Home Physical Sciences Extraction of high-silica granites from an upper crustal magma reservoir: Insights from the Narusongduo magmatic system, Gangdese arc
Article
Licensed
Unlicensed Requires Authentication

Extraction of high-silica granites from an upper crustal magma reservoir: Insights from the Narusongduo magmatic system, Gangdese arc

  • Jin-Sheng Zhou , Zhu-Sen Yang EMAIL logo , Qiang Wang , Yuan-Chuan Zheng , Zeng-Qian Hou and Derek A. Wyman
Published/Copyright: October 29, 2020
Become an author with De Gruyter Brill

Abstract

The genesis of high-silica igneous rocks is important for understanding the behavior of shallow magmatic systems. However, although many such studies have focused on the eruption of crystal-poor high-SiO2 rhyolites, the origin of high-silica granites (HSGs) has received comparatively little attention. Here, we present a detailed study of HSGs from the Narusongduo volcanic complex, Gangdese arc. Combining zircon U-Pb geochronology with stratigraphic investigations, we show that the Narusongduo magmatic system was constructed over a period of ≥3.7 Myr with or without lulls. On the basis of zircon textures and ages, diverse zircon populations, including antecrysts and autocrysts, are recognized within the HSGs and volcanic rocks. All of the igneous rocks within the Narusongduo volcanic complex have highly radiogenic Sr–Nd isotopic compositions. Our results indicate the presence of an andesitic magma reservoir in the upper crust at a paleodepth of ~8 km. Ubiquitous zircon antecrysts in the HSGs, combined with compositional similarities between the HSGs and evolved melts of the andesitic magma reservoir, indicate that the Narusongduo HSGs represent melts extracted from the shallow magma reservoir. In addition, our results suggest that magma recharge promoted the escape of high-silica melts to form the Narusongduo HSGs. This work presents an excellent case that kilometer-scale high-silica granites are the differentiated products from an upper crustal magma reservoir. It would make a contribution to contemporary debates concerning the efficiency of crystal–melt separation in upper crustal magmatic systems.

Award Identifier / Grant number: 91855215

Award Identifier / Grant number: 41630208

Award Identifier / Grant number: 41802061

Award Identifier / Grant number: XDA2007030402

Award Identifier / Grant number: GIGCAS 135

Award Identifier / Grant number: 135TP201601

Funding statement: This research was supported in part by the National Key Research and Development Program of China “Deep Structure and Ore-forming Process of Main Mineralization System in Tibetan Orogen” (2016YFC0600306) to Z. S. Yang; the Second Tibetan Plateau Scientific Expedition and Research (STEP) (2019QZKK0702), the National Natural Science Foundation of China (91855215 and 41630208), the Strategic Priority Research Program (A) of the Chinese Academy of Sciences (grant no. XDA2007030402), and the Guangzhou Institute of Geochemistry, Chinese Academy of Science (GIGCAS 135 project (135TP201601) to Q. Wang; the National Natural Science Foundation of China (41802061) to J.S. Zhou.

Acknowledgments

We thank Gareth Fabbro for discussions on equilibrium liquid calculation and Mg diffusion in plagioclase. We appreciate Ya-Nan Yang, Qing Yang, Le Zhang, Peng-Li He, Fan Yang, and Peng-Fei Ma for laboratory assistance, as well as Ying-Chao Liu, Zhen-Qing Li, Qi-Wei Li, Tong-Yu Huang, Xiao-Yan Zhao, Fan Fei, Xiong Zhang, and Yu-Tao Xu for extensive help on geologic mapping and stratigraphic investigation in the field. We are grateful to Calvin Barnes, Erik Klemetti, and an anonymous reviewer for helpful, constructive reviews and Chad Deering for comments on early versions.

References cited

Annen, C., Blundy, J.D., and Sparks, R.S.J. (2006) The genesis of intermediate and silicic magmas in deep crustal hot zones. Journal of Petrology, 47, 505–539.10.1093/petrology/egi084Search in Google Scholar

Audétat, A. (2015) Compositional evolution and formation conditions of magmas and fluids related to porphyry Mo mineralization at Climax, Colorado. Journal of Petrology, 56, 1519–1546.10.1093/petrology/egv044Search in Google Scholar

Baasner, A., Schmidt, B.C., and Webb, S.L. (2013) The effect of chlorine, fluorine and water on the viscosity of aluminosilicate melts. Chemical Geology, 357, 134–149.10.1016/j.chemgeo.2013.08.020Search in Google Scholar

