[1] |
Berly, T, J., Arculus, R, J., Lapierre, H., et al., 2006.Supra⁃Subduction Zone Pyroxenites from San Jorge and Santa Isabel (Solomon Islands).Journal of Petrology, 47(8):1531-1555. doi: 10.1093/petrology/egl019 |
[2] |
Brooker, R, A., James, R, H., Blundy, J, D., 2004.Trace Elements and Li Isotope Systematics in Zabargad Peridotites: Evidence of Ancient Subduction Processes in the Red Sea Mantle.Chemical Geology 212(1-2):179-204. https://doi.org/10.1016/j.chemgeo.2004.08.007 |
[3] |
Chen, L., Zhao, Z, F., 2017.Origin of Continental Arc Andesites: The Composition of Source Rocks is the Key.Journal of Asian Earth Sciences, 145: 217-232, https://doi.org/10.1016/j.jseaes.2017.04.012 |
[4] |
Chen, L., Zhao, Z, F., Zheng, Y, F., 2014.Origin of Andesitic Rocks: Geochemical Constraints from Mesozoic Volcanics in the Luzong Basin, South China.Lithos, 190-191: 220-239. doi: 10.1016/j.lithos.2013.12.011 |
[5] |
Chen, L., Zheng, Y, F., Zhao, Z, F., 2016.Geochemical Constraints on the Origin of Late Mesozoic Andesites from the Ningwu Basin in the Middle⁃Lower Yangtze Valley, South China.Lithos, 254-255:94-117. doi: 10.1016/j.lithos.2016.03.012 |
[6] |
Chen, L., Zheng, Y, F., Zhao, Z, F., 2018a.Geochemical Insights from Clinopyroxene Phenocrysts into the Effect of Magmatic Processes on Petrogenesis of Intermediate Volcanics.Lithos, 316-317:137-153 doi: 10.1016/j.lithos.2018.07.014 |
[7] |
Chen, L., Zheng, Y, F., Zhao, Z, F., 2018b.A Common Crustal Component in the Sources of Bimodal Magmatism: Geochemical Evidence from Mesozoic Volcanics in the Middle⁃Lower Yangtze Valley, South China.GSA Bulletin, 130:1959-1980. |
[8] |
Codillo, E, A., Le Roux, V., Marschall, H, R., 2018.Arc⁃Like Magmas Generated by Mélange⁃Peridotite Interaction in the Mantle Wedge.Nature Communications, 9:2864. doi: 10.1038/s41467-018-05313-2 |
[9] |
DePaolo, D, J., 1981.Trace Element and Isotopic Effects of Combined Wallrock Assimilation and Fractional Crystallization.Earth and Planetary Science Letters, 53(2):189-202. doi: 10.1016/0012-821X(81)90153-9 |
[10] |
Elliott, T., 2003.Tracers of the Slab.Geophysical Monograph, 138: 23-46. http://cn.bing.com/academic/profile?id=c621c866e63da84110e4b4c02a4893fd&encoded=0&v=paper_preview&mkt=zh-cn |
[11] |
England, P, C., Katz, R, F., 2010.Melting above the Anhydrous Solidus Controls the Location of Volcanic Arcs.Nature, 467: 700-703. https://doi.org/10.1038/nature09417 |
[12] |
Gervasoni, F., Klemme, S., Rohrbach, A., et al., 2017.Experimental Constraints on Mantle Metasomatism Caused by Silicate and Carbonate Melts.Lithos, 282-283:173-186, https://doi.org/10.1016/j.lithos.2017.03.004 |
[13] |
Gill, J.B., 1981.Orogenic Andesites and Plate Tectonics.Springer⁃Verlag, New York, 390. |
[14] |
Gómez⁃Tuena, A., Mori, L., Straub, S.M., 2018.Geochemical and Petrological Insights into the Tectonic Origin of the Transmexican Volcanic Belt.Earth⁃Science Reviews, 183:153-181. https://doi.org/10.1016/j.earscirev.2016.12.006 |
[15] |
Gómez⁃Tuena, A., Straub, S.M., Zellmer, G.F., 2014.An Introduction to Orogenic Andesites and Crustal Growth.Geological Society, London, Special Publications, 385(1):1-13. doi: 10.1144/SP385.16 |
[16] |
