Vote for your favorite mineral in #MinCup26! - Sphalerite vs. Anorthite
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Mount Mine (Perran Iron Mine; Trebisken and Mount Mine), Perran Iron Lode (Great Perran Iron Lode), Perranzabuloe, Cornwall, England, UKi
Regional Level Types
Mount Mine (Perran Iron Mine; Trebisken and Mount Mine)Mine
Perran Iron Lode (Great Perran Iron Lode)Lode
PerranzabuloeCivil Parish
CornwallCounty
EnglandConstituent Country
UKCountry

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PhotosMapsSearch
Latitude & Longitude (WGS84):
50° 21' 57'' North , 5° 7' 19'' West
Latitude & Longitude (decimal):
UK National Grid Reference:
SW780565
Type:
Köppen climate type:
Nearest Settlements:
PlacePopulationDistance
Cubert771 (2017)1.5km
Perranporth3,210 (2017)3.4km
Crantock801 (2017)4.2km
Newquay20,189 (2017)6.5km
Saint Agnes2,820 (2014)8.3km
Nearest Clubs:
Local clubs are the best way to get access to collecting localities
ClubLocationDistance
British Micromount Society, Devon and Cornwall Branch MeetingsLiskeard, Cornwall48km
Mindat Locality ID:
1111
Long-form identifier:
mindat:1:2:1111:5
GUID (UUID V4):
0


An iron mine on the Perran Iron Lode, originally worked opencast from two pits, a small western one and a large eastern one, about 70 yards apart. The eastern pit was 200 ft long, up to 80 ft wide and 100 ft deep. The oxidation of the siderite stopped at about 50 ft below surface and the workings at the bottom of the pit, which were in two large chambers, exposed massive grey siderite ore with scattered specks of sulphides.

An adit, wide enough to take normal-gauge railway wagons, was driven from 300 yards NNE of the eastern pit to open up the lode at greater depth. It passed 40 ft below the pit, to which it was connected by an ore-pass winze. A mine plan shows that drives were carried out from the tunnel below the pit 100 ft east and 150 ft west at two levels. Several crosscuts from each of the drives cross the position of the lode, but there is no stoping shown, indicating, that the rich orebodies which were certainly expected were not found.

There also are two old shafts NE and NNE of the pit, which are believed to be on the southern extension of Trebisken Lode. According to the plans, the shafts were connected to the adit, but it is not known whether the lode was exploited here. However, some lead and silver ores were sold when the mine was operated as Mount and Trebisken Mine.

Mount Mine was reopened in 1916 without success and during the Second World war (1939-1945), was investigated as a source of iron ore. An inclined shaft was sunk just east of the eastern pit and followed the footwall of the lode. Drives were carried out on both sides to prove the lode, but the values were rather patchy and wartime production remained small. The grid reference marks the site of Engine Shaft. The chimney of the engine house still stands in the field south of the eastern pit, which is now backfilled and overgrown.

From 1858 to 1877, the mine produced 45,826 tons of brown iron ore, 5.5 tons of lead ore, 10 tons of silver ore and some native silver under the name Trebisken and Mount. As Mount Mine, it produced 4,262 tons of iron ore in 1871, 1873, 1880, 1905 and 1907, and 11 tons of lead ore in 1854. As Perran Iron Mine, it returned 164 tons of brown iron ore in 1866 and, for the New Perran Iron Company, another 2,728 tons of iron ore and 49 tons of manganese ore were recorded in 1878.

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


21 valid minerals.

Detailed Mineral List:

Acanthite
Formula: Ag2S
Aragonite
Formula: CaCO3
Arsenopyrite
Formula: FeAsS
Calcite
Formula: CaCO3
Cuprite
Formula: Cu2O
Fluorapatite
Formula: Ca5(PO4)3F
Fluorapatite var. Carbonate-rich Fluorapatite
Formula: Ca5(PO4,CO3)3(F,O)
Galena
Formula: PbS
Goethite
Formula: Fe3+O(OH)
Hematite
Formula: Fe2O3
Lepidocrocite
Formula: Fe3+O(OH)
'Limonite'
Linarite
Formula: PbCu(SO4)(OH)2
Malachite
Formula: Cu2(CO3)(OH)2
Native Silver
Formula: Ag
Pharmacosiderite
Formula: KFe3+4(AsO4)3(OH)4 · 6-7H2O
Pyrargyrite
Formula: Ag3SbS3
Pyrite
Formula: FeS2
Pyromorphite
Formula: Pb5(PO4)3Cl
Quartz
Formula: SiO2
Scorodite
Formula: Fe3+AsO4 · 2H2O
Siderite
Formula: FeCO3
Sphalerite
Formula: ZnS

Gallery:

