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Origin of differentiated lavas at Kilauea Volcano, Hawaii: Implications from the 1955 eruption

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Abstract

Kilauea's 1955 eruption was the first major eruption (longer than 2 days) on its east rift zone in 115 years. It lasted 88 days during which 108 × 106 m3 of lava was erupted along a discontinuous, 15-km-long system of fissures. A wide compositional range of lavas was erupted including the most differentiated lavas (5.0 wt% MgO) from a historic Kilauea eruption. Lavas from the first half of the eruption are strongly differentiated (5.0–5.7 wt% MgO); later lavas are weakly to moderately differentiated (6.2–6.7 wt% MgO). Previous studies using only major-element compositions invoked either crystal fractionation (Macdonald and Eaton 1964) or magma mixing (Wright and Fiske 1971) as models to explain the wide compositional variation in the lavas. To further evaluate these models detailed petrographic, mineralogical, and whole-rock, major, and trace element XRF analyses were made of the 1955 lavas. Plagioclase and clinopyroxene in the early and late lavas show no petrographic evidence for magma mixing. Olivines from both the early and late lavas show minor resorption, which is typical of tholeiitic lavas with low MgO contents. Core-to-rim microprobe analyses across olivine, augite, and plagioclase mineral grains give no evidence of disequilibrium features related to mixing. Instead, plots of An/Ab vs distance from the core (D) and %Fo vs (D)4.5 generated essentially linear trends indicative of simple crystal fractionation. Least-squares, mass-balance calculations for major- and trace-element data using observed mineral compositions yield excellent results for crystal fractionation (sum of residuals squared <0.01 for major elements, and <5% for trace elements); magma mixing produced less satisfactory results especially for Cr. Furthermore, trace-element plots of Zr vs Sr, Cr, and A12O3 generate curved trends indicative of crystal fractionation processes. There is no evidence that mixing occurred in the 1955 lavas. Instead, the data are best explained by crystal fractionation involving a reservoir that extends at least 15 km along Kilauea's east rift zone. A dike was intruded into the rift zone from the summit reservoir eight days after the eruption started. Instead of causing magma mixing, the dike probably acted as a hydraulic plunger forcing more of the stored magma to be erupted.

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References

  • Anderson AT, Wright TL (1972) Phenocrysts and glass inclusions and their bearing on oxidation and mixing of basaltic magmas, Kilauea Volcano, Hawaii. Am Mineral 57:188–216

    Google Scholar 

  • Bender JF, Langmuir CH, Hanson GN (1983) Petrogenesis of basalt glasses from the Tamayo region, East Pacific rise. J Petrol 25:213–254

    Google Scholar 

  • Bryan WB, Finger LW, Chayes F (1969) Estimating proportions in petrographic mixing equations by least-squares approximation. Science 163:926–927

    Google Scholar 

  • Clague DA, Frey FA, Thompson G, Rindge S (1981) Minor and trace element geochemistry of volcanic rocks dredged from the Galapagos spreading center: Role of crystal fractionation and mantle heterogeneity. J Geophys Res 86:9469–9482

    Google Scholar 

  • Decker RW (1987) Dynamics of Hawaiian volcanoes: an overview. In: Decker RW, Wright TL, Stauffer PH (eds) USGS Prof Pap 1350, Volcanism in Hawaii 2:997–1018

    Google Scholar 

  • Donaldson CH (1985) The rates of dissolution of olivine, plagioclase, and quartz in a basalt melt. Min Mag 49:683–693

    Google Scholar 

  • Donaldson CH, Hamilton DL (1987) Compositional convection and layering in a rock melt. Nature 327:413–415

    Google Scholar 

  • Dzurisin D, Koyanagi RY, English TT (1984) Magma supply and storage at Kilauea volcano, Hawaii, 1956–1983. J Volcanol Geotherm Res 21:177–206

    Google Scholar 

  • Eaton JP, Murata KJ (1960) How volcanoes grow. Science 132:925–938

    Google Scholar 

  • Garcia MO, Wolfe EW (1988) Petrology of the lavas from the Puu Oo eruption of Kilauea Volcano, Hawaii: episodes 1–20. In: Wolfe EW (ed) The Puu Oo eruption of Kilauea Volcano, Hawaii: the first 1 1/2 years: US Geol Surv Prof Pap (in press)

