The various types, textures, and compositional zoning of pyrite in the gold-bearing saddle reefs, quartz veins, surrounding sedimentary rocks provide new information on the potential source and timing of gold and and related fluid processes responsible for mineralization at Bendigo. Nodular diagenetic pyrite in the shale tops to sandstone turbidites is enriched in invisible gold and arsenic with mean values of 0.61 ppm , 1,300 ppm As, and Au/Ag <1, based on LA-ICPMS analyses. Other elements enriched in the diagenetic within the organic-rich shales are Mn, Zn, Mo, Cu, V, Ba, Ag, Cd, Tl, Co, Ni, Bi, Pb, and Te. In contrast, - and growth-zoned hydrothermal pyrite in the turbidites and bedding-parallel laminated quartz veins lower contents of most trace elements but has higher contents of invisible Au and As, especially on outermost rim of the pyrite. The gold-rich pyrite rims generally become thicker (a few to hundreds of ) in proximity to the gold-bearing saddle reefs. Pyrite in the reef commonly has the highest levels of Au and As and the lowest levels of other trace elements. It is characterized by Au/Ag >1 and Au/Pb >0.01. In the deepest stratigraphic levels, below known productive gold reefs, diagenetic pyrite in the most carbonaceous has been replaced by pyrrhotite during metamorphism. LA-ICPMS analyses reveal that the pyrrhotite contains similar levels of Ni and Co to the diagenetic pyrite but is strongly depleted in and Au. The spatial relationships between organic-rich shales, folded bedding-parallel laminated quartz , and gold-arsenic−bearing saddle reefs, combined with the consistent trends in the trace element composition pyrite hosted by these three geological elements, is interpreted to indicate that the black shales were initial source of Au and As, and the laminated quartz veins acted as the initial pathways for hydrothermal flow carrying Au and As from the source shales to the saddle reefs. Maximum gold and arsenic input into reefs, principally as free gold plus arsenopyrite, occurred late during deformation toward the end of the cycle and is expressed by the Au-As−rich rims to hydrothermal pyrite in the sedimentary host , laminated quartz veins, and reefs. This corresponds with final fold lockup and the development of -going fault arrays linking adjacent anticlines. The source of Au and As for this final, and most economically , fluid-flow event is considered to be from carbonaceous shales deeper in the basin, where gold-bearing diagenetic arsenian pyrite reacts with organic matter and is converted to pyrrhotite, with of Au, As, and S to the metamorphic fluid.
No takes yet. Share an insight, caveat, or question.
Thomas et al. (2011) studied this question.
Synapse has enriched one closely related paper. Consider it for comparative context: