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Old Gunnislake Mine, Clitters United Mines, Gunnislake, Calstock, Cornwall, England, UKi
Regional Level Types
Old Gunnislake MineMine (Built Over)
Clitters United MinesGroup of Mines
GunnislakeVillage
CalstockCivil Parish
CornwallCounty
EnglandConstituent Country
UKCountry

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Latitude & Longitude (WGS84):
50° 31' 29'' North , 4° 12' 53'' West
Latitude & Longitude (decimal):
UK National Grid Reference:
SX430719
Type:
Mine (Built Over) - last checked 2024
Köppen climate type:
Nearest Settlements:
PlacePopulationDistance
Gunnislake4,044 (2017)0.1km
Calstock790 (2017)3.3km
Bere Alston2,164 (2018)5.1km
Lamerton859 (2018)5.5km
Tavistock12,280 (2018)5.7km
Nearest Clubs:
Local clubs are the best way to get access to collecting localities
ClubLocationDistance
British Micromount Society, Devon and Cornwall Branch MeetingsLiskeard, Cornwall19km
Mindat Locality ID:
882
Long-form identifier:
mindat:1:2:882:9
GUID (UUID V4):
0
Other/historical names associated with this locality:
Gunnislake Mine


This site was right in the middle of Gunnislake village and famed for the diversity of its minerals. The site was cleared and built over in the late 1970s and the early 1980s.

Peter Trebilcock reports on the removal of the mine dumps at https://www.mindat.org/mesg-272373.html:

"It was my father's firm that had the job of removing the tips in the village and used much of the waste to level the local football field, possibly now one of the hottest pitches in the UK. He used to collect them [i.e. mineral specimens] by the bucketful and keep them in his machine ready for the visiting mineral collectors/dealers."


An adit level is driven from the river bank, initially in the killas heading slightly north of due west following the copper lode, evidence of which is clear in the site photos. Copper mineralisation apparently stops well short of the granite-killas boundary (photo) and the drive further into the granite is also barren. About 20 yards (ca. 18 m) from the boundary, the adit turns sharply to almost due north.

The granite-killas boundary marks the re-appearance of the main lode, which has been exploited to the west. This initially follows the contact, but then drives into the granite. Along the drive of the original adit, a second mineral vein appears about 10 yards (ca. 9 m) into the granite, but this has only been exploited for about 20 yards (ca. 18 m) to the west.

On the main drive to the west the mineralisation quickly ends and there is then another patch of barren ground before the lode reappears, heaved slightly to the north. Here the lode is very rich in copper (photo) as well as dark purple fluorite with lenses of arsenopyrite. Wolframite appears here as blades up to 2 inches (ca. 5 cm) long as pegmatites in quartz.

The only stoping on this adit level is at the far end of the drive, where the lode is most extensive. There is then a short brick tunnel, blocked at the far end, which gave access to one of the 2 shafts which reached this level. At this point there is also a flooded winze to a lower level.

The adit is quite radioactive, counts rising to about 100/second within 50 yards (ca. 46 m) of the portal and remaining so throughout the works, except in the barren ground on the main drive to the west, where counts in excess of 200/second prevail. However, no localisations of radioactive sources were detected throughout the workings.

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


35 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:

Arsenopyrite
Formula: FeAsS
Autunite
Formula: Ca(UO2)2(PO4)2 · 10-12H2O
Azurite
Formula: Cu3(CO3)2(OH)2
Cassiterite
Formula: SnO2
Chalcanthite
Formula: CuSO4 · 5H2O
Chalcocite
Formula: Cu2S
Chalcophyllite
Formula: Cu18Al2(AsO4)4(SO4)3(OH)24 · 36H2O
Chalcopyrite
Formula: CuFeS2
Chenevixite
Formula: Cu2Fe3+2(AsO4)2(OH)4
Chrysocolla
Formula: Cu2-xAlx(H2-xSi2O5)(OH)4 · nH2O, x < 1
Connellite
Formula: Cu19(SO4)(OH)32Cl4 · 3H2O
Cuprite
Formula: Cu2O
References:
Cuprite var. Chalcotrichite
Formula: Cu2O
Cuprotungstite
Formula: Cu2(WO4)(OH)2
Erythrite
Formula: Co3(AsO4)2 · 8H2O
Fluorapatite
Formula: Ca5(PO4)3F
Fluorapatite var. Carbonate-rich Fluorapatite
Formula: Ca5(PO4,CO3)3(F,O)
Fluorite
Formula: CaF2
Libethenite
Formula: Cu2(PO4)(OH)
Liroconite
Formula: Cu2Al(AsO4)(OH)4 · 4H2O
Malachite
Formula: Cu2(CO3)(OH)2
Meta-autunite
Formula: Ca(UO2)2(PO4)2 · 6H2O
Metatorbernite
Formula: Cu(UO2)2(PO4)2 · 8H2O
Description: At this locality, meta-torbernite is of primary occurrence (i.e. not formed by dehydration of torbernite).
Mixite
Formula: BiCu6(AsO4)3(OH)6 · 3H2O
Native Copper
Formula: Cu
Olivenite
Formula: Cu2(AsO4)(OH)
Pharmacosiderite
Formula: KFe3+4(AsO4)3(OH)4 · 6-7H2O
Pseudomalachite
Formula: Cu5(PO4)2(OH)4
Quartz
Formula: SiO2
Reichenbachite
Formula: Cu5(PO4)2(OH)4
Scheelite
Formula: Ca(WO4)
Scorodite
Formula: Fe3+AsO4 · 2H2O
Tenorite
Formula: CuO
Torbernite
Formula: Cu(UO2)2(PO4)2 · 12H2O
Tyrolite
Formula: Ca2Cu9(AsO4)4(CO3)(OH)8 · 11H2O
Uraninite
Formula: UO2
'Wolframite Group'
Zippeite
Formula: K3(UO2)4(SO4)2O3(OH) · 3H2O

