Skip to content
Open access

Petrohysical characteristics of ultra-deep carbonate reservoirs under coupled temperature-pressure variations

Aug 2026 · Journal of Geophysics and Engineering · 0 citations

Abstract

Understanding the petrophysical response of carbonate reservoir under high-temperature and high-pressure (HTHP) conditions is essential for ultra-deep oil and gas exploration. However, the coupled influence of temperature and pressure on elastic properties and pore-structure evolution remains insufficiently quantified. We investigate nine Ordovician limestone samples from the Tarim Basin (7203.96–7444.56 m) using controlled laboratory experiments under temperatures up to 200°C and confining pressures up to 137.9 MPa. P- and S-wave velocities and corresponding elastic moduli are measured and inverted using the Sun model to quantify pore-structure evolution under coupled thermo-mechanical conditions. Results show that increasing temperature reduces wave velocities and elastic moduli due to enhanced lattice vibrations in calcite and weakened grain contacts. Inversion results indicate a reduction in pore aspect ratio and systematic variations in pore-structure parameters γ and γμ, accompanied by decreased shear resistance. In contrast, increasing pressure enhances stiffness by closing microfractures, increasing pore aspect ratio and restoring shear strength. A key observation is that elastic properties are jointly controlled by temperature and effective pressure through their regulation of pore structure, with pressure exerting the dominant influence under ultra-deep conditions. Temperature effects are partially reversible and more pronounced in low-porosity rocks, whereas pressure effects exhibit clear stage dependence, transitioning from fracture closure to matrix compaction with increasing stress. This study establishes a quantitative framework linking elastic response to pore-structure evolution in ultra-deep carbonates, providing a theoretical basis for seismic inversion, pore‑type identification and pore‑pressure prediction.

Read PDF

We use cookies to run the site and, with your consent, for analytics and to show ads. See our Cookie Policy.