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  5. <title>UTas ePrints - Facies Architecture of the Volcanic Sedimentary Complex of the Iberian Pyrite Belt, Portugal and Spain</title>
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  13. <meta content="Rosa, Carlos J.P." name="eprints.creators_name" />
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  15. <meta content="2007-10-22 01:37:47" name="eprints.datestamp" />
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  18. <meta content="Facies Architecture of the Volcanic Sedimentary Complex of the Iberian Pyrite Belt, Portugal and Spain" name="eprints.title" />
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  22. <meta content="The Iberian Pyrite Belt is the richest massive sulfide province in the world. The massive sulfide
  23. ore deposits occur in a felsic volcanic and sedimentary succession (VS Complex) of late
  24. Famennian (Upper Devonian) to late Visean (Middle Carboniferous) age. Volcanic facies
  25. analysis has been carried out on three areas in Portugal, including the Neves Corvo mine, and
  26. five sections in Spain. In all sections studied, the depositional setting during accumulation of the
  27. VS Complex was submarine and below wave base.
  28. The principal felsic volcanic facies are: (1) coherent rhyolite and dacite, associated with
  29. monomictic breccia; (2) fiamme-rich breccia (with variable amounts of dense volcanic and
  30. sedimentary clasts), fiamme-rich sandstone and fiamme-bearing mudstone; and (3) crystal-rich
  31. sandstone and mudstone. Mafic units are minor, dominated by coherent facies and have
  32. uncertain mode of emplacement (intrusions or lavas). Fiamme typically have lenticular shape
  33. and quartz- or quartz- and feldspar-phyric texture, and are interpreted to be altered and
  34. compacted pumice clasts. The volcanic facies are typically interleaved with, and regionally less
  35. voluminous than, the non-volcanic facies, which are dominated by mudstone.
  36. The felsic volcanic facies are interpreted to be the products of numerous, relatively small
  37. intrabasinal volcanic centres that generated abundant lavas, domes and pyroclastic units. Some
  38. volcanic centres are dominated by lavas, whereas others have similar proportions of lavas and
  39. pyroclastic units. The domes and lavas are more voluminous but less laterally extensive than the
  40. pyroclastic units. A sediment-matrix breccia typically occurs at the top contact of the felsic
  41. lavas with sedimentary units. This sediment-matrix breccia formed from the infiltration of fine
  42. sediment into interclast spaces in previously formed hyaloclastite, and could be misinterpreted
  43. as peperite. Felsic intrusions are less voluminous than lavas, and were emplaced as cryptodomes
  44. and partly extrusive cryptodomes, late in the evolution of the VS Complex. The architecture of
  45. the different study areas reflects differences in the eruption style, emplacement processes and
  46. proximity to source. Parts of the succession interpreted to be proximal are dominated by thick
  47. lavas/domes and intrusions, and coarse pyroclastic deposits. Medial parts comprise
  48. resedimented autoclastic facies derived from the lavas and domes, and relatively thin pyroclastic
  49. units. Distal parts comprise relatively thinly bedded crystal-rich sandstone and siliceous
  50. mudstone. Regional correlations in the VS Complex are impossible, as none of the volcanic
  51. facies are regionally extensive and each of the volcanic centres has a unique internal
  52. architecture.
  53. At Neves Corvo mine, the massive sulfide ore deposits are close to one of the felsic volcanic
  54. centre(s), occurring immediately above the rhyolitic lavas/domes.
