Subsurface storage of CO2 into geological formations is considered an important strategy to mitigate increasing atmospheric CO2. Time-lapse seismic monitoring is an integral component of a geological CO2 sequestration project because the seismic behavior of the rock is a function of both mineralogical composition and pore fluid properties. At the uppermost kilometer of the sedimentary basin, CO2 can be present at gaseous, liquid, and supercritical states, with the supercritical and liquid states preferred in CO2 storage operations due to the higher sweep efficiency. In this study, the seismic velocities [both compressional (V-p) and shear (V-s) waves] of two CO2-saturated sandstone core plugs (Red Wildmoor and Knorringfjellet formations) have been measured under a range of temperatures and pressures in which CO2 phase transitions occur. The experiments were done using a uniaxial hydrostatic cell equipped with seismic wave transmitting and receiving transducers. The experimental investigation illustrated that seismic velocities (both V-p and V-s) decreased until the critical point was reached. Further increases in the CO2 pressure above the critical point led to a gradual increasing of V-p while the V-s remained unchanged. The effect of CO2 on the seismic velocity of the sandstone was compared with the effects of N-2 and distilled water at the same conditions. It was further indicated that the seismic velocity changes were mainly connected to significant changes of CO2 density and the corresponding bulk rock moduli over the critical point. The observed velocities are in good agreement with Gassmann-predicted velocities as well as literature data. (C) 2016 Society of Chemical Industry and John Wiley & Sons, Ltd
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Ton Duc Thang Univ, Inst Computat Sci, Div Computat Math & Engn, Ho Chi Minh City, Vietnam
Ton Duc Thang Univ, Fac Civil Engn, Ho Chi Minh City, VietnamSonatrach, Div Labs, Dept Etud Thermodynam, Boumerdes, Algeria
Ben Seghier, Mohamed El Amine
Binh Thai Pham
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Duy Tan Univ, Inst Res & Dev, Da Nang 550000, VietnamSonatrach, Div Labs, Dept Etud Thermodynam, Boumerdes, Algeria
Binh Thai Pham
Andersen, Pal Ostebo
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Univ Stavanger, Dept Energy Resources, N-4036 Stavanger, NorwaySonatrach, Div Labs, Dept Etud Thermodynam, Boumerdes, Algeria
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China Univ Petr, New Energy Coll, Qingdao 266580, Shandong, Peoples R ChinaChina Univ Petr, New Energy Coll, Qingdao 266580, Shandong, Peoples R China
Jiao, Lijun
Wan, Runcong
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China Univ Petr, New Energy Coll, Qingdao 266580, Shandong, Peoples R ChinaChina Univ Petr, New Energy Coll, Qingdao 266580, Shandong, Peoples R China
Wan, Runcong
Wang, Zhaoliang
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China Univ Petr, New Energy Coll, Qingdao 266580, Shandong, Peoples R ChinaChina Univ Petr, New Energy Coll, Qingdao 266580, Shandong, Peoples R China
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Univ Calif Berkeley, Lawrence Berkeley Natl Lab, Div Earth Sci, Dept Geochem, Berkeley, CA 94720 USAUniv Calif Berkeley, Lawrence Berkeley Natl Lab, Div Earth Sci, Dept Geochem, Berkeley, CA 94720 USA
Nielsen, Laura C.
Bourg, Ian C.
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Univ Calif Berkeley, Lawrence Berkeley Natl Lab, Div Earth Sci, Dept Geochem, Berkeley, CA 94720 USAUniv Calif Berkeley, Lawrence Berkeley Natl Lab, Div Earth Sci, Dept Geochem, Berkeley, CA 94720 USA
Bourg, Ian C.
Sposito, Garrison
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Univ Calif Berkeley, Lawrence Berkeley Natl Lab, Div Earth Sci, Dept Geochem, Berkeley, CA 94720 USAUniv Calif Berkeley, Lawrence Berkeley Natl Lab, Div Earth Sci, Dept Geochem, Berkeley, CA 94720 USA
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Monash Univ, Dept Civil Engn, Deep Earth Energy Res Lab, Bldg 60, Clayton, Vic 3800, AustraliaMonash Univ, Dept Civil Engn, Deep Earth Energy Res Lab, Bldg 60, Clayton, Vic 3800, Australia
Zhang, Xiaogang
Ranjith, P. G.
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Monash Univ, Dept Civil Engn, Deep Earth Energy Res Lab, Bldg 60, Clayton, Vic 3800, AustraliaMonash Univ, Dept Civil Engn, Deep Earth Energy Res Lab, Bldg 60, Clayton, Vic 3800, Australia
Ranjith, P. G.
Lu, Yiyu
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Chongqing Univ, State Key Lab Coal Mine Disaster Dynam & Control, Chongqing 400030, Peoples R ChinaMonash Univ, Dept Civil Engn, Deep Earth Energy Res Lab, Bldg 60, Clayton, Vic 3800, Australia