Combined iron and magnesium isotope geochemistry of pyroxenite xenoliths from Hannuoba, North China Craton: implications for mantle metasomatism

被引:0
作者
Xin Miao Zhao
Hui Hui Cao
Xue Mi
Noreen J. Evans
Yu Han Qi
Fang Huang
Hong Fu Zhang
机构
[1] Chinese Academy of Sciences,State Key Laboratory of Lithospheric Evolution, Institute of Geology and Geophysics
[2] University of Chinese Academy of Sciences,John de Laeter Center, TIGeR, Applied Geology
[3] Curtin University,CAS Key Laboratory of Crust
[4] University of Science and Technology of China,Mantle Materials and Environments, School of Earth and Space Sciences
[5] Northwest University,State Key Laboratory of Continental Dynamics, Department of Geology
来源
Contributions to Mineralogy and Petrology | 2017年 / 172卷
关键词
Iron and magnesium isotopes; Pyroxenite xenoliths; Melt−rock interaction; Lithospheric mantle; North China Craton;
D O I
暂无
中图分类号
学科分类号
摘要
We present high-precision iron and magnesium isotopic data for diverse mantle pyroxenite xenoliths collected from Hannuoba, North China Craton and provide the first combined iron and magnesium isotopic study of such rocks. Compositionally, these xenoliths range from Cr-diopside pyroxenites and Al-augite pyroxenites to garnet-bearing pyroxenites and are taken as physical evidence for different episodes of melt injection. Our results show that both Cr-diopside pyroxenites and Al-augite pyroxenites of cumulate origin display narrow ranges in iron and magnesium isotopic compositions (δ57Fe = −0.01 to 0.09 with an average of 0.03 ± 0.08 (2SD, n = 6); δ26Mg = − 0.28 to −0.25 with an average of −0.26 ± 0.03 (2SD, n = 3), respectively). These values are identical to those in the normal upper mantle and show equilibrium inter-mineral iron and magnesium isotope fractionation between coexisting mantle minerals. In contrast, the garnet-bearing pyroxenites, which are products of reactions between peridotites and silicate melts from an ancient subducted oceanic slab, exhibit larger iron isotopic variations, with δ57Fe ranging from 0.12 to 0.30. The δ57Fe values of minerals in these garnet-bearing pyroxenites also vary widely (−0.25 to 0.08 in olivines, −0.04 to 0.25 in orthopyroxenes, −0.07 to 0.31 in clinopyroxenes, 0.07 to 0.48 in spinels and 0.31–0.42 in garnets). In addition, the garnet-bearing pyroxenite shows light δ26Mg (−0.43) relative to the mantle. The δ26Mg of minerals in the garnet-bearing pyroxenite range from −0.35 for olivine and orthopyroxene, to −0.34 for clinopyroxene, 0.04 for spinel and −0.68 for garnet. These measured values stand in marked contrast to calculated equilibrium iron and magnesium isotope fractionation between coexisting mantle minerals at mantle temperatures derived from theory, indicating disequilibrium isotope fractionation. Notably, one phlogopite clinopyroxenite with an apparent later metasomatic overprint has the heaviest δ57Fe (as high as 1.00) but the lightest δ26Mg (as low as −1.50) values of all investigated samples. Overall, there appears to be a negative co-variation between δ57Fe and δ26Mg in the Hannuoba garnet-bearing pyroxenite and in the phlogopite clinopyroxenite xenoliths and minerals therein. These features may reflect kinetic isotopic fractionation due to iron and magnesium inter-diffusion during melt–rock interaction. Such processes play an important role in producing inter-mineral iron and magnesium isotopic disequilibrium and local iron and magnesium isotopic heterogeneity in the subcontinental mantle.
引用
收藏
相关论文
共 613 条
[1]  
Ackerman L(2009)Geochemistry of Fe-rich peridotites and associated pyroxenites from Horní Bory, Bohemian Massif: insights into subduction-related melt-rock reactions Chem Geol 259 152-167
[2]  
Jelinek E(2014)High-precision Mg isotope analyses of low-Mg rocks by MC-ICP-MS Chem Geol 390 9-21
[3]  
Medaris LG(2017)Isotopic composition of Mg and Fe in garnet peridotites from the Kaapvaal and Siberian Cratons Geochim Cosmochim Acta 200 167-185
[4]  
Jezek J(1991)Major element, REE, and Pb, Nd and Sr isotopic geochemistry of Cenozoic volcanic rocks of eastern China: implications for their origin from suboceanic-type mantle reservoirs Earth Planet Sci Lett 105 149-169
[5]  
Siebel W(2004)Inter-mineral Fe isotope variations in mantle-derived rocks and implications for the Fe geochemical cycle Geochim Cosmochim Acta 68 4727-4743
[6]  
Strnad L(2006)Transformation of archaean lithospheric mantle by refertilization: evidence from exposed peridotites in the Western Gneiss Region Norway J Petrol 47 1611-1636
[7]  
An YJ(1947)Calculation of equilibrium constants for isotopic exchange reactions J Chem Phys 15 261-267
[8]  
Wu F(2011)High-precision Mg-isotope measurements of terrestrial and extraterrestrial material by HR-MC-ICPMS-implications for the relative and absolute Mg-isotope composition of the bulk silicate Earth J Anal Atom Spectrom 26 565-577
[9]  
Xiang YX(1990)Mechanisms of mantle metasomatism: geochemical evidence from the Lherz orogenic peridotite J Petrol 31 597-628
[10]  
Nan XY(2010)Chondritic Mg isotope composition of the Earth Geochim Cosmochim Acta 74 5069-5083