SHRIMP U-Pb zircon geochronology of volcanic rocks hosting world class Be-U mineralization at Spor mountain, Utah, USA

被引:5
作者
Ayuso, R. A. [1 ]
Foley, N. K. [1 ]
Vazquez, J. A. [2 ]
Jackson, J. C. [1 ]
机构
[1] US Geol Survey, Reston, VA 20192 USA
[2] US Geol Survey, Menlo Pk, CA 94025 USA
关键词
TOPAZ RHYOLITES; JACK HILLS; BERYLLIUM; FLUORINE; AGE; GEOCHEMISTRY; THERMOMETERS; CONSTRAINTS; EVOLUTION; ORIGIN;
D O I
10.1016/j.gexplo.2019.106401
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
We report for the first time U-Pb data establishing the age of the Spor Mountain Formation, a volcanic sequence that hosts the largest deposit of beryllium in the world. Determining the age of rocks hosting the beryllium deposit is critical for improved recognition of exploration targets containing additional volcanic-hosted beryllium resources. The deposit occurs in an area of extensive alkalic rhyolitic ash flow tuffs and Oligocene and Eocene calderas underlain by Paleozoic and older limestone, dolomite, shale, and quartzite. Data were obtained by analysis of zircon from the Spor Mountain Formation using the Sensitive High-Resolution Ion Microprobe-Reverse Geometry (SHRIMP-RG) technique. We show that lower fluorite and bertrandite-rich tuff and upper topaz-rich rhyolite have overlapping crystallization ages. Zircon from the crystal- and lithic-rich beryllium tuff produced two populations with a predominant group yielding a weighted average Pb-206/(238) U age of 25.59 + 0.29/ - 0.45 Ma (+/- 2 sigma errors; 41 spots that form a coherent age group) and a separate younger age group at 20.84 + 1.29/ -0.64 Ma (16 spots). Spot analyses for each group include cores and rims and show no evidence for older or inherited cores.. The best estimate of the age of crystallization of the beryllium tuff is taken as 25.59 + 0.29/ - 0.45 Ma. Younger spot analyses that are not part of the coherent group likely reflect Pb loss from thermal events related to renewed influx of hydrothermal F-rich fluids into the tuff. Uranium concentrations and Pb-206/(238) U spot ages show no statistically significant correlation for the beryllium tuff. Zircon from the overlying, capping rhyolite yields weighted mean Pb-206/(238) U crystallization ages between ca. 25.1 Ma and 26.2 Ma. The rhyolite that yielded the slightly older age, at ca. 26.2 Ma, shows a strong positive association between U content and Pb-206/(238) U spot age (correlation coefficient, r = 0.88). We interpret this to be a consequence of the effects of high-U concentrations in the zircon matrix as evidenced by dark zones in crystals. Zircon temperatures from tuff range from similar to 600 degrees C to 1200 degrees C and in rhyolite from similar to 525 degrees C to 1000 degrees C. Beryllium in zircon from tuff and rhyolite overlap (similar to 1 to 150 ppm) and do not correlate with U-Pb spot age, Hf, Ti, and other trace element abundances or ratios. REE contents of zircon (chondrite-normalized) are depleted in the light REE, enriched in the heavy REE, and show prominent positive Ce and negative Eu anomalies. V-shaped REE patterns are characteristic of zircons that are not part of the coherent age group. Whole rock ratios of tuff and rhyolite, such as Th/U ( > 0.1) are typical of igneous zircons, plot in the field of continental settings (e.g., U/Yb similar to 0.8-6, Hf similar to 10,000-26,000), and are consistent with an origin from sources relatively enriched in Pb. The apparent uniqueness of the Spor Mountain Formation reflects the interplay of alkaline (A-type) trachytic to rhyolitic magma enriched in Be, U, Li, and F and a protracted history of fractional crystallization. Other beryllium occurrences near Spor Mountain highlight the prospective potential for additional resources of volcanic-hosted beryllium.
引用
收藏
页数:22
相关论文
共 64 条
  • [21] REE-assisted U-Pb zircon age (SHRIMP) of an anatectic granodiorite: Constraints on the evolution of the A Silva granodiorite, Iberian allochthonous complexes
    Castineiras, P.
    Diaz Garcia, F.
    Gomez Barreiro, J.
    [J]. LITHOS, 2010, 116 (1-2) : 153 - 166
  • [22] Pb diffusion in zircon
    Cherniak, DJ
    Watson, EB
    [J]. CHEMICAL GEOLOGY, 2001, 172 (1-2) : 5 - 24
  • [23] THE PETROGENESIS OF TOPAZ RHYOLITES FROM THE WESTERN UNITED-STATES
    CHRISTIANSEN, EH
    BURT, DM
    SHERIDAN, MF
    WILSON, RT
    [J]. CONTRIBUTIONS TO MINERALOGY AND PETROLOGY, 1983, 83 (1-2) : 16 - 30
  • [24] Are Cenozoic topaz rhyolites the erupted equivalents of Proterozoic rapakivi granites? Examples from the Western United States and Finland
    Christiansen, Eric H.
    Haapala, Ilmari
    Hart, Garret L.
    [J]. LITHOS, 2007, 97 (1-2) : 219 - 246
  • [25] Trace Element Characterisation of MAD-559 Zircon Reference Material for Ion Microprobe Analysis
    Coble, Matthew A.
    Vazquez, Jorge A.
    Barth, Andrew P.
    Wooden, Joseph
    Burns, Dale
    Kylander-Clark, Andrew
    Jackson, Simon
    Vennari, Cara E.
    [J]. GEOSTANDARDS AND GEOANALYTICAL RESEARCH, 2018, 42 (04) : 481 - 497
  • [26] Atlas of zircon textures
    Corfu, F
    Hanchar, JM
    Hoskin, PWO
    Kinny, P
    [J]. ZIRCON, 2003, 53 : 469 - 500
  • [27] Origin of the fluorine- and beryllium-rich rhyolites of the Spor Mountain Formation, Western Utah
    Dailey, Shane R.
    Christiansen, Eric H.
    Dorais, Michael J.
    Kowallis, Bart J.
    Fernandez, Diego P.
    Johnson, Douglas M.
    [J]. AMERICAN MINERALOGIST, 2018, 103 (08) : 1228 - 1252
  • [28] DINGWELL DB, 1985, AM MINERAL, V70, P80
  • [29] Foley N.K., 2018, RESOURCES FUTURE GEN, V1385, P212
  • [30] Foley N.K., 2012, 20105070F US GEOL SU