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Journal article

Different effects of temperature and salinity on permeability reduction by fines migration in Berea sandstone

In Geothermics 2015, Volume 53, pp. 225-235
From

Department of Civil Engineering, Technical University of Denmark1

Section for Geotechnics and Geology, Department of Civil Engineering, Technical University of Denmark2

Geological Survey of Denmark and Greenland3

University of Leeds4

Center for Energy Resources Engineering, Centers, Technical University of Denmark5

Hot water injection into geothermal aquifers is considered in order to store energy seasonally. Berea sandstone is often used as a reference formation to study mechanisms that affect permeability in reservoir sandstones. Both heating of the pore fluid and reduction of the pore fluid salinity can reduce permeability in Berea sandstone.

These effects could be caused by mobilisation of fines by increasing the repulsive electrical double layer forces among sandstone grains and the fines. We investigated the reversibility and the dependence on flow velocity and flow direction of the permeability change by means of flow through experiments and examined thin sections of samples prior to and after tests.

A permeability reduction at 20 degrees C with decreasing salinity was not reversed by restoring the salinity, whereas a permeability reduction due to heating to 80 degrees C was reversible by restoring the temperature to 20 degrees C. A reversible permeability increase with increasing flow rate was observed at 80 degrees c but not at 20 degrees C.

We observed no difference in the distribution of kaolinite clay minerals in thin section of untested and tested samples. Dissolution of iron bearing carbonates and precipitation of iron hydroxides was observed but no effect on permeability was found. The experimental results suggest that different mechanisms are responsible for permeability reduction depending on temperature and salinity. (C) 2014 Elsevier Ltd.

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Language: English
Year: 2015
Pages: 225-235
ISSN: 18793576 and 03756505
Types: Journal article
DOI: 10.1016/j.geothermics.2014.06.004
ORCIDs: Fabricius, Ida Lykke and 0000-0001-7337-6840

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