Bachmann, O., and Bergantz, G.W. (2004) On the origin of crystal–poor rhyolites: Extracted from batholithic crystal mushes. Journal of Petrology, 45, 1565–1582.10.1093/petrology/egh019Search in Google Scholar

Bachmann, O., and Huber, C. (2019) The inner workings of crustal distillation columns; the physical mechanisms and rates controlling phase separation in silicic magma reservoirs. Journal of Petrology, 60, 3–18.10.1093/petrology/egy103Search in Google Scholar

Bacon, C.R., and Lowenstern, J.B. (2005) Late Pleistocene granodiorite source for recycled zircon and phenocrysts in rhyodacite lava at Crater Lake, Oregon. Earth and Planetary Science Letters, 233, 277–293.10.1016/j.epsl.2005.02.012Search in Google Scholar

Barnes, C.G. (1983) Petrology and upward zonation of the Wooley Creek batholith, Klamath Mountains, California. Journal of Petrology, 24, 495–537.10.1093/petrology/24.4.495Search in Google Scholar

Barnes, C.G., Memeti, V., and Coint, N. (2016) Deciphering magmatic processes in calc–alkaline plutons using trace element zoning in hornblende. American Mineralogist, 101, 328–342.10.2138/am-2016-5383Search in Google Scholar

Bateman, P.C., and Chappell, B.W. (1979) Crystallization, fractionation, and solidification of the Tuolumne intrusive series, Yosemite National Park, California. Geological Society of America Bulletin, 90, 465–482.10.1130/0016-7606(1979)90<465:CFASOT>2.0.CO;2Search in Google Scholar

Bea, F., Montero, P., and Ortega, M. (2006) A LA–ICP–MS evaluation of Zr reservoirs in common crustal rocks: implications for Zr and Hf geochemistry, and zircon-forming processes. Canadian Mineralogist, 44, 693–714.10.2113/gscanmin.44.3.693Search in Google Scholar

Bindeman, I.N., Davis, A.M., and Drake, M.J. (1998) Ion microprobe study of plagioclase-basalt partition experiments at natural concentration levels of trace elements. Geochimica et Cosmochimica Acta, 62, 1175–1193.10.1016/S0016-7037(98)00047-7Search in Google Scholar

Blundy, J.D., and Annen, C.J. (2016) Crustal magmatic systems from the perspective of heat transfer. Elements, 12, 115–120.10.2113/gselements.12.2.115Search in Google Scholar

Blundy, J., and Wood, B. (1994) Prediction of crystal-melt partition coefficients from elastic moduli. Nature, 372, 452–454.10.1038/372452a0Search in Google Scholar

Boehnke, P., Watson, E.B., Trail, D., Harrison, T.M., and Schmitt, A.K. (2013) Zircon saturation re-revisited. Chemical Geology, 351, 324–334.10.1016/j.chemgeo.2013.05.028Search in Google Scholar

Caricchi, L., and Blundy, J. (2015) The temporal evolution of chemical and physical properties of magmatic systems. Geological Society, London, Special Publications, 422, 1–15.10.1144/SP422.11Search in Google Scholar

Caricchi, L., Burlini, L., Ulmer, P., Gerya, T., Vassalli, M., and Papale, P. (2007) Non-Newtonian rheology of crystal–bearing magmas and implications for magma ascent dynamics. Earth and Planetary Science Letters, 264, 402–419.10.1016/j.epsl.2007.09.032Search in Google Scholar

Chung, S.L., Chu, M.F., Zhang, Y., Xie, Y., Lo, C.H., and Lee, T.Y. (2005) Tibetan tectonic evolution inferred from spatial and temporal variations in post–collisional magmatism. Earth Science Reviews, 68, 173–196.10.1016/j.earscirev.2004.05.001Search in Google Scholar

Claiborne, L.L., Miller, C.F., Walker, B.A., Wooden, J.L., Mazdab, F.K., and Bea, F. (2006) Tracking magmatic processes through Zr/Hf ratios in rocks and Hf and Ti zoning in zircons: an example from the Spirit Mountain batholith, Nevada. Mineralogical Magazine, 70, 517–543.10.1180/0026461067050348Search in Google Scholar

Clemens, J.D., and Stevens, G. (2012) What controls chemical variation in granitic magmas? Lithos, 134-135, 317–329.10.1016/j.lithos.2012.01.001Search in Google Scholar

Coleman, D.S., Bartley, J.M., Glazner, A.F., and Pardue, M.J. (2012) Is chemical zonation in plutonic rocks driven by changes in source magma composition or shallow-crustal differentiation? Geosphere, 8, 1568–1587.10.1130/GES00798.1Search in Google Scholar

