Heart Shape to Fracture Distance: Characterizing Hydraulic Fracture Propagation before Hits

被引:0
作者
Li, Peiyao [1 ,2 ]
Jin, Ge [1 ,2 ]
Hammack, Richard [2 ]
Kohnke, Colton [2 ]
Wu, Kan [3 ]
机构
[1] Colorado Sch Mines, Denver, CO 80401 USA
[2] Natl Energy Technol Lab, Fairfax, VA 22031 USA
[3] Texas A&M Univ, College Stn, TX USA
来源
SPE JOURNAL | 2024年 / 29卷 / 12期
关键词
Fracture mechanics - Fracture testing - Geothermal fields - Geothermal wells - Petroleum reservoir evaluation;
D O I
10.2118/223631-PA
中图分类号
TE [石油、天然气工业];
学科分类号
0820 ;
摘要
Estimating the distance from the hydraulic fracture tip to the monitor well can be useful for fracture characterization, well spacing optimization, and preventing parent- child well interference. A heart- shaped signal is referred to as the extensional precursor of a fracture hit recorded by crosswell strain measurements and can serve as a vital tool for such estimation. This study incorporates the 3D displacement discontinuity method (DDM) to understand the impact of fracture geometry and monitor well offset on the heart- shaped signal's char-acteristics. Results from numerical simulation and analytical solutions reveal a strong linear correlation between the spatial extent of the heart- shaped signal and the fracture tip distance. This relationship was further developed to predict tip distance using field data from the Hydraulic Fracture Test Site 2 (HFTS2). A reasonable approximation result from field data further validates the methodology. In addition, it is worth noting that the estimation accuracy depends on the ratio between fracture dimension and tip distance. The findings of this study offer a novel approach for real- time monitoring and characterizing hydraulic fracture propagation, which can be further used for well spacing optimization in unconventional and enhanced geothermal system reservoir development, as well as caprock integrity monitoring for carbon sequestration projects.
引用
收藏
页码:7122 / 7133
页数:12
相关论文
共 21 条
[1]  
[Anonymous], SPE J, V29, P3017, DOI [10.2118/210315-PA, DOI 10.2118/218005-PA]
[2]  
[Anonymous], 1983, Boundary Element Methods in Solid Mechanics: with applications in rock mechanics and geological engineering, DOI 10.1115/1.3167130
[3]  
[Anonymous], SPE J., V25, DOI [10.2118/202482-PA, DOI 10.2118/202482-PA]
[4]  
Daneshy A, 2011, WORLD OIL, V232, P81
[5]  
Ge Jin, 2017, Leading Edge, V36, P975, DOI 10.1190/tle36120975.1
[6]  
Haffener J., 2022, SPE HYDR FRACT TECHN, DOI [10.2118/209123-MS, DOI 10.2118/209123-MS]
[7]  
Leggett S., 2022, SPE AAPG SEG UNC RES, DOI [10.15530/urtec-2022-3722728, DOI 10.15530/URTEC-2022-3722728]
[8]   Low-frequency distributed acoustic sensing shape factors for fracture front detection [J].
Leggett, Smith .
INTERPRETATION-A JOURNAL OF SUBSURFACE CHARACTERIZATION, 2023, 11 (02) :SB11-SB20
[9]  
Liu Y., 2020, Rock Deformation and Strain- Rate Characterization during Hydraulic Fracturing Treatments: Insights for Interpretation of Low- Frequency Distributed Acoustic- Sensing Signals
[10]   Quantitative Hydraulic-Fracture-Geometry Characterization with Low-Frequency Distributed-Acoustic-Sensing Strain Data: Fracture-Height Sensitivity and Field Applications [J].
Liu, Yongzan ;
Jin, Ge ;
Wu, Kan ;
Moridis, George .
SPE PRODUCTION & OPERATIONS, 2022, 37 (02) :159-168