Grove, T.L., Till, C.B., Lev, E., et al., 2009.Kinematic Variables and Water Transport Control the Formation and Location of Arc Volcanoes.Nature, 459: 694-697, https://doi.org/10.1038/nature08044 |
[17] |
Grove, T.L., Till, C.B., Krawczynski, M.J., 2012.The Role of H2O in Subduction Zone Magmatism.Annual Review of Earth and Planetary Sciences, 40(1):413-439. doi: 10.1146/annurev-earth-042711-105310 |
[18] |
Hall, P.S., Kincaid, C., 2001.Diapiric Flow at Subduction Zones: A Recipe for Rapid Transport.Science, 292(5526): 2472-2475. doi: 10.1126/science.1060488 |
[19] |
Hildreth, W., Moorbath, S., 1988.Crustal Contributions to Arc Magmatism in the Andes of Central Chile.Contributions to Mineralogy and Petrology, 98(4):455-489. doi: 10.1007/BF00372365 |
[20] |
Hirschmann, M.M., Stolper, E.M., 1996.A Possible Role for Garnet Pyroxenite in the Origin of the "Garnet Signature" in MORB.Contributions to Mineralogy and Petrology, 124(2):185-208. doi: 10.1007/s004100050184 |
[21] |
Ionov, D.A., Hofmann, A.W., 1995.Nb⁃Ta⁃Rich Mantle Amphiboles and Micas: Implications for Subduction⁃Related Metasomatic Trace Element Fractionations.Earth and Planetary Science Letters, 131(3-4):341-356, https://doi.org/10.1016/0012⁃821x(95)00037⁃d |
[22] |
Kelemen, P.B., Dick, H.J., Quick, J, E., 1992.Formation of Harzburgite by Pervasive Melt/Rock Reaction in the Upper Mantle.Nature, 358:635-641. doi: 10.1038/358635a0 |
[23] |
Kelemen, P.B., Hart, S.R., Bernstein, S., 1998.Silica Enrichment in the Continental Upper Mantle Via Melt/Rock Reaction.Earth and Planetary Science Letters, 164(1-2):387-406. doi: 10.1016/S0012-821X(98)00233-7 |
[24] |
Kelemen, P.B., Hanghoj, K., Greene, A.R., 2014.One View of the Geochemistry of Subduction⁃Related Magmatic Arcs, with an Emphasis on Primitive Andesite and Lower Crust.Treatise on Geochemistry, 3:593-659. http://adsabs.harvard.edu/abs/2003TrGeo...3..593K |
[25] |
Kincaid, C., Griffiths, R.W., 2003.Laboratory Models of the Thermal Evolution of the Mantle during Rollback Subduction.Nature, 425:58-62, https://doi.org/10.1038/nature01923 |
[26] |
Lambart, S., Laporte, D., Schiano, P., 2009.An Experimental Study of Pyroxenite Partial Melts at 1 and 1.5 GPa: Implications for the Major⁃Element Composition of Mid⁃Ocean Ridge Basalts.Earth and Planetary Science Letters, 288(1-2):335-347. doi: 10.1016/j.epsl.2009.09.038 |
[27] |
Lee, C.T.A., Bachmann, O., 2014.How Important is the Role of Crystal Fractionation in Making Intermediate Magmas? Insights from Zr and P Systematics.Earth and Planetary Science Letters, 393:266-274, https://doi.org/10.1016/j.epsl.2014.02.044 |
[28] |
Marschall, H.R., Schumacher, J.C., 2012.Arc Magmas Sourced from Mélange Diapirs in Subduction Zones.Nature Geoscience, 5: 862-867. doi: 10.1038/ngeo1634 |
[29] |
McDonough, W.F., Sun, S., 1995.The Composition of the Earth.Chemical Geology, 120(3-4):223-253. doi: 10.1016/0009-2541(94)00140-4 |
[30] |
Nielsen, S.G., Marschall, H.R., 2017.Geochemical Evidence for Mélange Melting in Global Arcs.Science Advances, 3(4):e1602402. doi: 10.1126/sciadv.1602402 |
[31] |
Niu, X.L., Liu, F., Feng, G.Y., et al., 2018.Discovery and Significance of Early Silurian Andesites in Wuwamen Area, Southern Margin of Central Tianshan Block.Earth Science, 43(4): 1350-1366(in Chinese with English abstract). http://www.wanfangdata.com.cn/details/detail.do?_type=perio&id=dqkx201804027 |
