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.

To complete our information constantly, we need your support. With us, everyone can and should participate. Currently Mineralienatlas is used and expanded by 10586 members. Every month hundreds of thousands of visitors use our website as an information source.
 
Geolitho Foundation non-profit GmbH
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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... Das seit 1958 blei- und zink­erzfördernde Berg­w­erk Daop­ing ist un­ter Samm­lern durch her­vor­ra­gende, wenn nicht so­gar weltbeste Py­ro­mor­phit­stufen bekan­nt ge­wor­den. Die am Haiyang-Shan-Berg gele­gene Mine wurde 2003 mit der nahgele­ge­nen Yang­shuo Mine un­terirdisch ver­bun­den. Während die Daop­ing Mine i ... more... Das seit 1958 blei- und zinkerzfördernde Bergwerk Daoping ist unter Sammlern durch hervorragende, wenn nicht sogar weltbeste Pyromorphitstufen bekannt geworden. Die am Haiyang-Shan-Berg gelegene Mine wurde 2003 mit der nahgelegenen Yangshuo Mine unterirdisch verbunden. Während die Daoping Mine im Bezirk Gongcheng liegt, ist die Yangshuo-Grube Teil des Yangshuo-Bezirkes. Beide Gruben bauen denselben Erzkörper ab. Es ist daher nicht verwunderlich das gute Pyromorphitfunde in beiden Gruben gemacht wurden. Die bisher besten Pyromorphite ... Ein Artikel von René Gervers mit Beitrag von Roland Noack
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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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Die er­sten konkreten Beschrei­bun­gen der mag­netischen Ei­gen­schaften des Mag­netit stam­men vom griechischen Philo­sophen und Wis­sen­schaftler Thales von Mile­tus aus dem 6. Jh. v. Chr. 300 Jahre später waren diese Ei­gen­schaften auch im al­ten Chi­na bekan­nt. Er­ste chi­ne­sische Kom­passe sind im 1. Jh. ver­wend ... moreDie ersten konkreten Beschreibungen der magnetischen Eigenschaften des Magnetit stammen vom griechischen Philosophen und Wissenschaftler Thales von Miletus aus dem 6. Jh. v. Chr. 300 Jahre später waren diese Eigenschaften auch im alten China bekannt. Erste chinesische Kompasse sind im 1. Jh. verwendet worden. Chinesische Mediziner konnten mittels Magnetit winzige Eisenfragmente aus dem Auge entfernen.

Wenngleich die Eigenschaft des Magnetismus schon den Griechen (Stein Magnetis des Theophrast von Eresos: "Über die Steine)"), Römern (Stein Magnes von Plinius dem Älteren; Gaius Plinius Secundus: "Historia Naturalis") und den Chinesen bekannt waren, dauerte es bis zum Jahr 1088, dass der chinesische Enzyklopädist Shen Kua in seinem in diesem Jahr erschienenen "Buch Meng Ch'i Pi T'an" den ersten klaren Bericht über einen aufgehängten Magnetkompass schrieb. Etwa um 1180 erschien die Beschreibung einer Kompassnadel als Navigationsmittel für die Seefahrt durch den englischen Wissenschaftler und Lehrer Alexander Neckam. Im Jahr 1269 veröffentlichte Petrus Peregrinus ... Ein Mineralien-Portrait erstellt von Peter Seroka
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Min­er­al por­trait gar­netThis portrait mainly deals with the 6 classic garnets, their amazing history, the world’s best known classic and modern localities and deposits and their use as a gems or abrasives. It also deals with the common belief related to the non-existence of blue garnets and its refutation proven by new finds. A separate chapter deals with synthetic garnets. But it also deals with the mix up of definitions, groupings and old and unnecessary terms, which have finally been terminated or brought to a common denominator.

In 2012 the IMA (CNMNC) has defined garnets as members of the Garnet Supergroup, which include all minerals isostructural with garnet regardless of what elements occupy the four atomic sites; i.e. the supergroup includes several chemical classes . Those minerals are closely related to each other and may form a series with each other. Some garnets form intermediary minerals between each member, and may even be intergrown within a single crystal.

With the publication of the new nomenclature of the garnet supergroup, the term “garnet group” does not have its meaning anymore and the intermediate working term “Garnet superstructural group” has been replaced by “Garnet Supergroup”.
There are 32 approved species and 5 “candidate” species waiting on approval. The 32 species are subdivided by their Z-charge into 29 species, which belong to 5 groups and to 3 single representative species.
One of those 5 groups is the “Garnet group”, consisting of the 6 former (classic) garnets Pyrope, Grossular, Spessartine, Almandine, Uvarovite and Andradite plus 8 rarer garnets , as Menzerite-(Y), Eringaite, Goldmanite, Momoiite, Knorringite, Calderite, Majorite and Morimotoite.
This por­trait main­ly deals with the 6 clas­sic gar­nets, their amaz­ing his­to­ry, the world’s best known clas­sic and mod­ern lo­cal­i­ties and de­posits and their use as a gems or abra­sives. It al­so deals with the com­mon be­lief re­lat­ed to the non-ex­is­tence of blue gar­nets and its refu­ta­tion proven by new ... moreThis portrait mainly deals with the 6 classic garnets, their amazing history, the world’s best known classic and modern localities and deposits and their use as a gems or abrasives. It also deals with the common belief related to the non-existence of blue garnets and its refutation proven by new finds. A separate chapter deals with synthetic garnets. But it also deals with the mix up of definitions, groupings and old and unnecessary terms, which have finally been terminated or brought to a common denominator.

