Migration and distribution laws of proppant in multi-scale fractures during deep shale fracturing

被引:0
|
作者
Guo, Jianchun [1 ]
Tang, Tang [2 ]
Zhang, Tao [1 ]
Zhou, Hangyu [1 ]
Liu, Yuxuan [1 ]
Li, Mingfeng [1 ]
Yang, Ruoyu [3 ]
机构
[1] State Key Laboratory of Oil & Gas Reservoir Geology and Exploitation, Southwest Petroleum University, Sichuan, Chengdu,610500, China
[2] Shale Gas Research Institute, PetroChina Southwest Oil & Gasfield Company, Sichuan, Chengdu,610051, China
[3] Exploration Department of PetroChina Southwest Oil & Gasfield Company, Sichuan, Chengdu,610051, China
关键词
Shale;
D O I
10.3787/j.issn.1000-0976.2024.07.001
中图分类号
学科分类号
摘要
The developed natural fractures and bedding fractures in deep shale facilitates the formation of the multi-scale fracture structure composed of main fractures, branch fractures and secondary microfractures after volumetric fracturing, but influenced by high vertical stress and horizontal stress difference, the apertures of the hydraulic fractures in deep shale are extremely small and the aperture difference between main fractures and secondary fractures is large. In order to figure out the migration mechanisms and distribution laws of proppant in multi-scale fractures, this paper establishes a large visual experiment system of proppant transport, and studies the influence laws of pumping displacement, liquid viscosity, proppant particle size, proppant concentration and fracture characteristics parameter on proppant migration and distribution. Finally, based on the water-electricity similarity principle, the overall fracture conductivity is calculated, evaluated and analyzed. And the following research results are obtained. First, the proppant in fractures accumulates in many modes, which is controlled by the proppant carrying capacity of fluid. Second, the proppant diverting efficiency is under the influence of multiple factors, and can be improved by increasing the displacement or decreasing the proppant particle size. Third, in multi-scale fractures, the non-uniform distribution of proppant can be improved to some extent by increasing the displacement or the fracturing fluid viscosity, but the fracture conductivity increases first and then decreases. Fourth, based on the proppant diverting results and the proppant distribution laws in multi-fractures comprehensively, it is recommended to follow the idea of large displacement & low viscosity pumping to ensure the proportion of large-particle size proppant with an appropriate amount of small-particle size proppant, so that a high-conductivity fracture body of high conductivity near the wellbore & support far from the wellbore is formed. In conclusion, the proppant migration and accumulation modes under different conditions are studied comprehensively and systematically using the large visual experiment system of proppant transport in multi-scale fractures. The research results can provide a theoretical support for the design and optimization of the pumping parameters in deep shale fracturing. © 2024 Natural Gas Industry Journal Agency. All rights reserved.
引用
收藏
页码:1 / 11
相关论文
共 50 条
  • [21] Multi-Scale Distribution Deep Variational Autoencoder for Explanation Generation
    Cai, Zefeng
    Wang, Linlin
    de Melo, Gerard
    Sun, Fei
    He, Liang
    FINDINGS OF THE ASSOCIATION FOR COMPUTATIONAL LINGUISTICS (ACL 2022), 2022, : 68 - 78
  • [22] Laboratory scale research on the impact of stress shadow and natural fractures on fracture geometry during horizontal multi-staged fracturing in shale
    Zhou, Jian
    Zeng, Yijin
    Jiang, Tingxue
    Zhang, Baoping
    INTERNATIONAL JOURNAL OF ROCK MECHANICS AND MINING SCIENCES, 2018, 107 : 282 - 287
  • [23] Multi-Scale Microfluidics for Transport in Shale Fabric
    Ling, Bowen
    Khan, Hasan J.
    Druhan, Jennifer L.
    Battiato, Ilenia
    ENERGIES, 2021, 14 (01)
  • [24] Multi-scale modelling of gas transport and production evaluation in shale reservoir considering crisscrossing fractures
    Micheal, Marembo
    Xu, WenLong
    Xu, HengYu
    Zhang, JiaNing
    Jin, HongJie
    Yu, Hao
    Wu, HengAn
    JOURNAL OF NATURAL GAS SCIENCE AND ENGINEERING, 2021, 95
  • [25] Feedback Control of Proppant Bank Heights During Hydraulic Fracturing for Enhanced Productivity in Shale Formations
    Siddhamshetty, Prashanth
    Kwon, Joseph Sang-Il
    Liu, Shuai
    Valko, Peter P.
    AICHE JOURNAL, 2018, 64 (05) : 1638 - 1650
  • [26] Multi-scale cohesive laws in hierarchical materials
    Yao, Haimin
    Gao, Huajian
    INTERNATIONAL JOURNAL OF SOLIDS AND STRUCTURES, 2007, 44 (25-26) : 8177 - 8193
  • [27] Induced Stress and Interaction of Fractures During Hydraulic Fracturing in Shale Formation
    Zhou, Desheng
    Zheng, Peng
    Peng, Jiao
    He, Pei
    JOURNAL OF ENERGY RESOURCES TECHNOLOGY-TRANSACTIONS OF THE ASME, 2015, 137 (06):
  • [28] Multi-Scale Deep Pixel Distribution Learning for Concrete Crack Detection
    Wu, Xuanyi
    Ma, Jianfei
    Sun, Yu
    Zhao, Chenqiu
    Basu, Anup
    2020 25TH INTERNATIONAL CONFERENCE ON PATTERN RECOGNITION (ICPR), 2021, : 6577 - 6583
  • [29] On multi-scale concepts for multi-dimensional conservation laws
    Gottschlich-Müller, B
    Müller, S
    NUMERICAL TREATMENT OF MULTI-SCALE PROBLEMS, 2001, 70 : 119 - 133
  • [30] Slickwater residues in shale multi-scale pore structures
    Li, Jun
    Ning, Zhengfu
    Li, Qiang
    Huang, Qiming
    PHYSICS OF FLUIDS, 2024, 36 (12)