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129 results for “The Pyrenees”
Climate of the Pyrenees
<p>CLIMPY (Characterisation of the evolution of climate and provision of information for adaptation in the Pyrenees) and <span>OPCC-ADAPYR (Capitalization, observation, transfer and appropriation of adaptation strategies to climate change in the Pyrenees) </span>are transboundary projects that aimed to perform a detailed analysis of recent trends in temperature, precipitation and snow cover in the Pyrenees, and their future projection. The three files provided contain daily precipitation and maximum and minimum temperature in a high-resolution gridded dataset of 1x1 km spatial resolution for the 1981-2020 period. Daily estimates for each grid point were computed from the raw data of 1,343 stations located in Spain, France and Andorra, provided by national and regional meteorological services: Servei Meteorològic de Catalunya (SMC), Andorran Meteorological Service, Agencia Estatal de Meteorología (AEMET), Météo-France (MF) using the daily precipitation and temperature reconstruction (quality control, reconstruction and gridding) from Serrano-Notivoli et al. (2017 and 2019) (https://doi.org/10.5194/essd-9-721-2017 and https://doi.org/10.5194/essd-11-1171-2019).</p>
Cloud-free snow cover area in the Pyrenees from MODIS
<p>This dataset contains the output of a gapfilling algorithm applied to MODIS snow products for the Pyrenees mountains as presented by Gascoin et al. (2015) and updated to the period 2000-Sep-01 to 2015-08-31 (15 hydrological years)</p> <ol> <li>Pirineos_gapfilled.tif: a multiband geotiff raster file in WGS84 UTM30N (EPSG:32630) at 500 m resolution with values 200 (snow) or 25 (no snow); <p>Corner Coordinates:<br> Upper Left ( 607750.000, 4789250.000) ( 1d40'21.72"W, 43d14'54.08"N)<br> Lower Left ( 607750.000, 4665250.000) ( 1d41'46.55"W, 42d 7'55.05"N)<br> Upper Right ( 973750.000, 4789250.000) ( 2d49'18.48"E, 43d 6'27.65"N)<br> Lower Right ( 973750.000, 4665250.000) ( 2d43' 8.76"E, 41d59'47.87"N)<br> Center ( 790750.000, 4727250.000) ( 0d32'47.24"E, 42d38'34.10"N)</p> </li> <li>Pirineos_gapfilled_dates.csv: a csv file indicating the date corresponding to each band (year, month, day)</li> <li>dem_Pirineos_UTM30_px500.tif: a geotiff raster of the elevation in WGS84 UTM30N (input of the gap-filling algorithm) with the same extent and resolution as 1.</li> <li>aspect_Pirineos_UTM30_px500.tif: a geotiff raster of the slope aspect in WGS84 UTM30N (input of the gap-filling algorithm) with the same extent and resolution as 1.</li> <li>Pirineos_gapfilled_probamap.png: a map of the mean annual number of snow days (snow cover duration) made from 1.</li> <li>Pirineos_gapfilled_scats.png: a plot of the timeseries of the daily snow cover area in km² over the Pyrenees mountain range from 2000-Sep-01 to 2015-08-31 made from 1.</li> </ol> <p><strong>Reference</strong></p> <p>Gascoin, S., Hagolle, O., Huc, M., Jarlan, L., Dejoux, J.-F., Szczypta, C., Marti, R., and Sánchez, R.: A snow cover climatology for the Pyrenees from MODIS snow products, Hydrol. Earth Syst. Sci., 19, 2337-2351, doi:10.5194/hess-19-2337-2015, 2015. http://doi.org/10.5194/hess-19-2337-2015</p> <p>Hall, D. K., V. V. Salomonson, and G. A. Riggs. 2006. MODIS/Terra Snow Cover Daily L3 Global 500m Grid, Version 5. Boulder, Colorado USA. NASA National Snow and Ice Data Center Distributed Active Archive Center. doi: http://dx.doi.org/10.5067/63NQASRDPDB0.</p> <p>Hall, D. K., V. V. Salomonson, and G. A. Riggs. 2006. MODIS/Aqua Snow Cover Daily L3 Global 500m Grid, Version 5. Boulder, Colorado USA. NASA National Snow and Ice Data Center Distributed Active Archive Center. doi: http://dx.doi.org/10.5067/ZFAEMQGSR4XD.</p>
Input geophysical and geological data for "Geologically constrained geometry inversion and null-space navigation to explore alternative geological scenarios: a case study in the Western Pyrenees"
