西南天山榴辉岩相脉体记录的俯冲带多期流体作用

Baxter EF and Caddick MJ. 2013. Garnet growth as a proxy for progressive subduction zone dehydration. Geology, 41(6): 643-646 doi: 10.1130/G34004.1
Beinlich A, Klemd R, John T and Gao J. 2010. Trace-element mobilization during Ca-metasomatism along a major fluid conduit: Eclogitization of blueschist as a consequence of fluid-rock interaction. Geochimica et Cosmochimica Acta, 74(6): 1892-1922 doi: 10.1016/j.gca.2009.12.011
Chen TN, Chen RX, Zheng YF, Zhou K, Yin ZZ, Wang ZM, Gong B and Zha XP. 2022. The effect of supercritical fluids on Nb-Ta fractionation in subduction zones: Geochemical insights from a coesite-bearing eclogite-vein system. Geochimica et Cosmochimica Acta, 335: 23-55 doi: 10.1016/j.gca.2022.08.013
Chen YX. 2024. Reverse metasomatism of subduction zone fluids. Science China (Earth Sciences), 67(2): 634-638 doi: 10.1007/s11430-023-1241-6
Davies JH. 1999. The role of hydraulic fractures and intermediate-depth earthquakes in generating subduction-zone magmatism. Nature, 398(6723): 142-145 doi: 10.1038/18202
Ding T, Valkiers S, Kipphardt H, De Bièvre P, Taylor PDP, Gonfiantini R and Krouse R. 2001. Calibrated sulfur isotope abundance ratios of three IAEA sulfur isotope reference materials and V-CDT with a reassessment of the atomic weight of sulfur. Geochimica et Cosmochimica Acta, 65(15): 2433-2437 doi: 10.1016/S0016-7037(01)00611-1
Du JX, Zhang LF, Shen XJ and Bader T. 2014. A new P-T-t path of eclogites from Chinese southwestern Tianshan: Constraints from P-T pseudosections and Sm-Nd isochron dating. Lithos, 200-201: 258-272 doi: 10.1016/j.lithos.2014.04.009
Franz L, Romer RL, Klemd R, Schmid R, Oberhänsli R, Wagner T and Dong SW. 2001. Eclogite-facies quartz veins within metabasites of the Dabie Shan (eastern China): Pressure-temperature-time-deformation path, composition of the fluid phase and fluid flow during exhumation of high-pressure rocks. Contributions to Mineralogy and Petrology, 141(3): 322-346 doi: 10.1007/s004100000233
Gao J, Li MS, Xiao XC, Tang YQ and He GQ. 1998. Paleozoic tectonic evolution of the Tianshan Orogen, northwestern China. Tectonophysics, 287(1-4): 213-231 doi: 10.1016/S0040-1951(97)00211-4
Gao J, Klemd R and Liu SW. 2000. Eclogitization of glaucophanites by fluid infiltration. Science in China (Series D), 43(1): 144-155
http://www.cnki.com.cn/Article/CJFDTotal-JDXG2000S1007.htm
Gao J and Klemd R. 2003. Formation of HP-LT rocks and their tectonic implications in the western Tianshan Orogen, NW China: Geochemical and age constraints. Lithos, 66(1-2): 1-22 doi: 10.1016/S0024-4937(02)00153-6
Gao J, John T, Klemd R and Xiong XM. 2007. Mobilization of Ti-Nb-Ta during subduction: Evidence from rutile-bearing dehydration segregations and veins hosted in eclogite, Tianshan, NW China. Geochimica et Cosmochimica Acta, 71(20): 4974-4996 doi: 10.1016/j.gca.2007.07.027
Gao J, Xiao XC, Tang YQ, Zhao M, Wang J and Wu HQ. 1993. The discovery of blueschist in Kumux of the South Tianshan mountains and its tectonic significance. Geological Bulletin of China, (2): 344-347 (in Chinese)
Gao J, Li JL, Ma ZP and Klemd R. 2024. The subduction-zone fluid: Evidence from (ultra-) high-pressure metamorphic rocks. Acta Geologica Sinica, 98(3): 758-782 (in Chinese with English abstract)
Guo S, Ye K, Yang YH, Chen Y, Zhang LM, Liu JB, Mao Q and Ma YG. 2014. In situ Sr isotopic analyses of epidote: Tracing the sources of multi-stage fluids in ultrahigh-pressure eclogite (Ganghe, Dabie terrane). Contributions to Mineralogy and Petrology, 167(2): 975 doi: 10.1007/s00410-014-0975-9
Guo S, Chen Y, Ye K, Su B, Yang YH, Zhang LM, Liu JB and Mao Q. 2015. Formation of multiple high-pressure veins in ultrahigh-pressure eclogite (Hualiangting, Dabie terrane, China): Fluid source, element transfer, and closed-system metamorphic veining. Chemical Geology, 417: 238-260 doi: 10.1016/j.chemgeo.2015.10.006
