fluid mixing as a mechanism for bonanza grade epithermal gold

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Fluid mixing as a mechanism for bonanza grade epithermal gold formation Terry Leach* & Greg Corbett

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Page 1: Fluid mixing as a mechanism for bonanza grade epithermal gold

Fluid mixing as a mechanism for bonanza grade

epithermal gold formation

Terry Leach* &

Greg Corbett

Page 2: Fluid mixing as a mechanism for bonanza grade epithermal gold

Boiling

Page 3: Fluid mixing as a mechanism for bonanza grade epithermal gold

Lihir Island 1984

Page 4: Fluid mixing as a mechanism for bonanza grade epithermal gold

Boiling textures

Page 5: Fluid mixing as a mechanism for bonanza grade epithermal gold

Porgera Zone VII

Page 6: Fluid mixing as a mechanism for bonanza grade epithermal gold

Magmatic arc geothermal systems

Page 7: Fluid mixing as a mechanism for bonanza grade epithermal gold

Character sampling

Cracow early 1990’s

Vera Nancy late 1990’s

Page 8: Fluid mixing as a mechanism for bonanza grade epithermal gold

Banded epithermal veins & Multiple fluid sources

A

B

C

Page 9: Fluid mixing as a mechanism for bonanza grade epithermal gold

Au deposition and epithermal vein formation

from different hydrothermal fluids

Page 10: Fluid mixing as a mechanism for bonanza grade epithermal gold

Mechanisms of Au deposition♦ More efficient mechanisms of Au deposition

provide higher Au grades♦ Several mechanisms to consider

– Boiling – Cooling– Rapid cooling – Sulphidation reactions– Carbon reactions– Mixing with oxygenated groundwaters– Mixing with bicarbonate waters – Mixing with low pH waters

♦ Have a minor effect on Ag:Au ratios

Page 11: Fluid mixing as a mechanism for bonanza grade epithermal gold

Kupol, Russia –chalcedony, ginguro & adularia

58 g/t Au, 1184 g/t Ag

Page 12: Fluid mixing as a mechanism for bonanza grade epithermal gold

Banded chalcedony-ginguro Au-Ag vein

Banded quartz vein -Golden Cross

Adularia

-El Peñon..

