The effect of strain energy on growth rates during the olivine‐spinel transformation and implications for olivine metastability in subducting slabs
- 10 October 1998
- journal article
- Published by American Geophysical Union (AGU) in Journal of Geophysical Research
- Vol. 103 (B10) , 23897-23909
- https://doi.org/10.1029/98jb00794
Abstract
We have studied growth kinetics during the transformation of Mg1.8Fe0.2SiO4 San Carlos olivine to its high‐pressure polymorphs wadsleyite (β phase) and ringwoodite (γ phase) at 800°–1200°C and nominal pressures of 16–20 GPa. In experiments in which a large (500–600 μm) olivine single crystal (contained in a matrix of either fine‐grained olivine or NaCl) was transformed, reaction rims of wadsleyite/ringwoodite form on the margins of the single crystal by incoherent grain‐boundary nucleation and interface‐controlled growth. Contrary to theoretical expectations, the growth rate of these reaction rims decreases sharply as a function of time; for instance, at 1100°C and 18 GPa, growth ceases on an experimental timescale after the rim width reaches 20–25 μm. In order to explain this observation, we develop an elastic model based on the theory of a misfitting inclusion. Comparing the results of this model with the experimental data suggests that elastic strain energy, which develops because of the large volume decrease associated with the transformation, is responsible for the decreasing growth rates. On the other hand, experimental and theoretical results suggest that elastic strain energy is relatively unimportant when grains of the product phase are randomly dispersed and distinct reaction rims do not form; this is the case when the nucleation rate is low, the growth rate is fast, and the reactant olivine is fine grained. On a geological timescale in subducting lithosphere, where the grain size of the olivine is large, the growth rates of grain‐boundary nucleated reaction rims are likely to be controlled by viscoelastic relaxation. Therefore current kinetic models of olivine metastability in subducting slabs, which are based on simple extrapolations of experimental data and on the assumption that the growth rate is constant at fixed temperature and pressure, need to be reevaluated.Keywords
This publication has 31 references indexed in Scilit:
- Rates and mechanisms of Fe‐Mg interdiffusion in olivine at 980°–1300°CJournal of Geophysical Research, 1997
- An Occurrence of Metastable Cristobalite in High-Pressure Garnet GranuliteScience, 1997
- Two-dimensional thermo-kinetic model for the olivine-spinel phase transition in subducting slabsPhysics of the Earth and Planetary Interiors, 1996
- The fate of olivine in subducting slabs; a reconnaissance studyAmerican Mineralogist: Journal of Earth and Planetary Materials, 1995
- Mg tracer diffusion in synthetic forsterite and San Carlos olivine as a function of P, T and fO2Physics and Chemistry of Minerals, 1994
- Stability of clinopyroxene at pressure-temperature conditions of the transition regionPhysics of the Earth and Planetary Interiors, 1994
- Mechanisms of the transformations between the ?, ? and ? polymorphs of Mg2SiO4 at 15 GPaPhysics and Chemistry of Minerals, 1992
- Stress dependence of the mechanism of the olivine–spinel transformationNature, 1989
- Static compression and olivine flotation in ultrabasic silicate liquidJournal of Geophysical Research, 1988
- Scaling relations for grain autocorrelation functions during nucleation and growthPhysical Review B, 1986