Costa, A., Caricchi, L., and Bagdassarov, N. (2009) A model for the rheology of particle-bearing suspensions and partially molten rocks. Geochemistry, Geophysics, Geosystems, 10, N3.10.1029/2008GC002138Search in Google Scholar

Crabtree, S.M., and Lange, R.A. (2011) Complex phenocryst textures and zoning patterns in andesites and dacites: evidence of degassing–induced rapid crystallization? Journal of Petrology, 52, 3–38.10.1093/petrology/egq067Search in Google Scholar

de Silva, S.L., and Gregg, P.M. (2014) Thermomechanical feedbacks in magmatic systems: Implications for growth, longevity, and evolution of large caldera-forming magma reservoirs and their supereruptions. Journal of Volcanology and Geothermal Research, 282, 77–91.10.1016/j.jvolgeores.2014.06.001Search in Google Scholar

Deering, C.D., and Bachmann, O. (2010) Trace element indicators of crystal accumulation in silicic igneous rocks. Earth and Planetary Science Letters, 297, 324–331.10.1016/j.epsl.2010.06.034Search in Google Scholar

Deering, C.D., Cole, J.W., and Vogel, T.A. (2011) Extraction of crystal-poor rhyolite from a hornblende–bearing intermediate mush: a case study of the caldera–forming Matahina eruption, Okataina volcanic complex. Contributions to Mineralogy and Petrology, 161, 129–151.10.1007/s00410-010-0524-0Search in Google Scholar

Deering, C.D., Keller, B., Schoene, B., Bachmann, O., Beane, R., and Ovtcharova, M. (2016) Zircon record of the plutonic-volcanic connection and protracted rhyolite melt evolution. Geology, 44, 267–270.10.1130/G37539.1Search in Google Scholar

Dufek, J., and Bachmann, O. (2010) Quantum magmatism: Magmatic compositional gaps generated by melt-crystal dynamics. Geology, 38, 687–690.10.1130/G30831.1Search in Google Scholar

Erdmann, S., Martel, C., Pichavant, M., and Kushnir, A. (2014) Amphibole asan archivist of magmatic crystallization conditions: Problems, potential, and implications for inferring magma storage prior to the paroxysmal 2010 eruption of Mount Merapi, Indonesia. Contributions to Mineralogy and Petrology, 167, 1016–1038.10.1007/s00410-014-1016-4Search in Google Scholar

Fabbro, G.N., Druitt, T.H., and Costa, F. (2017) Storage and eruption of silicic magma across the transition from dominantly effusive to caldera-forming states at an arc volcano (Santorini, Greece). Journal of Petrology, 58, 2429–2464.10.1093/petrology/egy013Search in Google Scholar

Ghiorso, M.S., and Sack, R.O. (1995) Chemical mass transfer in magmatic processes IV. A revised and internally consistent thermodynamic model for the interpolation and extrapolation of liquid-solid equilibria in magmatic systems at elevated temperatures and pressures. Contributions to Mineralogy and Petrology, 119, 197–212.10.1007/BF00307281Search in Google Scholar

Giordano, D., Romano, C., Dingwell, D.B., Poe, B., and Behrens, H. (2004) The combined effects of water and fluorine on the viscosity of silicic magmas. Geochimica et Cosmochimica Acta, 68, 5159–5168.10.1016/j.gca.2004.08.012Search in Google Scholar

Giordano, D., Russell, J.K., and Dingwell, D.B. (2008) Viscosity of magmatic liquids: a model. Earth and Planetary Science Letters, 271, 123–134.10.1016/j.epsl.2008.03.038Search in Google Scholar

Glazner, A.F., Bartley, J.M., Coleman, D.S., Gray, W., and Taylor, R.Z. (2004) Are plutons assembled over millions of years by amalgamation from small magma chambers? GSA Today, 14, 4–12.10.1130/1052-5173(2004)014<0004:APAOMO>2.0.CO;2Search in Google Scholar

Grunder, A.L., Klemetti, E.W., Feeley, T.C., and McKee, C.M. (2008) Eleven million years of arc volcanism at the Aucanquilcha Volcanic Cluster, northern Chilean Andes: implications for the life span and emplacement of plutons. Earth and Environmental Science Transactions of the Royal Society of Edinburgh, 97, 415–436.10.1017/S0263593300001541Search in Google Scholar

