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Linhorka Hill, Staré, Třebívlice, Litoměřice District, Ústí nad Labem Region, Czech Republici
Regional Level Types
Linhorka HillHill
StaréVillage
TřebívliceMunicipality
Litoměřice DistrictDistrict
Ústí nad Labem RegionRegion
Czech RepublicCountry

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PhotosMapsSearch
Latitude & Longitude (WGS84):
50° 28' 47'' North , 13° 53' 26'' East
Latitude & Longitude (decimal):
Type:
Köppen climate type:
Nearest Settlements:
PlacePopulationDistance
Třebívlice775 (2018)2.5km
Podsedice644 (2018)4.2km
Děčany357 (2018)4.7km
Libčeves862 (2018)4.8km
Vlastislav147 (2018)5.0km
Mindat Locality ID:
188907
Long-form identifier:
mindat:1:2:188907:2
GUID (UUID V4):
0


Outcrops of a Tertiary basalt tuff breccia at Linorka hill. In the tuff-breccia, different types of xenoliths occur (sandstone, gneiss as well as serpentinised and garnetiferous peridotite, dunite, lherzolite, and eclogite).

Linhorka is an indistinct hill in the cadastral territory of the village of Staré, which is an administrative part of the village of Třebívlice in the district of Litoměřice in the Ústí nad Labem Region. Linhorka, which is located in the Protected Landscape Area of ​​the Czech Central Mountains, is a geological and mineralogical locality of national importance.

Linhorka is located in the western part of the Milešov Central Highlands, which is a geomorphological subunit of the Czech Central Highlands. At the eastern foot of Linhorka, the local meadows and overgrown orchards border the buildings of the village of Staré, on the western side, the village of Leská, which is also part of the village of Třebívlice, adjoins the hill. The forested steeper northeastern side of the hill is bordered by the Kuzovské brook, on some newer maps known as Žejdlík, but more commonly known (also in older documentation) as Granátka.

Linhorka is a remnant of a Tertiary maar-type volcano.

As in the case of some other hills in this area (e.g. Baba u Děčan, Granátový vrch or Bota u Měrunic, Svinky u Kozlů, Syslík and Malý vrch u Třtěna), it is a diatreme, i.e. a volcanic inlet path filled with basalt breccia, containing fragments of pyrope-bearing rocks — serpentinised peridotites — dragged by a volcanic explosion from the depths of the Earth.

The age of the garnets (pyropes) brought to the surface by the maar's explosion, about 10 million years ago, is at least 340 million years. The surroundings of the maar were formed by softer Mesolithic rocks, subject to faster weathering, which also accelerated the erosion and weathering of the maar, which was originally about 300 meters higher than the current highest point of Linhorka. Chimney breccia rocks, even with pyropes, which are very hard and resistant to weathering, were spread around and deposited in the Quaternary gravels along the southern peaks of the Bohemian Central Mountains.

While only pyropes occur in the parent rock on Linhorka, numerous other minerals can be found in the alluvium of the Kuzovské brook, such as moissanite, zircon, apatite, ilmenite, spinel, picotite, chromium diopside, disthene (kyanite) or sapphire, but always only small grains up to two millimetres. In the past, three small diamonds have also been found in the southern foothills of the Bohemian Central Mountains.

The first written mention of the mining of Czech garnets is contained in the book De natura fossilium by Georgius Argricola from 1546, but in reality, pyropes were obtained in Bohemia much earlier, as evidenced by their occurrence in older jewellery. In the oldest period, it was probably only a surface collection, mentions of digging and mining garnets appear only during the reign (1576–1612) of Emperor Rudolf II (18 July 1552 – 20 January 1612).

In the 19th century, the rock containing pyropes was mined in Linhorka by smaller shafts. In the 1960s, a geological survey was conducted on Linhorka to search for diamond-bearing structures similar to South African kimberlites. No kimberlites were found here, but detailed information was obtained about the local diatreme and its tubular shape.

At present, only the extraction of garnets from Pleistocene strips of pyrope-bearing gravels is considered promising and economically efficient. Based on surveys, it was possible to identify three deposits, referred to as Podsedický, Chrášťany and Třebivlice, while the primary source of pyropes in all these cases is Linhorka.

