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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“garnet group” does not have its meaning anymore and the intermediate working term “Garnet superstructural group” has been replaced by “Garnet Supergroup”.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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Ara­g­onite is a cal­ci­um car­bo­nate, chem­i­cal­ly iden­ti­cal with calcite. The min­er­al calcite, how­ev­er, dif­fers from Ara­g­onite due to its in­ter­nal crys­tal struc­ture. While the crys­tal sys­tem of calcite is trig­o­n­al, the sys­tem of ara­g­onite is rhom­bic. Dense mass­es of small ara­g­onite crys­tals are dif­fi­cul ... moreAragonite is a calcium carbonate, chemically identical with calcite. The mineral calcite, however, differs from Aragonite due to its internal crystal structure. While the crystal system of calcite is trigonal, the system of aragonite is rhombic. Dense masses of small aragonite crystals are difficult to distinguish from calcite, but they are larger, they show a distinct habit.

A lot of chapters in this portrait will give you much more details about this interesting mineral. Written and investigated by Peter Seroka. (Article in german)
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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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„Den heuti­gen Be­fun­den nach bildete da­mals ein einziger steil ein­fal­l­en­der „Erz­fal­l“ die Quelle für den kurzzeiti­gen märchen­haften Reich­tum. Dem Ausstrich des Ganges fol­gen über Tage einige 4–8 m tiefe Pin­gen, die ver­broch­ene Schürf­schächtchen darstellen und bis auf die Soh­le des St. Ge­org Stol­lens ... more„Den heutigen Befunden nach bildete damals ein einziger steil einfallender „Erzfall“ die Quelle für den kurzzeitigen märchenhaften Reichtum. Dem Ausstrich des Ganges folgen über Tage einige 4–8 m tiefe Pingen, die verbrochene Schürfschächtchen darstellen und bis auf die Sohle des St. Georg Stollens reichten. Das erst in diesem Niveau aufsetzende eigentliche Erzmittel wies eine streichende Erstreckung von kaum mehr als 50 m auf und reichte bis zur Sohle des St. Jacobsglücker Stollens hinab. Sowohl nach Nordwesten als auch nach Südosten ließen sich nirgendwo Fortsetzungen der Vererzung lokalisieren. Weitere edle Erze fanden sich auf verschiedenen flachen Nebentrümern im Hangenden des Hauptganges, oberhalb des St. Johannes Stollen im Bereich des sogenannten Backofens
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... Schon die Tau­risk­er und insbe­son­dere die Pi­son­ti­er, Be­woh­n­er des ehe­ma­li­gen Mit­tel-Norikum, wussten um die reich­ern Gol­dadern und ver­legten sich auf die Aus­beu­tung dersel­ben so wie auf die Gold­wäscherei in den Flüssen und Bächen. Die Ar­muth des Lan­des machte den Berg­bau zu ein­er ihr­er Haupter­w­er ... more... Schon die Taurisker und insbesondere die Pisontier, Bewohner des ehemaligen Mittel-Norikum, wussten um die reichern Goldadern und verlegten sich auf die Ausbeutung derselben so wie auf die Goldwäscherei in den Flüssen und Bächen. Die Armuth des Landes machte den Bergbau zu einer ihrer Haupterwerbsquellen. Bei dem Umstande, als viele der Erzgänge edel zu Tage ausbeissen, auch oft blos nur aus einer lehmigen goldhaltigen Masse (Besteg) bestanden, die mit den primitivsten Werkzeugen gewonnen werden konnte, war die Bearbeitung leicht. Sowohl in Kärnten als in Salzburg kann man mehrere in Schrammarbeit getriebene Stollen sehen, die mit Sicherheit entweder aus jener Zeitperiode oder der darauffolgenden unter den Römern herrühren. Viele aber liegen jetzt unter dem ... Ein Beitrag von Michael Kommer
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