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Gold Hill Mine, Round Mountain Mining District, Toquima Range, Nye County, Nevada, USAi
Regional Level Types
Gold Hill MineMine
Round Mountain Mining DistrictMining District
Toquima RangeMountain Range
Nye CountyCounty
NevadaState
USACountry

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Latitude & Longitude (WGS84):
38° 46' 21'' North , 117° 3' 5'' West
Latitude & Longitude (decimal):
Type:
Nearest Settlements:
PlacePopulationDistance
Kingston113 (2011)48.6km
Mindat Locality ID:
40278
Long-form identifier:
mindat:1:2:40278:8
GUID (UUID V4):
0


Structure: Northwest-striking faults and joints; a WNW-trending paleotopographic high, may represent the margin of buried caldera located SW of Round Mountain. Ore deposits are localized by a NW-trending lineament.

Alteration: Propylitization and argillization of host rocks are intense. Adularia replacement of K-feldspars and plagioclase is associated with ore. Plagioclase and groundmass are replaced with quartz and sericite. Within propylitically altered rock, biotite is partially or wholly altered to chlorite. Groundmass is altered to chlorite +/- clay +/- carbonate+/- epidote. Plagioclase phenocrysts are altered to sericite (illite) as small points, clots, and veinlets along cleavage planes. Argillically altered rock contains no unaltered biotite or plagioclase, both phases being altered to clay (illite, montmorillonite, kaolinite) and sericite. Groundmass is entirely composed of fine-grained clays and sericite. Quartz-adularia silicification is widespread along the veins. Degree of silicification, sericite + argillic alteration increases with (higher) elevation. Fine-grained secondary quartz has replaced original plagioclase feldspars, occurs as clots in the groundmass, and as hairline veinlets that lace the rock.

Commodity: Ore Materials: free gold, electrum, auriferous pyrite Gangue Materials: clay minerals, quartz, adularia, sericite, hematite, limonite, manganese oxide, pyrite, alunite, jarosite, illite, montmorillonite, kaolinite, fluorite, realgar, scorodite

Deposit: The host rock at Gold Hill includes densely welded rhyolite tuff of the Mount Jefferson Caldera. The Mount Jefferson tuff overlies the Moores Creek tuff which in turn lies over the Round Mountain tuff, the host of the Round Mountain mine. These Tertiary volcanic rocks overlie a volcanic mega-breccia that, in turn, overlies Paleozoic metasediments. The youngest rock in the area is Quaternary-Tertiary pediment gravel. These units are generally composed of cobbles of the younger maroon tuff and are always completely barren of gold mineralization. Alteration in the area ranges from propylitic to argillic to advanced argillic to silicified. The gold mineralization is related to both quartz veining in argillized rock and silicification. The principal feature in the area is the Gold Hill vein and its sub-parallel veins. These all strike N75?W and dip variably, but steeply. In general, the veins dip southerly near the surface but dip back to the north at depth. These veins branch and coalesce and are banded quartz, but can also be composed of crushed quartz and rhyolite. Higher-grade pods generally exist where two periods of veining intersect, the entire zone is up to 500 ft wide and is 3,000 ft long, extending from beyond the range front fault on the west (where it remains open) to near the Toquima shaft on the east. The mineralization extends to the west of the range front fault where one hole hit approximately 80 ft of about 0.11 oz Au/ton.

