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41 results for “central Patagonia”
Fig. 2. Dorsal view. a. Acledra nazgul. b. Lobepomis peltifera. c. Oenopiella punctaria. d. Piezodorus guildinii. e. Neoleprosoma argentinensis. f. Bergemesa reedi. g. Narvesus minor. h in Notes on distributions of Heteroptera (Insecta: Hemiptera) in northern Patagonia and central region of Argentina
Fig. 2. Dorsal view. a. Acledra nazgul. b. Lobepomis peltifera. c. Oenopiella punctaria. d. Piezodorus guildinii. e. Neoleprosoma argentinensis. f. Bergemesa reedi. g. Narvesus minor. h. Jadera choprai.
Fig. 1. Dorsal view. a. Aradus penningtoni. b. Althos nigropunctatus. c. Encedonia mutica. d. Eubule sculpta. e. Lyctocoris campestris. f in Notes on distributions of Heteroptera (Insecta: Hemiptera) in northern Patagonia and central region of Argentina
Fig. 1. Dorsal view. a. Aradus penningtoni. b. Althos nigropunctatus. c. Encedonia mutica. d. Eubule sculpta. e. Lyctocoris campestris. f. Ochrimnus (Parochrimnus) somnus. g. Oncopeltus unifasciatellus. h. Acledra fraterna. i. Acledra gregalis.
Figure 3 in Covering behaviour in the sea urchin Pseudechinus magellanicus (Temnopleuridae) in central Patagonia, Argentina
Figure 3. Non-metric multidimensional scaling (nMDS) and polygons on SØrensen similarity matrix (qualitative) of coverage items used by Pseudechinus magellanicus across different sites (A) and depths (B). PA: Pasto Amarillo; LT: La Tranquera; Km3: Kilómetro 3; LwMT: Low midlittoral tidepools; IFT: Infralittoral tidepools.
Figure 7 in Covering behaviour in the sea urchin Pseudechinus magellanicus (Temnopleuridae) in central Patagonia, Argentina
Figure 7. Relation between the areas of items available in the environment (supply) and those used by Pseudechinus magellanicus for covering purposes. (A) Frequency distribution and box plot; (B) categorical analysis.
Figure 4 in Covering behaviour in the sea urchin Pseudechinus magellanicus (Temnopleuridae) in central Patagonia, Argentina
Figure 4. Proportion of sea urchins with varying degrees of surface coverage in two size classes (n = 40 and 50 for small and large, respectively).
Figure 2 in Covering behaviour in the sea urchin Pseudechinus magellanicus (Temnopleuridae) in central Patagonia, Argentina
Figure 2. Covering behaviour of Pseudechinus magellanicus showing varying degrees of coverage in central Patagonia, Argentina.
Figure 6 in Covering behaviour in the sea urchin Pseudechinus magellanicus (Temnopleuridae) in central Patagonia, Argentina
Figure 6. Proportion of sea urchins with varying degrees of surface coverage in relation to proximity to sandy beaches at infralittoral tidepools, one with higher fine sand contribution (proximal; n = 29) and another with lower sand input (distant; n = 46).
Figure 5 in Covering behaviour in the sea urchin Pseudechinus magellanicus (Temnopleuridae) in central Patagonia, Argentina
Figure 5. Proportion of sea urchins with varying degrees of surface coverage along a coastal depth gradient at Central Patagonia, Argentina. LwMT: low midlittoral tidepools (n = 49); IFT: infralittoral tidepools (n = 119); depth 5–7 m (n = 57); depth 10–12 m (n = 90).
Figure 3 in Relationship between environmental conditions and hostseeking activity of Ochlerotatus albifasciatus (Diptera: Culicidae) in an agroecosystem and in an urban area in Chubut, Central Patagonia, Argentina
Figure 3. Relationship between biting activity rate of Ochlerotatus albifasciatus (number of mosquitoes captured on the bait during 20 minutes of exposition) and (A) air temperature, (B) air environmental RH, (C) wind speed and (D) sunshine degree. Continuous lines correspond to trials conducted in the evening, and dashed lines correspond to trials conducted in the morning and afternoon (pooled). Adjusted functions were obtained from a generalised linear model with negative binomial error distribution and log link function (see Methods for details).
Figure 2 in Relationship between environmental conditions and hostseeking activity of Ochlerotatus albifasciatus (Diptera: Culicidae) in an agroecosystem and in an urban area in Chubut, Central Patagonia, Argentina
Figure 2. Absolute frequencies of Ochlerotatus albifasciatus for the catches in Sarmiento Valley mean and standard error for the catches of Oc. albifasciatus according to different variables: (A) habitat type; (B) capture time; (C) proximity to a larval habitat; (D) air temperature; (E) air environmental RH; (F) wind speed; and (G) sunshine degree. Variables D, E, F and G were categorised here to make the corresponding graphics. The number above each bar is the absolute frequency of mosquitoes in this category.
