High-magnitude stresses induced by mineral-hydration reactions

Publication date

2022

Authors

Plümper, OliverISNI 000000048530204X
Wallis, DavidISNI 000000045349469X
Teuling, FlorisISNI 0000000492798434
Moulas, Evangelos
Schmalholz, Stefan M.
Amiri, HamedISNI 0000000512489541
Müller, Thomas

Editors

Advisors

Supervisors

Document Type

Article
Open Access logo

License

cc_by

Abstract

Fluid-rock interactions play a critical role in Earth’s lithosphere and environmental subsurface systems. In the absence of chemical mass transport, mineral-hydration reactions would be accompanied by a solid-volume increase that may induce differential stresses and associated reaction-induced deformation processes, such as dilatant fracturing to increase fluid permeability. However, the magnitudes of stresses that manifest in natural systems remain poorly constrained. We used optical and electron microscopy to show that one of the simplest hydration reactions in nature [MgO + H2O = Mg(OH)2] can induce stresses of several hundred megapascals, with local stresses of as much as ∼1.5 GPa. We demonstrate that these stresses not only cause fracturing but also induce plastic deformation with dislocation densities (1015 m−2) exceeding those typical of tectonically deformed rocks. If these reaction-induced stresses can be transmitted across larger length scales, they may influence the bulk stress state of reacting regions. Moreover, the structural damage induced may be the first step toward catastrophic rock failure, triggering crustal seismicity.

Keywords

Geology

Citation

Plümper, O, Wallis, D, Teuling, F, Moulas, E, Schmalholz, S M, Amiri, H & Müller, T 2022, 'High-magnitude stresses induced by mineral-hydration reactions', Geology, vol. 50, no. 12, pp. 1351-1355. https://doi.org/10.1130/G50493.1