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


14 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:

'Amphibole Supergroup'
Formula: AB2C5((Si,Al,Ti)8O22)(OH,F,Cl,O)2
'Apatite'
Formula: Ca5(PO4)3(Cl/F/OH)
References:
Locality descriptionIdentification: Visual Identification
Aragonite
Formula: CaCO3
Corundum
Formula: Al2O3
Corundum var. Sapphire
Formula: Al2O3
References:
Locality descriptionIdentification: Visual Identification
Diopside
Formula: CaMgSi2O6
Diopside var. Chromium-bearing Diopside
Formula: Ca(Mg,Cr)Si2O6
Forsterite
Formula: Mg2SiO4
Hercynite
Formula: Fe2+Al2O4
References:
Locality descriptionIdentification: Visual Identification
Hercynite var. Picotite
Formula: (Fe,Mg)(Al,Cr)2O4
References:
Locality descriptionIdentification: Visual Identification
Ilmenite
Formula: Fe2+TiO3
Kyanite
Formula: Al2(SiO4)O
References:
Locality descriptionIdentification: Visual Identification
Moissanite
Formula: SiC
Omphacite
Formula: (NaaCabFe2+cMgd)(AleFe3+fFe2+gMgh)Si2O6
'Plagioclase'
Formula: (Na,Ca)[(Si,Al)AlSi2]O8
Pyrope
Formula: Mg3Al2(SiO4)3
Quartz
Formula: SiO2
Rutile
Formula: TiO2
'Serpentine Subgroup'
Formula: D3[Si2O5](OH)4
Spinel
Formula: MgAl2O4
References:
Locality descriptionIdentification: Visual Identification
Zircon
Formula: Zr(SiO4)

List of minerals arranged by Strunz 10th Edition classification

Group 1 - Elements
Moissanite1.DA.SiC
Group 4 - Oxides and Hydroxides
Hercynite4.BB.05Fe2+Al2O4
Spinel4.BB.05MgAl2O4
Hercynite
var. Picotite
4.BB.05(Fe,Mg)(Al,Cr)2O4
Corundum4.CB.05Al2O3
Ilmenite4.CB.05Fe2+TiO3
Corundum
var. Sapphire
4.CB.05Al2O3
Quartz4.DA.05SiO2
Rutile4.DB.05TiO2
Group 5 - Nitrates and Carbonates
Aragonite5.AB.15CaCO3
Group 9 - Silicates
Forsterite9.AC.05Mg2SiO4
Pyrope9.AD.25Mg3Al2(SiO4)3
Zircon9.AD.30Zr(SiO4)
Kyanite9.AF.15Al2(SiO4)O
Diopside
var. Chromium-bearing Diopside
9.DA.15Ca(Mg,Cr)Si2O6
9.DA.15CaMgSi2O6
Omphacite9.DA.20(NaaCabFe2+cMgd)(AleFe3+fFe2+gMgh)Si2O6
Unclassified
'Amphibole Supergroup'-AB2C5((Si,Al,Ti)8O22)(OH,F,Cl,O)2
'Plagioclase'-(Na,Ca)[(Si,Al)AlSi2]O8
'Serpentine Subgroup'-D3[Si2O5](OH)4
'Apatite'-Ca5(PO4)3(Cl/F/OH)