<p>This is a companion dataset to the manuscript: <br><br>Geologically constrained geometry inversion and null-space navigation to explore alternative geological scenarios: a case study in the Western Pyrenees,</p><p>by: Jeremie Giraud , Mary Ford, Guillaume Caumon, Lachlan Grose, Vitaliy Ogarko, Roland Martin, and Paul Cupillard.<br><br>This dataset contains the input data used in the inversion, in terms of the gravity data and the geological data used in the inversion.<br><br>The *.txt file contains the gravity data as inverted in the manuscript: X, Y, Z, Value.<br>The *.csv file contains the geological data: location of the contacts and orientation data.</p>
Vulnerability tools - Spanish Pyrenees (Spain)
<p><span>The MOVING project has developed accessible <strong>tools </strong>designed to assess susceptibility and vulnerability within the region, ready to be used by both experts and the general audience. This document synthesises crucial information for theSpanish Pyrenees Region, particularly focusing on the Participatory Vulnerability Matrix and the Spatial Vulnerability Map. Furthermore, it includes <strong>supplementary maps and figures </strong>detailing various aspects such as the delineation of Reference Landscape, distribution of land systems, areas affected by wildfires, susceptibility to floods across different return periods, severity of forest disturbances, rainfall erosivity, and more.</span></p>
Giant Quartz Veins of the Pyrenees Database - Full Dataset (ESRI Shapefile)
<p>The <strong>GIVEPY Database</strong> (GIant quartz VEins of the PYrenees) is an interactive tool that incorporates information of the geometry, distribution, statistics, and host rock types of 741 giant quartz veins that crop out in the fold and thrust belt of the Pyrenees. The GIVEPY Database follows the <strong>FAIR </strong>principles of data management (Findable, Accessible, Interoperable and Reusable) and is available at: <a href="https://givepy.info/">https://givepy.info/</a>.</p> <p>The Full Dataset consists of a ESRI Shapefile where the giant quartz veins of the Pyrenees are mapped following polygon superposition rules. The <em>.shp</em> file can be opened in any Geographic Information System (GIS) environment. We recommend the use of the <strong>QGIS</strong> software since it is open access and continuously updated.</p> <p>The original CRS is:</p> <p>EPSG: 32631 / WGS1984 - UTM Z31N</p> <p>Do not hesitate to contact Eloi González-Esvertit if you have any questions: e.gonzalez-esvertit@ub.edu</p>
Giant Quartz Veins of the Pyrenees Database - Full Dataset (MSExcel Spreadsheet)
<p>The <strong>GIVEPY Database</strong> (GIant quartz VEins of the PYrenees) is an interactive tool that incorporates information of the geometry, distribution, statistics, and host rock types of 741 giant quartz veins that crop out in the fold and thrust belt of the Pyrenees. The GIVEPY Database follows the <strong>FAIR </strong>principles of data management (Findable, Accessible, Interoperable and Reusable) and is available at: <a href="https://givepy.info/">https://givepy.info/</a>.</p> <p>The Full Dataset consists of a ESRI Shapefile where the giant quartz veins of the Pyrenees are mapped following polygon superposition rules. The <em>.shp</em> file can be opened in any Geographic Information System (GIS) environment. We recommend the use of the <strong>QGIS</strong> software since it is open access and continuously updated.</p> <p>The original CRS is:</p> <p>EPSG: 32631 / WGS1984 - UTM Z31N</p> <p>Do not hesitate to contact Eloi González-Esvertit if you have any questions: e.gonzalez-esvertit@ub.edu</p>
FIGURE 10 in Spider crabs (Decapoda: Brachyura: Majoidea) from the upper Eocene of south Pyrenees (Huesca, Spain)
FIGURE 10. Cluster analyses of the Eocene Majidae fossil record analysed. A-B: Cluster analysis for the YpresianLutetian, based on the Jaccard Coefficients (A); and based on the Raup-Crick Coefficients (B). C-D: Cluster analysis for the Bartonian-Priabonian, based on the Jaccard Coefficients (C); and based on the Raup-Crick Coefficients (D).
FIGURE 5. Planobranchia elongata n in Spider crabs (Decapoda: Brachyura: Majoidea) from the upper Eocene of south Pyrenees (Huesca, Spain)
FIGURE 5. Planobranchia elongata n. sp. (A-B) and?Macrocheira sp. (C) from the Pamplona Marls Formation (upper Eocene, southern Pyrenees), A-B: Planobranchia elongata n. sp. Holotype MPZ 2023/4. A in dorsal view, B oblique frontal view. C:?Macrocheira sp. (MPZ 2023/5). Abbreviations: as: antorbital spine; is: intercalated spine; Ps: postorbital spine; Hs: hepatic spine.
