Lode-gold mineralization in the Tanami region, northern Australia

被引:40
作者
Huston, David L.
Vandenberg, Leon
Wygralak, Andrew S.
Mernagh, Terrence P.
Bagas, Leon
Crispe, Andrew
Lambeck, Alexis
Cross, Andrew
Fraser, Geoff
Williams, Nick
Worden, Kurt
Meixner, Tony
Goleby, Bruce
Jones, Leonie
Lyons, Pat
Maidment, David
机构
[1] Geosci Australia, Canberra, ACT 2601, Australia
[2] No Terr Geol Survey, Alice Springs, NT 0871, Australia
[3] No Terr Geol Survey, Darwin, NT 0801, Australia
[4] Geol Survey Western Australia, Perth, WA 6009, Australia
[5] Univ Western Australia, Ctr Explorat Targeting, Crawley, WA 6004, Australia
关键词
lode-gold; Tanami; Paleoproterozoic; mineral system;
D O I
10.1007/s00126-006-0106-2
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
The Tanami region of northern Australia has emerged over the last two decades as the largest gold-producing region in the Northern Territory. Gold is hosted by epigenetic quartz veins in sedimentary and mafic rocks, and by sulfide-rich replacement zones within iron formation. Although limited, geochronological data suggest that most mineralization occurred at about 1,805-1,790 Ma, during a period of extensive granite intrusion, although structural relationships suggest that some deposits predate this period. There are three main goldfields in the Tanami region: the Dead Bullock Soak goldfield, which hosts the world-class Callie deposit; The Granites goldfield; and the Tanami goldfield. In the Dead Bullock Soak goldfield, deposits are hosted by carbonaceous siltstone and iron formation where a late (D-5) structural corridor intersects an early F-1 anticlinorium. In The Granites goldfield, deposits are hosted by highly sheared iron formation and are interpreted to predate D-5. The Tanami goldfield consists of a large number of small, mostly basalt-hosted deposits that probably formed at a high structural level during D-5. The D-5 structures that host most deposits formed in a convergent structural regime with sigma (1) oriented between E-W and ENE-WSW. Structures active during D-5 include NE-trending oblique thrust (dextral) faults and ESE-trending (sinistral) faults that curve into N- to NNW-trending reverse faults localized in supracrustal belts between and around granite complexes. Granite intrusions also locally perturbed the stress field, possibly localizing structures and deposits. Forward modeling and preliminary interpretations of reflection seismic data indicate that all faults extend into the mid-crust. In areas characterized by the N- to NW-trending faults, orebodies also tend to be N- to NW-trending, localized in dilational jogs or in fractured, competent rock units. In areas characterized by ESE-trending faults, the orebodies and veins tend to strike broadly east at an angle consistent with tensional fractures opened during E-W- to ENE-WSW-directed transpression. Many of these deposits are hosted by reactive rock units such as carbonaceous siltstone and iron formation. Ore deposition occurred at depths ranging from 1.5 to 11 km from generally low to moderate salinity carbonic fluids with temperatures from 200 to 430 degrees C, similar to lode-gold fluids elsewhere in the world. These fluids are interpreted as the product of metamorphic dewatering caused by enhanced heat flow, although it is also possible that the fluids were derived from coeval granites. Lead isotope data suggest that lead in the ore fluids had multiple sources. Hydrogen and oxygen isotope data are consistent with both metamorphic and magmatic origins for ore fluids. Gold deposition is interpreted to be caused by fluid unmixing and sulfidation of host rocks. Fluid unmixing is caused by three different processes: (1) CO2 unmixing caused by interaction of ore fluids with carbonaceous siltstone; (2) depressurization caused by pressure cycling in shear zones; and (3) boiling as ore fluids move to shallow levels. Deposits in the Tanami region may illustrate the continuum model of lode-gold deposition suggested by Groves (Mineralium Deposita 28:366-374, 1993) for Archean districts.
引用
收藏
页码:175 / 204
页数:30
相关论文
共 63 条
[1]  
ADAMS GJ, 1997, THESIS U ADELAIDE
[2]  
Adams S.F., 1920, Economic Geology, V15, P623
[3]  
[Anonymous], 1995, AUSTR GEOLOGICAL SUR
[4]  
Bodnar R. J., 1985, REV EC GEOLOGY, V2, P73
[5]  
Bohlke J.K., 1988, APPL GEOCHEM, V3, P499, DOI DOI 10.1016/0883-2927(88)90022-4
[6]   The evolution of the sulfur cycle [J].
Canfield, DE ;
Raiswell, R .
AMERICAN JOURNAL OF SCIENCE, 1999, 299 (7-9) :697-723
[7]  
CRISPE A, 2006, IN PRESS GEOLOGY TAN
[8]  
CRISPE A, 2004, 20040001 NO TERR GEO, P17
[9]  
Cross A.J., 2005, ANN GEOSC EXPL SEM A
[10]  
CROSS AJ, 2004, 2004003 NO TERR GEOL