Deposit type: Hot-spring Au-Ag

Development: The first significant production in the Round Mountain district was principally from the Gold Hill Mine in the 1930s. There was later sporadic production between 1950 and 1964. Total production at Gold Hill was about 28,000 ounces. Grades are estimated to have been about 0.3 ounces of gold per ton. The property was controlled through much of the 1980s by Round Mountain Gold Corporation (RGMC), which was at that time a joint venture of Echo Bay Mining, Homestake, and Case Pomeroy. They conducted extensive exploration including surface mapping, geochemistry, geophysics and a structural evaluation. Their work culminated in drilling, preliminary metallurgical test work and a resource and economic evaluation. According to a 1988 report by Mine Development Associates, a mineral inventory of 3.1 million tons (2.8 million tonnes) grading 0.05 oz Au/ton (1.7 g Au/t) at a 0.025 oz Au/ton (0.85 g Au/t) cutoff was defined. Exploration work during the 1990s included additional geological mapping, surface sampling, geophysics, 100 drill holes by RMGC (both reverse circulation and core), 10 core holes completed by Nevada Star and the preparation of a digital database of all available exploration data. In 1995, Nevada Star staked 55 claims and acquired an option to purchase 53 additional claims in the Round Mountain Mining District, in consideration of $1,010,000 U.S. over 10? years. In a 2000 agreement, RMGC assumed the remaining payment obligations to the vendor and paid $275,000 to Nevada Star by 2005. Thereafter, RMGC will pay annual production royalties to Nevada Star. In 2003, Round Mountain Gold Corp. started the permitting process for a proposed mine at the Gold Hill property and continued drilling to define the gold deposit. The Gold Hill property is undergoing an EIS (Environmental Impact Study) which is expected to be completed in the Fall of 2005. Plant production is scheduled to start in the early spring of 2006. Higher-grade ore from the Gold Hill Project will be trucked to a mill at the existing Round Mountain Gold mine.

Geology: A sequence of water-laid tuff, tuffaceous sandstone, conglomerate, and thinly laminated siltstone overlies the orebody.

Ore(s): There is a ring fracture zone associated with a buried caldera. Gold deposition is controlled by high-angle fractures, particularly the NW-trending sets. Fractures were reactivated by NW-trending strike-slip faulting.

Select Mineral List Type

Standard Detailed Gallery Strunz Chemical Elements

Commodity List

This is a list of exploitable or exploited mineral commodities recorded at this locality.


Mineral List


12 valid minerals.

Rock Types Recorded

Note: data is currently VERY limited. Please bear with us while we work towards adding this information!

Select Rock List Type

Alphabetical List Tree Diagram

Detailed Mineral List:

Alunite
Formula: KAl3(SO4)2(OH)6
Fluorite
Formula: CaF2
Hematite
Formula: Fe2O3
Jarosite
Formula: KFe3+3(SO4)2(OH)6
Kaolinite
Formula: Al2(Si2O5)(OH)4
'K Feldspar'
'K Feldspar var. Adularia'
Formula: KAlSi3O8
'Limonite'
Montmorillonite
Formula: (Na,Ca)0.33(Al,Mg)2(Si4O10)(OH)2 · nH2O
Muscovite
Formula: KAl2(AlSi3O10)(OH)2
Muscovite var. Illite
Formula: K0.65Al2.0[Al0.65Si3.35O10](OH)2
Muscovite var. Sericite
Formula: KAl2(AlSi3O10)(OH)2
Native Gold
Formula: Au
Native Gold var. Electrum
Formula: (Au,Ag)
Pyrite
Formula: FeS2
Quartz
Formula: SiO2
Realgar
Formula: As4S4
Scorodite
Formula: Fe3+AsO4 · 2H2O

Gallery:

List of minerals arranged by Strunz 10th Edition classification

Group 1 - Elements
Native Gold
var. Electrum
1.AA.05(Au,Ag)
1.AA.05Au
Group 2 - Sulphides and Sulfosalts
Pyrite2.EB.05aFeS2
Realgar2.FA.15aAs4S4
Group 3 - Halides
Fluorite3.AB.25CaF2
Group 4 - Oxides and Hydroxides
Hematite4.CB.05Fe2O3
Quartz4.DA.05SiO2
Group 7 - Sulphates, Chromates, Molybdates and Tungstates
Alunite7.BC.10KAl3(SO4)2(OH)6
Jarosite7.BC.10KFe3+3(SO4)2(OH)6
Group 8 - Phosphates, Arsenates and Vanadates
Scorodite8.CD.10Fe3+AsO4 · 2H2O
Group 9 - Silicates
Muscovite
var. Illite
9.EC.15K0.65Al2.0[Al0.65Si3.35O10](OH)2
9.EC.15KAl2(AlSi3O10)(OH)2
var. Sericite9.EC.15KAl2(AlSi3O10)(OH)2
Montmorillonite9.EC.40(Na,Ca)0.33(Al,Mg)2(Si4O10)(OH)2 · nH2O
Kaolinite9.ED.05Al2(Si2O5)(OH)4
Unclassified
'K Feldspar
var. Adularia'
-KAlSi3O8
'Limonite'-
'K Feldspar'-

