
[2] Louisiana State Univ, Dept Petr Engn, 3212A,PFT Hall, Baton Rouge, LA 70803 USA
关键词
naturally fractured reservoirs; water coning; reservoir simulation; recovery; well spacing; PERMEABILITY; SIMULATION; FLOW; WETTABILITY; INTEGRATION; MODEL;
D O I
10.1115/1.4045922
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Maximum stabilized water-cut (WC), also known as ultimate water-cut in a reservoir with bottom-water coning, provides important information to decide if reservoir development is economical. To date, theory and determination of stabilized water-cut consider only single-permeability systems so there is a need to extend this concept to naturally fractured reservoirs (NFRs) in carbonate rocks-known for severe bottom-water invasion. This work provides insight of the water coning mechanism in NFR and proposes an analytical method for computing stabilized water-cut and relating to well-spacing design. Simulated experiments on a variety of bottom-water hydrophobic NFRs have been designed, conducted, and analyzed using the dual-porosity/dual-permeability (DPDP) commercial software. They show a pattern of water-cut development in NFR comprising the early water breakthrough and very rapid increase followed by water-cut stabilization stage, and the final stage with progressive water-cut. The initial steply increase of water-cut corresponds to water invading the fractures. The stabilized WC production stage occurs when oil is displaced at a constant rate from matrix to the water-producing fractures. During this stage, water invades matrix at small values of capillary forces so they do not oppose water invasion. In contrast, during the final stage (with progressing water cut), the capillary forces grow significantly so they effectively oppose water invasion resulting in progressive water cut. A simple analytical model explains the constant rate of oil displacement by considering the driving effect of gravity and viscous forces at a very small value of capillary pressure. The constant oil displacement effect is confirmed with a designed series of simulation experiments for a variety of bottom-water NFRs. Statistical analysis of the results correlates the duration of the stabilized WC stage with production rate and well-spacing and provides the basis for optimizing the recovery. Results show that stabilized water-cut stage does not significantly contribute to recovery, so the stage needs to be avoided. Proposed is a new method for finding the optimum well spacing that eliminates the stabilized WC stage while maximizing recovery. The method is demonstrated for the base-case NFR.
引用
收藏
页数:12
相关论文
共 40 条
  • [31] A Semi-Analytical Model for Predicting Horizontal Well Performances in Fractured Gas Reservoirs With Bottom-Water and Different Fracture Intensities
    Tan, Yongsheng
    Li, Haitao
    Zhou, Xiang
    Jiang, Beibei
    Wang, Yongqing
    Zhang, Nan
    JOURNAL OF ENERGY RESOURCES TECHNOLOGY-TRANSACTIONS OF THE ASME, 2018, 140 (10):
  • [32] Using cyclic alternating water injection to enhance oil recovery for carbonate reservoirs developed by linear horizontal well pattern
    Li Y.
    Zhao L.
    Wang S.
    Sun L.
    Zhang W.
    Yang Y.
    Hu D.
    Chen Y.
    Shiyou Kantan Yu Kaifa/Petroleum Exploration and Development, 2021, 48 (05): : 986 - 994
  • [33] Using cyclic alternating water injection to enhance oil recovery for carbonate reservoirs developed by linear horizontal well pattern
    LI Yong
    ZHAO Limin
    WANG Shu
    SUN Liang
    ZHANG Wenqi
    YANG Yang
    HU Dandan
    CHEN Yihang
    Petroleum Exploration and Development, 2021, (05) : 1139 - 1151
  • [34] Using cyclic alternating water injection to enhance oil recovery for carbonate reservoirs developed by linear horizontal well pattern
    Li Yong
    Zhao Limin
    Wang Shu
    Sun Liang
    Zhang Wenqi
    Yang Yang
    Hu Dandan
    Chen Yihang
    PETROLEUM EXPLORATION AND DEVELOPMENT, 2021, 48 (05) : 1139 - 1151
  • [35] Experimental Study on Alternating Injection of Silica and Zirconia Nanoparticles with Low Salinity Water and Surfactant into Fractured Carbonate Reservoirs for Enhanced Oil Recovery
    Dordzie, Gideon
    Dejam, Morteza
    INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2022, 61 (43) : 16328 - 16340
  • [36] Enhanced oil recovery from fractured carbonate reservoirs using nanoparticles with low salinity water and surfactant: A review on experimental and simulation studies
    Dordzie, Gideon
    Dejam, Morteza
    ADVANCES IN COLLOID AND INTERFACE SCIENCE, 2021, 293
  • [37] Investigation of immiscible CO2 and C1 injection and comparison with water injection for enhanced oil recovery in naturally fractured reservoirs
    Sadeghi, M.
    Movahedinia, A.
    Fath, A. Hashemi
    PETROLEUM SCIENCE AND TECHNOLOGY, 2016, 34 (03) : 232 - 239
  • [38] An Equivalent Fracture Element-Based Semi-Analytical Approach to Evaluate Water-Flooding Recovery Efficiency in Fractured Carbonate Reservoirs
    Zhao, Wenqi
    Zhao, Lun
    Wu, Qianhui
    Hou, Qingying
    Jia, Pin
    Hou, Jue
    PROCESSES, 2025, 13 (01)
  • [39] Fine Correlation and Well Pattern Optimization of Extra-high Water Cut Reservoirs: Case Study of-With Fuyu Oilfield as an Example
    Li Z.
    Wang H.
    Jiang Z.
    Yue B.
    Wu Z.
    Journal of Engineering Science and Technology Review, 2022, 15 (03) : 197 - 209
  • [40] Optimization of Low Salinity Water/Surfactant Flooding Design for Oil-Wet Carbonate Reservoirs by Introducing a Negative Salinity Gradient
    Shakeel, Mariam
    Samanova, Aida
    Pourafshary, Peyman
    Hashmet, Muhammad Rehan
    ENERGIES, 2022, 15 (24)