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Zu Be­ginn des Jahres 1973 ent­deckte der Sch­muck­stein­sch­leifer Philip Hobein aus Kirsch­weil­er bei Idar Ober­stein hin­ter dem Res­tau­rant 'Laach­er Müh­le' einige blaue Körn­er kris­tal­lin­er En­ste­hung. Diese Körn­er weck­ten sein In­teresse, zu­mal er schon einige Er­fahrung im Sch­liff ver­schie­den­er, nicht als S ... moreZu Beginn des Jahres 1973 entdeckte der Schmucksteinschleifer Philip Hobein aus Kirschweiler bei Idar Oberstein hinter dem Restaurant 'Laacher Mühle' einige blaue Körner kristalliner Enstehung. Diese Körner weckten sein Interesse, zumal er schon einige Erfahrung im Schliff verschiedener, nicht als Schmucksteine bekannter Mineralien hatte. In seiner Werkstatt versah er diese xenomorphen Körner mit einem Fazettschliff. Das Resultat war die Geburt eines neuen Schmucksteins von saphirblauer Farbe und sehr schöner Transparenz - dem Mineral Hauyn, benannt nach dem französischen Kristallographen R. J. Haüy (1743 bis 1822) (Brunn-Neergard, 1807).

Die umfassenden Daten zu diesem seltenen kubischen Gerüstsilikat der Sodalithgruppe nach der Systematik von STRUNZ, kann dem Mineralien-Steckbrief aus dem Benutzerlexikon unter Hauyn ... ein Beitrag von Ralf Dahlheuser
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Die Geschichte der Pforte-Flu­o­rite ist eines der span­nen­den Kapi­tel der Min­er­alo­gie. Diese Flu­o­rite haben mich fasziniert, seit ich in den frühen 1970er Jahren in einem Sch­muck- und Min­er­alien­la­den in München die er­sten grü­nen "South Afri­can emer­alds", die sog. "grü­nen südafrikanischen Smaragde" von ... moreDie Geschichte der Pforte-Fluorite ist eines der spannenden Kapitel der Mineralogie. Diese Fluorite haben mich fasziniert, seit ich in den frühen 1970er Jahren in einem Schmuck- und Mineralienladen in München die ersten grünen "South African emeralds", die sog. "grünen südafrikanischen Smaragde" von der Pforte in Form eines prächtigen Colliers in der Hand hielt, ohne zu ahnen, dass diese „Smaragde“ in Wirklichkeit grüne geschliffene Fluorite waren. Eine erste Stufe mit dunkelvioletten Fluoritoktaedern mit der Fundortangabe "Pforte" habe ich 1973 bei Walter Khan in Wedesbüttel erstanden, diese aber in Unwissenheit ihrer geschichtlichen Bedeutung irgendwann in Spanien vertauscht. Die schönsten Pforte-Fluorite allerdings konnte ich während der Vorbereitungsarbeit zu einer großen mineralogischen Namibia-Reise im Jahr 1998 in einer bedeutenden deutschen Namibia-Sammlung bestaunen. Zu dieser Zeit gehörte Fluorit zu meinen bevorzugten Mineralien. Ich kannte nicht nur unzählige weltweite Vorkommen, sondern hatte in vielen Jahren selbst eine umfassende Fluoritsammlung aufgebaut. Solche Fluorite jedoch, wie ich sie in dieser Sammlung sah, waren mir bisher in dieser Schönheit nicht untergekommen, leider gab es zu der Herkunft dieser Kristalle so gut wie keine Informationen und – wie leicht zu erraten - leider auch keine Stufen auf dem Markt. - Ein Bericht von Peter Seroka
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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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Be­cause of its form, col­or and trans­paren­cy, Beryl has al­ways fas­ci­nat­ed peo­ple. Emer­alds, aqua­marines, he­lio­dors and mor­ganites were and are used for the man­u­fac­ture of jew­el­ry be­cause of their beau­ty. The com­mon beryl is the main source of the me­t­al beryl­li­um; 80 % of beryl­li­um ore is mined in the ... moreBecause of its form, color and transparency, Beryl has always fascinated people. Emeralds, aquamarines, heliodors and morganites were and are used for the manufacture of jewelry because of their beauty. The common beryl is the main source of the metal beryllium; 80 % of beryllium ore is mined in the United States. The largest known crystal reached a length of 18 m.

This lavishly researched and very comprehensive portrait by the author Peter Seroka relates to history, name origin, causes of color, occurrences , paragenesis and the use of this mineral and its varieties. Subchapters with numerous photographs and drawings deal with the extraordinary beauty of the mineral. Each chapter itself is a separate portrait of a distinctive variety and its characteristics, occurrences, use and history.

(Full text in German)
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