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Storage and interaction of compositionally heterogeneous magmas from the 1986 eruption of Augustine Volcano, Alaska

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Abstract

Compositional heterogeneity (56–64 wt% SiO2 whole-rock) in samples of tephra and lava from the 1986 eruption of Augustine Volcano, Alaska, raises questions about the physical nature of magma storage and interaction beneath this young and frequently active volcano. To determine conditions of magma storage and evolutionary histories of compositionally distinct magmas, we investigate physical and chemical characteristics of andesitic and dacitic magmas feeding the 1986 eruption. We calculate equilibrium temperatures and oxygen fugacities from Fe-Ti oxide compositions and find a continuous range in temperature from 877 to 947°C and high oxygen fugacities (ΔNNO=1–2) for all magmas. Melt inclusions in pyroxene phenocrysts analyzed by Fourier-transform infrared spectroscopy and electron probe microanalysis are dacitic to rhyolitic and have water contents ranging from <1 to ∼7 wt%. Matrix glass compositions are rhyolitic and remarkably similar (∼75.9–76.6 wt% SiO2) in all samples. All samples have ∼25% phenocrysts, but lower-silica samples have much higher microlite contents than higher-silica samples. Continuous ranges in temperature and whole-rock composition, as well as linear trends in Harker diagrams and disequilibrium mineral textures, indicate that the 1986 magmas are the product of mixing between dacitic magma and a hotter, more mafic magma. The dacitic endmember is probably residual magma from the previous (1976) eruption of Augustine, and we interpret the mafic endmember to have been intruded from depth. Mixing appears to have continued as magmas ascended towards the vent. We suggest that the physical structure of the magma storage system beneath Augustine contributed to the sustained compositional heterogeneity of this eruption, which is best explained by magma storage and interaction in a vertically extensive system of interconnected dikes rather than a single coherent magma chamber and/or conduit. The typically short repose period (∼10 years) between Augustine's recent eruptive pulses may also inhibit homogenization, as short repose periods and chemically heterogeneous magmas are observed at several volcanoes in the Cook Inlet region of Alaska.

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References

  • Anderson DJ, Lindsley DH, Davidson PM (1993) QUILF: A Pascal program to assess equilibria among Fe-Mg-Mn-Ti oxides, pyroxenes, olivine, and quartz. Comp Geosci 19:1333–1350

    Article  Google Scholar 

  • Anderson DJ, Lindsley DH (1988) Internally consistent solution models for Fe-Mg-Mn-Ti oxides: Fe-Ti oxides. Am Mineral 73:714–726

    Google Scholar 

  • Bacon CR, Hirschmann MM (1998) Mg/Mn partitioning as a test for equilibrium between coexisting Fe-Ti oxides. Am Mineral 73:57–61

    Google Scholar 

  • Blank JG, Stolper EM, Carroll MR (1993) Solubilities of carbon dioxide and water in rhyolitic melt at 850 degrees C and 750 bars. Earth Planet Sci Lett 119:27–36

    Article  Google Scholar 

  • Cioni R, Civetta L, Marianelli P, Metrich N, Santacroce R, Sbrana A (1995) Compositional layering and syn-eruptive mixing of a periodically refilled shallow magma chamber, the AD 79 Plinian eruption of Vesuvius. J Petrol 36:739–776

    Google Scholar 

  • Coombs ML, Eichelberger JC, Rutherford MJ (2000) Magma storage and mixing conditions for the 1953–1974 eruptions of Southwest Trident volcano, Katmai National Park, Alaska. Contrib Mineral Petrol 140:99–118

    Article  Google Scholar 

  • Cribb JW, Barton M (1997) Significance of crustal and source region processes on the evolution of compositionally similar calc-alkaline lavas, Mt. Hood, Oregon. J Volcanol Geotherm Res 76:229–249

    Article  Google Scholar 

  • Daley EE (1986) Petrology, geochemistry, and the evolution of magmas from Augustine Volcano, Alaska. MS Thesis, University of Alaska, Fairbanks, 106 pp

  • Devine JD, Gardner JE, Brack HP, Layne GD, Rutherford MD (1995) Comparison of microanalytical methods for estimating H2O contents of silicic volcanic glasses. Am Mineral 80:319–328

    Google Scholar 

  • Donovan JJ, Tingle TN (1996) An improved mean atomic number correction for quantitative microanalysis. J Microscopy 2:1–7

    Google Scholar 

  • Eichelberger JC, Chertkoff DG, Dreher ST, Nye CJ (2000) Magmas in collision: rethinking chemical zonation in silicic magmas. Geology 28:603–606

    Article  Google Scholar 

  • Gardner CA, Cashman KV, Roman DC (2000) Decreasing magma ascent rates inferred from groundmass textures during the 1986 eruption of Augustine Volcano, Alaska. Geol Soc Am Abstr 32:A-111

    Google Scholar 

  • Gourgaud A, Fichaut M, Joron J-L (1989) Magmatology of Mt. Pelée (Martinique, F.W.I.), I: magma mixing and triggering of the 1902 and 1929 Pelean nuées ardentes. J Volcanol Geotherm Res 38:143–169

    Article  Google Scholar 

  • Hammer JE, Rutherford MJ (2002) An experimental study of the kinetics of decompression-induced crystallization in silicic melt. J Geophys Res 107:ECV8–1-8-24

    Google Scholar 

  • Harris G (1994) The petrology and petrography of lava from the 1986 eruption of Augustine Volcano. Thesis, University of Alaska, Fairbanks, 131 pp

  • Hildreth W, Fierstein J (2000) Katmai volcanic cluster and the great eruption of 1912. Geol Soc Am Bull 112:1594–1620

