M. Shehryar, A. Raza, M. Mahmoud, M. Murtaza, M. Kamal
2026.1.20Egyptian Journal of Petroleum
Abstract
Low-permeability reservoirs play an indispensable role in sustainable energy strategies; a good understanding of fracture behavior is essential. Fracture pressure is a critical parameter in hydraulic fracturing and reservoir stimulation, as it governs fracture initiation and propagation in tight formations. While numerous studies have investigated fracture pressure under conventional fl uid injection, the impact of CO 2 -enriched water (Carbonated water) remains poorly understood. This study addresses this gap by experimentally quantifying the effect of carbonated water on the fracture pressure of Kentucky Sandstone (quartz-rich) and Eagle Ford Shale (Calcite-rich) under controlled 90 (cid:1) C conditions and no con fi ning. Baseline tests used distilled water and then followed by carbonated water, which was prepared in an accumulator. Cores were exposed to carbonated water for 1 h and 24 h before testing. Breakdown pressure was identi fi ed from the pressure-time response during constant-rate injection. Carbonated water reduced fracture pressure from 2634 psi to 2214 psi in Kentucky Sandstone (15.9 %) and from 3429 psi to 2479 psi in Eagle Ford Shale (27.7 %), with larger decreases after 24 h of exposure. The reductions are consistent with CO 2 -driven geochemical weakening due to carbonate dissolution that lowers the tensile strength and closure stress. These results demonstrate that, even without con fi ning stress and elevated temperature, interaction with CO 2 -enriched water measurably lowers the fracture initiation pressure, providing actionable insights for the design of CO 2 -assisted stimulation, EOR and CCUS operations in tight reservoirs. The technique of carbonated water is found promising, with the additional bene fi t that geochemical activity arises due to carbonated water.
Citation format
SHEHRYAR, M., et al. Effect of co2-enriched water on fracture pressure in sandstone and shale rocks. Egyptian Journal of Petroleum, 2026, 35(1).