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Crystallization and welding variations in a widespread ignimbrite sheet; the Rattlesnake Tuff, eastern Oregon, USA

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Abstract

The 7.05 Ma Rattlesnake Tuff covers ca. 9000 km2, but the reconstructed original coverage was between 30000 and 40000 km2. Thicknesses are remarkably uniform, ranging between 15 and 30 m for the most complete sections. Only 13% of the area is covered with tuff thicker than 30 m, to a maximum of 70 m. The present day estimated tuff volume is 130 km3 and the reconstructed magma volume of the outflow is 280 km3 DRE (dense rock equivalent). The source area of the tuff is inferred to be in the western Harney Basin, near the center of the tuff distribution, based mainly on a radial exponential decrease in average pumice size, and is consistent with a general radial decrease in welding and degree of post-emplacement crystallization. Rheomorphic tuff is found to a radius of 40–60 km from the inferred source.

Four facies of welding and four of post-emplacement crystallization are distinguishable. They are: non-welded, incipiently welded, partially welded and densely welded zones; and vapor phase, pervasively devitrified, spherulite and lithophysae zones. The vapor phase, pervasively devitrified and lithophysae zones are divided into macroscopically distinguishable subzones. At constant thickness (20±3 m), and over a distance of 1–3 km, nonrheomorphic sections can cary between two extremes: (a) entirely vitric sections grading from nonwelded to incipiently welded; and (b) highly zoned sections. Highly zoned sections have a basal non- to densely welded vitric tuff overlain by a spherulite zone that grades upward through a lithophysae-dominated zone to a zone of pervasive devitrification, which, in turn, is overlain by a zone of vapor-phase crystallization and is capped by partially welded vitric tuff. A three-dimensional welding and crystallization model has been developed based on integrating local and regional variations of 85 measured sections.

Strong local variations are interpreted to be the result of threshold-governed welding and crystallization controlled by residence time above a critical temperature, which is achieved through differences in thickness and accumulation rate.

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References

  • Beeson MH (1969) A trace element study of silicic volcanic rocks of southeastern Oregon. PhD Thesis, Univ California, San Diego, 130 pp

  • Bloomfield K, Rubio GS, Wilson L (1977) Plinian eruptions of Nevado de Toluca Volcano, Mexico. Geol Rundsch 66:120–146

    Google Scholar 

  • Bonnichsen B, Citron GP (1982) The Cougar Point Tuff, southwestern Idaho and vicinity. In: Bonnichsen B, Breckenridge RM (eds) Cenozoic Geology of Idaho. Idaho Bur Min Geol Bull 26:255–281

  • Bonnichsen B, Kauffmann DF (1987) Physical features of rhyolite lava flows in the Snake River Plain volcanic province, southwestern Idaho. Spec Pap Geol Soc Am 212:119–145

    Google Scholar 

  • Booth B, Croasdale R, Walker GPL (1978) A quantitative study of five thousand years of volcanism on São Miguel, Azores. Phil Trans Roy Soc London A 288:271–319

    Google Scholar 

  • Branney MJ, Kokelaar P (1992) A reappraisal of ignimbrite emplacement: progressive aggradation and changes from particulate to non-particulate flow during emplacement of high-grade ignimbrite. Bull Volcanol 54:504–520

    Google Scholar 

  • Brown CE, Thayer TP (1966) Geologic map of the Canyon City quadrangle, northeastern Oregon. US Geol Surv Map I-447

  • Buesch DC (1992) Incorporation and redistribution of locally derived lithic fragments within a pyroclastic flow. Geol Soc Am Bull 104:1193–1207

    Google Scholar 

  • Carlson RW, Hart WK (1987) Crustal genesis on the Oregon plateau. J Geophys Res 92:6191–6206

    Google Scholar 

  • Cas RAF, Wright JV (1987) Volcanic Sucessions. Chapman and Hall, London, 528 pp

    Google Scholar 

  • Chapin CE, Lowell GR (1979) Primary and secondary flow structures in ash-flow tuffs of the Gribbles Run paleovalley, central Colorado. Spec Pap Geol Soc Am 180:137–154

    Google Scholar 

  • Davenport RE (1971) Geology of the Rattlesnake and older ignimbrites in the Paulina basin and adjacent area, central Oregon. PhD Thesis, Oregon State Univ, Corvallis, 132 pp

  • DeSilva SL (1989) Geochronology and stratigraphy of the ignimbrites from the 21°30′ S to 23°30′ S portion of the central Andes of northern Chile. J Volcanol Geotherm Res 37:93–131

    Google Scholar 

  • Draper DS (1991) Late Cenozoic bimodal magmatism in the northern Basin and Range Province of southeastern Oregon. J Volcanol Geotherm Res 47:299–328