Guo S, Zhao KD, John T, Tang P, Chen Y and Su B. 2019. Metasomatic flow of metacarbonate-derived fluids carrying isotopically heavy boron in continental subduction zones: Insights from tourmaline-bearing ultra-high pressure eclogites and veins (Dabie terrane, eastern China). Geochimica et Cosmochimica Acta, 253: 159-200 doi: 10.1016/j.gca.2019.03.013
Huang DZ, Gao J and Dai TG. 2001. Geochemical tracing of the fluids in subduction zones. Earth Science Frontiers, 8(3): 131-139 (in Chinese with English abstract)
Jin DS, Xiao YL, Tan DB, Wang YY, Wang XX, Li WC, Su W and Li XG. 2023. Supercritical fluid in deep subduction zones as revealed by multiphase fluid inclusions in an ultrahigh-pressure metamorphic vein. Proceedings of the National Academy of Sciences of the United States of America, 120(20): e2219083120
John T, Klemd R, Gao J and Garbe-Schönberg CD. 2008. Trace-element mobilization in slabs due to non steady-state fluid-rock interaction: Constraints from an eclogite-facies transport vein in blueschist (Tianshan, China). Lithos, 103(1-2): 1-24 doi: 10.1016/j.lithos.2007.09.005
Li JL, Gao J, John T, Klemd R and Su W. 2013. Fluid-mediated metal transport in subduction zones and its link to arc-related giant ore deposits: Constraints from a sulfide-bearing HP vein in lawsonite eclogite (Tianshan, China). Geochimica et Cosmochimica Acta, 120: 326-362 doi: 10.1016/j.gca.2013.06.023
Li JL, Klemd R, Gao J, Jiang T and Song YH. 2015. A common high-pressure metamorphic evolution of interlayered eclogites and metasediments from the 'ultrahigh-pressure unit' of the Tianshan metamorphic belt in China. Lithos, 226: 169-182 doi: 10.1016/j.lithos.2014.12.006
Li JL, Gao J, Klemd R, John T and Wang XS. 2016a. Redox processes in subducting oceanic crust recorded by sulfide-bearing high-pressure rocks and veins (SW Tianshan, China). Contributions to Mineralogy and Petrology, 171(8-9): 72 doi: 10.1007/s00410-016-1284-2
Li JL, Gao J and Wang XS. 2016b. A subduction channel model for exhumation of oceanic-type high-pressure to ultrahigh-pressure eclogite-facies metamorphic rocks in SW Tianshan, China. Science China (Earth Sciences), 59(12): 2339-2354 doi: 10.1007/s11430-016-5103-7
Li JL, John T, Gao J, Klemd R and Wang XS. 2017. Subduction channel fluid-rock interaction and mass transfer: Constraints from a retrograde vein in blueschist (SW Tianshan, China). Chemical Geology, 456: 28-42 doi: 10.1016/j.chemgeo.2017.03.003
Li JL, Schwarzenbach EM, John T, Ague JJ, Huang F, Gao J, Klemd R, Whitehouse MJ and Wang XS. 2020. Uncovering and quantifying the subduction zone sulfur cycle from the slab perspective. Nature Communications, 11: 514 doi: 10.1038/s41467-019-14110-4
Li JL, Klemd R, Huang GF, Ague JJ and Gao J. 2021. Unravelling slab δ34S compositions from in-situ sulphide δ34S studies of high-pressure metamorphic rocks. International Geology Review, 63(1): 109-129 doi: 10.1080/00206814.2020.1827305
Lü Z, Zhang LR, Du JX and Bucher K. 2009. Petrology of coesite-bearing eclogite from Habutengsu Valley, western Tianshan, NW China and its tectonometamorphic implication. Journal of Metamorphic Geology, 27(9): 773-787 doi: 10.1111/j.1525-1314.2009.00845.x
McCulloch MT and Gamble JA. 1991. Geochemical and geodynamical constraints on subduction zone magmatism. Earth and Planetary Science Letters, 102(3-4): 358-374 doi: 10.1016/0012-821X(91)90029-H
Morimoto N, Fabries J, Ferguson AK, Ginzburg IV, Ross M, Seifert FA, Zussman J, Aoki K and Gottardi G. 1988. Nomenclature of pyroxenes. American Mineralogist, 73: 1123-1133
http://www.springerlink.com/content/j671273602636642/
Ni HW, Zhang L, Xiong XL, Mao Z and Wang JY. 2017. Supercritical fluids at subduction zones: Evidence, formation condition, and physicochemical properties. Earth-Science Reviews, 167: 62-71 doi: 10.1016/j.earscirev.2017.02.006
Peng WG, Zhang LF, Tumiati S, Vitale Brovarone A, Hu H, Cai YC and Shen TT. 2021. Abiotic methane generation through reduction of serpentinite-hosted dolomite: Implications for carbon mobility in subduction zones. Geochimica et Cosmochimica Acta, 311: 119-140 doi: 10.1016/j.gca.2021.07.033
