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Van Dyke Mine (Van Dyke shaft; Van Dyke deposit; Van Dyke claim; Oxymin's Van Dyke deposit), Miami, Miami-Inspiration Mining District, Globe-Miami Mining District, Gila County, Arizona, USAi
Regional Level Types
Van Dyke Mine (Van Dyke shaft; Van Dyke deposit; Van Dyke claim; Oxymin's Van Dyke deposit)Mine
Miami- not defined -
Miami-Inspiration Mining District- not defined -
Globe-Miami Mining DistrictMining District
Gila CountyCounty
ArizonaState
USACountry

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Latitude & Longitude (WGS84):
33° 24' 7'' North , 110° 52' 21'' West
Latitude & Longitude (decimal):
Type:
Nearest Settlements:
PlacePopulationDistance
Miami1,783 (2017)0.5km
Claypool1,538 (2011)3.0km
Central Heights-Midland City2,534 (2011)5.3km
Globe7,396 (2017)8.0km
Six Shooter Canyon1,019 (2017)9.9km
Nearest Clubs:
Local clubs are the best way to get access to collecting localities
ClubLocationDistance
Gila County Gem & Mineral SocietyMiami, Arizona0km
Mindat Locality ID:
25740
Long-form identifier:
mindat:1:2:25740:7
GUID (UUID V4):
0


A former underground Cu-Ag-Fluorspar mine located on 80 claims (1963) in the NW¼ sec. 30, T1N, R15E (Globe 7.5 minute topo map), under the townsite of Miami, on private lands. The U.S.Bureau of Mines gives the location as 33-23-30N, 110-52-30W. Cleve Van Dyke acquired the property on Miami Flat, now the site of Miami, and organized the Miami Townsite Co. This company sold building lots to individuals but retained the mineral rights below a depth of 40 feet from surface. He then organized the Van Dyke Copper Co. and these mineral rights were transferred to it. In 1916 the Van Dyke Copper Co. started drilling exploration. Owned and operated by Arimetco International, Inc. (1992).

The deposit is in the depressed hanging wall block of the Miami fault, opposite the east end of the Miami-Inspiration orebody. The ore zone is 1143 meters long, 434.34 meters wide, and 76.2 meters thick. It strikes NW and dips 20E. The shaft was sunk in Gila conglomerate and entered the underlying Pinal schist at a depth of 760 feet. To a depth of 1,440 feet, the schist has the general characteristics of capping formed by supergene oxidation and leaching of a low-grade, disseminated sulfide deposit. It contains residual limonite and small amounts of oxidized copper minerals. The shaft passed through a low-grade chalcocite zone from 1,440 to 1,600 feet of depth; and below this passed through schist containing a little pyrite and chalcopyrite. The lower 60 feet of the shaft is in very heavy ground, possibly the Miami fault zone.

The shaft intersected a breccia zone from 1,183 to 1,218 feet below the collar. This zone was mineralized with copper carbonates and silicate. The footwall of this orebody is clearly defined by a layer of tough red gouge that strikes a little west of north and dips 20ºE. About 200 feet NE of the shaft, the orebody is terminated by the Van Dyke fault, which is coincident with the footwall of a granite porphyry dike. The fault and dike strike N70ºW and dip 70ºNE. The localization of the copper minerals appears to have been controlled by the intersection of the low-angle fault zone with the Van Dyke fault. The greatest amount of brecciation and the best ore occurred near the intersection, and the amount of brecciation and ore minerals decreases progressively southward. The Van Dyke fault clearly served as a barrier to the copper-bearing solutions that seeped into the low-angle fault zone.

The ore minerals in the ore consist entirely of azurite, malachite, chrysocolla, and tenorite. These oxidized copper minerals are not the result of oxidation in place of a primary sulphide ore body which contained copper but were first deposited as carbonates and silicates by laterally moving or descending solutions either in a particularly barren fault zone or at least a fault zone containing small amounts of pyrite and traces of chalcopyrite. This fact is clearly demonstrated by the oxidized copper minerals which are filling voids and act as a cementing material for irregular angular fragments of practically unaltered schist. The oxidized copper minerals in-filling these voids between the schist fragments appear as crustations and in many places assume botryoidal form. By the early 1990's, it was recognized that the Van Dyke ore body was a down-dropped continuation of the mineralization at Inspiration and that primary copper mineralization extended under part of the town of Miami.

Mineralization is along faults or fracture zones in hydrothermally altered and leached schist or granite, a result of direct deposition, filling fractures and the interstices between breccia fractures. Small amounts of sulfides are disseminated in the wallrocks. Alteration was oxidation, silicification and carbonatization. Ore concentration was hydrothermal with supergene enrichment.