    Google Scholar 

  • Ekren EB, McIntyre DH, Bennett EH (1984) High-temperature, large-volume, lavalike ash-flow tuffs without calderas in southwestern Idaho. US Geol Surv Prof Pap 1272:1–73

    Google Scholar 

  • Enlows HE (1976) Petrography of the Rattlesnake Formation at the type area central Oregon. Oregon Dept Geol Min Ind Short Pap 25:1–34

    Google Scholar 

  • Fisher RV (1966) Geology of a Miocene ignimbrite layer, John Day Formation, eastern Oregon. Univ Calif Publ Sci Geol 47:1–58

    Google Scholar 

  • Fisher RV, Orsi G, Ort M, Heiken G (1993) Mobility of largevolume pyroclastic flow—emplacement of the Campanian ignimbrite, Italy. J Volcanol Geotherm Res 56:205–220

    Google Scholar 

  • Greene RC (1973) Petrology of the welded Tuff of Devine Canyon, southeastern Oregon. US Geol Surv Prof Pap 797:1–26

    Google Scholar 

  • Greene RC, Walker GW, Corcoran RE (1972) Geologic map of the Burns quadrangle, Oregon. US Geol Surv Map I-680

  • Hart WK, Aronson JL, Mertzman SA (1984) Areal distribution and age of low-K, high-alumina olivine tholeiite magmatism in the northwestern Great Basin. Geol Soc Am Bull 95:186–195

    Google Scholar 

  • Iddings JP (1885–1886) Obsidian Cliff, Yellowstone National Park. US Geol Surv 7th Annu Rep 249-295

  • Johnson GD (1960) Geology of the northwest quarter Alvord Lake Three quadrangle, Oregon. Master's Thesis, Oregon State Univ, Corvallis, 75 pp

  • Johnson JA (1992) Geology of the Krumbo reservoir quadrangle southeastern Oregon. BSc Thesis, Oregon State Univ, Corvallis, 55 pp

  • Kuno H, Ishikawa T, Katsui Y, Yagi K, Yamasaki M, Taneda S (1964) Sorting of pumice and lithic fragments as a key to eruptive and emplacement mechanism. Jpn J Geol Geogr 35:223–238

    Google Scholar 

  • Lawrence RD (1976) Strike-slip faulting terminates the Basin and Range province in Oregon. Geol Soc Am Bull 87:846–850

    Google Scholar 

  • Le Pennec J-L, Bourdier J-L, Froger J-L, Temel A, Camus G, Gourgaud A (1994) Neogene ignimbrites of the Nevsehir plateau (central Turkey): stratigraphy, distribution and source constraints. J Volcanol Geotherm Res 63:59–87

    Google Scholar 

  • Lirer L, Pescatore T, Booth B, Walker GPL (1973) Two Plinian pumice-fall deposits from Somma-Vesuvius, Italy. Geol Soc Am Bull 84:759–772

    Google Scholar 

  • MacLeod NS, Walker GW, McKee EH (1976) Geothermal significance of eastward increase in age of upper Cenozoic rhyolitic domes in southeastern Oregon. Second United Symp Development and Use of Geothermal Resources, Proc 1:465–474

    Google Scholar 

  • Mansfield GR, Ross CS (1935) Welded tuffs in southeastern Idaho. Am Geophys Union Trans 16th Annu Mtg, Natl Res Coun 308–321

  • Parker DJ (1974) Petrology of selected volcanic rocks of the Harney Basin, Oregon. PhD Thesis, Oregon State Univ, Corvallis, 153 pp

  • Riehle JR (1973) Calculated compaction profiles of rhyolitic ashflow tuffs. Geol Soc Am Bull 84:2193–2216

    Google Scholar 

  • Ross CS, Smith RL (1980) Ash-flow tuffs: their origin, geologic relations and identification. Rep US Geol Surv Prof Pap 366 (1960) New Mex Geol Soc Spec Publ 9:159 pp

  • Samson SD, Alexander EC Jr (1987) Calibration of the interlaboratory 40Ar−39Ar dating standard, MMhb-1. Chem Geol Isotope Geosci 66:27–34

    Google Scholar 

  • Smith G, Taylor E, Thormahlen D, Enlows H (1984) Three newly recognized occurrences of Rattlesnake ignimbrite in central Oregon. Proc Oreg Acad Sci XX:55

    Google Scholar 

  • Smith RL (1960) Ash flows. Geol Soc Am Bull 71:795–842

    Google Scholar 

  • Smith RL (1979) Ash-flow magmatism. Spec Pap Geol Soc Am 180:5–27

    Google Scholar 

  • Smith RL (1980) Zones and zonal variations in welded ash-flows. Rep US Geol Surv Prof Pap 354-F (1960) New Mex Geol Soc Spec Publ 9:1–159

