Quantifying Magma Water Contents: A New Entrainment Model for Charnockite Formation

IF 3.9 2区 地球科学 Q1 GEOCHEMISTRY & GEOPHYSICS
Hang Yang, Jinlong Yao, Peter A. Cawood, Guochun Zhao, Yigui Han, Xiaochun Li, Qian Liu, Donghai Zhang, Xiangsong Wang, Yu Guo
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引用次数: 0

Abstract

Water is essential for the formation of granites and continental crust, whereas charnockite, being an important component of deep crust, is inferred to be formed in low-water environments. Charnockite is an orthopyroxene-bearing felsic rock, its origin, generation, and preservation remain hotly debated. Quantifying the magma water content of charnockite and further determining the orthopyroxene preservation mechanism is crucial to understanding the petrogenesis of charnockite. Here, we report a ca. 431 Ma peraluminous Gaozhou charnockite with granulitic enclaves in South China. The body displays A-type characteristics with crustal reworking zircon isotopic features (δ18O = 8.0–9.8 ‰; εHf(t) = −11.5 to −3.4). The charnockite and its enclaves show identical mineral assemblages and comparable orthopyroxene chemical compositions. The two anhydrous minerals of orthopyroxene and garnet are identified as of peritectic and magmatic origins given their textural features and geochemical compositions. Moreover, petrographic observations and bulk geochemical data argue that the peritectic minerals were derived from the entrainment of their granulitic sources. Crystallization phase modeling indicates orthopyroxene would have been completely hydrated and formed biotite when water contents exceed ∼0.3 wt.% near the solidus. Water-in-zircon analysis and thermodynamic modeling indicate low magma water conditions (∼0.15 wt.%; 135 ppm, zircon water medians) for the Gaozhou charnockite from early crystallization to final solidification. CO2-rich fluids flushed the charnockite reservoir further contributing to the stabilization of the orthopyroxene. Therefore, we propose a new entrainment model for the formation of charnockite that requires low-water environments achieved by high-temperature melting of dehydrated lower crust granulitic rocks.
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来源期刊
Journal of Geophysical Research: Solid Earth
Journal of Geophysical Research: Solid Earth Earth and Planetary Sciences-Geophysics
CiteScore
7.50
自引率
15.40%
发文量
559
期刊介绍: The Journal of Geophysical Research: Solid Earth serves as the premier publication for the breadth of solid Earth geophysics including (in alphabetical order): electromagnetic methods; exploration geophysics; geodesy and gravity; geodynamics, rheology, and plate kinematics; geomagnetism and paleomagnetism; hydrogeophysics; Instruments, techniques, and models; solid Earth interactions with the cryosphere, atmosphere, oceans, and climate; marine geology and geophysics; natural and anthropogenic hazards; near surface geophysics; petrology, geochemistry, and mineralogy; planet Earth physics and chemistry; rock mechanics and deformation; seismology; tectonophysics; and volcanology. JGR: Solid Earth has long distinguished itself as the venue for publication of Research Articles backed solidly by data and as well as presenting theoretical and numerical developments with broad applications. Research Articles published in JGR: Solid Earth have had long-term impacts in their fields. JGR: Solid Earth provides a venue for special issues and special themes based on conferences, workshops, and community initiatives. JGR: Solid Earth also publishes Commentaries on research and emerging trends in the field; these are commissioned by the editors, and suggestion are welcome.
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