Unfortunately this page does not have a mobile or narrow screen view. Please switch to a desktop computer or increase the size of your browser. For tablets try flipping the screen.

Data Publication

Experimental data for permeability and stiffness measurements of fractured Flechtingen sandstone measured with a triaxial compression apparatus

Kluge, Christian | Blöcher, Guido | Hofmann, Hannes | Barnhoorn, Auke | Schmittbuhl, Jean | Bruhn, David

GFZ Data Services

(2021)

Faults and fractures form the largest contrast of fluid flow in the subsurface, while their permeability is highly affected by effective pressure changes. In this experimental study, fractured low-permeability Flechtingen (Rotliegend) sandstones were cyclically loaded in a MTS tri-axial compression cell. Two different loading scenarios were considered: “continuous cyclic loading” (CCL) and “progressive cyclic loading” (PCL). During continuous cyclic loading, a displaced tensile fracture was loaded hydrostatically from 2 to 60 MPa in several repeated cycles. During progressive cyclic loading, the load was increased with a step-wise function (15, 30, 45 and 60 MPa) and unloaded after every loading step. For full elasticity of rock matrix deformation each rock sample has been preconditioned up to 65 MPa. After that, an artificial tensile fracture was introduced into the sample using the Brazilian Disk test. The fractured sample was installed into the MTS triaxial cell at a given offset of 0.5 mm and hydrostatic loading was applied accordingly. The fracture permeability was measured continuously using the cubic law calculated from the hydraulic aperture. Fracture closure was measured using LVDT extensometers during the entire experiment and the resulting fracture closure and stiffness was calculated accordingly. The total deformation of the sample was corrected by the amount of elastic deformation of the rock matrix to obtain the fracture closure only. Potential changes to the fracture surface topography before and after the experiments were analysed from high-resolution surface scans obtained by a 3D profilometer using the fringe pattern projection. The scale-independent roughness exponent was calculated using power spectral density method assuming self-affinity. The fracture aperture distribution and contact-area ratio was calculated by matching the best fitting principal planes of the bottom and top surface and applying a grid search algorithm. The results showed a “stress-memory” effect of fracture stiffness during progressive loading that can be used to identify previous stress states in fractures. This effect is characterized by a transition from a non-linear to a linear (reversible to non-reversible) behaviour of specific fracture stiffness when a previous stress-maximum is exceeded. Furthermore, the evolution of fracture permeability shows less reduction during progressive cyclic loading compared to continuous cyclic loading. The data measured during the flow-through experiment under varying effective pressure are provided in the file “MTS_data.zip”. The data are provided as separate text-files as well as in Excel format with different spreadsheets, such that each figure in the paper can be recalculated and that the underlying data is comprehensive. The name of all three rock samples is given in the file name including the type of the experiment (CCL or PCL). The fracture surfaces and the fracture aperture distributions are found within the file “Surface_data.zip”. This file contains the fracture data of each of the three rock samples as point cloud data (text-files), as well the data calculated from the surfaces.

Keywords


Originally assigned keywords
laboratory testing
fracture
permeability
stiffness
cyclic loading
SEDIMENTARY ROCK PHYSICALOPTICAL PROPERTIES
SEDIMENTS
STRAIN

Corresponding MSL vocabulary keywords
modelled fracture
permeability
unconsolidated sediment
strain
strain

MSL enriched keywords
Modeled structure
modelled deformation structure
modelled fracture
Measured property
permeability
unconsolidated sediment
strain
Measured property
strain
sedimentary rock
sandstone
Apparatus
deformation testing
compression testing
triaxial compression apparatus
wacke
Slochteren sandstone
general sample characterization
size and shape analysis
profilometer
elasticity
fracture permeability
Apparatus
characterization of modelling material
size and shape analysis
profilometer
elasticity
Analyzed feature
deformation microstructure
pressure solution microstructure
strain or pressure shadow

MSL enriched sub domains i

analogue modelling of geologic processes
rock and melt physics
microscopy and tomography


Source publisher

GFZ Data Services


DOI

10.5880/gfz.4.8.2021.007


Authors

Kluge, Christian

0000-0001-6175-6176

GFZ German Research Centre for Geosciences, Potsdam, Germany; Department of Geoscience and Engineering, Delft University of Technology, Delft, The Netherlands;

Blöcher, Guido

0000-0002-8589-9742

GFZ German Research Centre for Geosciences, Potsdam, Germany; Institute de Physique du Globe de Strasbourg, Strasbourg Cedex, France;

Hofmann, Hannes

0000-0003-0778-6141

GFZ German Research Centre for Geosciences, Potsdam, Germany;

Barnhoorn, Auke

0000-0002-3074-5535

Department of Geoscience and Engineering, Delft University of Technology, Delft, The Netherlands;

Schmittbuhl, Jean

0000-0002-7000-0618

Institute de Physique du Globe de Strasbourg, Strasbourg Cedex, France;

Bruhn, David

0000-0003-0228-3553

GFZ German Research Centre for Geosciences, Potsdam, Germany; Department of Geoscience and Engineering, Delft University of Technology, Delft, The Netherlands;


Contributers

Kluge, Christian

ContactPerson

GFZ German Research Centre for Geosciences, Potsdam, Germany;


References

DOI of paper when available

IsSupplementTo

Hofmann, H., Blöcher, G., Milsch, H., Babadagli, T., & Zimmermann, G. (2016). Transmissivity of aligned and displaced tensile fractures in granitic rocks during cyclic loading. International Journal of Rock Mechanics and Mining Sciences, 87, 69–84. https://doi.org/10.1016/j.ijrmms.2016.05.011

10.1016/j.ijrmms.2016.05.011

Cites

Pei, L., Blöcher, G., Milsch, H., Deon, F., Zimmermann, G., Rühaak, W., Sass, I., & Huenges, E. (2016). Thermal strain in a water-saturated limestone under hydrostatic and deviatoric stress states. Tectonophysics, 688, 49–64. https://doi.org/10.1016/j.tecto.2016.09.020

10.1016/j.tecto.2016.09.020

Cites

Schmittbuhl, J., Schmitt, F., & Scholz, C. (1995). Scaling invariance of crack surfaces. Journal of Geophysical Research: Solid Earth, 100(B4), 5953–5973. Portico. https://doi.org/10.1029/94jb02885

10.1029/94JB02885

Cites

Goebel, T., Kwiatek, G., Stanchits, S., &amp; Davidsen, J. (2021). <i>Source parameters of Acoustic Emissions from triaxial experiments on Westerly granite, Aue Granite and Flechtigen Sandstone</i> (Version 1.0) [Data set]. GFZ Data Services. https://doi.org/10.5880/GFZ.4.2.2020.004

10.5880/GFZ.4.2.2020.004

References


Contact

Kluge, Christian

GFZ German Research Centre for Geosciences, Potsdam, Germany;


Citiation

Kluge, C., Blöcher, G., Hofmann, H., Barnhoorn, A., Schmittbuhl, J., & Bruhn, D. (2021). Experimental data for permeability and stiffness measurements of fractured Flechtingen sandstone measured with a triaxial compression apparatus [Data set]. GFZ Data Services. https://doi.org/10.5880/GFZ.4.8.2021.007


Geo location(s)

Sventesius Quarry near Flechtingen, Germany