Repacking in Compacting Mushes at Intermediate Melt Fractions: Constraints From Numerical Modeling and Phase Separation Experiments on Granular Media
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JGR Solid Earth - 2024 - Florez - Repacking in Compacting Mushes at Intermediate Melt Fractions Constraints From Numerical.pdf
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Published version
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Author(s) • • • • • •
Florez, Darien
Huber, Christian
Hoyos, Susana
Pec, Matej
Parmentier, EM
Connolly, James AD
Hirth, Greg
Date Issued
June 26, 2024
Journal
Journal of Geophysical Research: Solid Earth
Publisher
American Geophysical Union
Citation
Florez, D., Huber, C., Hoyos, S., Pec, M., Parmentier, E. M., Connolly, J. A. D., & Hirth, G. (2024). Repacking in compacting mushes at intermediate melt fractions: Constraints from numerical modeling and phase separation experiments on granular media. Journal of Geophysical Research: Solid Earth, 129, e2024JB029077.
Version
Final published version
Abstract
Before large volumes of crystal poor rhyolites are mobilized as melt, they are extracted through the reduction of pore space within their corresponding crystal matrix (compaction). Petrological and mechanical models suggest that a significant fraction of this process occurs at intermediate melt fractions (ca. 0.3–0.6). The timescales associated with such extraction processes have important ramifications for volcanic hazards. However, it remains unclear how melt is redistributed at the grain‐scale and whether using continuum scale models for compaction is suitable to estimate extraction timescales at these melt fractions. To explore these issues, we develop and apply a two‐phase continuum model of compaction to two suites of analog phase separation experiments—one conducted at low and the other at high temperatures, T, and pressures, P. We characterize the ability of the crystal matrix to resist porosity change using parameterizations of granular phenomena and find that repacking explains both data sets well. A transition between compaction by repacking to melt‐enhanced grain boundary diffusion‐controlled creep near the maximum packing fraction of the mush may explain the difference in compaction rates inferred from high T + P experiments and measured in previous deformation experiments. When upscaling results to magmatic systems at intermediate melt fractions, repacking may provide an efficient mechanism to redistribute melt. Finally, outside nearly instantaneous force chain disruption events occasionally recorded in the low T + P experiments, melt loss is continuous, and two‐phase dynamics can be solved at the continuum scale with an effective matrix viscosity.
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DOI of Published Version
https://doi.org/10.1029/2024JB029077