[32] |
Plank, T., Langmuir, C.H., 1998.The Chemical Composition of Subducting Sediment and Its Consequences for the Crust and Mantle.Chemical Geology, 145:323-394. doi: 10.1016-S0009-2541(97)00150-2/ |
[33] |
Qian, W., Wang, W., Zou, F., et al., 2018.Elasticity of Orthoenstatite at High Pressure and Temperature: Implications for the Origin of Low VP/VS Zones in the Mantle Wedge.Geophysical Research Letters, 45:665-673. doi: 10.1002/2017GL075647 |
[34] |
Rapp, R.P., Norman, M.D., Laporte, D., et al., 2010.Continent Formation in the Archean and Chemical Evolution of the Cratonic Lithosphere: Melt⁃Rock Reaction Experiments at 3-4 GPa and Petrogenesis of Archean Mg⁃Diorites (Sanukitoids).Journal of Petrology, 51:1237-1266, https://doi.org/10.1093/petrology/egq017 |
[35] |
Rapp, R.P., Shimizu, N., Norman, M.D., et al., 1999.Reaction between Slab⁃Derived Melts and Peridotite in the Mantle Wedge: Experimental Constraints at 3.8 GPa.Chemical Geology, 160:335-356. doi: 10.1016/S0009-2541(99)00106-0 |
[36] |
Sobolev, A.V., Hofmann, A.W., Kuzmin, D.V., et al., 2007.The Amount of Recycled Crust in Sources of Mantle⁃Derived Melts.Science, 316:412-417. doi: 10.1126/science.1138113 |
[37] |
Straub, S.M., Gómez⁃Tuena, A., Stuart, F.M., et al., 2011.Formation of Hybrid Arc Andesites beneath Thick Continental Crust.Earth and Planetary Science Letters, 303(3-4):337-347. doi: 10.1016/j.epsl.2011.01.013 |
[38] |
Straub, S.M., Zellmer, G.F., Gómez⁃Tuena, A., et al., 2014.A Genetic Link between Silicic Slab Components and Calc⁃Alkaline Arc Volcanism in Central Mexico.Geological Society, London, Special Publications, 385(1):31-64. doi: 10.1144/SP385.14 |
[39] |
Sun, Y., Ma, C.Q., Liu, B, 2017.Record of Late Yanshanian Mafic Magmatic Activity in the Middle⁃Lower Yangtze River Metallogenic Belt.Earth Science, 42(6): 891-908(in Chinese with English abstract), http://gateway.proquest.com/openurl?res_dat=xri:pqm&ctx_ver=Z39.88-2004&rfr_id=info:xri/sid:baidu&rft_val_fmt=info:ofi/fmt:kev:mtx:article&genre=article&jtitle=Earth%20Science&atitle=Record%20of%20Late%20Yanshanian%20Mafic%20Magmatic%20Activity%20in%20the%20Middle-Lower%20Yangtze%20River%20Metallogenic%20Belt |
[40] |
Tatsumi, Y., Eggins, S., 1995.Subduction Zone Magmatism, Blackwell Science, Oxford, 211. |
[41] |
Valley, J.W., Kinny, P.D., Schulze, D.J., et al., 1998.Zircon Metacrysts from Kimberlite: Oxygen Isotope Variability among Mantle Melts.Contributions to Mineralogy and Petrology, 133(1-2):1-11. doi: 10.1007/s004100050432 |
[42] |
Wyllie, P, J., Sekine, T., 1982.The Formation of Mantle Phlogopite in Subduction Zone Hybridization.Contributions to Mineralogy and Petrology, 79(4):375-380. doi: 10.1007/BF01132067 |
[43] |
Zheng, Y, F., 2019.Subduction Zone Geochemistry.Geoscience Frontiers, 10:1223-1254. doi: 10.1016/j.gsf.2019.02.003 |
[44] |
Zheng, Y.F., Chen, Y.X., 2016.Continental versus Oceanic Subduction Zones.National Science Review, 3(4):495-519. http://d.old.wanfangdata.com.cn/NSTLQK/NSTL_QKJJ0220896643/ |
[45] |
牛晓露, 刘飞, 冯光英, 等, 2018.中天山南缘乌瓦门早志留世安第斯型安山岩的发现及意义.地球科学, 43(4):1350-1366. doi: 10.3799/dqkx.2018.725 |
[46] |
孙洋, 马昌前, 刘彬, 2017.长江中下游地区燕山晚期基性岩浆活动的记录.地球科学, 42(6):891-908. doi: 10.3799/dqkx.2017.077 |