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Magma Flow Patterns in Dikes: Observations From Analogue Experiments

Pansino, Stephen; Emadzadeh, Adel; Taisne, Benoit

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Authors

Adel Emadzadeh

Benoit Taisne



Abstract

We conducted analogue experiments to examine flux-driven and buoyancy-driven magma ascent, which included a series of isothermal experiments and thermal, solidification-prone experiments. We measured the internal flow using 2D particle image velocimetry, which indicates that buoyancy has a strong control on the flow pattern of isothermal dikes. Dikes that are not buoyant (likely driven by source pressure) take on a circulating pattern, while buoyant dikes assume an ascending flow pattern. Solidification modifies the flow field so that flow is confined to the dike's upper head region. The lower tail becomes mostly solidified, with a narrow conduit connecting the source to the head. We interpret that this conduit acts as a high velocity point source to the head, promoting a circulating flow pattern, even as the dike becomes buoyant. We then perform particle tracking velocimetry on several particles to illustrate the complexity of their paths. In a circulating flow pattern, particles rise to the top of the dike, descend near the lateral edge, and then are drawn back into the upward flow. In an ascending pattern, particles ascend slightly faster than the propagation velocity, and therefore are pushed to the side as they approach the upper tip. In erupting dikes, particles simply flow to the vent. In the context of crystal growth in magmatic dikes, these results suggest that crystal growth patterns (e.g., normal or oscillatory zoning) can reflect the magma flow pattern, and potentially the driving forces.

Citation

Pansino, S., Emadzadeh, A., & Taisne, B. (2023). Magma Flow Patterns in Dikes: Observations From Analogue Experiments. Journal of Geophysical Research. Solid Earth, 128(3), Article e2022JB025463. https://doi.org/10.1029/2022jb025463

Journal Article Type Article
Acceptance Date Feb 23, 2023
Online Publication Date Mar 15, 2023
Publication Date 2023
Deposit Date May 2, 2023
Publicly Available Date May 2, 2023
Journal Journal of Geophysical Research: Solid Earth
Print ISSN 2169-9313
Electronic ISSN 2169-9356
Publisher American Geophysical Union
Peer Reviewed Peer Reviewed
Volume 128
Issue 3
Article Number e2022JB025463
DOI https://doi.org/10.1029/2022jb025463

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Publisher Licence URL
http://creativecommons.org/licenses/by/4.0/

Copyright Statement
This is an open access article under the terms of the Creative Commons Attribution License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.




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