1
Return

Rheology of the lower mantle: an alternative review

delete2026-07-28
delete0
delete
OA
AI
P
Patrick Cordier *
J
James Van Orman
P
Philippe Carrez
DOI:10.1186/s40645-026-00835-6delete
deleteOriginal
deleteOriginal request for help
deleteShare
deleteSave
Abstract

Abstract

En 中文
Understanding the rheology of the Earth’s lower mantle is essential for modelling mantle convection and its consequences for the geodynamical, thermal and chemical evolution of the planet. However, the extreme pressure–temperature conditions, the long natural timescales, and the complexity of deep-mantle mineralogy make it difficult to constrain mantle viscosity from experiments alone. In this review, we examine an alternative approach based on mineral physics and multiscale numerical modelling, tracing its theoretical foundations and its development over the last decades. We first outline the key physical mechanisms governing plastic deformation in lower-mantle minerals—point defects, dislocations, diffusion, and grain-boundary processes—and the conditions under which they operate. We then summarize the major experimental advances that provide essential constraints for these models. Building on this foundation, we review the evolution of multiscale modelling strategies, from first-principles calculations of defect energetics and dislocation cores to mesoscale dislocation dynamics and polycrystal-scale formulations. Using ferropericlase and bridgmanite as archetypal examples, we show how successive developments have progressively linked atomic-scale mechanisms with macroscopic rheology under deep-mantle conditions. Finally, we discuss current limitations and outstanding challenges, including the scarcity of diffusion data at high pressures, uncertainties in defect chemistry, and the need to integrate multiphase and multimechanism deformation. Together, these elements provide a coherent view of the present capabilities of mineral-physics-based rheology and outline a roadmap for future efforts to improve our understanding of deep-mantle dynamics.
Keywords:
Rheology
Lower mantle
Mineral physics
Multiscale numerical modelling

Journal

Progress in Earth and Planetary Science cover
Progress in Earth and Planetary Science
IF:
2.8
Papers:
802
Citations:
2.0K

Organization

D
Department of Earth
Scholars:
222
Papers: 115
Citations: 5
I
Institut Universitaire de France
Scholars:
1.2K
Papers: 909
Citations: 8.1K
Cited Papers

Cited Papers

Citing Papers

Citing Papers