FIGURE 7 in Spider crabs (Decapoda: Brachyura: Majoidea) from the upper Eocene of south Pyrenees (Huesca, Spain)
FIGURE 7. Female specimen of Spinirostrimaia echinata n. sp. (Holotype MPZ 2023/6) from the Pamplona Marls Formation (upper Eocene, southern Pyrenees) in A: dorsal; B: ventral; C: frontal, and D: lateral views.
FIGURE 2 in Spider crabs (Decapoda: Brachyura: Majoidea) from the upper Eocene of south Pyrenees (Huesca, Spain)
FIGURE 2. Anatomical diagram of two majiod (s. lat.) crabs showing terminology used in the present work. 1: frontal region; 2: orbital region; 3: protogastric region; 4: mesogastric region; 5: metagastric region; 6: urogastric region; 7: cardiac region; 8: intestinal region; 9: hepatic region; 10: epibranchial region; 11: mesobranqual region; 12: metabranchial region. CL: Carapace length; CW: carapace width; RL: pseudorostral length; PCL: postrostral carapace length.
Plate XIII, Figs E.10–E.15 – Type E (Pyrenees). E.10, head and pronotum of nymph; E.11, pronotum of nymph; E.12, tergites of nymph, dorsal view; E.13, marks on the femora of leg of nymph; E.14, basal section of cerci of nymph; E.15, paraprocts of nymph, ventral view. in Steps towards a revision of the Perla bipunctata Pictet, 1833 species complex (Plecoptera: Perlidae)
Plate XIII, Figs E.10–E.15 – Type E (Pyrenees). E.10, head and pronotum of nymph; E.11, pronotum of nymph; E.12, tergites of nymph, dorsal view; E.13, marks on the femora of leg of nymph; E.14, basal section of cerci of nymph; E.15, paraprocts of nymph, ventral view.
Plate XII, Figs E.1–E.9 – Type E (Pyrenees). E.1, adult ♂, head and pronotum; E.2, adult ♂, ocelli with large black rim; E.3, adult ♂, aedeagus (specimen from Spain); E.4, adult ♂, aedeagal tube (specimen from France); E.5, adult ♂, short setae on aedeagal tube; E.6, adult ♂, hemitergal lobes, dorsal view and mesal field with sensilla; E.7, adult ♂, hemitergal lobes, dorsal view and mesal field with sensilla; E.8, adult ♂, hemitergal lobes, lateral view; E.9, adult ♀, subgenital plate. in Steps towards a revision of the Perla bipunctata Pictet, 1833 species complex (Plecoptera: Perlidae)
Plate XII, Figs E.1–E.9 – Type E (Pyrenees). E.1, adult ♂, head and pronotum; E.2, adult ♂, ocelli with large black rim; E.3, adult ♂, aedeagus (specimen from Spain); E.4, adult ♂, aedeagal tube (specimen from France); E.5, adult ♂, short setae on aedeagal tube; E.6, adult ♂, hemitergal lobes, dorsal view and mesal field with sensilla; E.7, adult ♂, hemitergal lobes, dorsal view and mesal field with sensilla; E.8, adult ♂, hemitergal lobes, lateral view; E.9, adult ♀, subgenital plate.
Plate XIV, Figs F.1–F.2 – Type F (putative Perla bipunctata from the foothills of the French Pyrenees). F.1, illustrations of Despax (1942, his Figs 11, 12. Fig. 11 = adult ♂b with everted aedeagus, lateral view; Fig. 12 = adult ♂b, sclerotized apex of aedeagus); F.2, illustrations of Despax (1951, his Fig. 86, D, E, F. D = adult ♂b, mesal field with sensilla; E = adult ♂b, mesal field; F = adult ♂b, hemitergite). in Steps towards a revision of the Perla bipunctata Pictet, 1833 species complex (Plecoptera: Perlidae)
Plate XIV, Figs F.1–F.2 – Type F (putative Perla bipunctata from the foothills of the French Pyrenees). F.1, illustrations of Despax (1942, his Figs 11, 12. Fig. 11 = adult ♂b with everted aedeagus, lateral view; Fig. 12 = adult ♂b, sclerotized apex of aedeagus); F.2, illustrations of Despax (1951, his Fig. 86, D, E, F. D = adult ♂b, mesal field with sensilla; E = adult ♂b, mesal field; F = adult ♂b, hemitergite).
