Open Net Zero logo

Filters

Formats:
Select...
Licenses:
Select...
Organizations:
Select...
Tags:
Select...
Shared:
Sensitivities:
Datasets
L o a d i n g
EGS Collab Experiment 1: SIMFIP Notch-164 GRL PaperSource

Characterizing the stimulation mode of a fracture is critical to assess the hydraulic efficiency and the seismic risk related to deep fluid manipulations. We have monitored the three-dimensional displacements of a fluid-driven fracture during water injections in a borehole at ~1.5 km depth in the crystalline rock of the Sanford Underground Research Facility (USA). The fracture initiates at 61% of the minimum horizontal stress by micro-shearing of the borehole on a foliation plane. As the fluid pressure increases further, borehole axial and radial displacements increase with injection time highlighting the opening and sliding of a new hydrofracture growing ~10 m away from the borehole, in accordance with the ambient normal stress regime and in alignment with the microseismicity. Our study reveals how fluid-driven fracture stimulation can be facilitated by a mixed-mode process controlled by the complex hydromechanical evolution of the growing fracture. The data presented in this submission refer to the SIMFIP measurements and analyses of the stimulation tests conducted on the 164 ft (50 m) notch of the Sanford Underground Research Facility (SURF), during the EGS-Collab test 1. In addition to the datafiles, there is the draft of a manuscript submitted to Geophysical Research Letters (GRL).

0
No licence known
Tags:
EGSEGS CollabNew borehole instrumentSIMFIPSURFSanford Underground Research Facilityanisotropyboreholedisplacementenergyexperimentflow ratefoliationfracturegeophysicsgeothermalhydraulichydraulic conductivityhydrofractureinjection testmicro-shearingnucleateseismicseismicityshearshear displacementstimulationstresswellbore
Formats:
TXTPDFCSV
National Renewable Energy Laboratory (NREL)about 1 year ago
EGS Collab Testbed 1: Baseline Cross-well SeismicSource

As part of the geophysical characterization suite for the first EGS Collab tesbed, here are the baseline cross-well seismic data and resultant models. The campaign seismic data have been organized, concatenated with geometry and compressional (P-) & and shear (S-) wave picks, and submitted as SGY files. P-wave data were collected and analyzed in both 2D and 3D, while S-wave data were collected and analyzed in 2D only. Inversion models are provided as point volumes; the volumes have been culled to include only the points within source/receiver array coverage. The full models space volumes are also included, if relevant. An AGU 2018 poster by Linneman et al. is included that provides visualizations/descriptions of the cross-well seismic characterization method, elastic moduli calculations, and images of model inversion results.

0
No licence known
Tags:
EGSEGS CollabSEGYSURFSanford Underground Research FacilityYoungsbaselineboreholebulkcalculationcollabcross-welldatadensityelastic modulienergyenhanced geothermal systemexperimentgeophysicsgeothermalhydraulichydrofractureinversionmodelmodulimodulusp-waveresultss-waveseismicsgyshearstimulationvelocityvisualization
Formats:
ZIPPDFCSV
National Renewable Energy Laboratory (NREL)about 1 year ago