Gualda, G.A., and Ghiorso, M.S. (2015) MELTS_Excel: A Microsoft Excel-based MELTS interface for research and teaching of magma properties and evolution. Geochemistry, Geophysics, Geosystems, 16, 315–324.10.1002/2014GC005545Search in Google Scholar

Gualda, G.A.R., Ghiorso, M.S., Lemons, R.V., and Carley, T.L. (2012) Rhyolite-MELTS: A modified calibration of MELTS optimized for silica-rich, fluid-bearing magmatic systems. Journal of Petrology, 53, 875–890.10.1093/petrology/egr080Search in Google Scholar

Hartung, E., Weber, G., and Caricchi, L. (2019) The role of H2O on the extraction of melt from crystallising magmas. Earth and Planetary Science Letters, 508, 85–96.10.1016/j.epsl.2018.12.010Search in Google Scholar

Hildreth, W. (1979) The Bishop Tuff: evidence for the origin of compositional zonation in silicic magma chambers. Geological Society of America Special Paper, 180, 43–75.10.1130/SPE180-p43Search in Google Scholar

Hildreth, W. (1981) Gradients in silicic magma chambers: Implications for lithospheric magmatism. Journal of Geophysical Research: Solid Earth, 86, 10153–10192.10.1002/9781118782057.ch3Search in Google Scholar

Hildreth, W., and Moorbath, S. (1988) Crustal contributions to arc magmatism in the Andes of central Chile. Contributions to Mineralogy and Petrology, 98, 455–489.10.1007/BF00372365Search in Google Scholar

Hill, E., Blundy, J.D., and Wood, B.J. (2011) Clinopyroxene-melt trace element partitioning and the development of a predictive model for HFSE and Sc. Contributions to Mineralogy and Petrology, 161, 423–438.10.1007/s00410-010-0540-0Search in Google Scholar

Holness, M.B. (2018) Melt segregation from silicic crystal mushes: a critical appraisal of possible mechanisms and their microstructural record. Contributions to Mineralogy and Petrology, 173, 48.10.1007/s00410-018-1465-2Search in Google Scholar PubMed PubMed Central

Holtz, F., Dingwell, D.B., and Behrens, H. (1993) Effects of F, B2O3 and P2O5 on the solubility of water in haplogranite melts compared to natural silicate melts. Contributions to Mineralogy and Petrology, 113, 492–501.10.1007/BF00698318Search in Google Scholar

Hou, Z.Q., Duan, L.F., Lu, Y.J., Zheng, Y.C., Zhu, D.C., Yang, Z.M., Yang, Z.S., Wang, B.D., Pei, Y.R., Zhao, Z.D., and McCuaig, C. (2015) Lithospheric architecture of the Lhasa Terrane and its control on ore deposits in the Himalayan-Tibetan Orogen. Economic Geology, 110, 1541–1575.10.2113/econgeo.110.6.1541Search in Google Scholar

Huber, C., Townsend, M., Degruyter, W., and Bachmann, O. (2019) Optimal depth of subvolcanic magma chamber growth controlled by volatiles and crust rheology. Nature Geoscience, 12, 762–768.10.1038/s41561-019-0415-6Search in Google Scholar

Humphreys, M.C., Cooper, G.F., Zhang, J., Loewen, M., Kent, A.J., Macpherson, C.G., and Davidson, J.P. (2019) Unravelling the complexity of magma plumbing at Mount St. Helens: a new trace element partitioning scheme for amphibole. Contributions to Mineralogy and Petrology, 174, 9.10.1007/s00410-018-1543-5Search in Google Scholar

Ji, W.Q., Wu, F.Y., Chung, S.L., Li, J.X., and Liu, C.Z. (2009) Zircon U-Pb geochronology and Hf isotopic constraints on petrogenesis of the Gangdese batholith, southern Tibet. Chemical Geology, 262, 229–245.10.1016/j.chemgeo.2009.01.020Search in Google Scholar

Ji, X.H., Yang, Z.S., Yu, Y.S., Shen, J.F., Tian, S.H., Meng, X.J., Li, Z.Q., and Liu, Y.C. (2012) Formation mechanism of magmatic rocks in Narusongduo lead-zinc deposit of Tibet: Evidence from magmatic zircon. Mineral Deposits, 31, 758–774 (in Chinese with English abstract).Search in Google Scholar

Karakas, O., Degruyter, W., Bachmann, O., and Dufek, J. (2017) Lifetime and size of shallow magma bodies controlled by crustal-scale magmatism. Nature Geoscience, 10, 446–450.10.1038/ngeo2959Search in Google Scholar

