Evolution of the Peak Hill high-sulfidation epithermal Au–Cu deposit, eastern Australia

被引:0
|
作者
Richard J. Squire
Walter Herrmann
Daniel Pape
D. Ian Chalmers
机构
[1] University of Tasmania,Centre for Ore Deposit Research and School of Earth Sciences
[2] Monash University,School of Geosciences
[3] Lion Ore Australia Limited,undefined
[4] Alkane Exploration Ltd,undefined
来源
Mineralium Deposita | 2007年 / 42卷
关键词
Peak Hill; High sulfidation; Epithermal gold; Lachlan orogen; Australia;
D O I
暂无
中图分类号
学科分类号
摘要
The early Palaeozoic Macquarie Arc, southeastern Australia, hosts a variety of major late Ordovician to earliest Silurian subduction-related deposits (e.g., Cadia East, Ridgeway, Cadia Hill, Cowal and Northparkes). However, there is uncertainty about whether coeval high-sulfidation epithermal deposits, which occur in intra-oceanic metallogenic belts elsewhere in the West Pacific, (e.g., Lepanto and Chinkuashih), are also present in the Macquarie Arc. This has led to suggestions that their absence may be due to the poor preservation potential of deposits that form at relatively shallow crustal levels in ancient rocks. We present here an interpretation for evolution of the Peak Hill Au–Cu deposit based on the distribution of alteration facies, sulfur isotope data from several textural forms of pyrite and barite, and an assessment of the regional volcanic and sedimentary facies architecture. These data show that the Peak Hill deposit displays a distinct sub-vertical zoning with a pyrophyllite and vuggy-quartz core, that today extends about 350 m east–west and at least 550 m north–south, which grades out through paragonite+muscovite, kaolinite to a chlorite+epidote alteration zone at the margin. The alteration zoning reflects both lower temperatures and neutralisation of acid fluids with increasing distance from the core, which represents the conduit along which hot acidic hydrothermal fluids were channelled. Several temporally overlapping events of silicification, bladed-quartz-pyrite veining, brecciation and pyrite veining occurred during the last stages of hydrothermal alteration, although most appear to predate mineralisation. Au–Cu mineralisation was associated with late quartz-pyrite-barite veins, and the highest gold grades occur mainly in microcrystalline-quartz-altered rocks in the paragonite+muscovite alteration zone, generally within 50 m outward from the boundary of the pyrophyllite and vuggy-quartz core. Sulfur- and lead-isotope data, and the characteristic zoning of ore minerals and alteration assemblages support a magmatic source for the hydrothermal fluids. Similarities in many of the isotopic signatures between Peak Hill and deposits such as Northparkes support generation of the high-sulfidation mineralisation during the Late Ordovician to earliest Silurian (possibly ca. 440 Ma) metallogenic event. The Late Ordovician to Early Silurian volcanic and sedimentary facies associations at Peak Hill are consistent with alteration and mineralisation occurring in rocks deposited in a submarine setting.
引用
下载
收藏
页码:489 / 503
页数:14
相关论文
共 50 条
  • [11] Late cretaceous structural control and alpine overprint of the high-sulfidation Cu-Au epithermal Chelopech deposit, Srednogorie belt, Bulgaria
    Chambefort, Isabelle
    Moritz, Robert
    MINERALIUM DEPOSITA, 2006, 41 (03) : 259 - 280
  • [12] Geogas prospecting for igneous ore deposits covered by regolith: the Zijinshan high-sulfidation epithermal Cu-Au deposit in the Cathaysia Block
    Li, Quanheng
    Ye, Rong
    Duan, Haichuan
    Xu, Kequan
    Shen, Shuoguo
    Tian, Yufeng
    GEOCHEMISTRY-EXPLORATION ENVIRONMENT ANALYSIS, 2024, 24 (01)
  • [13] Au-Ag-Se-Te-S Mineralization in the Maletoyvayam High-Sulfidation Epithermal Deposit, Kamchatka Peninsula
    Tolstykh, Nadezhda
    Shapovalova, Maria
    Podlipsky, Maksim
    MINERALS, 2023, 13 (03)
  • [14] Isotopic evidence for microbial activity during supergene oxidation of a high-sulfidation epithermal Au-Ag deposit
    Rainbow, A
    Kyser, TK
    Clark, AH
    GEOLOGY, 2006, 34 (04) : 269 - 272
  • [15] Mineralogy and geochemical environment of formation of the Perama Hill high-sulfidation epithermal Au-Ag-Te-Se deposit, Petrota Graben, NE Greece
    Panagiotis Christos Voudouris
    Vasilios Melfos
    Paul G. Spry
    Robert Moritz
    Constantinos Papavassiliou
    George Falalakis
    Mineralogy and Petrology, 2011, 103 : 79 - 100
  • [16] Mineralogy and geochemical environment of formation of the Perama Hill high-sulfidation epithermal Au-Ag-Te-Se deposit, Petrota Graben, NE Greece
    Voudouris, Panagiotis Christos
    Melfos, Vasilios
    Spry, Paul G.
    Moritz, Robert
    Papavassiliou, Constantinos
    Falalakis, George
    MINERALOGY AND PETROLOGY, 2011, 103 (1-4) : 79 - 100
  • [17] Pyrophyllite chemistry in high-sulfidation epithermal systems: a case study from the Pueblo Viejo Au-Ag(-Cu) deposit, Dominican Republic
    Tonks, Ethan R.
    Wilkinson, Jamie J.
    Armstrong, Robin N.
    Wurst, Andrew T.
    16TH SGA BIENNIAL MEETING, 2022, VOL 1, 2022, : 388 - 391
  • [18] Petrology, geochemistry and U–Pb geochronology of magmatic rocks from the high-sulfidation epithermal Au–Cu Chelopech deposit, Srednogorie zone, Bulgaria
    Isabelle Chambefort
    Robert Moritz
    Albrecht von Quadt
    Mineralium Deposita, 2007, 42 : 665 - 690
  • [19] Geologic framework of the Veladero high-sulfidation epithermal deposit area, Cordillera Frontal, Argentina
    Charchaflie, Diego
    Tosdal, Richard M.
    Mortensen, James K.
    ECONOMIC GEOLOGY, 2007, 102 (02) : 171 - 192
  • [20] Mineralization and metallogenic model of the Laurani high-sulfidation epithermal deposit in northeastern Bolivian Altiplano
    Fei Liu
    Runsheng Han
    Shuming Wen
    Dong Zhao
    Wenyao Li
    Li Lei
    Chaojian Qin
    Yuxinyue Guo
    Scientific Reports, 14 (1)