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Corundum Mine, Mt Painter area, Arkaroola Region (Arkaroola Wilderness Sanctuary; Arkaroola Station), North Flinders Ranges, Flinders Ranges, South Australia, Australiai
Regional Level Types
Corundum MineMine
Mt Painter areaMining Area (Abandoned)
Arkaroola Region (Arkaroola Wilderness Sanctuary; Arkaroola Station)Region
North Flinders Ranges- not defined -
Flinders RangesMining Region
South AustraliaState
AustraliaCountry

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PhotosMapsSearch
Latitude & Longitude (WGS84):
30° 13' 46'' South , 139° 17' 44'' East
Latitude & Longitude (decimal):
Type:
Mindat Locality ID:
10355
Long-form identifier:
mindat:1:2:10355:9
GUID (UUID V4):
26389220-f5a1-4a6c-a4b0-4166a6610883


Located in Corundum creek 6 km West of Mt Painter.

From Crooks and Abbot (2003):
Corundum was discovered by WB Greenwood in 1906 in an unnamed creek, later named Corundum Creek, ‘4 miles west of Mount Painter and 2 miles east of Mount Pitts’ (Brown, 1908; Fig. 1). In 1909 Greenwood revisited the area on behalf of the Mount Painter Corundum and Gem Syndicate of Adelaide, and in the course of prospecting, discovered other corundum-bearing outcrops to the west and SE of Mount Painter. In 1910 a 1 t sample of corundum-bearing material was collected at the original discovery locality via a small adit, subsequently known as the Corundum Mine, for shipment to England for appraisal of its economic potential as a source of abrasives. The area was studied in detail by Ward (1913), who noted that the highest grade corundum deposit occurred at the Corundum Mine with lower grade deposits located on the NE side of Mount Painter and in the valley between Mount Painter and Mount Gee.

The host rocks for the corundum are mica schists forming part of the Corundum Creek Member of Suite 4 of the Radium Creek Metamorphics, metasediments of probable Palaeoproterozoic age (Teale, 1993). The schists trend E–W with southerly dips ranging from 50° to vertical. The corundum was formed in response to high temperature (700°C), low pressure (3–5 kb) regional metamorphism (GS Teale in Giles and Johnson,1981) of aluminous, silica-deficient, mica schist derived from
shale and mudstone. The beds have been intruded by numerous pegmatites of
probable Ordovician age which tend to follow the grain of the country rocks (Coats and Blissett, 1971, Blissett, 1973). Dwyer (2000), however, cast doubt on the sedimentary origin corundum bearing schists. She described a corundum schist associated with amphibolite dyke rocks in the East Painter district and, based on detailed geochemistry, suggested a hydrothermally-altered, ultramafic origin for these and other corundum-bearing schists in the district.

The corundum at the Corundum Mine occurs in segregated crystalline lumps, as roughly hexagonal crystals and as small irregularly-shaped pieces disseminated throughout the schist. It is usually blue, mottled white or green, and associated with small crystals of rutile, tourmaline, spinel and cordierite. In places the spinel is
abundant and the corundum subordinate. Monazite and apatite have been recorded. Fragments of gem-quality corundum were noted including clear blue sapphire, ruby and oriental emerald.

Brown (1908) stated that the corundum is present over a width of nearly 1 km at creek level and could be traced 50 m up the hill side. In places corundum forms 10–25% of the rock but Ward (1913) concluded that the total amount of schist bearing corundum was not large and doubted whether an appreciable bulk of material averaging 5% corundum could be produced. Difficulty with grade control, lack of water and transport problems contributed to the down-grading of the Corundum Mine’s potential as a commercial supply of abrasives (Ward, 1913).

The deposits have been a source of supply for mineral collectors. In 1981 the Corundum Mine was placed on the register of geological monuments by the Geological Society of Australia, SA Division, because of its scientifically interesting mineral assemblage (Giles and Johnson, 1981). Apart from the main Corundum Creek locality, corundum has been identified, and in some cases mapped out, at many locations in the Mount Painter district (GM Teale, Teale and Associates Pty Ltd, pers. comm., 2002; SB Hore, PIRSA, pers. comm., 2002). It also displays a variety of parageneses apart from its formation in meta-pelites as discussed above, from accessory mineralisation in Delamerian pegmatites crosscutting Neoproterozoic sediments, to an association in altered Mesoproterozoic mafics (GM Teale, Teale and Associates Pty Ltd, pers. comm., 2002) as also identified by Dwyer (2000).

