Stressful crystal histories recorded around melt inclusions in volcanic quartz
Authors/Creators
- 1. University of California, Berkeley
- 2. University of Texas at Austin
- 3. E O Lawrence Berkeley National Laboratory
Description
Magma ascent and eruption are driven by a set of internally and externally generated stresses that act upon the magma. We present microstructural maps around melt inclusions in quartz crystals from six large rhyolitic eruptions using synchrotron Laue X-ray microdiffraction to quantify elastic residual strain and stress. We measure plastic strain using average diffraction peak width and lattice misorientation, highlighting dislocations and subgrain boundaries. Quartz crystals preserve similar and relatively small magnitudes of elastic residual stress (mean 53-135 MPa, median 46-116 MPa) in comparison to the strength of quartz (~10 GPa). However, the distribution of strain in the lattice around inclusions varies between samples. We hypothesize that dislocation and twin systems may be established during compaction of crystal-rich magma, which affects the magnitude and distribution of preserved elastic strains. Given the lack of stress-free haloes around faceted inclusions, we conclude that most residual strain and stress was imparted after inclusion faceting. Fragmentation may be one of the final strain events that superimposes stresses of ~100 MPa across all studied crystals. Overall, volcanic quartz crystals preserve complex, overprinted deformation textures indicating that quartz crystals have prolonged deformation histories throughout storage, fragmentation, and eruption. The data collected using Laue microdiffraction at Lawrence Berkeley National Laboratory Advanced Light Source beamline 12.3.2 are included below as .xlsx files. Data was processed and analyzed using XMAS (Tamura, 2014) and XtalCAMP (Li et al., 2020).
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Additional details
Funding
- U.S. National Science Foundation
- Collaborative Research: Residual Stress Preserved in Crystals from Volcanic Eruptions 1724469
- U.S. National Science Foundation
- Collaborative Research: Residual Stress Preserved in Crystals from Volcanic Eruptions 1724429
- U.S. National Science Foundation
- Particle clustering in dilute pyroclastic density currents and plumes 2042173
References
- Tamura, N. (2014). XMAS: A versatile tool for analyzing synchrotron X‐ray microdiffraction data, strain and dislocation gradients from diffraction. Spatially Resolved Local Structure and Defects, 125‐155.
- Li, Y., Chen, K., Dang, X., Zhang, F., Tamura, N., Ku, C.S., Kang, H., Wenk, H.R. (2020). XtalCAMP: a comprehensive program for the analysis and visualization of scanning Laue X-ray micro-/nanodiffraction data. Journal of Applied Crystallography, 53, 1392-1403.