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Journal Article

Water-Weakening and Time-Dependent Deformation of Organic-Rich Chalks

William M. Kibikas; R. Charles Choens; Stephen J. Bauer; Eyal Shalev; Vladimir Lyakhovsky
Rock Mechanics and Rock Engineering · Vol. 56, Issue 11 · pp. 8041-8059 · 2023

Abstract

The Ghareb Formation is a shallowly buried porous chalk in southern Israel that is being considered as a host rock for a geologic nuclear waste repository. Setup and operation of a repository will induce significant mechanical, hydrological and chemical perturbations in the Ghareb. Developing a secure repository requires careful characterization of the rock behavior to different loads. To characterize hydromechanical behavior of the Ghareb, several short- and long-term deformation experiments were conducted. Hydrostatic loading tests were conducted both dry and water-saturated, using different setups to measure elastic properties, time-dependent behavior, and permeability. A set of triaxial tests were conducted to measure the elastic properties and rock strength under differential loading at dry and water-saturated conditions. The hydrostatic tests showed the Ghareb began to deform inelastically around 12–15 MPa, a relatively low effective pressure. Long-term permeability measurements demonstrated that permeability declined with increasing effective pressure and was permanently reduced by ~ 1 order of magnitude after unloading pressure. Triaxial tests showed that water saturation significantly degrades the rock properties of the Ghareb, indicating water-weakening is a significant risk during repository operation. Time-dependent deformation is observed during hold periods of both the hydrostatic and triaxial tests, with deformation being primarily visco-plastic. The rate of deformation and permeability loss is strongly controlled by the effective pressure as well. Additionally, during holds of both hydrostatic and triaxial tests, it is observed that when water-saturated, radial strain surpassed axial strain when above effective pressures of 13–20 MPa. Thus, deformation anisotropy may occur in situ during operations even if the stress conditions are hydrostatic when above this pressure range.

Bibliographic Information

JournalRock Mechanics and Rock Engineering
PublisherSpringer
Publication Date2023-11-01
Publication Year2023
Volume56
Issue11
Pages8041-8059
Document TypeJournal Article
Print ISSN0723-2632
eISSN1434-453X
DOI10.1007/s00603-023-03453-6

Access Information

NARA Access Coverage1969-01-01~Current
Journal Homepagehttps://www.springer.com/journal/603
Publisher PageOpen Publisher Page
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