  55. IV" name="eprints.abstract" />
  56. <meta content="2007-01" name="eprints.date" />
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  59. <meta content="University of Tasmania" name="eprints.institution" />
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  62. <meta content="Rosa, Carlos J.P. (2007) Facies Architecture of the Volcanic Sedimentary Complex of the Iberian Pyrite Belt, Portugal and Spain. PhD thesis, University of Tasmania." name="eprints.citation" />
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  75. <meta content="Facies Architecture of the Volcanic Sedimentary Complex of the Iberian Pyrite Belt, Portugal and Spain" name="DC.title" />
  76. <meta content="Rosa, Carlos J.P." name="DC.creator" />
  77. <meta content="260103 Vulcanology" name="DC.subject" />
  78. <meta content="The Iberian Pyrite Belt is the richest massive sulfide province in the world. The massive sulfide
  79. ore deposits occur in a felsic volcanic and sedimentary succession (VS Complex) of late
  80. Famennian (Upper Devonian) to late Visean (Middle Carboniferous) age. Volcanic facies
  81. analysis has been carried out on three areas in Portugal, including the Neves Corvo mine, and
  82. five sections in Spain. In all sections studied, the depositional setting during accumulation of the
  83. VS Complex was submarine and below wave base.
  84. The principal felsic volcanic facies are: (1) coherent rhyolite and dacite, associated with
  85. monomictic breccia; (2) fiamme-rich breccia (with variable amounts of dense volcanic and
  86. sedimentary clasts), fiamme-rich sandstone and fiamme-bearing mudstone; and (3) crystal-rich
  87. sandstone and mudstone. Mafic units are minor, dominated by coherent facies and have
  88. uncertain mode of emplacement (intrusions or lavas). Fiamme typically have lenticular shape
  89. and quartz- or quartz- and feldspar-phyric texture, and are interpreted to be altered and
  90. compacted pumice clasts. The volcanic facies are typically interleaved with, and regionally less
  91. voluminous than, the non-volcanic facies, which are dominated by mudstone.
  92. The felsic volcanic facies are interpreted to be the products of numerous, relatively small
  93. intrabasinal volcanic centres that generated abundant lavas, domes and pyroclastic units. Some
  94. volcanic centres are dominated by lavas, whereas others have similar proportions of lavas and
  95. pyroclastic units. The domes and lavas are more voluminous but less laterally extensive than the
  96. pyroclastic units. A sediment-matrix breccia typically occurs at the top contact of the felsic
  97. lavas with sedimentary units. This sediment-matrix breccia formed from the infiltration of fine
  98. sediment into interclast spaces in previously formed hyaloclastite, and could be misinterpreted
  99. as peperite. Felsic intrusions are less voluminous than lavas, and were emplaced as cryptodomes
  100. and partly extrusive cryptodomes, late in the evolution of the VS Complex. The architecture of
  101. the different study areas reflects differences in the eruption style, emplacement processes and
  102. proximity to source. Parts of the succession interpreted to be proximal are dominated by thick
  103. lavas/domes and intrusions, and coarse pyroclastic deposits. Medial parts comprise
  104. resedimented autoclastic facies derived from the lavas and domes, and relatively thin pyroclastic
  105. units. Distal parts comprise relatively thinly bedded crystal-rich sandstone and siliceous
  106. mudstone. Regional correlations in the VS Complex are impossible, as none of the volcanic
  107. facies are regionally extensive and each of the volcanic centres has a unique internal
  108. architecture.
  109. At Neves Corvo mine, the massive sulfide ore deposits are close to one of the felsic volcanic
  110. centre(s), occurring immediately above the rhyolitic lavas/domes.