    Google Scholar 

  • Sparks RSJ (1975) Stratigraphy and geology of the ignimbrites of Vulsini volcano, central Italy. Geol Rundsch 64:497–523

    Google Scholar 

  • Spera FJ, Crisp JA (1981) Eruption volume, periodicity, and caldera area: relationships and inferences on development of compositional zonation in silicic magma chambers. J Volcanol Geotherm Res 11:169–187

    Google Scholar 

  • Stearns HT, Isotoff A (1956) Stratigraphic sequence in the Eagle Rock volcanic area near American Falls, Idaho. Geol Soc Am Bull 67:19–34

    Google Scholar 

  • Streck MJ (1994) Volcanology and petrology of the Rattlesnake Ash-Flow Tuff. PhD Thesis, Oregon State Univ, Corvallis, 185 pp

  • Suzuki-Kamata K, Kamata H (1990) The proximal facies of the Tosu pyroclastic-flow deposit erupted from Aso caldera, Japan. Bull Volvanol 52:325–333

    Google Scholar 

  • Swanson DA (1969) Reconnaissance geologic map of the east half of the Bend quadrangle, Crook, Wheeler, Jefferson, Wesco, and Deschutes counties, Oregon. US Geol Surv Map I-568

  • Taylor JR (1982) An Introduction to Error Analysis. University Science Books. Mill Valley, California

    Google Scholar 

  • Thayer TP (1952) The tuff member of the Rattlesnake Formation of eastern Oregon — an ignimbrite. Trans Am Geophys Union 33:327

    Google Scholar 

  • Toprak V, Keller J, Schumacher R (1994) Volcano-tectonic features of the Cappadocian volcanic province. Excursion Guide, IAVCEI, Ankara, 58 pp

    Google Scholar 

  • Wallace RE, Calkins JA (1956) Reconnaissance map of the Izee and Logell quadrangles, Oregon. US Geol Surv Map MF-82

  • Walker GPL (1980) The Taupo Pumice: product of the most powerful known (ultraplinian) eruption. J Volcanol Geotherm Res 8:69–94

    Google Scholar 

  • Walker GPL (1983) Ignimbrite types and ignimbrite problems. J Volcanol Geotherm Res 17:65–88

    Google Scholar 

  • Walker GW (1963) Reconnaissance geologic map of the eastern half of the Klamath Falls quadrangle, Lake and Klamath counties. US Geol Surv Map MF-260

  • Walker GW (1969) Possible fissure vent for a Pliocene ash-flow tuff, Buzzard Creek area, Harney county, Oregon. US Geol Surv Prof Pap 650-C:8–17

    Google Scholar 

  • Walker GW (1970) Cenozoic ash-flow tuffs of Oregon. Oreg Dept Geol Min Ind 32:97–115

    Google Scholar 

  • Walker GW (1974) Some implications of late Cenozoic volcanism to geothermal potential in the High Lava Plains of south-central Oregon. Oreg Dept Geol Min Ind 36:109–123

    Google Scholar 

  • Walker GW (1979) Revisions to the Cenozoic stratigraphy of Harney basin, southeastern Oregon. US Geol Surv Bull 1475:1–35

    Google Scholar 

  • Walker GW, Repenning CA (1965) Reconnaissance geologic map of the Adel quadrangle, Lake, Harney, and Malheur counties. US Geol Surv Map I-446

  • Walker GW, Peterson NV, Greene, RC (1967) Reconnaissance geologic map of the east half of the Crescent quadrangle, Lake, Deschutes, and Crook counties, Oregon. US Geol Surv Map I-493

  • Wilcox RE, Fisher RV (1966) Geologie map of the Monument quadrangle, Grant county, Oregon. US Geol Surv Map GQ-541

  • Wolff JA, Wright JV (1981) Rheomorphism of welded tuffs. J Volcanol Geotherm Res 10:13–34

    Google Scholar 

  • Wright JV, Walker GPL (1977) The ignimbrite source problem: significance of a co-ignimbrite lag-fall deposit. Geology 5:729–732

    Google Scholar 

  • Yokoyama S (1974) Flow and emplacement mechanism of the Ito pyroclastic flow from Aira caldera, Japan. Tokyo Kyoiku Daigaku Sci Rep Sec C 12:17–62

    Google Scholar 

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Correspondence to Anita L. Grunder.

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Streck, M.J., Grunder, A.L. Crystallization and welding variations in a widespread ignimbrite sheet; the Rattlesnake Tuff, eastern Oregon, USA. Bull Volcanol 57, 151–169 (1995). https://doi.org/10.1007/BF00265035

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