Acoustic emission characterization of microcracking in laboratory-scale hydraulic fracturing tests

被引:2
作者
Jesse Hampton [1 ,2 ,3 ]
Marte Gutierrez [1 ]
Luis Matzar [3 ]
Dandan Hu [3 ]
Luke Frash [4 ]
机构
[1] Department of Civil & Environmental Engineering, Colorado School of Mines
[2] New England Research, Inc
[3] Halliburton
[4] Los Alamos National Laboratory
关键词
Acoustic emission(AE); Microcracking; Hydraulic fracturing; Laboratory-scale testing; Moment tensor analysis; Fracture coalescence; Computed tomography(CT) imaging;
D O I
暂无
中图分类号
TU45 [岩石(岩体)力学及岩石测试];
学科分类号
0801 ; 080104 ; 0815 ;
摘要
Understanding microcracking near coalesced fracture generation is critically important for hydrocarbon and geothermal reservoir characterization as well as damage evaluation in civil engineering structures.Dense and sometimes random microcracking near coalesced fracture formation alters the mechanical properties of the nearby virgin material. Individual microcrack characterization is also significant in quantifying the material changes near the fracture faces(i.e. damage). Acoustic emission(AE) monitoring and analysis provide unique information regarding the microcracking process temporally, and information concerning the source characterization of individual microcracks can be extracted. In this context,laboratory hydraulic fracture tests were carried out while monitoring the AEs from several piezoelectric transducers. In-depth post-processing of the AE event data was performed for the purpose of understanding the individual source mechanisms. Several source characterization techniques including moment tensor inversion, event parametric analysis, and volumetric deformation analysis were adopted.Post-test fracture characterization through coring, slicing and micro-computed tomographic imaging was performed to determine the coalesced fracture location and structure. Distinct differences in fracture characteristics were found spatially in relation to the openhole injection interval. Individual microcrack AE analysis showed substantial energy reduction emanating spatially from the injection interval. It was quantitatively observed that the recorded AE signals provided sufficient information to generalize the damage radiating spatially away from the injection wellbore.
引用
收藏
页码:805 / 817
页数:13
相关论文
共 45 条
[21]   Acoustic and Seismic Emission in Hydraulic Fracturing of Cement Block under Loading [J].
S. V. Serdyukov ;
L. A. Rybalkin ;
A. N. Drobchik ;
V. I. Vostrikov .
Journal of Mining Science, 2022, 58 :920-929
[22]   Hydraulic fracturing in high-temperature granite characterized by acoustic emission [J].
Xing, Yuekun ;
Zhang, Guangqing ;
Luo, Tianyu ;
Jiang, Yongwang ;
Ning, Shiwen .
JOURNAL OF PETROLEUM SCIENCE AND ENGINEERING, 2019, 178 :475-484
[23]   Study on Fracture Mechanism of Hydraulic Fracturing in Sandstone by Acoustic Emission Parameters [J].
Lou, Ye ;
Zhang, Guangqing ;
Wang, Xiaoxiao .
ISRM EUROPEAN ROCK MECHANICS SYMPOSIUM EUROCK 2017, 2017, 191 :291-298
[24]   Effect of injected water on hydraulic fracturing deduced from acoustic emission monitoring [J].
Ishida, T ;
Chen, Q ;
Mizuta, Y .
PURE AND APPLIED GEOPHYSICS, 1997, 150 (3-4) :627-646
[25]   Laboratory hydraulic fracturing test on large-scale pre-cracked granite specimens [J].
Mao, Ruibiao ;
Feng, Zijun ;
Liu, Zhenghe ;
Zhao, Yangsheng .
JOURNAL OF NATURAL GAS SCIENCE AND ENGINEERING, 2017, 44 :278-286
[26]   Predictions of macro-scale fracture geometries from acoustic emission point cloud data in a hydraulic fracturing experiment [J].
Hampton, Jesse ;
Gutierrez, Marte ;
Frash, Luke .
JOURNAL OF PETROLEUM EXPLORATION AND PRODUCTION TECHNOLOGY, 2019, 9 (02) :1175-1184
[27]   Crack Expansion and Fracturing Mode of Hydraulic Refracturing from Acoustic Emission Monitoring in a Small-Scale Field Experiment [J].
Tsuyoshi Ishida ;
Wataru Fujito ;
Hiroto Yamashita ;
Makoto Naoi ;
Hirokazu Fuji ;
Kenichirou Suzuki ;
Hiroya Matsui .
Rock Mechanics and Rock Engineering, 2019, 52 :543-553
[28]   Crack Expansion and Fracturing Mode of Hydraulic Refracturing from Acoustic Emission Monitoring in a Small-Scale Field Experiment [J].
Ishida, Tsuyoshi ;
Fujito, Wataru ;
Yamashita, Hiroto ;
Naoi, Makoto ;
Fuji, Hirokazu ;
Suzuki, Kenichirou ;
Matsui, Hiroya .
ROCK MECHANICS AND ROCK ENGINEERING, 2019, 52 (02) :543-553
[29]   Predictions of macro-scale fracture geometries from acoustic emission point cloud data in a hydraulic fracturing experiment [J].
Jesse Hampton ;
Marte Gutierrez ;
Luke Frash .
Journal of Petroleum Exploration and Production Technology, 2019, 9 :1175-1184
[30]   Characteristics of carbon dioxide fracturing in comparison to conventional water hydraulic fracturing: Evidence from acoustic emission monitoring of small-scale field experiments [J].
Ishida, Tsuyoshi ;
Kishimoto, Yoshinobu ;
Desaki, Shuich ;
Naoi, Makoto ;
Suzuki, Kenichiro ;
Fujii, Hirokazu .
INTERNATIONAL JOURNAL OF ROCK MECHANICS AND MINING SCIENCES, 2023, 172