List of minerals for each chemical element

HHydrogen
H Amphibole SupergroupAB2C5((Si,Al,Ti)8O22)(OH,F,Cl,O)2
H Serpentine SubgroupD3[Si2O5](OH)4
H ApatiteCa5(PO4)3(Cl/F/OH)
CCarbon
C AragoniteCaCO3
C MoissaniteSiC
OOxygen
O Amphibole SupergroupAB2C5((Si,Al,Ti)8O22)(OH,F,Cl,O)2
O AragoniteCaCO3
O Diopside var. Chromium-bearing DiopsideCa(Mg,Cr)Si2O6
O CorundumAl2O3
O DiopsideCaMgSi2O6
O ForsteriteMg2SiO4
O HercyniteFe2+Al2O4
O IlmeniteFe2+TiO3
O KyaniteAl2(SiO4)O
O Omphacite(NaaCabFec2+Mgd)(AleFef3+Feg2+Mgh)Si2O6
O PyropeMg3Al2(SiO4)3
O QuartzSiO2
O RutileTiO2
O Corundum var. SapphireAl2O3
O SpinelMgAl2O4
O ZirconZr(SiO4)
O Plagioclase(Na,Ca)[(Si,Al)AlSi2]O8
O Hercynite var. Picotite(Fe,Mg)(Al,Cr)2O4
O Serpentine SubgroupD3[Si2O5](OH)4
O ApatiteCa5(PO4)3(Cl/F/OH)
FFluorine
F Amphibole SupergroupAB2C5((Si,Al,Ti)8O22)(OH,F,Cl,O)2
F ApatiteCa5(PO4)3(Cl/F/OH)
NaSodium
Na Omphacite(NaaCabFec2+Mgd)(AleFef3+Feg2+Mgh)Si2O6
Na Plagioclase(Na,Ca)[(Si,Al)AlSi2]O8
MgMagnesium
Mg Diopside var. Chromium-bearing DiopsideCa(Mg,Cr)Si2O6
Mg DiopsideCaMgSi2O6
Mg ForsteriteMg2SiO4
Mg Omphacite(NaaCabFec2+Mgd)(AleFef3+Feg2+Mgh)Si2O6
Mg PyropeMg3Al2(SiO4)3
Mg SpinelMgAl2O4
Mg Hercynite var. Picotite(Fe,Mg)(Al,Cr)2O4
AlAluminium
Al Amphibole SupergroupAB2C5((Si,Al,Ti)8O22)(OH,F,Cl,O)2
Al CorundumAl2O3
Al HercyniteFe2+Al2O4
Al KyaniteAl2(SiO4)O
Al Omphacite(NaaCabFec2+Mgd)(AleFef3+Feg2+Mgh)Si2O6
Al PyropeMg3Al2(SiO4)3
Al Corundum var. SapphireAl2O3
Al SpinelMgAl2O4
Al Plagioclase(Na,Ca)[(Si,Al)AlSi2]O8
Al Hercynite var. Picotite(Fe,Mg)(Al,Cr)2O4
SiSilicon
Si Amphibole SupergroupAB2C5((Si,Al,Ti)8O22)(OH,F,Cl,O)2
Si Diopside var. Chromium-bearing DiopsideCa(Mg,Cr)Si2O6
Si DiopsideCaMgSi2O6
Si ForsteriteMg2SiO4
Si KyaniteAl2(SiO4)O
Si MoissaniteSiC
Si Omphacite(NaaCabFec2+Mgd)(AleFef3+Feg2+Mgh)Si2O6
Si PyropeMg3Al2(SiO4)3
Si QuartzSiO2
Si ZirconZr(SiO4)
Si Plagioclase(Na,Ca)[(Si,Al)AlSi2]O8
Si Serpentine SubgroupD3[Si2O5](OH)4
PPhosphorus
P ApatiteCa5(PO4)3(Cl/F/OH)
ClChlorine
Cl Amphibole SupergroupAB2C5((Si,Al,Ti)8O22)(OH,F,Cl,O)2
Cl ApatiteCa5(PO4)3(Cl/F/OH)
CaCalcium
Ca AragoniteCaCO3
Ca Diopside var. Chromium-bearing DiopsideCa(Mg,Cr)Si2O6
Ca DiopsideCaMgSi2O6
Ca Omphacite(NaaCabFec2+Mgd)(AleFef3+Feg2+Mgh)Si2O6
Ca Plagioclase(Na,Ca)[(Si,Al)AlSi2]O8
Ca ApatiteCa5(PO4)3(Cl/F/OH)
TiTitanium
Ti Amphibole SupergroupAB2C5((Si,Al,Ti)8O22)(OH,F,Cl,O)2
Ti IlmeniteFe2+TiO3
Ti RutileTiO2
CrChromium
Cr Diopside var. Chromium-bearing DiopsideCa(Mg,Cr)Si2O6
Cr Hercynite var. Picotite(Fe,Mg)(Al,Cr)2O4
FeIron
Fe HercyniteFe2+Al2O4
Fe IlmeniteFe2+TiO3
Fe Omphacite(NaaCabFec2+Mgd)(AleFef3+Feg2+Mgh)Si2O6
Fe Hercynite var. Picotite(Fe,Mg)(Al,Cr)2O4
ZrZirconium
Zr ZirconZr(SiO4)

Other Databases

Wikipedia:https://cs.wikipedia.org/wiki/Linhorka
Wikidata ID:Q57313906

Other Regions, Features and Areas containing this locality

Czech Republic
Eurasian PlateTectonic Plate
EuropeContinent

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