globalchange  > 气候变化与战略
DOI: 10.1016/j.epsl.2021.116771
论文题名:
Residence time of igneous garnet in Si-rich magmatic systems: Insights from diffusion modeling of major and trace elements
作者: Devoir A.; Bloch E.; Müntener O.
刊名: Earth and Planetary Science Letters
ISSN: 0012821X
出版年: 2021
卷: 560
语种: 英语
中文关键词: igneous garnet ; Ivrea-Verbano ; multi-element diffusion ; nanogranites ; residence time
英文关键词: Diffusion ; Mica ; Phosphorus ; Thermometers ; Trace elements ; Zircon ; Zircon deposits ; Continental crusts ; Diffusion model ; Divalent cation ; Element diffusion ; Granulite facies ; Magmatic systems ; Major and trace elements ; Multicomponents ; Garnets ; diffusion ; garnet ; granite ; granodiorite ; magma ; metapelite ; modeling ; residence time ; trace element ; Italy ; Ivrea-Verbano Zone
英文摘要: Although garnet is an important accessory phase in many granitic rocks, the petrogenetic history of such garnets is often debated. Explanations range from crystallization from (mostly) peraluminous melts to entrainment of peritectic or xenocrystic garnets originating from country rocks. Here we present a detailed microchemical study of a mid-crustal granodiorite from the Ivrea-Zone (N-Italy), which contains metapelitic enclaves and composite metamorphic-magmatic xeno-phenocryst garnet. Garnets from this locality exhibit high-phosphorus (∼800 ppm) metamorphic cores and multiple igneous overgrowth rims. The high-phosphorus cores appear to originate from granulite facies country-rock, while low-phosphorus rims indicate magmatic overgrowth in two main episodes. Zircon-bearing nanogranitoid inclusions are trapped along embayments between garnet cores and the first magmatic growth zones. Zirconium saturation thermometry indicates a temperature of 820 ± 5°C during the first magmatic overgrowth, and a temperature of 778 ± 10°C for the second overgrowth. The latter temperature agrees with garnet-biotite thermometry using the garnet rim composition, which yields a temperature of 773 ± 29 °C. In order to quantify the duration of the overgrowth episodes, we have numerically modeled Cr, Y, REEs and Hf trace element diffusion, as well as multicomponent major divalent cation diffusion within garnet using available experimental diffusion data and Cr diffusion data retrieved from natural garnets. All modeled diffusants conform to a single temperature-time path, in which the temperatures associated with the first and second magmatic overgrowths persisted for 5.4 and 6.3 kyr, respectively. Composite garnets in Si-rich magmatic systems have the potential to constrain magma transit rates in the continental crust. © 2021 The Author(s)
Citation statistics:
资源类型: 期刊论文
标识符: http://119.78.100.158/handle/2HF3EXSE/165449
Appears in Collections:气候变化与战略

Files in This Item:

There are no files associated with this item.


作者单位: Institute of Earth Sciences, University of Lausanne, Geopolis, Lausanne, 1015, Switzerland

Recommended Citation:
Devoir A.,Bloch E.,Müntener O.. Residence time of igneous garnet in Si-rich magmatic systems: Insights from diffusion modeling of major and trace elements[J]. Earth and Planetary Science Letters,2021-01-01,560
Service
Recommend this item
Sava as my favorate item
Show this item's statistics
Export Endnote File
Google Scholar
Similar articles in Google Scholar
[Devoir A.]'s Articles
[Bloch E.]'s Articles
[Müntener O.]'s Articles
百度学术
Similar articles in Baidu Scholar
[Devoir A.]'s Articles
[Bloch E.]'s Articles
[Müntener O.]'s Articles
CSDL cross search
Similar articles in CSDL Cross Search
[Devoir A.]‘s Articles
[Bloch E.]‘s Articles
[Müntener O.]‘s Articles
Related Copyright Policies
Null
收藏/分享
所有评论 (0)
暂无评论
 

Items in IR are protected by copyright, with all rights reserved, unless otherwise indicated.