    Article  Google Scholar 

  • Hildreth W (1983) The compositionally zoned eruption of 1912 in the Valley of Ten Thousand Smokes, Katmai National Park, Alaska. J Volcanol Geotherm Res 18:1–56

    Article  Google Scholar 

  • Huebner JS, Sato M (1970) The oxygen fugacity-temperature relationships of manganese oxide and nickel oxide buffers. Am Mineral 55:934–952

    Google Scholar 

  • Johnston DA (1978) Volatiles, magma mixing, and the mechanism of eruption of Augustine Volcano, Alaska. Dissertation, University of Washington, 177 pp

  • Kienle J (1987) Mt. St. Augustine works, but how? Proceedings, Hawaii Symposium on How Volcanoes Work, p 139

  • Lowenstern JB (1994) Chlorine, fluid immiscibility, and degassing in peralkaline magmas from Pantelleria, Italy. Am Mineral 79:353–369

    Google Scholar 

  • Martel C, Schmidt BC (2003) Decompression experiments as an insight into ascent rates of silicic magmas. Contrib Mineral Petrol 144:397–415

    Article  Google Scholar 

  • Metrich N, Rutherford MJ (1992) Experimental study of chlorine behavior in hydrous silicic melts. Geochim Cosmochim Acta 56:607–616

    Article  Google Scholar 

  • Michael PJ, McDonough WF, Nielsen RL, Cornell WC (2002) Depleted melt inclusions in MORB plagioclase: messages from the mantle or mirages from the magma chamber? Chem Geol 183:43–61

    Article  Google Scholar 

  • Newman S, Stolper E, Epstein S (1986) Measurement of water in rhyolitic glasses: calibration of an infrared spectroscopic technique. Am Mineral 71:1527–1541

    Google Scholar 

  • Newman S, Epstein S, Stolper E (1988) Water, carbon dioxide, and hydrogen isotopes in glasses from the ca. 1340 A.D. eruption of the Mono Craters, California: constraints on degassing phenomena and initial volatile content. J Volcanol Geotherm Res 35:75–96

    Article  Google Scholar 

  • Nye CJ, Swanson SE, Avery VF, Miller TP (1994) Geochemistry of the 1989–1990 eruption of Redoubt Volcano: Part I. Whole-rock major- and trace-element chemistry. J Volcanol Geotherm Res 62:429–452

    Article  Google Scholar 

  • Ochs FA, Lange RA (1999) The density of hydrous magmatic liquids. Science 283:1314–1317

    Article  PubMed  Google Scholar 

  • Power JA (1988) Seismicity associated with the 1986 eruption of Augustine Volcano, Alaska. Thesis, University of Alaska, Fairbanks, 142 pp

  • Reagan MK, Gill JB, Malavassi E, Garcia MO (1987) Changes in magma composition at Arenal Volcano, Costa Rica, 1968-1985: real-time monitoring of open-system differentiation. Bull Volcanol 49:415–434

    Article  Google Scholar 

  • Roman DC (2001) The 1986 eruption of Augustine Volcano, Alaska: Magma Storage and Ascent. MS Thesis, University of Oregon, 129 pp

  • Streck MJ, Dungan MA, Malavassi E, Reagan MK, Bussy F (2002) The role of basalt replenishment in the generation of basaltic andesites of the ongoing activity at Arenal volcano, Costa Rica: evidence from clinopyroxene and spinel. Bull Volcanol 64:316–327

    Article  Google Scholar 

  • Swanson SE, Kienle J (1988) The 1986 eruption of Mount St. Augustine: field test of a hazard evaluation. J Geophys Res 93:4500–4520

    Article  Google Scholar 

  • Tingle TN, Neuhoff P, Ostergren J, Jones RE (1996) The effect of “missing” (unanalyzed) oxygen on quantitative electron probe microanalysis of hydrous silicate and oxide minerals. Geol Soc Am Abst 28:212

    Google Scholar 

  • Venezky DY Rutherford MJ (1999) Petrology and Fe-Ti oxide reequilibration of the 1991 Mount Unzen mixed magma. J Volcanol Geotherm Res 89:213–230

    Article  Google Scholar 

  • Waitt RB, Beget JE (1996) Provisional geologic map of Augustine Volcano, Alaska. US Geol Surv Open-File Rep 96–516

  • Wallace P, Anderson AT, Davis, AM(1999) Gradients in H2O, CO2 and exsolved gas in a large-volume silicic magma system: interpreting the record preserved in melt inclusions from the Bishop Tuff. J Geophys Res 104:20097–20122

    Article  Google Scholar 

  • Waythomas CF, Waitt RB (1998) Preliminary volcano hazard assessment for Augustine Volcano, Alaska. US Geol Surv Open-File Rep 98–106

  • Wolf KJ, Eichelberger JC (1997) Syneruptive mixing, degassing, and crystallization at Redoubt Volcano, eruption of December 1989 to May 1990. J Volcanol Geotherm Res 75:19–37

    Article  Google Scholar 

  • Yount ME, Miller TP (1987) The April 1986 eruptive phase of Augustine Volcano and associated hazards. Proceedings, Hawaii Symposium on How Volcanoes Work, p 276

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Acknowledgements

We are extremely grateful for assistance and input from Carrie Brugger, Dana Johnston, and Stacey Hager, and for constructive reviews from Jake Lowenstern, Michelle Coombs, James D. Myers, and Mike Carroll. This work was funded by NSF grant EAR-9909507 to K. Cashman and D. Johnston, and by the USGS Volcano Hazards Program.

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Correspondence to Diana C. Roman.

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Roman, D.C., Cashman, K.V., Gardner, C.A. et al. Storage and interaction of compositionally heterogeneous magmas from the 1986 eruption of Augustine Volcano, Alaska. Bull Volcanol 68, 240–254 (2006). https://doi.org/10.1007/s00445-005-0003-z

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