Gallery:

List of minerals arranged by Strunz 10th Edition classification

Group 1 - Elements
Native Copper1.AA.05Cu
Group 2 - Sulphides and Sulfosalts
Chalcocite2.BA.05Cu2S
Chalcopyrite2.CB.10aCuFeS2
Arsenopyrite2.EB.20FeAsS
Group 3 - Halides
Fluorite3.AB.25CaF2
Connellite3.DA.25Cu19(SO4)(OH)32Cl4 · 3H2O
Group 4 - Oxides and Hydroxides
Cuprite
var. Chalcotrichite
4.AA.10Cu2O
4.AA.10Cu2O
Tenorite4.AB.10CuO
Quartz4.DA.05SiO2
Cassiterite4.DB.05SnO2
'Wolframite Group'4.DB.30 va
Uraninite4.DL.05UO2
Group 5 - Nitrates and Carbonates
Azurite5.BA.05Cu3(CO3)2(OH)2
Malachite5.BA.10Cu2(CO3)(OH)2
Group 7 - Sulphates, Chromates, Molybdates and Tungstates
Chalcanthite7.CB.20CuSO4 · 5H2O
Zippeite7.EC.05K3(UO2)4(SO4)2O3(OH) · 3H2O
Scheelite7.GA.05Ca(WO4)
Cuprotungstite7.GB.15Cu2(WO4)(OH)2
Group 8 - Phosphates, Arsenates and Vanadates
Libethenite8.BB.30Cu2(PO4)(OH)
Olivenite8.BB.30Cu2(AsO4)(OH)
Pseudomalachite8.BD.05Cu5(PO4)2(OH)4
Reichenbachite8.BD.05Cu5(PO4)2(OH)4
Fluorapatite
var. Carbonate-rich Fluorapatite
8.BN.05Ca5(PO4,CO3)3(F,O)
8.BN.05Ca5(PO4)3F
Scorodite8.CD.10Fe3+AsO4 · 2H2O
Erythrite8.CE.40Co3(AsO4)2 · 8H2O
Chenevixite8.DD.05Cu2Fe3+2(AsO4)2(OH)4
Liroconite8.DF.20Cu2Al(AsO4)(OH)4 · 4H2O
Chalcophyllite8.DF.30Cu18Al2(AsO4)4(SO4)3(OH)24 · 36H2O
Pharmacosiderite8.DK.10KFe3+4(AsO4)3(OH)4 · 6-7H2O
Mixite8.DL.15BiCu6(AsO4)3(OH)6 · 3H2O
Tyrolite8.DM.10Ca2Cu9(AsO4)4(CO3)(OH)8 · 11H2O
Autunite8.EB.05Ca(UO2)2(PO4)2 · 10-12H2O
Torbernite8.EB.05Cu(UO2)2(PO4)2 · 12H2O
Meta-autunite8.EB.10Ca(UO2)2(PO4)2 · 6H2O
Metatorbernite8.EB.10Cu(UO2)2(PO4)2 · 8H2O
Group 9 - Silicates
Chrysocolla9.ED.20Cu2-xAlx(H2-xSi2O5)(OH)4 · nH2O, x < 1

