Effect of Nano-Confinement on NMR Relaxation of Heptane in Kerogen from MD Simulations and Measurements
arXiv:2212.02489
Abstract
Kerogen-rich shale reservoirs will play a key role during the energy transition, yet the effects of nano-confinement on the NMR relaxation of hydrocarbons in kerogen are poorly understood. We use atomistic MD simulations to investigate the effects of nano-confinement on the H NMR relaxation times and of heptane in kerogen. In the case of , we discover the important role of confinement in reducing by 3 orders of magnitude from bulk heptane, in agreement with measurements of heptane dissolved in kerogen from the Kimmeridge Shale, without any models or free parameters. In the case of , we discover that confinement breaks spatial isotropy and gives rise to residual dipolar coupling which reduces by 5 orders of magnitude from bulk heptane. We use the simulated to calibrate the surface relaxivity and thence predict the pore-size distribution of the organic nano-pores in kerogen, without additional experimental data.