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.
 
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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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Der Grand Cany­on ist eine stark ab­fal­l­ende Sch­lucht die sich auf ein­er Länge von 450 km im Bun­des­taat Ari­zon der Vereinigten Staat­en von Ameri­ka er­streckt. Der Grand Cany­on ist ein­er der best er­forscht­en Auf­sch­lüsse, den­noch sind die Ent­ste­hung und die dafür benötigten Zeiträume nicht vol­lends gek­lä ... moreDer Grand Canyon ist eine stark abfallende Schlucht die sich auf einer Länge von 450 km im Bundestaat Arizon der Vereinigten Staaten von Amerika erstreckt. Der Grand Canyon ist einer der best erforschten Aufschlüsse, dennoch sind die Entstehung und die dafür benötigten Zeiträume nicht vollends geklärt. In der Zweitspann von 65 bis 20 Millionen Jahren (Ma) wurde das Kaibab Plateau an dessem südwestlichem Rand der Grand Canyon liegt auf bis zu 3000m über den Meeresspeigel angehoben. Nach einer Phase der Erosion in der nahezu vollständig die im Mesozoikum abgelagerten Sedimente weg erodierten begann der Ur-Colorade sich durch die verbliebenen Schichten zu graben. Nach heutigem Stand benötigte der Colorado wenige Millionen Jahre um den heutigen Grand Canyon freizulegen. Die Erosion in die Tiefe erfolgte dabei in den letzten 2 Ma.
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... Erst knapp 50 Jahre später lie­gen wied­er Nachricht­en vor, und zwar Abrech­nun­gen aus den Jahren 1782 bis 1791. Die da­ma­li­gen Pächter waren die Krett­nich­er Ein­woh­n­er Ni­co­laus Wie­sen, Mat­thias Fin­k­ler und Jo­hann Bathis, Er­ster­er hatte in den 10 Jahren 346 Rtl., der zweite 95 Rtl. und der let­zte 146 ... more... Erst knapp 50 Jahre später liegen wieder Nachrichten vor, und zwar Abrechnungen aus den Jahren 1782 bis 1791. Die damaligen Pächter waren die Krettnicher Einwohner Nicolaus Wiesen, Matthias Finkler und Johann Bathis, Ersterer hatte in den 10 Jahren 346 Rtl., der zweite 95 Rtl. und der letzte 146 Rtl. eingenommen. Hauptabnehmer waren Johannes Scherer in Scheuern, Pastor Anhäuser in Lockweiler, sowie Johannes Bördeler (Birtel) in Krettnich, die offenbar das abgenommene Erz auf eigene Rechnung weitervertrieben. Als Bergmann war damals Paul Jungblut ... Ein Bericht von Berthold Stein
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Der Oden­wald ge­hört zu den Varis­ci­den – ein Ge­birge welch­es bei der Kol­li­sion der Paläo-Konti­nente Gond­wa­na und Eu­rameri­ka im mittleren Kar­bon, vor et­wa 360-290 Mio. Jahren ent­s­tand. Im Zuge der variszischen Oro­ge­nese bilde­ten sich neben dem Oden­wald un­ter an­derem das Rheinische Schie­fer­ge­birge, Har ... moreDer Odenwald gehört zu den Varisciden – ein Gebirge welches bei der Kollision der Paläo-Kontinente Gondwana und Euramerika im mittleren Karbon, vor etwa 360-290 Mio. Jahren entstand. Im Zuge der variszischen Orogenese bildeten sich neben dem Odenwald unter anderem das Rheinische Schiefergebirge, Harz, Schwarzwald, Erzgebirge und der Spessart. Diese Aufbrüche des Grundgebirges sind Teil der sogenannten Mitteldeutschen Kristallinschwelle – eine Reihe von mehr oder weniger isolierten Kristallingebieten - die von der Haardt im Pfälzerwald über den kristallinen Odenwald und Spessart, das Ruhlaer Kristallin und Kyffhäuser bis nach Osteuropa verlaufen.
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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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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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