Shallow Differentiation of Primitive Arc Magmas at the Jurassic Emigrant Gap Mafic Complex, Sierra Nevada, California
Abstract
The Emigrant Gap composite pluton exposes ultramafic to silicic intrusive rocks that preserve the chemical evolution of primitive mafic arc magmas and their open-system interactions in the upper crust during mid-Jurassic growth of the Sierra Nevada batholith (California). We present field and petrographic observations and mineral and whole-rock chemistry of the ~35-km2 ultramafic to dioritic Emigrant Gap mafic complex and an adjacent penecontemporaneous ~90-km2 granodiorite that together make up the composite pluton. In the Emigrant Gap mafic complex, four roughly central masses of dunite, wehrlite, and olivine clinopyroxenite are surrounded by weakly layered gabbronorite and non-layered diorite. The ultramafic rocks are cumulates formed from near-liquidus minerals of primitive arc magmas that accumulated in steep feeder zones with substantial modification by melt–mush reaction as primitive liquids repeatedly transited the mush-filled conduits. The dominant gabbronoritic rocks are the variably accumulative products of more advanced crystallization–differentiation of arc tholeiitic basalts and basaltic andesites. The adjacent granodiorite intrusion originated separately and preserves field and geochemical evidence for assimilation of metasedimentary rocks. Open-system hybridization between the gabbronoritic mushes and the granodioritic magma produced an intervening body of two-pyroxene diorite. We infer that the ultramafic rocks and gabbronorite of the Emigrant Gap mafic complex crystallized from near-primitive arc basaltic to basaltic andesitic magmas at ~0.15–0.3 GPa, with estimated fO2 of ≥FMQ +1 and dissolved H2O concentrations of only ~0.5–2 wt %. Notably, the Emigrant Gap composite pluton is distinct from other Mesozoic plutons in the Sierra Nevada batholith because of (1) its abundance of mafic and ultramafic rocks that crystallized from relatively primitive mafic melts and (2) the low inferred H2O concentrations of its parental magmas, indicated by a near absence of igneous amphibole and by the intermediate rather than calcic compositions of plagioclase. A Jurassic regional extension event probably accounts for the formation of relatively dry primitive arc magmas, as well as for their ascending to the upper crust.
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Acknowledgement
The authors thank R. Conrey for whole-rock geochemical analyses, C. Ma and T. Present for analytical assistance, and P. Sirorattankul and M. Lewis for assistance in the field. Constructive reviews by C. Barnes, A. Calvert, F. Marxer, G. Nixon, and P. Dawson improved our interpretations and presentation. We thank S. Nielsen and G. Zellmer for their editorial handling. Thanks to M. Hampton of PG&E and I. Lewis, M. Woods and E. Johnson of the US Forest Service for assistance with permission for sampling. We are grateful to S. Covert, E. Amador, and the California Heritage Indigenous Research Project for conversations about conducting research on the land at Emigrant Gap. This research was supported by NSF Grant EAR 2105371 awarded to C.B. and by the USGS Volcano Hazards Program. Any use of trade, firm, or product names is for descriptive purposes only and does not imply endorsement by the US Government.
Data Availability
All geochemical data presented are available as Electronic Supplementary Material, as well as in the EarthChem Library (https://doi.org/10.60520/IEDA/113590). Remaining natural samples are available at the California Institute of Technology.
Supplemental Material
Web_Material_egag013 - zip file
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egag013.pdf
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Related works
- Is supplemented by
- Dataset: 10.60520/IEDA/113590 (DOI)
Funding
- National Science Foundation
- EAR-2105371
- United States Geological Survey
Dates
- Submitted
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2024-12-17
- Available
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2026-02-03Published online
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- Division of Geological and Planetary Sciences (GPS)
- Publication Status
- Published