  • Garcia MO, Frey FA, Grooms DG (1986) Petrology of volcanic rocks from Kaula Island, Hawaii. Contrib Mineral Petrol 94:461–471

    Google Scholar 

  • Haggerty SE (1976) Opaque mineral oxides in terrestrial igneous rocks. In: Rumble D III (ed) Oxide minerals. Mineral Soc Am Short Course Notes 3: Chap. 8, Hg 101–300

    Google Scholar 

  • Hardee HC (1982) Incipient magma chamber formation as a result of repetitive intrusions. Bull Volcanol 45:41–49

    Google Scholar 

  • Henderson P (1982) Inorganic Geochemistry: Pergamon Press, Elmsford, New York: 91–93

    Google Scholar 

  • Klein FW (1982) Patterns of historical eruptions at Hawaiian volcanoes. J Volcanol Geotherm Res 12:1–35

    Google Scholar 

  • Macdonald GA (1949) Petrography of the island of Hawaii. USGS Prof Pap 214-D:pp 1–96

    Google Scholar 

  • Macdonald GA (1968) Composition and origin of Hawaiian lavas. Geol Soc Am Memoir 116:477–522

    Google Scholar 

  • Macdonald GA, Eaton JP (1964) Hawaiian volcanoes during 1955. Geol Surv Bull 1171:pp 1–70

    Google Scholar 

  • Macdonald GA, Abbott AT, Peterson FL (1983) Volcanoes in the Sea: University of Hawaii Press, Honolulu:pp 1–517

    Google Scholar 

  • Moore RB (1983) Distribution of differentiated tholeiitic basalts on the lower east rift zone of Kilauea Volcano, Hawaii: A possible guide to geothermal exploration. Geology 11:136–140

    Google Scholar 

  • Pearce TH (1984) The analysis of zoning in magmatic crystals with emphasis on olivine. Contrib Mineral Petrol 86:149–154

    Google Scholar 

  • Pearce TH (1987) Magmatic crystal stratigraphy and constraints on magma chamber dynamics: Laser interference and Nomorski results. Hilo Conference Abstract Volume: 199

  • Rhodes JM (1983) Homogeneity of lava flows: Chemical data for historic Mauna Loa eruptions. J Geophys Res 88:869–879

    Google Scholar 

  • Roeder PL, Emslie RF (1970) Olivine-liquid equilibrium. Contrib Mineral Petrol 29:275–289

    Google Scholar 

  • Ryan PR, Koyanagi RY, Fiske RS (1981) Modeling the three-dimensional structure of macroscopic magma transport systems: Application to Kilauea Volcano, Hawaii. J Geophys Res 86-B8:7111–7129

    Google Scholar 

  • Stolz AJ (1985) The role of fractional crystallization in the evolution of the Nandewar Volcano, north-eastern New South Wales, Australia. J Petrol 26:1002–1026

    Google Scholar 

  • Wolfe EW, Garcia MO, Jackson DB, Koyanagi RY, Neal CA, Okamura AT (1987) The Puu Oo eruption of Kilauea Volcano, episodes 1–20 January 3, 1983, to June 8, 1984. In: Decker RW, Wright TL, Stauffer PH (eds) USGS Prof Pap 1350, Volcanism in Hawaii 1:471–508

    Google Scholar 

  • Wright TL (1971) Chemistry of Kilauea and Mauna Loa lava in space and time. US Geol Surv Prof Pap 735:pp 1–40

    Google Scholar 

  • Wright TL (1984) Origin of Hawaiian tholeiites: a metasomatic model. J Geophys Res 89:3233–3252

    Google Scholar 

  • Wright TL, Fiske RS (1971) Origin of the differentiated and hybrid lavas of Kilauea Volcano, Hawaii: J Petrol 12:1–65

    Google Scholar 

  • Wright TL, Tilling RI (1980) Chemical variation in Kilauea eruptions 1971–1974, Am J Sci 280-A:777–793

    Google Scholar 

  • Wright TL, Swanson DA, Duffield WA (1975) Chemical compositions of Kilauea east-rift lava, 1968–1971. J Petrol 16:110–133

    Google Scholar 

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Ho, R.A., Garcia, M.O. Origin of differentiated lavas at Kilauea Volcano, Hawaii: Implications from the 1955 eruption. Bull Volcanol 50, 35–46 (1988). https://doi.org/10.1007/BF01047507

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