RUS  ENG
Full version
JOURNALS // Mathematical notes of NEFU // Archive

Mathematical notes of NEFU, 2020 Volume 27, Issue 2, Pages 93–104 (Mi svfu287)

Mathematical modeling

On one thermodynamically consistent model of clay shale swelling

B. Kh. Imomnazarova, I. Q. Khaydarovb, Kh. Kh. Imomnazarovc

a Novosibirsk State University, 1 Pirogov Street, Novosibirsk 630090, Russia
b Chirchiq State Pedagogical Institute of Tashkent Region, 104 Amir Temur Street, Chirchiq 111700, Uzbekistan
c Institute of Computational Mathematics and Mathematical Geophysics of Siberian Branch of Russian Academy of Sciences, Novosibirsk

Abstract: A modified version of the linear poroelasticity theory described by three elastic parameters is applied to the mathematical modeling of shale swelling with an aqueous electrolyte. It is assumed that the shale behaves as an isotropic ideal ionic membrane, and in this case, swelling depends only on the total stress and on the chemical water potential in pores of the rock. A formula is obtained for the Poisson coefficient in terms of three elastic parameters, the physical densities of the saturated fluid of the porous medium, and the porosity coefficient. It is shown that the diffusion coefficient is a function of the coefficient of interfacial friction (permeability) and is inversely proportional to the coefficient of porosity. The formulas for the flat strain analysis around the wellbore were obtained.

Keywords: porous medium, saturated fluid, elastic parameters, stress tensor, partial density, Darcy law, chemical potential.

UDC: 539.214

Received: 03.11.2019
Revised: 31.01.2020
Accepted: 30.04.2020

DOI: 10.25587/SVFU.2020.43.24.006



Bibliographic databases:


© Steklov Math. Inst. of RAS, 2024