Incremental assembly and prolonged consolidation of Cordilleran magma chambers: Evidence from the Southern Rocky Mountain volcanic field

被引:311
|
作者
Lipman, Peter W. [1 ]
机构
[1] US Geol Survey, Menlo Pk, CA 94025 USA
来源
GEOSPHERE | 2007年 / 3卷 / 01期
关键词
magma chambers; volcanic field; ignimbrites; calderas;
D O I
10.1130/GES00061.1
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
Recent inference that Mesozoic Cordilleran plutons grew incrementally during > 10(6) yr intervals, without the presence of voluminous eruptible magma at any stage, minimizes close associations with large ignimbrite calderas. Alternatively, Tertiary ignimbrites in the Rocky Mountains and elsewhere, with volumes of 1 - 5 x 10(3) km(3), record multistage histories of magma accumulation, fractionation, and solidification in upper parts of large subvolcanic plutons that were sufficiently liquid to erupt. Individual calderas, up to 75 km across with 2 - 5 km subsidence, are direct evidence for shallow magma bodies comparable to the largest granitic plutons. As exemplified by the composite Southern Rocky Mountain volcanic field ( here summarized comprehensively for the first time), which is comparable in areal extent, magma composition, eruptive volume, and duration to continental-margin volcanism of the central Andes, nested calderas that erupted compositionally diverse tuffs document deep composite subsidence and rapid evolution in subvolcanic magma bodies. Spacing of Tertiary calderas at distances of tens to hundreds of kilometers is comparable to Mesozoic Cordilleran pluton spacing. Downwind ash in eastern Cordilleran sediments records large-scale explosive volcanism concurrent with Mesozoic batholith growth. Mineral fabrics and gradients indicate unified flowage of many pluton interiors before complete solidification, and some plutons contain ring dikes or other textural evidence for roof subsidence. Geophysical data show that low-density upper-crustal rocks, inferred to be plutons, are 10 km or more thick beneath many calderas. Most ignimbrites are more evolved than associated plutons; evidence that the subcaldera chambers retained voluminous residua from fractionation. Initial incremental pluton growth in the upper crust was likely recorded by modest eruptions from central volcanoes; preparation for caldera-scale ignimbrite eruption involved recurrent magma input and homogenization high in the chamber. Some eroded calderas expose shallow granites of similar age and composition to tuffs, recording sustained postcaldera magmatism. Plutons thus provide an integrated record of prolonged magmatic evolution, while volcanism offers snapshots of conditions at early stages. Growth of subvolcanic batholiths involved sustained multistage open-system processes. These commonly involved ignimbrite eruptions at times of peak power input, but assembly and consolidation processes continued at diminishing rates long after peak volcanism. Some evidence cited for early incremental pluton assembly more likely records late events during or after volcanism. Contrasts between relatively primitive arc systems dominated by andesitic compositions and small upper-crustal plutons versus more silicic volcanic fields and associated batholiths probably reflect intertwined contrasts in crustal thickness and magmatic power input. Lower power input would lead to a Cascade- or Aleutian-type arc system, where intermediate-composition magma erupts directly from middle- and lower-crustal storage without development of large shallow plutons. Andean and southern Rocky Mountain - type systems begin similarly with intermediate-composition volcanism, but increasing magma production, perhaps triggered by abrupt changes in plate boundaries, leads to development of larger upper-crustal reservoirs, more silicic compositions, large ignimbrites, and batholiths. Lack of geophysical evidence for voluminous eruptible magma beneath young calderas suggests that near-solidus plutons can be rejuvenated rapidly by high-temperature mafic recharge, potentially causing large explosive eruptions with only brief precursors.
引用
收藏
页码:42 / 70
页数:29
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    Zimmerer, Matthew J.
    Gilmer, Amy K.
    [J]. GEOLOGY, 2022, 50 (08) : 944 - 948
  • [2] Postcaldera intrusive magmatism at the Platoro caldera complex, Southern Rocky Mountain volcanic field, Colorado, USA
    Gilmer, Amy K.
    Thompson, Ren A.
    Lipman, Peter W.
    Vazquez, Jorge A.
    Souders, A. Kate
    [J]. GEOSPHERE, 2021, 17 (03) : 898 - 931
  • [3] Zircon U-Pb geochronology and trace element dataset from the Southern Rocky Mountain Volcanic Field, Colorado, USA
    Sliwinski, J. T.
    Guillong, M.
    Lipman, P. W.
    Zimmerer, M. J.
    Deering, C.
    Bachmann, O.
    [J]. DATA IN BRIEF, 2022, 43
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    Sliwinski, J. T.
    Bachmann, O.
    Dungan, M. A.
    Huber, C.
    Deering, C. D.
    Lipman, P. W.
    Martin, L. H. J.
    Liebske, C.
    [J]. CONTRIBUTIONS TO MINERALOGY AND PETROLOGY, 2017, 172 (05)
  • [5] Rapid pre-eruptive thermal rejuvenation in a large silicic magma body: the case of the Masonic Park Tuff, Southern Rocky Mountain volcanic field, CO, USA
    J. T. Sliwinski
    O. Bachmann
    M. A. Dungan
    C. Huber
    C. D. Deering
    P. W. Lipman
    L. H. J. Martin
    C. Liebske
    [J]. Contributions to Mineralogy and Petrology, 2017, 172
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    Lipman, Peter W.
    Zimmerer, Matthew J.
    McIntosh, William C.
    [J]. GEOSPHERE, 2015, 11 (06): : 1902 - 1947
  • [7] Protracted Multipulse Emplacement of a Postresurgent Pluton: The Case of Platoro Caldera Complex (Southern Rocky Mountain Volcanic Field, Colorado)
    Tomek, F.
    Gilmer, A. K.
    Petronis, M. S.
    Lipman, P. W.
    Foucher, M. S.
    [J]. GEOCHEMISTRY GEOPHYSICS GEOSYSTEMS, 2019, 20 (11) : 5225 - 5250
  • [8] Evidence of dehydration in peridotites from Eifel Volcanic Field and estimates of the rate of magma ascent
    Denis, Carole M. M.
    Demouchy, Sylvie
    Shaw, Cliff S. J.
    [J]. JOURNAL OF VOLCANOLOGY AND GEOTHERMAL RESEARCH, 2013, 258 : 85 - 99
  • [9] Contrasting arc magma fertilities in the Gangdese belt, Southern Tibet: Evidence from geochemical variations of Jurassic volcanic rocks updates
    Chen, Xilian
    Richards, Jeremy P.
    Liang, Huaying
    Zou, Yinqiao
    Zhang, Jian
    Huang, Wenting
    Ren, Long
    Wang, Fangyue
    [J]. LITHOS, 2019, 324 : 789 - 802
  • [10] Nature of sub-volcanic magma chambers, Deccan Province, India: Evidence from quantitative textural analysis of plagioclase megacrysts in the giant plagioclase basalts
    Higgins, Michael D.
    Chandrasekharam, D.
    [J]. JOURNAL OF PETROLOGY, 2007, 48 (05) : 885 - 900