Magma evolution and the formation of porphyry Cu–Au ore fluids: evidence from silicate and sulfide melt inclusions

被引:0
|
作者
Werner E. Halter
Christoph A. Heinrich
Thomas Pettke
机构
[1] ETH Zürich,Isotope Geochemistry and Mineral Resources, Department of Earth Sciences
来源
Mineralium Deposita | 2005年 / 39卷
关键词
Porphyry; Copper; Gold; Sulfide; Melt inclusions; Fluid; Andesite; Alumbrera; Argentina;
D O I
暂无
中图分类号
学科分类号
摘要
Silicate and sulfide melt inclusions from the andesitic Farallón Negro Volcanic Complex in NW Argentina were analyzed by laser ablation ICPMS to track the behavior of Cu and Au during magma evolution, and to identify the processes in the source of fluids responsible for porphyry-Cu-Au mineralization at the 600 Mt Bajo de la Alumbrera deposit. The combination of silicate and sulfide melt inclusion data with previously published geological and geochemical information indicates that the source of ore metals and water was a mantle-derived mafic magma that contained approximately 6 wt.% H2O and 200 ppm Cu. This magma and a rhyodacitic magma mixed in an upper-crustal magma chamber, feeding the volcanic systems and associated subvolcanic intrusions over 2.6 million years. Generation of the ore fluid from this magma occurred towards the end of this protracted evolution and probably involved six important steps: (1) Generation of a sulfide melt upon magma mixing in some parts of the magma chamber. (2) Partitioning of Cu and Au into the sulfide melt (enrichment factor of 10,000 for Cu) leading to Cu and Au concentrations of several wt.% or ppm, respectively. (3) A change in the tectonic regime from local extension to compression at the end of protracted volcanism. (4) Intrusion of a dacitic magma stock from the upper part of the layered magma chamber. (5) Volatile exsolution and resorption of the sulfide melt from the lower and more mafic parts of the magma chamber, generating a fluid with a Cu/Au ratio equal to that of the precursor sulfide. (6) Focused fluid transport and precipitation of the two metals in the porphyry, yielding an ore body containing Au and Cu in the proportions dictated by the magmatic fluid source. The Cu/S ratio in the sulfide melt inclusions requires that approximately 4,000 ppm sulfur is extracted from the andesitic magma upon mixing. This exceeds the solubility of sulfide or sulfate in either of the silicate melts and implies an additional source for S. The extra sulfur could be added in the form of anhydrite phenocrysts present in the rhyodacitic magma. It appears, thus, that unusually sulfur-rich, not Cu-rich magmas are the key to the formation of porphyry-type ore deposits. Our observations imply that dacitic intrusions hosting the porphyry–Cu–Au mineralization are not representative of the magma from which the ore-fluid exsolved. The source of the ore fluid is the underlying more mafic magma, and unaltered andesitic dikes emplaced immediately after ore formation are more likely to represent the magma from which the fluids were generated. At Alumbrera, these andesitic dikes carry relicts of the sulfide melt as inclusions in amphibole. Sulfide inclusions in similar dykes of other, less explored magmatic complexes may be used to predict the Au/Cu ratio of potential ore-forming fluids and the expected metal ratio in any undiscovered porphyry deposit.
引用
收藏
页码:845 / 863
页数:18
相关论文
共 50 条
  • [21] Ore genesis and hydrothermal evolution of the Shaxi porphyry Cu-Au deposit, Anhui province, Eastern China: evidence from isotopes (S-Sr-H-O), pyrite, and fluid inclusions
    Wang, Shiwei
    Zhou, Taofa
    Hollings, Pete
    Yuan, Feng
    Fan, Yu
    White, Noel C.
    Zhang, Lejun
    MINERALIUM DEPOSITA, 2021, 56 (04) : 767 - 788
  • [22] The Aksug Porphyry Cu-Mo Ore-Magmatic System (Northeastern Tuva): Sources and Formation of Ore-Bearing Magma
    Berzina, A. N.
    Berzina, A. P.
    Gimon, V. O.
    RUSSIAN GEOLOGY AND GEOPHYSICS, 2021, 62 (04) : 445 - 459
  • [23] Sulphide melt and aqueous fluid saturation in the PGE–Au mineralisation of the Skaergaard intrusion: evidence from melt inclusions
    Jonas M. Pedersen
    Thomas Ulrich
    Thorsten Nagel
    Christian Tegner
    Contributions to Mineralogy and Petrology, 2020, 175
  • [24] Sulphide melt and aqueous fluid saturation in the PGE-Au mineralisation of the Skaergaard intrusion: evidence from melt inclusions
    Pedersen, Jonas M.
    Ulrich, Thomas
    Nagel, Thorsten
    Tegner, Christian
    CONTRIBUTIONS TO MINERALOGY AND PETROLOGY, 2020, 175 (02)
  • [25] Hydrothermal evolution of the Sar-Cheshmeh porphyry Cu-Mo deposit, Iran: Evidence from fluid inclusions
    Hezarkhani, Ardeshir
    JOURNAL OF ASIAN EARTH SCIENCES, 2006, 28 (4-6) : 409 - 422
  • [26] The characteristics and evolution of the ore-forming fluids in the Beiya porphyry Au-polymetallic deposit, western Yunnan.
    Wang JianHua
    Li WenChang
    Wang KeYong
    Yin GuangHou
    Wu Song
    Jiang WenTao
    ACTA PETROLOGICA SINICA, 2015, 31 (11) : 3269 - 3280
  • [27] Fluid Evolution and Ore-forming Processes of the Jiama Cu Deposit, Tibet: Evidence from Fluid Inclusions
    Yao, Xiaofeng
    Liu, Jiajun
    Tang, Juxing
    Zheng, Wenbao
    Zhang, Zhi
    ACTA GEOLOGICA SINICA-ENGLISH EDITION, 2018, 92 (01) : 127 - 143
  • [28] The Composition of the Ore-Forming Fluid and Physicochemical Parameters of the Formation of Economic Ores of the Malmyzh Au–Cu Porphyry Deposit, Far East, Russia: An Example of the Svoboda Ore Area
    V. V. Svistunov
    V. Yu. Prokof’ev
    Moscow University Geology Bulletin, 2021, 76 : 155 - 162
  • [29] Pb and other ore metals in modem seafloor tectonic environments: Evidence from melt inclusions
    Beaudoin, Yannick
    Scott, Steven D.
    Gorton, Michael P.
    Zajacz, Zoltan
    Halter, Werner
    MARINE GEOLOGY, 2007, 242 (04) : 271 - 289
  • [30] Fluid evolution of the Tongkuangyu porphyry copper deposit in the Zhongtiaoshan region: Evidence from fluid inclusions
    Jiang, Yuhang
    Niu, Hecai
    Bao, Zhiwei
    Li, Ningbo
    Shan, Qiang
    Yang, Wubin
    ORE GEOLOGY REVIEWS, 2014, 63 : 498 - 509