Mineralienatlas (name for mineral atlas) is the platform for people interested in mineralogy, geology, palaeontology and mining since 2001. We operate a significant database for minerals, fossils, rocks and their localities. Mineralienatlas is not limited to a section. We bring together information and inform comprehensive.

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Geolitho Foundation non-profit GmbH is the non-profit supporter of the Mineral Atlas (Mineralienatlas), the Lithotheque, the Geolitho Collection Management and the Marketplace and Store by collectors for collectors. The Foundation promotes public education in the field of mineralogy, geology, paleontology and mining by operating, maintaining and further expanding earth science projects.
 
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Mineralien Kalender
 
... Among the most spec­tac­u­lar finds are the fan­tas­tic light blue calcites from the Ju­lia mine in Bil­bao, which en­rap­tured col­lec­tors' hearts to about the mid-1970s. At about the same time the zinc mine Las Man­fo­ras at Ali­va sup­plied ex­cel­lent, highl lus­trous Calcites, of­ten as­so­ci­at­ed with the worl ... more... Among the most spectacular finds are the fantastic light blue calcites from the Julia mine in Bilbao, which enraptured collectors' hearts to about the mid-1970s. At about the same time the zinc mine Las Manforas at Aliva supplied excellent, highl lustrous Calcites, often associated with the world's best red Sphalerites. ...

Amonsgt the forms of calcite the pinacoid is unique as it consists of exactly two parallel and oriented perpendicular to the c-axis surfaces. All other Calcite forms have either six or twelve areas. The pinacoid is an open form, with which it can not really include space; so the pinacoid must accompany other forms on the calcite crystal ...

A mineral portrait written by Peter Seroka with contributions from Ingo Löffler, Edgar Müller, Rainer Albert, William Waltermann (written in German)
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In der gängi­gen Lit­er­a­tur wird für das Felsen­meer ein Erz mit einem Hä­mati­tan­teil von bis zu 80 % angegeben, was hi­er seit dem 8. oder 9. Jahrhun­dert n. Chr. wirtschaftlich genutzt wurde, somit ist das Ge­bi­et derzeit der Äl­teste bekan­nte Ab­bau von Eisen­stein in West­falen. Die Ber­gleute be­di­en­ten sic ... moreIn der gängigen Literatur wird für das Felsenmeer ein Erz mit einem Hämatitanteil von bis zu 80 % angegeben, was hier seit dem 8. oder 9. Jahrhundert n. Chr. wirtschaftlich genutzt wurde, somit ist das Gebiet derzeit der Älteste bekannte Abbau von Eisenstein in Westfalen. Die Bergleute bedienten sich den natürlichen Hohlräumen, erweiterten sie und nutzten sie als Transportwege. Übertage zeugen auch heute noch Schachtöffnungen, Stollenmundlöcher und Halden vom damaligen Bergbaugeschehen.

Man kann sicherlich einen Gehalt von 70 Massenprozent Eisen als - fuer natuerlich vorkommende Erze unerreichbare - Obergrenze als gegeben ansehen. Dies beantwortet natuerlich nicht die Frage nach dem durchschnittlichen Eisengehalt des Hemeraner Erzes und ersetzt auch keine Analysen.