Karakas, O., Wotzlaw, J.F., Guillong, M., Ulmer, P., Brack, P., Economos, R., Bergantz, G.W., Sinigoi, S., and Bachmann, O. (2019) The pace of crustal-scale magma accretion and differentiation beneath silicic caldera volcanoes. Geology, 47, 719–723.10.1130/G46020.1Search in Google Scholar

Klemetti, E.W., and Clynne, M.A. (2014) Localized rejuvenation of a crystal mush recorded in zircon temporal and compositional variation at the Lassen Volcanic Center, Northern California. PLoS ONE, 9, e113157.10.1371/journal.pone.0113157Search in Google Scholar PubMed PubMed Central

Klemetti, E.W., Deering, C.D., Cooper, K.M., and Roeske, S.M. (2011) Magmatic perturbations in the Okataina Volcanic Complex, New Zealand at thousand-year timescales recorded in single zircon crystals. Earth and Planetary Science Letters, 305, 185–194.10.1016/j.epsl.2011.02.054Search in Google Scholar

Lee, C-T. A., and Morton, D.M. (2015) High silica granites: Terminal porosity and crystal settling in shallow magma chambers. Earth and Planetary Science Letters, 409, 23–31.10.1016/j.epsl.2014.10.040Search in Google Scholar

Lee, C.T.A., Morton, D.M., Farner, M.J., and Moitra, P. (2015) Field and model constraints on silicic melt segregation by compaction/hindered settling: The role of water and its effect on latent heat release. American Mineralogist, 100, 1762–1777.10.2138/am-2015-5121Search in Google Scholar

Li, X.H., Li, Z.X., Wingate, M.T.D., Chung, S.L., Liu, Y., Lin, G.C., and Li, W.X. (2006) Geochemistry of the 755 Ma Mundine Well dyke swarm, northwestern Australia: Part of a Neoproterozoic mantle superplume beneath Rodinia? Precambrian Research, 146, 1–15.10.1016/j.precamres.2005.12.007Search in Google Scholar

Li, X.H., Liu, Y., Li, Q.L., Guo, C.H., and Chamberlain, K.R. (2009) Precise determination of Phanerozoic zircon Pb/Pb age by multicollector SIMS without external standardization. Geochemistry, Geophysics, Geosystems, 10, Q04010.Search in Google Scholar

Li, X.H., Tang, G.Q., Gong, B., Yang, Y.H., Hou, K.J., Hu, Z.C., Li, Q.L., Liu, Y., and Li, W.X. (2013) Qinghu zircon: a working reference for microbeam analysis of U-Pb age and Hf and O isotopes. Chinese Science Bulletin, 58, 4647–4654.10.1007/s11434-013-5932-xSearch in Google Scholar

Linnen, R.L., and Keppler, H. (2002) Melt composition control of Zr/Hf fractionation in magmatic processes. Geochimica et Cosmochimica Acta, 66, 3293–3301.10.1016/S0016-7037(02)00924-9Search in Google Scholar

Lipman, P.W. (1988) Evolution of silicic magma in the upper crust: The mid-Tertiary Latir volcanic field and its cogenetic granitic batholith, northern New Mexico, USA. Earth and Environmental Science Transactions of The Royal Society of Edinburgh, 79, 265–288.10.1017/S0263593300014279Search in Google Scholar

Ludwig, K.R. (2003) A geochronological toolkit for Microsoft Excel. Berkeley Geochronology Center. Special Publication no. 4, 71 pp.Search in Google Scholar

Ma, L., Wang, Q., Kerr, A.C., Yang, J.-H., Xia, X.-P., Quan, O., Yang, Z.-Y., and Sun, P. (2018) Paleocene (c. 62 Ma) Leucogranites in Southern Lhasa, Tibet: products of syn-collisional crustal anatexis during slab roll–back? Journal of Petrology, 58, 2089–2114.Search in Google Scholar

Matthews, N.E., Huber, C., Pyle, D.M., and Smith, V.C. (2012) Timescales of magma recharge and reactivation of large silicic systems from Ti diffusion in quartz. Journal of Petrology, 53, 1–32.10.1093/petrology/egs020Search in Google Scholar

Miller, C.F., and Miller, J.S. (2002) Contrasting stratified plutons exposed in tilt blocks, Eldorado Mountains, Colorado River Rift, NV, USA. Lithos, 61, 209–224.10.1016/S0024-4937(02)00080-4Search in Google Scholar

