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 10531 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 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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Zirko­nia, auch bekan­nt als Zir­co­nia oder Fianit, bezeich­net kün­stlich hergestellte Einkris­talle aus Zir­co­ni­um(IV)-oxid (chemische Formel: ZrO2), die in ihr­er ku­bischen Hochtem­per­a­tur­phase sta­bil­isiert sind. Es han­delt sich dabei um kein natür­lich vork­om­men­des Min­er­al. Im Jahr 1937 ent­deck­ten die Min ... moreZirkonia, auch bekannt als Zirconia oder Fianit, bezeichnet künstlich hergestellte Einkristalle aus Zirconium(IV)-oxid (chemische Formel: ZrO2), die in ihrer kubischen Hochtemperaturphase stabilisiert sind. Es handelt sich dabei um kein natürlich vorkommendes Mineral. Im Jahr 1937 entdeckten die Mineralogen M. V. Stackelberg and K. Chudoba das natürliche Vorkommen von kubischem Zirkoniumoxid in Form mikroskopisch kleiner Körnchen in metamiktem Zirkon. Sie interpretierten diese Körnchen als Beiprodukt des Metamiktisierungsprozesse. Beide Mineralogen würdigten das Mineral nicht mit einem eigenen Namen, da ihnen dies damals unwesentlich erschien. Mittels Röntgendiffraktomie konnten sie die Existens des natürlichen Ebenbildes des künstlichen Produktes nachweisen.

Ein Beitrag von Klaus Schäfer
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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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At the site Palioka­mariza Mine No. 18 (Pla­ka, Lavri­on, At­ti­ca, Greece), yel­low, nee­dle-like ura­ni­um min­er­als were ob­served grow­ing on gyp­sum. Un­der UV light (365 nm), two dist­inct flu­o­res­cence col­ors ap­peared: short­er, thin­n­er nee­dles glowed bright green, while longer, well-formed nee­dles glowed yel ... moreAt the site Paliokamariza Mine No. 18 (Plaka, Lavrion, Attica, Greece), yellow, needle-like uranium minerals were observed growing on gypsum. Under UV light (365 nm), two distinct fluorescence colors appeared: shorter, thinner needles glowed bright green, while longer, well-formed needles glowed yellow...

This study illustrates a notable epitaxial relationship between Boltwoodite (green luminescent) and Sklodowskite (yellow luminescent) on a gypsum matrix, discovered at Lavrion, Greece. Luminescent differentiation under UV, combined with spectroscopic and EDX analyses, revealed the intergrowth of the two uranium silicates—providing insight into their growth and crystallization behavior
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Edelsteintage Konstanz
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