List of minerals for each chemical element

HHydrogen
H AutuniteCa(UO2)2(PO4)2 · 10-12H2O
H AzuriteCu3(CO3)2(OH)2
H ChalcanthiteCuSO4 · 5H2O
H ChalcophylliteCu18Al2(AsO4)4(SO4)3(OH)24 · 36H2O
H ChenevixiteCu2Fe23+(AsO4)2(OH)4
H ChrysocollaCu2-xAlx(H2-xSi2O5)(OH)4 · nH2O, x < 1
H ConnelliteCu19(SO4)(OH)32Cl4 · 3H2O
H CuprotungstiteCu2(WO4)(OH)2
H ErythriteCo3(AsO4)2 · 8H2O
H LibetheniteCu2(PO4)(OH)
H LiroconiteCu2Al(AsO4)(OH)4 · 4H2O
H MalachiteCu2(CO3)(OH)2
H Meta-autuniteCa(UO2)2(PO4)2 · 6H2O
H MetatorberniteCu(UO2)2(PO4)2 · 8H2O
H MixiteBiCu6(AsO4)3(OH)6 · 3H2O
H OliveniteCu2(AsO4)(OH)
H PharmacosideriteKFe43+(AsO4)3(OH)4 · 6-7H2O
H PseudomalachiteCu5(PO4)2(OH)4
H ReichenbachiteCu5(PO4)2(OH)4
H ScoroditeFe3+AsO4 · 2H2O
H TorberniteCu(UO2)2(PO4)2 · 12H2O
H TyroliteCa2Cu9(AsO4)4(CO3)(OH)8 · 11H2O
H ZippeiteK3(UO2)4(SO4)2O3(OH) · 3H2O
CCarbon
C AzuriteCu3(CO3)2(OH)2
C Fluorapatite var. Carbonate-rich FluorapatiteCa5(PO4,CO3)3(F,O)
C MalachiteCu2(CO3)(OH)2
C TyroliteCa2Cu9(AsO4)4(CO3)(OH)8 · 11H2O
OOxygen
O AutuniteCa(UO2)2(PO4)2 · 10-12H2O
O AzuriteCu3(CO3)2(OH)2
O Fluorapatite var. Carbonate-rich FluorapatiteCa5(PO4,CO3)3(F,O)
O CassiteriteSnO2
O ChalcanthiteCuSO4 · 5H2O
O Cuprite var. ChalcotrichiteCu2O
O ChalcophylliteCu18Al2(AsO4)4(SO4)3(OH)24 · 36H2O
O ChenevixiteCu2Fe23+(AsO4)2(OH)4
O ChrysocollaCu2-xAlx(H2-xSi2O5)(OH)4 · nH2O, x < 1
O ConnelliteCu19(SO4)(OH)32Cl4 · 3H2O
O CupriteCu2O
O CuprotungstiteCu2(WO4)(OH)2
O ErythriteCo3(AsO4)2 · 8H2O
O FluorapatiteCa5(PO4)3F
O LibetheniteCu2(PO4)(OH)
O LiroconiteCu2Al(AsO4)(OH)4 · 4H2O
O MalachiteCu2(CO3)(OH)2
O Meta-autuniteCa(UO2)2(PO4)2 · 6H2O
O MetatorberniteCu(UO2)2(PO4)2 · 8H2O
O MixiteBiCu6(AsO4)3(OH)6 · 3H2O
O OliveniteCu2(AsO4)(OH)
O PharmacosideriteKFe43+(AsO4)3(OH)4 · 6-7H2O
O PseudomalachiteCu5(PO4)2(OH)4
O QuartzSiO2
O ReichenbachiteCu5(PO4)2(OH)4
O ScheeliteCa(WO4)
O ScoroditeFe3+AsO4 · 2H2O
O TenoriteCuO
O TorberniteCu(UO2)2(PO4)2 · 12H2O
O TyroliteCa2Cu9(AsO4)4(CO3)(OH)8 · 11H2O
O UraniniteUO2
O ZippeiteK3(UO2)4(SO4)2O3(OH) · 3H2O
FFluorine
F Fluorapatite var. Carbonate-rich FluorapatiteCa5(PO4,CO3)3(F,O)
F FluorapatiteCa5(PO4)3F
F FluoriteCaF2
AlAluminium
Al ChalcophylliteCu18Al2(AsO4)4(SO4)3(OH)24 · 36H2O
Al ChrysocollaCu2-xAlx(H2-xSi2O5)(OH)4 · nH2O, x < 1
Al LiroconiteCu2Al(AsO4)(OH)4 · 4H2O
SiSilicon
Si ChrysocollaCu2-xAlx(H2-xSi2O5)(OH)4 · nH2O, x < 1
Si QuartzSiO2
PPhosphorus
P AutuniteCa(UO2)2(PO4)2 · 10-12H2O
P Fluorapatite var. Carbonate-rich FluorapatiteCa5(PO4,CO3)3(F,O)
P FluorapatiteCa5(PO4)3F
P LibetheniteCu2(PO4)(OH)
P Meta-autuniteCa(UO2)2(PO4)2 · 6H2O
