Subsidence above irregular-shaped reservoirs

被引:2
|
作者
Pei, Xuehao [1 ]
Liu, Yuetian [1 ]
Song, Laiming [2 ]
Mi, Liao [3 ]
Xue, Liang [1 ]
Li, Guanlin [1 ]
机构
[1] China Univ Petr, State Key Lab Petr Resources & Prospecting, Beijing 102249, Peoples R China
[2] CNOOC Res Inst Co Ltd, Beijing 100028, Peoples R China
[3] China United Coalbed Methane Co Ltd, Beijing 100011, Peoples R China
基金
中国国家自然科学基金; 北京市自然科学基金;
关键词
Land subsidence; Poroelasticity; Irregular shaped; COUPLED RESERVOIR; FIELD; SEISMICITY; COMPACTION;
D O I
10.1016/j.ijrmms.2023.105367
中图分类号
P5 [地质学];
学科分类号
0709 ; 081803 ;
摘要
The exploitation of liquids and gases from certain depths can cause land subsidence, which poses a threat to the safety of surface pipelines and buildings. Accurate subsidence prediction is an important part of environmental impact assessment involving oil and gas reservoir development. Currently, the analytical method research on land subsidence due to oil and gas reservoir development only focuses on regular reservoir shapes and uniform pressure drop, the numerical research has the problem of low calculation accuracy in far-field large grid. There exists limited guiding significance for actual reservoir development. In this study, we extended the classical Geertsma's method by considering the mechanical effects due to uneven pore pressure drop and changes in fluid density in the reservoir. Accordingly, we established a complete description of the equivalent body force and equivalent surface force. Further, we obtained the solution based on Mindlin's basic solution and the convolution method. The proposed method exhibited better generality than others, and can ensure the same solution accuracy in the far and near fields. We conducted case studies to demonstrate that this method can be used to directly evaluate actual oil reservoirs of any shape and pressure distribution. It can also be used to accurately analyze the maximum subsidence position. The calculation results showed that the decrease of reservoir pressure will cause land subsidence, and the decrease in fluid density leads to a certain uplift effect on the formation, resulting in forming subsidence, micro-uplift and stable areas on the land. Moreover, the position of the maximum subsidence point changes with the change in pressure distribution. The proposed method demonstrated guiding significance for actual reservoir development.
引用
收藏
页数:10
相关论文
共 50 条
  • [21] Automatic Learning of Pushing Strategy for Delivery of Irregular-Shaped Objects
    Lau, Manfred
    Mitani, Jun
    Igarashi, Takeo
    2011 IEEE INTERNATIONAL CONFERENCE ON ROBOTICS AND AUTOMATION (ICRA), 2011,
  • [22] Augmenting Deformable Part Models with Irregular-shaped Object Patches
    Mottaghi, Roozbeh
    2012 IEEE CONFERENCE ON COMPUTER VISION AND PATTERN RECOGNITION (CVPR), 2012, : 3116 - 3123
  • [23] Additional test results of pipeline with corrosion—Irregular-shaped defects
    A. C. Benjamin
    A. R. Franzoi
    J. J. Leal C.
    J. L. F. Freire
    R. D. Vieira
    J. L. C. Diniz
    Experimental Techniques, 2010, 34 : 68 - 75
  • [24] RIG FOR COMPRESSION TESTING OF IRREGULAR-SHAPED PARTICLES (EXCHANGE OF EXPERIENCE)
    BELOSHAPKA, NI
    BALANIN, VK
    INDUSTRIAL LABORATORY, 1989, 55 (08): : 989 - 990
  • [25] Irregular-Shaped Event Boundary Estimation in Wireless Sensor Networks
    Kundu, Srabani
    Das, Nabanita
    Roy, Sasanka
    Saha, Dibakar
    PROGRESS IN INTELLIGENT COMPUTING TECHNIQUES: THEORY, PRACTICE, AND APPLICATIONS, VOL 2, 2018, 719 : 423 - 435
  • [26] The irregular-shaped fractal antennas for ultra wideband radio systems
    Krupenin, S. V.
    Kolesov, V. V.
    Potapov, A. A.
    Petrova, N. G.
    ULTRAWIDEBAND AND ULTRASHORT IMPULSE SIGNALS, PROCEEDINGS, 2006, : 323 - +
  • [27] THE USE OF THE FRACTAL DIMENSION TO QUANTIFY THE MORPHOLOGY OF IRREGULAR-SHAPED PARTICLES
    ORFORD, JD
    WHALLEY, WB
    SEDIMENTOLOGY, 1983, 30 (05) : 655 - 668
  • [28] A procedure for slicing and characterizing soft heterogeneous and irregular-shaped tissue
    Bonomo, Francesco P.
    Gregory, Jonathan J. S.
    Barrera, Olga
    MATERIALS TODAY-PROCEEDINGS, 2020, 33 : 2020 - 2026
  • [29] CALCULATION OF REFERENCE STRESSES FOR CIRCUMFERENTIAL IRREGULAR-SHAPED DEFECTS IN PIPES
    Orynyak, I. V.
    Ageev, S. M.
    STRENGTH OF MATERIALS, 2011, 43 (06) : 673 - 686
  • [30] Calculation of reference stresses for circumferential irregular-shaped defects in pipes
    I. V. Orynyak
    S. M. Ageev
    Strength of Materials, 2011, 43 : 673 - 686