Abstract
AbstractDetermining pressure and temperature variations between high-pressure/low-temperature (HP–LT) eclogite blocks is crucial for constraining end-member exhumation models; however, it has historically been challenging to constrain eclogite pressures due to the high variance associated with this bulk-rock composition. In this work, we utilize quartz-in-garnet elastic barometry to constrain formation pressures of eclogites from the northern (Junction School, Ring Mountain, Jenner Beach) and southern Franciscan Complex (Santa Catalina Island). Multiple eclogite blocks from Jenner Beach are analyzed, and a single eclogite from the other localities. By comparing garnet growth conditions from within a single outcrop and between distinct outcrops, we evaluate the local and regional spatial distribution of P conditions recorded by eclogites. We compare the mean, median, and max pressures between different garnet zones and eclogites. Pressures sometimes exhibit systematic changes across garnet zones; however, some eclogites exhibit no systematic pressure variations across garnet zones. Pressures from northern Franciscan eclogites range from $$\sim $$
∼
1.4–1.8 GPa, at an estimated temperature of 500 $$^{\circ }$$
∘
C; pressures from the Catalina eclogite range from $$\sim $$
∼
1.2–1.5 GPa, at an estimated temperature of 650 $$^{\circ }$$
∘
C. Mean and maximum pressures of different eclogites from the northern Franciscan exhibit negligible differences (< 0.1 GPa). The results are inconsistent with models that propose exhumation of metamorphic blocks from different structural levels, and suggest that now exposed HP–LT eclogites from the northern Franciscan Complex may represent rocks that were coherently underplated, and exhumed from similar structural levels.
Funder
Swiss Federal Institute of Technology Zurich
Publisher
Springer Science and Business Media LLC
Subject
Geochemistry and Petrology,Geophysics
Reference120 articles.
1. Adams H, Cohen LH, Rosenfeld JL (1975) Solid inclusion piezothermometry I: comparison dilatometry. Am Miner 60:574–583
2. Adams H, Cohen LH, Rosenfeld JL (1975) Solid inclusion piezothermometry II: geometric basis, calibration for the association quartz-garnet, and application to some pelitic schists. Am Miner 60:584–598
3. Agard P, Yamato P, Soret M, Prigent C, Guillot S, Plunder A, Dubacq B, Chauvet A, Monié P (2016) Plate interface rheological switches during subduction infancy: Control on slab penetration and metamorphic sole formation. Earth and Planetary Science Letters 451:208–220, https://doi.org/10.1016/j.epsl.2016.06.054, https://www.sciencedirect.com/science/article/pii/S0012821X16303478
4. Agard P, Plunder A, Angiboust S, Bonnet G, Ruh J (2018) The subduction plate interface: rock record and mechanical coupling (from long to short timescales). Lithos 320–321:537–566, https://doi.org/10.1016/j.lithos.2018.09.029, http://www.sciencedirect.com/science/article/pii/S0024493718303566
5. Anczkiewicz R, Platt JP, Thirlwall MF, Wakabayashi J (2004) Franciscan subduction off to a slow start: evidence from high-precision Lu-Hf garnet ages on high grade-blocks. Earth and Planetary Science Letters 225(1):147–161, https://doi.org/10.1016/j.epsl.2004.06.003, http://www.sciencedirect.com/science/article/pii/S0012821X04003796
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