Select Mineral List Type

Standard Detailed Gallery Strunz Chemical Elements

Mineral List


14 valid minerals.

Detailed Mineral List:

'Apatite'
Formula: Ca5(PO4)3(Cl/F/OH)
Böhmite
Formula: AlO(OH)
'Chlorite Group'
Cordierite
Formula: (Mg,Fe)2Al3(AlSi5O18)
Corundum
Formula: Al2O3
Corundum var. Sapphire
Formula: Al2O3
Elbaite
Formula: Na(Li1.5Al1.5)Al6(Si6O18)(BO3)3(OH)3(OH)
Fluorapatite
Formula: Ca5(PO4)3F
'Monazite'
Formula: REE(PO4)
Monazite-(Ce)
Formula: Ce(PO4)
Muscovite
Formula: KAl2(AlSi3O10)(OH)2
Phlogopite
Formula: KMg3(AlSi3O10)(OH)2
Rutile
Formula: TiO2
Sapphirine
Formula: Mg4(Mg3Al9)O4[Si3Al9O36]
Schorl
Formula: NaFe2+3Al6(Si6O18)(BO3)3(OH)3(OH)
Spinel
Formula: MgAl2O4
Titanite
Formula: CaTi(SiO4)O
Tridymite
Formula: SiO2

Gallery:

List of minerals arranged by Strunz 10th Edition classification

Group 4 - Oxides and Hydroxides
Spinel4.BB.05MgAl2O4
Corundum4.CB.05Al2O3
var. Sapphire4.CB.05Al2O3
Tridymite4.DA.10SiO2
Rutile4.DB.05TiO2
Böhmite4.FE.15AlO(OH)
Group 8 - Phosphates, Arsenates and Vanadates
Monazite-(Ce)8.AD.50Ce(PO4)
Fluorapatite8.BN.05Ca5(PO4)3F
Group 9 - Silicates
Titanite9.AG.15CaTi(SiO4)O
Cordierite9.CJ.10(Mg,Fe)2Al3(AlSi5O18)
Elbaite9.CK.05Na(Li1.5Al1.5)Al6(Si6O18)(BO3)3(OH)3(OH)
Schorl9.CK.05NaFe2+3Al6(Si6O18)(BO3)3(OH)3(OH)
Sapphirine9.DH.45Mg4(Mg3Al9)O4[Si3Al9O36]
Muscovite9.EC.15KAl2(AlSi3O10)(OH)2
Phlogopite9.EC.20KMg3(AlSi3O10)(OH)2
Unclassified
'Chlorite Group'-
'Monazite'-REE(PO4)
'Apatite'-Ca5(PO4)3(Cl/F/OH)

