Advance Search
CHEN Yang YAO Yan-bin CUI Jin-bang TANG Ji-dan YU Peng SUN Ze-liang, . Analysis on Geological Control Factors of Hydraulic Fracture Extension of Coal Reservoirs in Zhengzhuang Block[J]. COAL SCIENCE AND TECHNOLOGY, 2014, (7).
Citation: CHEN Yang YAO Yan-bin CUI Jin-bang TANG Ji-dan YU Peng SUN Ze-liang, . Analysis on Geological Control Factors of Hydraulic Fracture Extension of Coal Reservoirs in Zhengzhuang Block[J]. COAL SCIENCE AND TECHNOLOGY, 2014, (7).

Analysis on Geological Control Factors of Hydraulic Fracture Extension of Coal Reservoirs in Zhengzhuang Block

More Information
  • Available Online: April 02, 2023
  • Published Date: July 24, 2014
  • In order to study hydraulic fracture extension rule in coal reservoirs, microseismic data of 15 hydraulically fractured wells had been chosen in Zhengzhua ng block, Qinshui Basin. Based on the data of fracture direction, length and height, the geological controlling factors of fracture extension were integratedly investigated from four aspects:coal petrology characteristics, rock-mechanics property, crustal stress conditions and the pre-fractures. The results showed that the hydraulic fracture s orientation were nearly NEE, along the direction of the maximum horizontal principal stress. The vertical fractures were well developed in the study area. The hydrauli C fractures extended more easily in the relative high coal rank reservoirs. Moreover, the fracture length depended on the coal maceral compositions, and they decrease d with increasing tension strength and elastic modulus. Meanwhile, the rock-mechanics property difference between the coal seam and its roof /floor could effectively li mit the extension of vertical fractures. The closure stress increased with the coal seam depth, but because of the pre-fractures, there was a low correlation between the fracture length and burial depth.
  • Related Articles

    [1]WANG Yuanbin, WEI Sixiong, WU Huaying, DUAN Yu, LIU Meng. Detection algorithm for wearing safety helmet under mine based on improved YOLOv5s[J]. COAL SCIENCE AND TECHNOLOGY, 2025, 53(S1): 366-377. DOI: 10.12438/cst.2023-1839
    [2]Li Man Ma Huan, . Simulation research on airflow measuring method of mine main ventilator[J]. COAL SCIENCE AND TECHNOLOGY, 2017, (2).
    [3]Yang Jianhui Tang Xiufeng Zhang JinsongRui Dahu Wang Li, . Analysis on water and soil gushing accident occurred in deep mine air returning shaft during freezing construction[J]. COAL SCIENCE AND TECHNOLOGY, 2016, (3).
    [4]Xu Huidong Yang Renshu Liu Linlin Qin Xiaoguang, . Study and application of new hoisting equipment to large diameter ultra deep mine shaft sinking[J]. COAL SCIENCE AND TECHNOLOGY, 2015, (7).
    [5]ZHANG Ping-song HU Xiong-wu, . Research status on technology of advanced detection by electromagnetic methods in mine laneway[J]. COAL SCIENCE AND TECHNOLOGY, 2015, (1).
    [6]HAN Hui NI Rong-jun LIU Ming ZHAO Ming-bo, . Design and Application of M- BUS to Mine Monitoring and Measuring System[J]. COAL SCIENCE AND TECHNOLOGY, 2014, (11).
    [7]SUN Ji-ping TIAN Z-jian, . Image Monitoring System and Key Technology in Underground Mine[J]. COAL SCIENCE AND TECHNOLOGY, 2014, (1).
    [8]Measurement and Analysis on Deep Borehole Blasting Vibration in Base Rock Section of Mine Shaft[J]. COAL SCIENCE AND TECHNOLOGY, 2012, (1).
    [9]Development on Distributed Mine Temperature and Humidity Monitoring and Measuring System Based on CAN Bus[J]. COAL SCIENCE AND TECHNOLOGY, 2011, (9).
    [10]Improved Shortest Path Algorithm Based on Mine Geographic Network Model[J]. COAL SCIENCE AND TECHNOLOGY, 2011, (2).

Catalog

    Article views PDF downloads Cited by()
    Related

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return