Miller, C.F., Watson, E.B., and Harrison, T.M. (1988) Perspectives on the source, segregation and transport of granitoid magmas. Earth and Environmental Science Transactions of the Royal Society of Edinburgh, 79, 135–156.10.1017/S0263593300014176Search in Google Scholar

Miller, J., Matzel, J., Miller, C., Burgess, S., and Miller, R. (2007) Zircon growth and recycling during the assembly of large, composite arc plutons. Journal of Volcanology and Geothermal Research, 167, 282–299.10.1016/j.jvolgeores.2007.04.019Search in Google Scholar

Mo, X., Niu, Y., Dong, G., Zhao, Z., Hou, Z., Zhou, S., and Ke, S. (2008) Contribution of syncollisional felsic magmatism to continental crust growth: a case study of the Paleogene Linzizong volcanic succession in southern Tibet. Chemical Geology, 250, 49–67.10.1016/j.chemgeo.2008.02.003Search in Google Scholar

Mollo, S., Putirka, K., Misiti, V., Soligo, M., and Scarlato, P. (2013) A new test for equilibrium based on clinopyroxene-melt pairs: Clues on the solidification temperatures of Etnean alkaline melts at post-eruptive conditions. Chemical Geology, 352, 92–100.10.1016/j.chemgeo.2013.05.026Search in Google Scholar

Murphy, M.D., Sparks, R.S.J., Barclay, J., Carroll, M.R., and Brewer, T.S. (2000) Remobilization of andesite magma by intrusion of mafic magma at the Soufriere Hills volcano, Montserrat, West Indies. Journal of Petrology, 41, 21–42.10.1093/petrology/41.1.21Search in Google Scholar

Neave, D.A., and Putirka, K.D. (2017) A new clinopyroxene-liquid barometer, and implications for magma storage pressures under Icelandic rift zones. American Mineralogist, 102, 777–794.10.2138/am-2017-5968Search in Google Scholar

Putirka, K. (2016) Amphibole thermometers and barometers for igneous systems and some implications for eruption mechanisms of felsic magmas at arc volcanoes. American Mineralogist, 101, 841–858.10.2138/am-2016-5506Search in Google Scholar

Putirka, K.D., Canchola, J., Rash, J., Smith, O., Torrez, G., Paterson, S.R., and Ducea, M.N. (2014) Pluton assembly and the genesis of granitic magmas: Insights from the GIC pluton in cross section, Sierra Nevada Batholith, California. American Mineralogist, 99, 1284–1303.10.2138/am.2014.4564Search in Google Scholar

Ridolfi, F., and Renzulli, A. (2012) Calcic amphiboles in calc-alkaline and alkaline magmas: thermobarometric and chemometric empirical equations valid up to 1130 °C and 2.2 GPa. Contributions to Mineralogy and Petrology, 163, 877–895.10.1007/s00410-011-0704-6Search in Google Scholar

Ridolfi, F., Renzulli, A., and Puerini, M. (2010) Stability and chemical equilibrium of amphibole in calc–alkaline magmas: an overview, new thermobarometric formulations and application to subduction-related volcanoes. Contributions to Mineralogy and Petrology, 160, 45–66.10.1007/s00410-009-0465-7Search in Google Scholar

Sambridge, M.S., and Compston, W. (1994) Mixture modeling of multi-component datasets with application to ion probe zircon ages. Earth and Planetary Science Letters, 128, 373–390.10.1016/0012-821X(94)90157-0Search in Google Scholar

Shimizu, K., Liang, Y., Sun, C., Jackson, C.R., and Saal, A.E. (2017) Parameterized lattice strain models for REE partitioning between amphibole and silicate melt. American Mineralogist, 102, 2254–2267.10.2138/am-2017-6110Search in Google Scholar

Sláma, J., Košler, J., Condon, D.J., Crowley, J.L., Gerdes, A., Hanchar, J.M., Horstwood, M.S.A., Morris, G.A., Nasdala, L., Norberg, N., Schaltegger, U., Schoene, B., Tubrett, M.N., and Whitehouse, M.J. (2008) Plešovice zircon— a new natural reference material for U-Pb and Hf isotopic microanalysis. Chemical Geology, 249, 1–35.10.1016/j.chemgeo.2007.11.005Search in Google Scholar

Snyder, D. (2000) Thermal effects of the intrusion of basaltic magma into a more silicic magma chamber and implications for eruption triggering. Earth and Planetary Science Letters, 175, 257–273.10.1016/S0012-821X(99)00301-5Search in Google Scholar

Sparks, R.S.J., and Cashman, K.V. (2017) Dynamic magma systems: implications for forecasting volcanic activity. Elements, 13, 35–40.10.2113/gselements.13.1.35Search in Google Scholar