Quartz pseudomorphing platy carbonate

Vera Nancy Hishikari

Cracow

Page 13: Fluid mixing as a mechanism for bonanza grade epithermal gold

Ginguro bandsVisible AuAsacha, Kamchatka

Hishikari, JapanVera Nancy, Aust

Midas, Nevada

Page 14: Fluid mixing as a mechanism for bonanza grade epithermal gold

Patagonia

Page 15: Fluid mixing as a mechanism for bonanza grade epithermal gold

Bilimoia, PNG

Slow cooling- low Au grades, good metallurgy

in quartz-sulphide Au

Cowal

Page 16: Fluid mixing as a mechanism for bonanza grade epithermal gold

Rapid Cooling Arsenian Pyrite, Lihir Island, Papua New Guinea

123 g/t Au15-30 g/t Au

Page 17: Fluid mixing as a mechanism for bonanza grade epithermal gold

Rapid cooling –opal in contact with sulphides

Fresnillo

Mariana veinArcata, Peru

Chatree, Thailand

Huevos Verde, Patagonia

Page 18: Fluid mixing as a mechanism for bonanza grade epithermal gold

Epithermal vein formation from different

hydrothermal fluids

Page 19: Fluid mixing as a mechanism for bonanza grade epithermal gold

Sulphidation

Lihir, arsenian pyrite 13.1 g/t

CARLIN TRENDMeikel 15 g/t Au Goldstrike 2-3 g/t Au

Page 20: Fluid mixing as a mechanism for bonanza grade epithermal gold

Epithermal vein formation from different

hydrothermal fluids

Page 21: Fluid mixing as a mechanism for bonanza grade epithermal gold

Gold solubility

Page 22: Fluid mixing as a mechanism for bonanza grade epithermal gold

Fresnillo, Mexico

Mixing with oxygenated waters –hypogene haematite

Palmarejo Mexico

Kupol, Russia86 g/t Au 1370 g/t Ag

Page 23: Fluid mixing as a mechanism for bonanza grade epithermal gold

Kupol polymetallic Ag-Ag

40 cm @ about 1,500 g/t Au, 15,000 g/t Ag

Page 24: Fluid mixing as a mechanism for bonanza grade epithermal gold

Bicarbonate waters

Page 25: Fluid mixing as a mechanism for bonanza grade epithermal gold

Carbonate-base metal Au –Leach and Corbett, 1993, 1994, 1995; Corbett and Leach, 1998

Porgera

Kelian

Page 26: Fluid mixing as a mechanism for bonanza grade epithermal gold

Mixing with bicarbonate waters in polymetallic Ag-Ag vein systems

Santa Ana, Peru

Page 27: Fluid mixing as a mechanism for bonanza grade epithermal gold

Bicarbonate waters

Page 28: Fluid mixing as a mechanism for bonanza grade epithermal gold

Mixing with with bicarbonate waters

Rhodochrosite69 g/t Au, 42 g/t Ag

Dolomite7.93 gt/ Au, 19 g/t Ag Calcite 2.8 g/t Au 11 g/t Ag

Page 29: Fluid mixing as a mechanism for bonanza grade epithermal gold

Manganese wad

Mt KarePapua New Guinea

Page 30: Fluid mixing as a mechanism for bonanza grade epithermal gold

Mixing with low pH waters derived from acid sulphate

caps

Page 31: Fluid mixing as a mechanism for bonanza grade epithermal gold

Arcata –Acid cap

Page 32: Fluid mixing as a mechanism for bonanza grade epithermal gold

Ares -Kaolin

Page 33: Fluid mixing as a mechanism for bonanza grade epithermal gold

Kupol - kaolin

45 g/t Au, 117 g/t Ag

55 g/t Au, 355 g/t Ag

602 g/t Au, 2082 g/t Ag

Kaolin intergrown with ginguro

Page 34: Fluid mixing as a mechanism for bonanza grade epithermal gold

Sleeper Gold Mine, Nevada

Kaolin-pyrite intergrown

Page 35: Fluid mixing as a mechanism for bonanza grade epithermal gold

Fine black silica-sulphide Palmarejo Mexico 186 g/t Au, 3720 g/t Ag

Page 36: Fluid mixing as a mechanism for bonanza grade epithermal gold

Hishikari Japan

Page 37: Fluid mixing as a mechanism for bonanza grade epithermal gold

Hishikari Japan

50,000 g/t Au

Page 38: Fluid mixing as a mechanism for bonanza grade epithermal gold

Active Hanging Wall SplayPalinpinon Geothermal

Page 39: Fluid mixing as a mechanism for bonanza grade epithermal gold

Intersection of collapsing acid sulphate waters and rising mineralised fluids

223 g/t Au & 17,642 g/t Ag

Page 40: Fluid mixing as a mechanism for bonanza grade epithermal gold

Champagne Pool, Waitapu, New

ZealandOrange precipitate in ppm or %Au 80, Ag 170, 170 Hg, 2% As, 2% Sb

Page 41: Fluid mixing as a mechanism for bonanza grade epithermal gold

Hypogene oxidation in high sulphidation epithermal systems

Pierina, Peru

Veladero, Argentina

Page 42: Fluid mixing as a mechanism for bonanza grade epithermal gold

Conclusion♦ Several mechanisms may account for the

deposition of Au in low sulphidation epithermal Au systems

♦ While boiling does deposit Au, this is not always the case

♦ Several different mixing reactions may account for elevated Au grades with increased efficiency and hence higher Au grade involving:– Oxygenated groundwaters– Bicarbonate waters– Low pH acid sulphate waters

Page 43: Fluid mixing as a mechanism for bonanza grade epithermal gold

Au deposition and epithermal vein formation

from different hydrothermal fluids

Page 44: Fluid mixing as a mechanism for bonanza grade epithermal gold