List of minerals for each chemical element

HHydrogen
H AluniteKAl3(SO4)2(OH)6
H Muscovite var. IlliteK0.65Al2.0[Al0.65Si3.35O10](OH)2
H JarositeKFe33+(SO4)2(OH)6
H KaoliniteAl2(Si2O5)(OH)4
H MuscoviteKAl2(AlSi3O10)(OH)2
H Montmorillonite(Na,Ca)0.33(Al,Mg)2(Si4O10)(OH)2 · nH2O
H ScoroditeFe3+AsO4 · 2H2O
H Muscovite var. SericiteKAl2(AlSi3O10)(OH)2
OOxygen
O K Feldspar var. AdulariaKAlSi3O8
O AluniteKAl3(SO4)2(OH)6
O HematiteFe2O3
O Muscovite var. IlliteK0.65Al2.0[Al0.65Si3.35O10](OH)2
O JarositeKFe33+(SO4)2(OH)6
O KaoliniteAl2(Si2O5)(OH)4
O MuscoviteKAl2(AlSi3O10)(OH)2
O Montmorillonite(Na,Ca)0.33(Al,Mg)2(Si4O10)(OH)2 · nH2O
O QuartzSiO2
O ScoroditeFe3+AsO4 · 2H2O
O Muscovite var. SericiteKAl2(AlSi3O10)(OH)2
FFluorine
F FluoriteCaF2
NaSodium
Na Montmorillonite(Na,Ca)0.33(Al,Mg)2(Si4O10)(OH)2 · nH2O
MgMagnesium
Mg Montmorillonite(Na,Ca)0.33(Al,Mg)2(Si4O10)(OH)2 · nH2O
AlAluminium
Al K Feldspar var. AdulariaKAlSi3O8
Al AluniteKAl3(SO4)2(OH)6
Al Muscovite var. IlliteK0.65Al2.0[Al0.65Si3.35O10](OH)2
Al KaoliniteAl2(Si2O5)(OH)4
Al MuscoviteKAl2(AlSi3O10)(OH)2
Al Montmorillonite(Na,Ca)0.33(Al,Mg)2(Si4O10)(OH)2 · nH2O
Al Muscovite var. SericiteKAl2(AlSi3O10)(OH)2
SiSilicon
Si K Feldspar var. AdulariaKAlSi3O8
Si Muscovite var. IlliteK0.65Al2.0[Al0.65Si3.35O10](OH)2
Si KaoliniteAl2(Si2O5)(OH)4
Si MuscoviteKAl2(AlSi3O10)(OH)2
Si Montmorillonite(Na,Ca)0.33(Al,Mg)2(Si4O10)(OH)2 · nH2O
Si QuartzSiO2
Si Muscovite var. SericiteKAl2(AlSi3O10)(OH)2
SSulfur
S AluniteKAl3(SO4)2(OH)6
S JarositeKFe33+(SO4)2(OH)6
S PyriteFeS2
S RealgarAs4S4
KPotassium
K K Feldspar var. AdulariaKAlSi3O8
K AluniteKAl3(SO4)2(OH)6
K Muscovite var. IlliteK0.65Al2.0[Al0.65Si3.35O10](OH)2
K JarositeKFe33+(SO4)2(OH)6
K MuscoviteKAl2(AlSi3O10)(OH)2
K Muscovite var. SericiteKAl2(AlSi3O10)(OH)2
CaCalcium
Ca FluoriteCaF2
Ca Montmorillonite(Na,Ca)0.33(Al,Mg)2(Si4O10)(OH)2 · nH2O
FeIron
Fe HematiteFe2O3
Fe JarositeKFe33+(SO4)2(OH)6
Fe PyriteFeS2
Fe ScoroditeFe3+AsO4 · 2H2O
AsArsenic
As RealgarAs4S4
As ScoroditeFe3+AsO4 · 2H2O
AgSilver
Ag Native Gold var. Electrum(Au,Ag)
AuGold
Au Native Gold var. Electrum(Au,Ag)
Au Native GoldAu

Other Databases

Link to USGS MRDS:10310493
Link to USGS MRDS:10197946

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