P MetatorberniteCu(UO2)2(PO4)2 · 8H2O
P PseudomalachiteCu5(PO4)2(OH)4
P ReichenbachiteCu5(PO4)2(OH)4
P TorberniteCu(UO2)2(PO4)2 · 12H2O
SSulfur
S ArsenopyriteFeAsS
S ChalcopyriteCuFeS2
S ChalcanthiteCuSO4 · 5H2O
S ChalcociteCu2S
S ChalcophylliteCu18Al2(AsO4)4(SO4)3(OH)24 · 36H2O
S ConnelliteCu19(SO4)(OH)32Cl4 · 3H2O
S ZippeiteK3(UO2)4(SO4)2O3(OH) · 3H2O
ClChlorine
Cl ConnelliteCu19(SO4)(OH)32Cl4 · 3H2O
KPotassium
K PharmacosideriteKFe43+(AsO4)3(OH)4 · 6-7H2O
K ZippeiteK3(UO2)4(SO4)2O3(OH) · 3H2O
CaCalcium
Ca AutuniteCa(UO2)2(PO4)2 · 10-12H2O
Ca Fluorapatite var. Carbonate-rich FluorapatiteCa5(PO4,CO3)3(F,O)
Ca FluorapatiteCa5(PO4)3F
Ca FluoriteCaF2
Ca Meta-autuniteCa(UO2)2(PO4)2 · 6H2O
Ca ScheeliteCa(WO4)
Ca TyroliteCa2Cu9(AsO4)4(CO3)(OH)8 · 11H2O
FeIron
Fe ArsenopyriteFeAsS
Fe ChalcopyriteCuFeS2
Fe ChenevixiteCu2Fe23+(AsO4)2(OH)4
Fe PharmacosideriteKFe43+(AsO4)3(OH)4 · 6-7H2O
Fe ScoroditeFe3+AsO4 · 2H2O
CoCobalt
Co ErythriteCo3(AsO4)2 · 8H2O
CuCopper
Cu AzuriteCu3(CO3)2(OH)2
Cu ChalcopyriteCuFeS2
Cu ChalcanthiteCuSO4 · 5H2O
Cu ChalcociteCu2S
Cu Cuprite var. ChalcotrichiteCu2O
Cu ChalcophylliteCu18Al2(AsO4)4(SO4)3(OH)24 · 36H2O
Cu ChenevixiteCu2Fe23+(AsO4)2(OH)4
Cu ChrysocollaCu2-xAlx(H2-xSi2O5)(OH)4 · nH2O, x < 1
Cu ConnelliteCu19(SO4)(OH)32Cl4 · 3H2O
Cu CupriteCu2O
Cu CuprotungstiteCu2(WO4)(OH)2
Cu Native CopperCu
Cu LibetheniteCu2(PO4)(OH)
Cu LiroconiteCu2Al(AsO4)(OH)4 · 4H2O
Cu MalachiteCu2(CO3)(OH)2
Cu MetatorberniteCu(UO2)2(PO4)2 · 8H2O
Cu MixiteBiCu6(AsO4)3(OH)6 · 3H2O
Cu OliveniteCu2(AsO4)(OH)
Cu PseudomalachiteCu5(PO4)2(OH)4
Cu ReichenbachiteCu5(PO4)2(OH)4
Cu TenoriteCuO
Cu TorberniteCu(UO2)2(PO4)2 · 12H2O
Cu TyroliteCa2Cu9(AsO4)4(CO3)(OH)8 · 11H2O
AsArsenic
As ArsenopyriteFeAsS
As ChalcophylliteCu18Al2(AsO4)4(SO4)3(OH)24 · 36H2O
As ChenevixiteCu2Fe23+(AsO4)2(OH)4
As ErythriteCo3(AsO4)2 · 8H2O
As LiroconiteCu2Al(AsO4)(OH)4 · 4H2O
As MixiteBiCu6(AsO4)3(OH)6 · 3H2O
As OliveniteCu2(AsO4)(OH)
As PharmacosideriteKFe43+(AsO4)3(OH)4 · 6-7H2O
As ScoroditeFe3+AsO4 · 2H2O
As TyroliteCa2Cu9(AsO4)4(CO3)(OH)8 · 11H2O
SnTin
Sn CassiteriteSnO2
WTungsten
W CuprotungstiteCu2(WO4)(OH)2
W ScheeliteCa(WO4)
BiBismuth
Bi MixiteBiCu6(AsO4)3(OH)6 · 3H2O
UUranium
U AutuniteCa(UO2)2(PO4)2 · 10-12H2O
U Meta-autuniteCa(UO2)2(PO4)2 · 6H2O
U MetatorberniteCu(UO2)2(PO4)2 · 8H2O
U TorberniteCu(UO2)2(PO4)2 · 12H2O
U UraniniteUO2
U ZippeiteK3(UO2)4(SO4)2O3(OH) · 3H2O

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


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References

 
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