Man muss aber annehmen, dass die typische, ... Ein Beitrag von René Gervers und Wilhelm W.
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Syn­thetisch heißt so viel wie kün­stlich erzeugt. Es gibt so­wohl kün­stliche anor­ganische (z.B. syn­thetische Ru­bine) als auch or­ganische Kris­talle (z.B. Zuck­er als Kan­dis). Sie un­ter­schei­den sich von den natür­lichen Ver­wandten meist durch ihre höhere Rein­heit oder durch ihre gezielte Verun­reini­gung, D ... moreSynthetisch heißt so viel wie künstlich erzeugt. Es gibt sowohl künstliche anorganische (z.B. synthetische Rubine) als auch organische Kristalle (z.B. Zucker als Kandis). Sie unterscheiden sich von den natürlichen Verwandten meist durch ihre höhere Reinheit oder durch ihre gezielte Verunreinigung, Dotierung genannt. Synthetische Kristalle können durch relativ einfache Züchtung (z.B. Alaun-, Salz- oder Zuckerkristalle), unter Einwirkung extremer Hitze und Druck (z.B. Diamant), sowie als synthetische Einkristalle durch spezielle Technologien (z.B. Ziehen aus der Schmelze), aperiodische Einkristalle aus besonderen Legierungen etc. hergestellt werden. Ein Beitrag von Peter Seroka und Frank M.
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Ear­ly be­fore Py­ro­mor­phite got its name, Py­ro­mor­phite was known as Grün-, Braun-, Bunt­bleierz or Po­lychrom. Best spec­i­men are known from Freiberg, Clausthal, Dorn­bach and Pri­bram adorned the former Min­er­als cabi­nets of Jo­hann Richter, Karl Pabst von Ohain, Chris­tian Lud­wig Stieglitz, Car­o­line Louise ... moreEarly before Pyromorphite got its name, Pyromorphite was known as Grün-, Braun-, Buntbleierz or Polychrom. Best specimen are known from Freiberg, Clausthal, Dornbach and Pribram adorned the former Minerals cabinets of Johann Richter, Karl Pabst von Ohain, Christian Ludwig Stieglitz, Caroline Louise of Baden, Johann Wolfgang von Goethe, Abraham Gottlob Werner, Ignaz von Born, Sigmund Zois and other prominent collectors of the 18th to early 19th century. The first chemical analysis undertook M. H. Klaproth in 1784; the name Pyromorphit, from the Greek "pyro" for fire and "Morpho" for form, was of J.F.L. Hausmann 1813 awarded. The reason for this peculiar ... An article by Peter Seroka in german language
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In­di­ca­tor stoneA Scandinavian indicator stone is a glacial erratic composed of a characteristic rock type derived from a small known source area in Scandinavia. This term not only applies to igneous and metamorphic rocks but also to some sedimentary rocks. The Jotnian Sandstone and most of the Palaeozoic limestones, and the Old Red Sandstone are not included in the definition, although the presence of these and other rocks provide some evidence about the source area(s) of erratics and should certainly not be neglected in a stone count. In all cases we recommend including the whole assemblage of erratics/stones in such account. This makes it possible to use several methods of Interpretation. However, it should be pointed out that the practise used in the past, whereby each researcher had her/his own method of interpreting stone counts, has proved to be unsatisfactory. We demonstrate on the bases of over 2000 counts of indicator stones that we have carried out on assemblages mostly from Lower Saxony and Schleswig-Holstein, but also from other N.German states and neighbouring countries, that the TGZ method (LÜTTIG 1958) yields the most reliable results. In addition to this method, the sources of individual indicator stones may be plotted on a so-called circle map and can be integrated with possible source data and the relative frequencies of other erratics in the assemblage. Some rock types are more suitable as indicator stones then others. It is unwise to use clearly unsuitable rock types; this would considerably reduce the reliability of the method and lead to erroneous results.
A Scan­di­na­vian in­di­ca­tor stone is a gla­cial er­rat­ic com­posed of a char­ac­teris­tic rock type de­rived from a small known source area in Scan­di­navia. This term not on­ly ap­plies to ig­neous and me­ta­mor­ph­ic rocks but al­so to some sed­i­men­tary rocks. The Jot­nian Sand­s­tone and most of the Palaeo­zoic lime­s­tone ... moreA Scandinavian indicator stone is a glacial erratic composed of a characteristic rock type derived from a small known source area in Scandinavia. This term not only applies to igneous and metamorphic rocks but also to some sedimentary rocks. The Jotnian Sandstone and most of the Palaeozoic limestones, and the Old Red Sandstone are not included in the definition, although the presence of these and other rocks provide some evidence about the source area(s) of erratics and should certainly not be neglected in a stone count. In all cases we recommend including the whole assemblage of erratics/stones in such account. This makes it possible to use several methods of Interpretation. However, it should be pointed out that the practise used in the past, whereby each researcher had her/his own method of interpreting stone counts, has proved to be unsatisfactory. We demonstrate on the bases of over 2000 counts of indicator stones that we have carried out on assemblages mostly from Lower Saxony and Schleswig-Holstein, but also from other N.German states and neighbouring countries, that the TGZ method (LÜTTIG 1958) yields the most reliable results. In addition to this method, the sources of individual indicator stones may be plotted on a so-called circle map and can be integrated with possible source data and the relative frequencies of other erratics in the assemblage. Some rock types are more suitable as indicator stones then others. It is unwise to use clearly unsuitable rock types; this would considerably reduce the reliability of the method and lead to erroneous results.
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One of Mada­gas­car's ge­o­log­i­cal spe­cial­ties are the so-called Ts­in­gy: bizarre, at first sight hos­tile Karst land­s­capes, though form, due to the in­ac­ces­si­bil­i­ty, a refu­gial area for some spe­cies. The word Ts­in­gy means "walk­ing one tip-toes" or "where one can­not walk bare-foot" in Mala­gasy lan­guage, an ... moreOne of Madagascar's geological specialties are the so-called Tsingy: bizarre, at first sight hostile Karst landscapes, though form, due to the inaccessibility, a refugial area for some species. The word Tsingy means "walking one tip-toes" or "where one cannot walk bare-foot" in Malagasy language, an accurate description for the partially razor-sharp rock formations which can reach 20 m in height and with ends which can be as thin as pencils.

Best known and most impressive are the Tsingy of Bemaraha in the West of the island and the Tsingy of Ankarana in the North, both widespread Karst areas. In the North, as well, about 10 km south of the city of Antsiranana, one can find the Red Tsingy which have been washed out of the lateritic layer of earth.
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