In 2012 the IMA (CNMNC) has defined garnets as members of the Garnet Supergroup, which include all minerals isostructural with garnet regardless of what elements occupy the four atomic sites; i.e. the supergroup includes several chemical classes . Those minerals are closely related to each other and may form a series with each other. Some garnets form intermediary minerals between each member, and may even be intergrown within a single crystal.

With the publication of the new nomenclature of the garnet supergroup, the term “garnet group” does not have its meaning anymore and the intermediate working term “Garnet superstructural group” has been replaced by “Garnet Supergroup”.
There are 32 approved species and 5 “candidate” species waiting on approval. The 32 species are subdivided by their Z-charge into 29 species, which belong to 5 groups and to 3 single representative species.
One of those 5 groups is the “Garnet group”, consisting of the 6 former (classic) garnets Pyrope, Grossular, Spessartine, Almandine, Uvarovite and Andradite plus 8 rarer garnets , as Menzerite-(Y), Eringaite, Goldmanite, Momoiite, Knorringite, Calderite, Majorite and Morimotoite.
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Cop­per was one of the first me­t­als ev­er ex­tract­ed and used by hu­mans, and it has made vi­tal con­tri­bu­tions to sus­tain­ing and im­prov­ing so­ci­e­ty since the dawn of civ­i­l­iza­tion.
The me­t­al and its al­loys have been used for thou­sands of years. Cop­per was first used in coins and or­na­ments start­ing about ... moreCopper was one of the first metals ever extracted and used by humans, and it has made vital contributions to sustaining and improving society since the dawn of civilization.
The metal and its alloys have been used for thousands of years. Copper was first used in coins and ornaments starting about 8000 B.C., and at about 5500 B.C., copper tools helped civilization emerge from the Stone Age. In the Roman era, copper was principally mined on Cyprus, hence the origin of the name of the metal as сyprium (metal of Cyprus), later shortened to сuprum.

The discovery that copper alloyed with tin produces bronze marked the beginning of the Bronze Age at about 3000 B.C.
Copper is easily stretched, molded, and shaped; is resistant to corrosion; and conducts heat and electricity efficiently. As a result, copper was important to early humans and continues to be a material of choice for a variety of domestic, industrial, and high-technology applications today.

Its compounds are commonly encountered as copper(II) salts, which often impart blue or green colors to minerals such as azurite and malachite and have been widely used historically as pigments. ... a contribution by Peter Seroka
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Im al­tehr­würdi­gen Ge­bäude, 1515 als Ko­rn­speich­er er­richtet, befin­d­et sich das Min­er­al­o­gische Mu­se­um der Stadt Mar­burg. Die nach der Klas­si­fizierung von Strunz aufge­baut­en Samm­lung wird in zahl­reichen Vit­ri­nen auf drei Stock­w­erken präsen­tiert. Die ge­samte Lehr­samm­lung um­fasst ca. 45.000 Min­er­alien u ... moreIm altehrwürdigen Gebäude, 1515 als Kornspeicher errichtet, befindet sich das Mineralogische Museum der Stadt Marburg. Die nach der Klassifizierung von Strunz aufgebauten Sammlung wird in zahlreichen Vitrinen auf drei Stockwerken präsentiert. Die gesamte Lehrsammlung umfasst ca. 45.000 Mineralien und ca. 55.000 Gesteinsproben, von denen etwa 2.500 in den Vitrinen zu sehen sind.

Besonders hervorzuheben ist im 3. Stock die Ausstellung "Rio Grande do Sul - Brasilien", die dem Mineralogischen Museum und der Philipps-Universität von dem Sammlerehepaar Balzer 2005 gestiftet wurde. In zwei Großraumvitrinen werden Amethyste, Quarze, Calcite, Achate und Edelsteine aus Brasilien präsentiert. Die ästhetisch sehr ansprechende Ausstellung gehört zu den besten ihrer Art in Europa.

Nach Vereinbarung können auch Schulklassen durch die Ausstellungsräume geführt werden. Besonders hervorzuheben sind auch die regelmäßig stattfindenden Sonderausstellungen, die jedes Jahr mit einem anderen Thema von Dezember bis April zu sehen sind.
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