Fig. 3 in Theropod dinosaurs from the Upper Cretaceous of the South Pyrenees Basin of Spain
Fig. 3. Theropod dinosaurs teeth from upper Campanian–Upper Maastrichtian, Spain. A.?Pyroraptor olympius Allain and Taquet, 2000, DPM-MON-T1, Montrebei. B, C.?Dromaeosauridae indet. B. MPZ2004/6, Blasi 2B. C. DPM-FON6-T2, Fontllonga 6. D–L.?Richardoestesia sp., Laño. D. MCNA 14610. E. MCNA 14607. F. MCNA 14606. G. MCNA 14608. H. MCNA 14609. I. MCNA 14611. J. MCNA 14568. K. MCNA 14607. L. MCNA 14619. M–P. Coelurosauria indet. M. DPM-MON-T6, Montrebei. N. DPM-MON-T3, Montrebei. O. MPZ98/80, Montrebei. P. MPZ98/82, Blasi 2B. Q.?Paronychodon sp., MPZ98/76, Blasi 2B. All lateral views. Scale bars 1 mm.
Fig. 2 in Theropod dinosaurs from the Upper Cretaceous of the South Pyrenees Basin of Spain
Fig. 2. Theropod dinosaurs teeth from upper Campanian–lower Maastrichtian, Laño. A, D. Theropoda indet. Morphotype 2. A. MCNA 14522. D. MCNA 1853. B, C.?Pyroraptor olympius Allain and Taquet, 2000. B. MCNA 14623. C. MCNA 14624. E–H. Theropoda indet. Morphotype 1. E. MCNA 1852. F. MCNA 14520. G. MCNA 14521. H. MCNA 2205. All lateral views. Scale bars 5 mm.
Fig. 5 in Theropod dinosaurs from the Upper Cretaceous of the South Pyrenees Basin of Spain
Fig. 5. Bivariate analysis comparing height (in mm) against posterior denticles per millimeter,?Dromaeosauridae,?Pyroraptor olympius, and?Richardoestesia from the South Pyrenees area are compared against a sample of Dromaeosaurus, Saurornitholestes, Richardoestesia, and Troodon from the collections of the Royal Tyrrell Museum of Palaeontology, the Richardoestesia-like tooth from the site of Suterranya, Catalonia, Spain (Prieto-Márquez et al. 2000) and Pyroraptor olympius Allain and Taquet, 2000 from Provence (Ronan Allain, personal communication 2013).
Fig. 4 in Theropod dinosaurs from the Upper Cretaceous of the South Pyrenees Basin of Spain
Fig. 4. Principal component analysis of the South Pyrenees Basin sample and the Royal Tyrrell Museum of Palaeontology sample; a chart displaying two first principal components, PC1 and PC2.
Fig. 1. A in Theropod dinosaurs from the Upper Cretaceous of the South Pyrenees Basin of Spain
Fig. 1. A. Locations of the palaeontological sites of Laño, Vicari 4, Montrebei, Fontllonga 6, Figuerola 2, and Blasi. B. Correlation of the uppermost Cretaceous and lowermost Tertiary deposits in the southern Pyrenees, showing the stratigraphic levels of the studied localities. MPU, Mid-Paleocene unconformity; S1, S2, depositional sequences (Robador 2005).
FIGURE 8 in Graphic correlation of the upper Eifelian to lower Frasnian (Middle-Upper Devonian) conodont sequences in the Spanish Central Pyrenees and comparison with composite standards from other areas
FIGURE 8. Graphic correlation of the three Compte subfacies area sections. The columns show the observed first occurrences of important taxa in the studied sections, indicated by their projected position on the Pyrenean CS. The numbers represent the taxa listed in the range chart (Figures 5 and 6) and in the Appendix. (CSU: Composite Standard Unit).
FIGURE 10 in Graphic correlation of the upper Eifelian to lower Frasnian (Middle-Upper Devonian) conodont sequences in the Spanish Central Pyrenees and comparison with composite standards from other areas
FIGURE 10. Graphic correlation of four composite standard (CS) databases, three from NW-Gondwana (Anti-Atlas, Pyrenees and Montagne Noire) and one from S-Laurussia (Ardenne) (Golonka, 2000). The standard reference section for the Middle Devonian CS and the Anti-Atlas CS is the Jebel Ou Driss section in the Eastern Anti-Atlas (Morocco) (Belka et al., 1997). The standard reference sections for the Ardenne and Montagne Noire CSs are the Couvin-Givet section and the Pic de Vissou section, respectively. The columns show the observed first occurrences of important taxa in the regional CS's, indicated by their projected position on the Middle Devonian CS. The numbers represent the taxa listed in the range chart (Figures 5–6) and in the Appendix.
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