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 11 条
[1]  
Nonlinear viscoelastic behavior of sedimentary rocks, Part II: Hysteresis effects and influence of type of fluid on elastic moduli[J] . Azra N. Tutuncu,Augusto L. Podio,Mukul M. Sharma.Geophysics . 1998 (1)
[2]  
Replica inference approach to unsupervised multiscale image segmentation[J] . Hu Dandan,Ronhovde Peter,Nussinov Zohar.Physical review. E, Statistical, nonlinear, and soft matter physics . 2012 (1 Pt)
[3]  
On the resolution of the isotropic component in moment tensor inversion[J] . H.Dufumier,L.Rivera.Geophysical Journal International . 2007 (3)
[4]   Estimation of cracking and damage mechanisms in rock under triaxial compression by moment tensor analysis of acoustic emission [J].
Chang, SH ;
Lee, CI .
INTERNATIONAL JOURNAL OF ROCK MECHANICS AND MINING SCIENCES, 2004, 41 (07) :1069-1086
[5]  
Acoustic emission moment tensor analysis: development for crack identification in concrete materials[J] . Mitsuhiro Shigeishi,Masayasu Ohtsu.Construction and Building Materials . 2001 (5)
[6]   Laboratory studies of acoustic emission prior to uniaxial compressive rock failure [J].
Rudajev, V ;
Vilhelm, J ;
Lokajicek, T .
INTERNATIONAL JOURNAL OF ROCK MECHANICS AND MINING SCIENCES, 2000, 37 (04) :699-704
[7]   ACOUSTIC-EMISSION THEORY FOR MOMENT TENSOR ANALYSIS [J].
OHTSU, M .
RESEARCH IN NONDESTRUCTIVE EVALUATION, 1995, 6 (03) :169-184
[8]  
Moment tensor inversion of induced microseisnmic events: Evidence of non‐shear failures in the ?4 < M < ?2 moment magnitude range[J] . Bruno Feignier,R. Paul Young.Geophysical Research Letters . 1992 (14)
[9]  
Simplified moment tensor analysis and unified decomposition of acoustic emission source: Application to in situ hydrofracturing test[J] . Masayasu Ohtsu.Journal of Geophysical Research: Solid Earth . 1991 (B4)
[10]   THEORY AND ANALYSIS OF DEFORMATION MOMENT TENSOR DUE TO MICROCRACKING [J].
ENOKI, M ;
KISHI, T .
INTERNATIONAL JOURNAL OF FRACTURE, 1988, 38 (04) :295-310