Early-paleozoic rapakivi-textured granite from the North Qinling (Central China): implications for crust–mantle interactions in a post-collisional setting
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引用次数: 0
Abstract
Rapakivi granite is characterized by its unique structure, which has important implications for tectonic settings, magmatic processes, and crust–mantle interactions. In this study, we conducted a combined analysis of the petrography, mineral chemistry, geochemistry, and zircon U–Pb dating and Lu–Hf isotopic compositions of the Niujiaoshan Early Paleozoic rapakivi-textured granite from the North Qinling Belt. Zircon U–Pb dating yielded a crystallization age of 447 ± 7 Ma, which is younger than the ultra-high-pressure (UHP) metamorphic age (~ 500 Ma) but similar to the granulite facies retrograde age (~ 450 Ma) of UHP eclogites and felsic gneisses in the North Qinling Belt. The rapakivi feldspar phenocrysts have ovoid K-feldspar cores, which are rich in mineral inclusions, such as amphibole, biotite, quartz, and plagioclase, indicating early crystallization. The ovoid K-feldspar cores are mantled by oligoclase, whreras the matrix comprises biotite, amphibole, and coarse-grained plagioclase. The amphibole and biotite in the granite are rich in Mg and are indicative of a crust–mantle origin. The εHf (t) values of the zircons range from − 2.04 to + 3.63, suggesting formation via crust–mantle interactions. The rapakivi-textured granite displays high-K meta-aluminous I-type granite affinity, with high SiO2, K2O, and Na2O contents. Based on the geological background and results of this study, we propose that the Niujiaoshan rapakivi-textured granite was formed via the mixing of crustal materials induced by upper mantle magma during the exhumation of the North Qinling UHP metamorphic terrane, which occurred in a post-orogenic setting.
拉帕基维花岗岩以其独特的结构为特征,对构造环境、岩浆过程和地壳-地幔相互作用具有重要影响。本研究对秦岭北麓牛角山早古生代拉帕基维纹理花岗岩的岩石学、矿物化学、地球化学、锆石U-Pb定年和Lu-Hf同位素组成进行了综合分析。锆石U-Pb年代测定的结晶年龄为447±7Ma,比超高压变质年龄(约500Ma)年轻,但与秦岭北麓超高压斜长岩和长英片麻岩的花岗岩面逆冲年龄(约450Ma)相近。拉帕基维长石表晶具有卵圆形的K长石核心,其中富含闪石、斜长石、石英和斜长石等矿物包裹体,表明结晶时间较早。卵圆形 K 长石核心由低斜长石覆盖,而基质则由斜长石、闪石和粗粒斜长石组成。花岗岩中的闪石和斜长石富含镁,表明其起源于地壳-幔。锆石的εHf(t)值在-2.04到+3.63之间,表明是通过壳幔相互作用形成的。rapakivi-纹理花岗岩具有高K元I型花岗岩亲和性,SiO2、K2O和Na2O含量较高。根据本研究的地质背景和结果,我们认为牛角山拉帕弧纹花岗岩是在后成因环境下,北秦岭超高压变质岩阶地的掘起过程中,上地幔岩浆诱发地壳物质混合形成的。
期刊介绍:
Mineralogy and Petrology welcomes manuscripts from the classical fields of mineralogy, igneous and metamorphic petrology, geochemistry, crystallography, as well as their applications in academic experimentation and research, materials science and engineering, for technology, industry, environment, or society. The journal strongly promotes cross-fertilization among Earth-scientific and applied materials-oriented disciplines. Purely descriptive manuscripts on regional topics will not be considered.
Mineralogy and Petrology was founded in 1872 by Gustav Tschermak as "Mineralogische und Petrographische Mittheilungen". It is one of Europe''s oldest geoscience journals. Former editors include outstanding names such as Gustav Tschermak, Friedrich Becke, Felix Machatschki, Josef Zemann, and Eugen F. Stumpfl.