List of minerals arranged by Strunz 10th Edition classification

Group 1 - Elements
Native Silver1.AA.05Ag
Group 2 - Sulphides and Sulfosalts
Acanthite2.BA.35Ag2S
Sphalerite2.CB.05aZnS
Galena2.CD.10PbS
Pyrite2.EB.05aFeS2
Arsenopyrite2.EB.20FeAsS
Pyrargyrite2.GA.05Ag3SbS3
Group 4 - Oxides and Hydroxides
Goethite4.00.Fe3+O(OH)
Cuprite4.AA.10Cu2O
Hematite4.CB.05Fe2O3
Quartz4.DA.05SiO2
Lepidocrocite4.FE.15Fe3+O(OH)
Group 5 - Nitrates and Carbonates
Calcite5.AB.05CaCO3
Siderite5.AB.05FeCO3
Aragonite5.AB.15CaCO3
Malachite5.BA.10Cu2(CO3)(OH)2
Group 7 - Sulphates, Chromates, Molybdates and Tungstates
Linarite7.BC.65PbCu(SO4)(OH)2
Group 8 - Phosphates, Arsenates and Vanadates
Fluorapatite
var. Carbonate-rich Fluorapatite
8.BN.05Ca5(PO4,CO3)3(F,O)
8.BN.05Ca5(PO4)3F
Pyromorphite8.BN.05Pb5(PO4)3Cl
Scorodite8.CD.10Fe3+AsO4 · 2H2O
Pharmacosiderite8.DK.10KFe3+4(AsO4)3(OH)4 · 6-7H2O
Unclassified
'Limonite'-

List of minerals for each chemical element

HHydrogen
H GoethiteFe3+O(OH)
H LepidocrociteFe3+O(OH)
H LinaritePbCu(SO4)(OH)2
H MalachiteCu2(CO3)(OH)2
H PharmacosideriteKFe43+(AsO4)3(OH)4 · 6-7H2O
H ScoroditeFe3+AsO4 · 2H2O
CCarbon
C AragoniteCaCO3
C CalciteCaCO3
C Fluorapatite var. Carbonate-rich FluorapatiteCa5(PO4,CO3)3(F,O)
C MalachiteCu2(CO3)(OH)2
C SideriteFeCO3
OOxygen
O AragoniteCaCO3
O CalciteCaCO3
O Fluorapatite var. Carbonate-rich FluorapatiteCa5(PO4,CO3)3(F,O)
O CupriteCu2O
O FluorapatiteCa5(PO4)3F
O GoethiteFe3+O(OH)
O HematiteFe2O3
O LepidocrociteFe3+O(OH)
O LinaritePbCu(SO4)(OH)2
O MalachiteCu2(CO3)(OH)2
O PharmacosideriteKFe43+(AsO4)3(OH)4 · 6-7H2O
O PyromorphitePb5(PO4)3Cl
O QuartzSiO2
O ScoroditeFe3+AsO4 · 2H2O
O SideriteFeCO3
FFluorine
F Fluorapatite var. Carbonate-rich FluorapatiteCa5(PO4,CO3)3(F,O)
F FluorapatiteCa5(PO4)3F
SiSilicon
Si QuartzSiO2
PPhosphorus
P Fluorapatite var. Carbonate-rich FluorapatiteCa5(PO4,CO3)3(F,O)
P FluorapatiteCa5(PO4)3F
P PyromorphitePb5(PO4)3Cl
SSulfur
S AcanthiteAg2S
S ArsenopyriteFeAsS
S GalenaPbS
S LinaritePbCu(SO4)(OH)2
S PyrargyriteAg3SbS3
S PyriteFeS2
S SphaleriteZnS
ClChlorine
Cl PyromorphitePb5(PO4)3Cl
KPotassium
K PharmacosideriteKFe43+(AsO4)3(OH)4 · 6-7H2O
CaCalcium
Ca AragoniteCaCO3
Ca CalciteCaCO3
Ca Fluorapatite var. Carbonate-rich FluorapatiteCa5(PO4,CO3)3(F,O)
Ca FluorapatiteCa5(PO4)3F
FeIron
Fe ArsenopyriteFeAsS
Fe GoethiteFe3+O(OH)
Fe HematiteFe2O3
Fe LepidocrociteFe3+O(OH)
Fe PharmacosideriteKFe43+(AsO4)3(OH)4 · 6-7H2O
Fe PyriteFeS2
Fe ScoroditeFe3+AsO4 · 2H2O
Fe SideriteFeCO3
CuCopper
Cu CupriteCu2O
Cu LinaritePbCu(SO4)(OH)2
Cu MalachiteCu2(CO3)(OH)2
ZnZinc
Zn SphaleriteZnS
AsArsenic
As ArsenopyriteFeAsS
As PharmacosideriteKFe43+(AsO4)3(OH)4 · 6-7H2O
As ScoroditeFe3+AsO4 · 2H2O
AgSilver
Ag AcanthiteAg2S
Ag PyrargyriteAg3SbS3
Ag Native SilverAg
SbAntimony
Sb PyrargyriteAg3SbS3
PbLead
Pb GalenaPbS
Pb LinaritePbCu(SO4)(OH)2
Pb PyromorphitePb5(PO4)3Cl

Geochronology

Geologic TimeRocks, Minerals and Events
Phanerozoic
 Paleozoic
  Permian
   Guadalupian
ⓘ Major polymetallic mineralization~270 MaCornwall, England, UK
   Cisuralian
ⓘ Porphyry dikes intruded (latest age)~275 MaCornwall, England, UK
ⓘ Greisenization (latest age)~280 MaCornwall, England, UK
ⓘ Porphyry dikes intruded (earliest age)~280 MaCornwall, England, UK
ⓘ Formation of metallized pegmatites~285 MaCornwall, England, UK
ⓘ Greisenization (earliest age)~285 MaCornwall, England, UK
ⓘ Emplacement of major plutons~295 MaCornwall, England, UK

Other Regions, Features and Areas containing this locality

British and Irish IslesGroup of Islands
Eurasian PlateTectonic Plate
EuropeContinent
UK

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