The Van Dyke shaft was sunk in 1919 to a depth of 1,692 feet (515.72 meters) and intersected the mineralized zone located by the drilling exploration. Work ceased in 1921 due to low copper prices. In 1928 the shaft was unwatered and development resumed and continued until 1931. It was reopened in 1943 but closed in June, 1945. In all, it produced 11,851,700 pounds of Cu.

Drilling on this deposit began in 1925 and it is one of the deepest deposits in the district. Kocide Mining Corp. suspended in-situ leaching operations at this site in 1990 due to iron build up in the recycled leach solution. They had been producing cement copper (precipitated copper) since 1988. The 250 foot length of workings is for workings away from the shaft, not total working length. In 1989, the mine was an in-situ leach-solvent operation with a cement copper plant. Production was further refined at Casa Grande to produce CuSO4. In 1992, Arimetco was finalizing plans to leach the entire deposit using the old Van Dyke shaft as an extraction well.

Select Mineral List Type

Standard Detailed Gallery Strunz Chemical Elements

Mineral List


9 valid minerals.

Detailed Mineral List:

Allophane
Formula: (Al2O3)(SiO2)1.3-2 · 2.5-3H2O
Azurite
Formula: Cu3(CO3)2(OH)2
Chalcocite
Formula: Cu2S
Chalcopyrite
Formula: CuFeS2
Chrysocolla
Formula: Cu2-xAlx(H2-xSi2O5)(OH)4 · nH2O, x < 1
Fluorite
Formula: CaF2
'Limonite'
Malachite
Formula: Cu2(CO3)(OH)2
Pyrite
Formula: FeS2
Tenorite
Formula: CuO

Gallery:

List of minerals arranged by Strunz 10th Edition classification

Group 2 - Sulphides and Sulfosalts
Chalcocite2.BA.05Cu2S
Chalcopyrite2.CB.10aCuFeS2
Pyrite2.EB.05aFeS2
Group 3 - Halides
Fluorite3.AB.25CaF2
Group 4 - Oxides and Hydroxides
Tenorite4.AB.10CuO
Group 5 - Nitrates and Carbonates
Azurite5.BA.05Cu3(CO3)2(OH)2
Malachite5.BA.10Cu2(CO3)(OH)2
Group 9 - Silicates
Allophane9.ED.20(Al2O3)(SiO2)1.3-2 · 2.5-3H2O
Chrysocolla9.ED.20Cu2-xAlx(H2-xSi2O5)(OH)4 · nH2O, x < 1
Unclassified
'Limonite'-

List of minerals for each chemical element

HHydrogen
H Allophane(Al2O3)(SiO2)1.3-2 · 2.5-3H2O
H AzuriteCu3(CO3)2(OH)2
H ChrysocollaCu2-xAlx(H2-xSi2O5)(OH)4 · nH2O, x < 1
H MalachiteCu2(CO3)(OH)2
CCarbon
C AzuriteCu3(CO3)2(OH)2
C MalachiteCu2(CO3)(OH)2
OOxygen
O Allophane(Al2O3)(SiO2)1.3-2 · 2.5-3H2O
O AzuriteCu3(CO3)2(OH)2
O ChrysocollaCu2-xAlx(H2-xSi2O5)(OH)4 · nH2O, x < 1
O MalachiteCu2(CO3)(OH)2
O TenoriteCuO
FFluorine
F FluoriteCaF2
AlAluminium
Al Allophane(Al2O3)(SiO2)1.3-2 · 2.5-3H2O
Al ChrysocollaCu2-xAlx(H2-xSi2O5)(OH)4 · nH2O, x < 1
SiSilicon
Si Allophane(Al2O3)(SiO2)1.3-2 · 2.5-3H2O
Si ChrysocollaCu2-xAlx(H2-xSi2O5)(OH)4 · nH2O, x < 1
SSulfur
S ChalcopyriteCuFeS2
S ChalcociteCu2S
S PyriteFeS2
CaCalcium
Ca FluoriteCaF2
FeIron
Fe ChalcopyriteCuFeS2
Fe PyriteFeS2
CuCopper
Cu AzuriteCu3(CO3)2(OH)2
Cu ChalcopyriteCuFeS2
Cu ChalcociteCu2S
Cu ChrysocollaCu2-xAlx(H2-xSi2O5)(OH)4 · nH2O, x < 1
Cu MalachiteCu2(CO3)(OH)2
Cu TenoriteCuO

Other Databases

Link to USGS MRDS:10102492

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