Ramsay JG. 1980. The crack-seal mechanism of rock deformation. Nature, 284(5752): 135-139 doi: 10.1038/284135a0
Scambelluri M, Pennacchioni G, Gilio M, Bestmann M, Plümper O and Nestola F. 2017. Fossil intermediate-depth earthquakes in subducting slabs linked to differential stress release. Nature Geoscience, 10(12): 960-966 doi: 10.1038/s41561-017-0010-7
Schulz B, Klemd R and Brätz H. 2006. Host rock compositional controls on zircon trace element signatures in metabasites from the Austroalpine basement. Geochimica et Cosmochimica Acta, 70(3): 697-710 doi: 10.1016/j.gca.2005.10.001
Sobolev NV, Dobretsov NL, Bakirov AB and Shatsky VS. 1986. Eclogites from various types of metamorphic complexes in the USSR and the problems of their origin. In: Evans BW and Brown EH (eds. ). Blueschists and Eclogites. Geological Society of America, 164: 349-363
Spandler C and Hermann J. 2006. High-pressure veins in eclogite from New Caledonia and their significance for fluid migration in subduction zones. Lithos, 89(1-2): 135-153 doi: 10.1016/j.lithos.2005.12.003
Su W, Zhang M, Redfern SAT, Gao J and Klemd R. 2009. OH in zoned amphiboles of eclogite from the western Tianshan, NW-China. International Journal of Earth Sciences, 98(6): 1299-1309 doi: 10.1007/s00531-008-0379-z
Sun SS and McDonough WF. 1989. Chemical and isotopic systematics of oceanic basalts: Implications for mantle composition and processes. In: Sanders AD and Norry MJ (eds. ). Magmatism in Ocean Basins. Geological Society, London, Special Publication, 42(1): 313-345
Tatsumi Y. 1989. Migration of fluid phases and genesis of basalt magmas in subduction zones. Journal of Geophysical Research: Solid Earth, 94(B4): 4697-4707 doi: 10.1029/JB094iB04p04697
Volkova NI and Budanov VI. 1999. Geochemical discrimination of metabasalt rocks of the Fan-Karategin transitional blueschist/greenschist belt, South Tianshan, Tajikistan: Seamount volcanism and accretionary tectonics. Lithos, 47(3-4): 201-216 doi: 10.1016/S0024-4937(99)00019-5
Wang C, Tao RB, Walters JB, Höfer HE and Zhang LF. 2022. Favorable P-T-fO2 conditions for abiotic CH4 production in subducted oceanic crusts: A comparison between CH4-bearing ultrahigh- and CO2-bearing high-pressure eclogite. Geochimica et Cosmochimica Acta, 336: 269-290
http://www.semanticscholar.org/paper/3ca12490a81d93df39cb224a8da2e4b18ef1a349
Weber S, Hauke M, Martinez RE, Redler C, Münker C and Froitzheim N. 2022. Fluid-driven transformation of blueschist to vein eclogite during the Early Eocene in a subducted sliver of continental crust (Monte Emilius, Italian Western Alps). Journal of Metamorphic Geology, 40(3): 553-584
http://onlinelibrary.wiley.com/doi/10.1111/jmg.12638/abstract
Xiong JW, Chen YX, Zhou K, Schertl HP, Zheng YF, Huang F, Xia XP and Chen ZW. 2021. Fe and O isotopes in coesite-bearing jadeite quartzite from the Western Alps record multistage fluid-rock interactions in a continental subduction zone. Geochimica et Cosmochimica Acta, 312: 1-24
Xiong JW, Chen YX, Ma HZ, Schertl HP, Zheng YF and Zhao KD. 2022. Tourmaline boron isotopes trace metasomatism by serpentinite-derived fluid in continental subduction zone. Geochimica et Cosmochimica Acta, 320: 122-142
Zhang LJ, Zhang LF, Tang M, Wang X, Tao RB, Xu C and Bader T. 2023. Massive abiotic methane production in eclogite during cold subduction. National Science Review, 10(1): nwac207
http://qikan.cqvip.com/Qikan/Article/Detail?id=7109369198
Zhu L, Chen RX, Zheng YF, He Q, Xia QX and Wang ZM. 2022. Multistage growth of garnet fingerprints the behavior and property of metamorphic fluids in a Paleotethyan oceanic subduction zone. Lithos, 430-431: 106851
高俊, 肖序常, 汤耀庆, 赵民, 王军, 吴汉泉. 1993. 南天山库米什蓝片岩的发现及其大地构造意义. 中国区域地质, (2): 344-347
高俊, 李继磊, 马智佩, Klemd R. 2024. 俯冲带流体——来自(超)高压变质岩石的证据. 地质学报, 98(3): 758-782
黄德志, 高俊, 戴塔根. 2001. 俯冲带流体作用的地球化学示踪. 地学前缘, 8(3): 131-139
张立飞, 杜瑾雪, 吕增, 杨鑫, 苟龙龙, 夏彬, 陈振宇, 魏春景, 宋述光. 2013. 新疆西南天山超高压变质带的空间分布、峰期变质时代和P-T轨迹特征. 科学通报, 58(22): 2107-2112