  111. IV" name="DC.description" />
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  242. <h1 class="ep_tm_pagetitle">Facies Architecture of the Volcanic Sedimentary Complex of the Iberian Pyrite Belt, Portugal and Spain</h1>
  243. <p style="margin-bottom: 1em" class="not_ep_block"><span class="person_name">Rosa, Carlos J.P.</span> (2007) <xhtml:em>Facies Architecture of the Volcanic Sedimentary Complex of the Iberian Pyrite Belt, Portugal and Spain.</xhtml:em> PhD thesis, University of Tasmania.</p><p style="margin-bottom: 1em" class="not_ep_block"></p><table style="margin-bottom: 1em" class="not_ep_block"><tr><td valign="top" style="text-align:center"><a onmouseover="EPJS_ShowPreview( event, 'doc_preview_2866' );" href="http://eprints.utas.edu.au/2276/1/01front.pdf" onmouseout="EPJS_HidePreview( event, 'doc_preview_2866' );"><img alt="[img]" src="http://eprints.utas.edu.au/style/images/fileicons/application_pdf.png" class="ep_doc_icon" border="0" /></a><div class="ep_preview" id="doc_preview_2866"><table><tr><td><img alt="" src="http://eprints.utas.edu.au/2276/thumbnails/1/preview.png" class="ep_preview_image" border="0" /><div class="ep_preview_title">Preview</div></td></tr></table></div></td><td valign="top"><a href="http://eprints.utas.edu.au/2276/1/01front.pdf"><span class="ep_document_citation">PDF (Front Matter)</span></a> - 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Requires a PDF viewer<br />3159Kb</td></tr></table><div class="not_ep_block"><h2>Abstract</h2><p style="padding-bottom: 16px; text-align: left; margin: 1em auto 0em auto">The Iberian Pyrite Belt is the richest massive sulfide province in the world. The massive sulfide&#13;
  244. ore deposits occur in a felsic volcanic and sedimentary succession (VS Complex) of late&#13;
  245. Famennian (Upper Devonian) to late Visean (Middle Carboniferous) age. Volcanic facies&#13;
  246. analysis has been carried out on three areas in Portugal, including the Neves Corvo mine, and&#13;
  247. five sections in Spain. In all sections studied, the depositional setting during accumulation of the&#13;
  248. VS Complex was submarine and below wave base.&#13;
  249. The principal felsic volcanic facies are: (1) coherent rhyolite and dacite, associated with&#13;
  250. monomictic breccia; (2) fiamme-rich breccia (with variable amounts of dense volcanic and&#13;
  251. sedimentary clasts), fiamme-rich sandstone and fiamme-bearing mudstone; and (3) crystal-rich&#13;
  252. sandstone and mudstone. Mafic units are minor, dominated by coherent facies and have&#13;
  253. uncertain mode of emplacement (intrusions or lavas). Fiamme typically have lenticular shape&#13;
  254. and quartz- or quartz- and feldspar-phyric texture, and are interpreted to be altered and&#13;
  255. compacted pumice clasts. The volcanic facies are typically interleaved with, and regionally less&#13;
  256. voluminous than, the non-volcanic facies, which are dominated by mudstone.&#13;
  257. The felsic volcanic facies are interpreted to be the products of numerous, relatively small&#13;
  258. intrabasinal volcanic centres that generated abundant lavas, domes and pyroclastic units. Some&#13;
  259. volcanic centres are dominated by lavas, whereas others have similar proportions of lavas and&#13;
  260. pyroclastic units. The domes and lavas are more voluminous but less laterally extensive than the&#13;
  261. pyroclastic units. A sediment-matrix breccia typically occurs at the top contact of the felsic&#13;
  262. lavas with sedimentary units. This sediment-matrix breccia formed from the infiltration of fine&#13;
  263. sediment into interclast spaces in previously formed hyaloclastite, and could be misinterpreted&#13;
  264. as peperite. Felsic intrusions are less voluminous than lavas, and were emplaced as cryptodomes&#13;
  265. and partly extrusive cryptodomes, late in the evolution of the VS Complex. The architecture of&#13;
  266. the different study areas reflects differences in the eruption style, emplacement processes and&#13;
  267. proximity to source. Parts of the succession interpreted to be proximal are dominated by thick&#13;
  268. lavas/domes and intrusions, and coarse pyroclastic deposits. Medial parts comprise&#13;
  269. resedimented autoclastic facies derived from the lavas and domes, and relatively thin pyroclastic&#13;
  270. units. Distal parts comprise relatively thinly bedded crystal-rich sandstone and siliceous&#13;
  271. mudstone. Regional correlations in the VS Complex are impossible, as none of the volcanic&#13;
  272. facies are regionally extensive and each of the volcanic centres has a unique internal&#13;
  273. architecture.&#13;
  274. At Neves Corvo mine, the massive sulfide ore deposits are close to one of the felsic volcanic&#13;
  275. centre(s), occurring immediately above the rhyolitic lavas/domes.&#13;
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