Sparks, R.S.J., Annen, C., Blundy, J.D., Cashman, K.V., Rust, A.C., and Jackson, M.D. (2019) Formation and dynamics of magma reservoirs. Philosophical Transactions of the Royal Society A, 377, 20180019.10.1098/rsta.2018.0019Search in Google Scholar PubMed

Sun, S.-S., and McDonough, W.F. (1989) Chemical and isotopic systematics of oceanic basalts: implications for mantle composition and processes. Geological Society, London, Special Publications, 42, 313–345.10.1144/GSL.SP.1989.042.01.19Search in Google Scholar

Till, C.B., Vazquez, J.A., Stelten, M.E., Shamloo, H.I., and Shaffer, J.S. (2019) Coexisting discrete bodies of rhyolite and punctuated volcanism characterize Yellowstone’s post-Lava Creek Tuff caldera evolution. Geochemistry, Geophysics, Geosystems, 20.10.1029/2019GC008321Search in Google Scholar

Van Orman, J.A., Cerniak, D.J., and Kita, N.T. (2014) Magnesium diffusion in plagioclase: dependence on composition, and implications for thermal resetting of the 26Al-26Mg early solar system chronometer. Earth and Planetary Science Letters, 385, 79–88.10.1016/j.epsl.2013.10.026Search in Google Scholar

Wang, R., Richards, J.P., Zhou, L.M., Hou, Z.Q., Stern, R.A., Creaser, R.A., and Zhu, J.J. (2015) The role of Indian and Tibetan lithosphere in spatial distribution of Cenozoic magmatism and porphyry Cu-Mo deposits in the Gangdese belt, southern Tibet. Earth Science Reviews, 150, 68–94.10.1016/j.earscirev.2015.07.003Search in Google Scholar

Wark, D.A., and Watson, E.B. (2006) TitaniQ: a titanium-in-quartz geothermometer. Contributions to Mineralogy and Petrology, 152, 743–754.10.1007/s00410-006-0132-1Search in Google Scholar

Wark, D.A., Hildreth, W., Spear, F.S., Cherniak, D.J., and Watson, E.B. (2007) Pre-eruption recharge of the Bishop magma system. Geology, 35, 235–238.10.1130/G23316A.1Search in Google Scholar

Waters, L.E., and Lange, R.A. (2015) An updated calibration of the plagioclase-liquid hygrometer-thermometer applicable to basalts through rhyolites. American Mineralogist, 100, 2172–2184.10.2138/am-2015-5232Search in Google Scholar

Weis, D., Kieffer, B., Maerschalk, C., Pretorius, W., and Barling, J. (2005) High-precision Pb- Sr-Nd-Hf isotopic characterization of USGS BHVO-1 and BHVO-2 reference materials. Geochemistry, Geophysics, Geosystems, 6, Q02002.10.1029/2004GC000852Search in Google Scholar

Wendt, I., and Carl, C. (1991) The statistical distribution of the mean squared weighted deviation. Chemical Geology: Isotope Geoscience Section, 86, 275–285.Search in Google Scholar

Werts, K., Barnes, C.G., Memeti, V., Ratschbacher, B., Williams, D., and Paterson, S.R. (2020) Hornblende as a tool for assessing mineral-melt equilibrium and recognition of crystal accumulation. American Mineralogist, 105, 77–91.10.2138/am-2020-6972Search in Google Scholar

Wood, B.J., and Blundy, J.D. (1997) A predictive model for rare earth element partitioning between clinopyroxene and anhydrous silicate melt. Contributions to Mineralogy and Petrology, 129, 166–181.10.1007/s004100050330Search in Google Scholar

Wu, F.Y., Liu, X.C., Ji, W.Q., Wang, J.M., and Yang, L. (2017) Highly fractionated granites: recognition and research. Science China Earth Sciences, 60, 1201–1219.10.1007/s11430-016-5139-1Search in Google Scholar

Zhang, X.Q., Zhu, D.C., Zhao, Z.D., Sui, Q.L., Wang, Q., Yuan, S.H., Hu, Z.C., and Mo, X.X. (2012) Geochemistry, zircon U-Pb geochronology and in–situ Hf isotope of the Maiga batholith in Coqen, Tibet: constraints on the petrogenesis of the Early Cretaceous granitoids in the central Lhasa Terrane. Acta Petrologica Sinica, 28, 1615–1634 (in Chinese with English abstract).Search in Google Scholar