List of minerals for each chemical element

HHydrogen
H BöhmiteAlO(OH)
H ElbaiteNa(Li1.5Al1.5)Al6(Si6O18)(BO3)3(OH)3(OH)
H MuscoviteKAl2(AlSi3O10)(OH)2
H PhlogopiteKMg3(AlSi3O10)(OH)2
H SchorlNaFe32+Al6(Si6O18)(BO3)3(OH)3(OH)
H ApatiteCa5(PO4)3(Cl/F/OH)
LiLithium
Li ElbaiteNa(Li1.5Al1.5)Al6(Si6O18)(BO3)3(OH)3(OH)
BBoron
B ElbaiteNa(Li1.5Al1.5)Al6(Si6O18)(BO3)3(OH)3(OH)
B SchorlNaFe32+Al6(Si6O18)(BO3)3(OH)3(OH)
OOxygen
O BöhmiteAlO(OH)
O Cordierite(Mg,Fe)2Al3(AlSi5O18)
O CorundumAl2O3
O ElbaiteNa(Li1.5Al1.5)Al6(Si6O18)(BO3)3(OH)3(OH)
O FluorapatiteCa5(PO4)3F
O MonaziteREE(PO4)
O Monazite-(Ce)Ce(PO4)
O MuscoviteKAl2(AlSi3O10)(OH)2
O PhlogopiteKMg3(AlSi3O10)(OH)2
O RutileTiO2
O Corundum var. SapphireAl2O3
O SapphirineMg4(Mg3Al9)O4[Si3Al9O36]
O SchorlNaFe32+Al6(Si6O18)(BO3)3(OH)3(OH)
O SpinelMgAl2O4
O TitaniteCaTi(SiO4)O
O TridymiteSiO2
O ApatiteCa5(PO4)3(Cl/F/OH)
FFluorine
F FluorapatiteCa5(PO4)3F
F ApatiteCa5(PO4)3(Cl/F/OH)
NaSodium
Na ElbaiteNa(Li1.5Al1.5)Al6(Si6O18)(BO3)3(OH)3(OH)
Na SchorlNaFe32+Al6(Si6O18)(BO3)3(OH)3(OH)
MgMagnesium
Mg Cordierite(Mg,Fe)2Al3(AlSi5O18)
Mg PhlogopiteKMg3(AlSi3O10)(OH)2
Mg SapphirineMg4(Mg3Al9)O4[Si3Al9O36]
Mg SpinelMgAl2O4
AlAluminium
Al BöhmiteAlO(OH)
Al Cordierite(Mg,Fe)2Al3(AlSi5O18)
Al CorundumAl2O3
Al ElbaiteNa(Li1.5Al1.5)Al6(Si6O18)(BO3)3(OH)3(OH)
Al MuscoviteKAl2(AlSi3O10)(OH)2
Al PhlogopiteKMg3(AlSi3O10)(OH)2
Al Corundum var. SapphireAl2O3
Al SapphirineMg4(Mg3Al9)O4[Si3Al9O36]
Al SchorlNaFe32+Al6(Si6O18)(BO3)3(OH)3(OH)
Al SpinelMgAl2O4
SiSilicon
Si Cordierite(Mg,Fe)2Al3(AlSi5O18)
Si ElbaiteNa(Li1.5Al1.5)Al6(Si6O18)(BO3)3(OH)3(OH)
Si MuscoviteKAl2(AlSi3O10)(OH)2
Si PhlogopiteKMg3(AlSi3O10)(OH)2
Si SapphirineMg4(Mg3Al9)O4[Si3Al9O36]
Si SchorlNaFe32+Al6(Si6O18)(BO3)3(OH)3(OH)
Si TitaniteCaTi(SiO4)O
Si TridymiteSiO2
PPhosphorus
P FluorapatiteCa5(PO4)3F
P MonaziteREE(PO4)
P Monazite-(Ce)Ce(PO4)
P ApatiteCa5(PO4)3(Cl/F/OH)
ClChlorine
Cl ApatiteCa5(PO4)3(Cl/F/OH)
KPotassium
K MuscoviteKAl2(AlSi3O10)(OH)2
K PhlogopiteKMg3(AlSi3O10)(OH)2
CaCalcium
Ca FluorapatiteCa5(PO4)3F
Ca TitaniteCaTi(SiO4)O
Ca ApatiteCa5(PO4)3(Cl/F/OH)
TiTitanium
Ti RutileTiO2
Ti TitaniteCaTi(SiO4)O
FeIron
Fe Cordierite(Mg,Fe)2Al3(AlSi5O18)
Fe SchorlNaFe32+Al6(Si6O18)(BO3)3(OH)3(OH)
CeCerium
Ce Monazite-(Ce)Ce(PO4)

Other Regions, Features and Areas containing this locality

Australia
Australian PlateTectonic Plate

This page contains all mineral locality references listed on mindat.org. This does not claim to be a complete list. If you know of more minerals from this site, please register so you can add to our database. This locality information is for reference purposes only. You should never attempt to visit any sites listed in mindat.org without first ensuring that you have the permission of the land and/or mineral rights holders for access and that you are aware of all safety precautions necessary.

References

 
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