Attenuation of Seismic Waves in Partially Saturated Berea Sandstone as a Function of Frequency and Confining Pressure

被引:7
作者
Tisato, Nicola [1 ,2 ]
Madonna, Claudio [3 ]
Saenger, Erik H. [4 ,5 ,6 ]
机构
[1] Univ Texas Austin, Jackson Sch Geosci, Austin, TX 78712 USA
[2] Univ Toronto, Dept Civil Engn, Toronto, ON, Canada
[3] Swiss Fed Inst Technol, Inst Geol, Dept Earth Sci, Struct Geol & Tecton Grp, Zurich, Switzerland
[4] Hsch Bochum, Fachbereich Bau & Umweltingenieurwesen, Bochum, Germany
[5] Fraunhofer IEG, Bochum, Germany
[6] Ruhr Univ Bochum, Fak Geowissensch, Bochum, Germany
关键词
Attenuation of seismic waves; dispersion of seismic waves; near-surface geophysics; sedimentary rocks; confining pressure; saturation; LABORATORY MEASUREMENTS; SQUIRT-FLOW; VELOCITY DISPERSION; COMPRESSIONAL WAVES; GAS SATURATION; ELASTIC-WAVES; POROUS ROCKS; PORE FLUIDS; MODEL; DRY;
D O I
10.3389/feart.2021.641177
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
Frequency-dependent attenuation (1/Q) should be used as a seismic attribute to improve the accuracy of seismic methods and imaging of the subsurface. In rocks, 1/Q is highly sensitive to the presence of saturating fluids. Thus, 1/Q could be crucial to monitor volcanic and hydrothermal domains and to explore hydrocarbon and water reservoirs. The experimental determination of seismic and teleseismic attenuation (i.e., for frequencies < 100 Hz) is challenging, and as a consequence, 1/Q is still uncertain for a broad range of lithologies and experimental conditions. Moreover, the physics of elastic energy absorption (i.e., 1/Q) is often poorly constrained and understood. Here, we provide a series of measurements of seismic wave attenuation and dynamic Young's modulus for dry and partially saturated Berea sandstone in the 1-100 Hz bandwidth and for confining pressure ranging between 0 and 20 MPa. We present systematic relationships between the frequency-dependent 1/Q and the liquid saturation, and the confining pressure. Data in the seismic bandwidth are compared to phenomenological models, ultrasonic elastic properties and theoretical models for wave-induced-fluid-flow (i.e., squirt-flow and patchy-saturation). The analysis suggests that the observed frequency-dependent attenuation is caused by wave-induced-fluid-flow but also that the physics behind this attenuation mechanism is not yet fully determined. We also show, that as predicted by wave-induced-fluid-flow theories, attenuation is strongly dependent on confining pressure. Our results can help to interpret data for near-surface geophysics to improve the imaging of the subsurface.
引用
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页数:17
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