Zhang, J., Humphreys, M.C.S., Cooper, G.F., Davidson, J.P., and Macpherson, C.G. (2017) Magma mush chemistry at subduction zones, revealed by new melt major element inversion from calcic amphiboles. American Mineralogist, 102, 1353–1367.10.2138/am-2017-5928Search in Google Scholar

Zhang, L., Ren, Z.Y., Xia, X.P., Yang, Q., Hong, L.B., and Wu, D. (2019) In situ determination of trace elements in melt inclusions using laser ablation inductively coupled plasma sector field mass spectrometry. Rapid Communications in Mass Spectrometry, 33, 361–370.10.1002/rcm.8359Search in Google Scholar PubMed

Zhou, J.-S., Wang, Q., Wyman, D.A., and Zhao, Z.-H. (2020a) Petrologic reconstruction of the Tieshan magma plumbing system: Implications for the genesis of magmatic-hydrothermal ore deposits within originally water-poor magmatic systems. Journal of Petrology, https://doi.org/10.1093/petrology/egaa05610.1093/petrology/egaa056Search in Google Scholar

Zhou, J-S., Yang Z.-S., Hou, Z.-Q., and Wang, Q. (2020b) Amphibole-rich cumulate xenoliths in the Zhazhalong intrusive suite, Gangdese arc: Implications for the role of amphibole fractionation during magma evolution. American Mineralogist, 105, 262–275.10.2138/am-2020-7199Search in Google Scholar

Zhu, D.C., Zhao, Z.D., Niu, Y., Mo, X.X., Chung, S.L., Hou, Z.Q., Wang, L.Q., and Wu, F. Y. (2011) The Lhasa Terrane: record of a microcontinent and its histories of drift and growth. Earth and Planetary Science Letters, 301, 241–255.10.1016/j.epsl.2010.11.005Search in Google Scholar

Zhu, D.C., Wang, Q., Zhao, Z.D., Chung, S.L., Cawood, P.A., Niu, Y., Liu, S.A., Wu, F.Y., and Mo, X.X. (2015) Magmatic record of India-Asia collision. Scientific Reports, 5, 14289.10.1038/srep14289Search in Google Scholar PubMed PubMed Central

Zhu, D.C., Wang, Q., Cawood, P.A. Zhao, Z.D., and Mo, X.X. (2017) Raising the Gangdese Mountains in southern Tibet. Journal of Geophysical Research: Solid Earth, 122, 214–223.10.1002/2016JB013508Search in Google Scholar

Received: 2019-11-16
Accepted: 2020-03-18
Published Online: 2020-10-29
Published in Print: 2020-10-27

© 2020 Walter de Gruyter GmbH, Berlin/Boston

Articles in the same Issue

  1. Roebling Medal Paper
  2. The effects of solid-solid phase equilibria on the oxygen fugacity of the upper mantle
  3. Structural and spectroscopic study of the kieserite-dwornikite solid-solution series, (Mg,Ni)SO4·H2O, at ambient and low temperatures, with cosmochemical implications for icy moons and Mars
  4. Mineral compositions and thermobarometry of basalts and boninites recovered during IODP Expedition 352 to the Bonin forearc
  5. An evolutionary system of mineralogy. Part II: Interstellar and solar nebula primary condensation mineralogy (>4.565 Ga)
  6. Swelling capacity of mixed talc-like/stevensite layers in white/green clay infillings (“deweylite”/“garnierite”) from serpentine veins of faulted peridotites, New Caledonia
  7. Experimental observations of TiO2 activity in rutile-undersaturated melts
  8. Direct evidence for the source of uranium in the Baiyanghe deposit from accessory mineral alteration in the Yangzhuang granite porphyry, Xinjiang Province, northwest China
  9. Extraction of high-silica granites from an upper crustal magma reservoir: Insights from the Narusongduo magmatic system, Gangdese arc
  10. “EosFit-Pinc: A simple GUI for host-inclusion elastic thermobarometry” byAngel et al. (2017)—Discussion
  11. “EosFit-Pinc: A simple GUI for host-inclusion elastic thermobarometry” —Reply to Zhong et al
  12. Letter
  13. Synthesis and crystal structure of Pb-dominant tourmaline
  14. Element loss to platinum capsules in high-temperature–pressure experiments
  15. New Mineral Names
  16. Book Review
  17. Book Review: Fundamental Planetary Science: Physics, Chemistry and Habitability
Downloaded on 5.2.2026 from https://www.degruyterbrill.com/document/doi/10.2138/am-2020-7369/html
Scroll to top button