Figure 7 from: Pujana RR, Wilf P, Gandolfo MA (2020) Conifer wood assemblage dominated by Podocarpaceae, early Eocene of Laguna del Hunco, central Argentinean Patagonia. PhytoKeys 156: 81-102. https://doi.org/10.3897/phytokeys.156.54175
Figure 7 Galleries in two indeterminate conifer woods: A gallery filled with apparently spherical coprolites (TS), MPEF-Pb 10736 B gallery filled with compact frass (RLS), MPEF-Pb 10725 C detail of the frass (RLS), MPEF-Pb 10725. Scale bars: 500 μm (A, B); 200 μm (C).
Figure 6 from: Pujana RR, Wilf P, Gandolfo MA (2020) Conifer wood assemblage dominated by Podocarpaceae, early Eocene of Laguna del Hunco, central Argentinean Patagonia. PhytoKeys 156: 81-102. https://doi.org/10.3897/phytokeys.156.54175
Figure 6 Schematic drawing of the cross-fields: AProtophyllocladoxylon francisiaeB cf. Cupressinoxylon sp. 1 CPhyllocladoxylon antarcticumD cf. Cupressinoxylon sp. 2. Scale bar: 50 μm.
Figure 5 from: Pujana RR, Wilf P, Gandolfo MA (2020) Conifer wood assemblage dominated by Podocarpaceae, early Eocene of Laguna del Hunco, central Argentinean Patagonia. PhytoKeys 156: 81-102. https://doi.org/10.3897/phytokeys.156.54175
Figure 5 cf. Cupressinoxylon sp. 2, MPEF-Pb 10778: A Growth rings of type B (TS) B detail of a growth ring of type B boundary (TS) C uniseriate non contiguous intertracheary radial pits D uni- and biseriate intertracheary radial pits, opposite when biseriate (arrowheads) E uniseriate non contiguous intertracheary radial pits F cross-fields with bordered pits (RLS) G and H cross-fields with bordered pits (SEM) I uniseriate rays (TLS). Scale bars: 5 mm (A); 200 μm (B, I); 50 μm (C, D, E); 20 μm (F, G, H).
Figure 4 from: Pujana RR, Wilf P, Gandolfo MA (2020) Conifer wood assemblage dominated by Podocarpaceae, early Eocene of Laguna del Hunco, central Argentinean Patagonia. PhytoKeys 156: 81-102. https://doi.org/10.3897/phytokeys.156.54175
Figure 4 cf. Cupressinoxylon sp. 1, MPEF-Pb 10733: A Growth rings (TS) B detail of a growth ring boundary (TS) C Detail of roundish tracheids and axial parenchyma (arrowheads) (TS) D uniseriate non contiguous intertracheary radial pits and cross-field pit (arrowhead) (SEM) E and F cross-fields with bordered pits (SEM) G axial parenchyma (arrowhead) and cross-fields with bordered pits (RLS) H uniseriate rays (TLS) I uniseriate rays (TLS). Scale bars: 5 mm (A); 500 μm (B); 100 μm (C, I); 20 μm (D, E, F, G); 200 μm (H).
Figure 3 from: Pujana RR, Wilf P, Gandolfo MA (2020) Conifer wood assemblage dominated by Podocarpaceae, early Eocene of Laguna del Hunco, central Argentinean Patagonia. PhytoKeys 156: 81-102. https://doi.org/10.3897/phytokeys.156.54175
Figure 3 Phyllocladoxylon antarcticum: A Growth rings of type D (TS), MPEF-Pb 10747 B detail of a growth ring of type D boundary (TS), MPEF-Pb 10776 C detail of roundish tracheids (TS), MPEF-Pb 10765 D opposite contiguous biseriate intertracheary radial pits (arrowheads) (RLS), MPEF-Pb 10767 E uniseriate non contiguous intertracheary radial pits (scanning electron microscope, SEM), MPEF-Pb 10776 F uniseriate contiguous (arrowheads) and non contiguous intertracheary radial pits (SEM), MPEF-Pb 10776 G cross-fields with large simple pits (RLS), MPEF-Pb 10707 H cross-fields with large pointed and narrow-bordered pits (RLS), MPEF-Pb 10765 I cross-fields with large simple pits (SEM), MPEF-Pb 10710 J wall alteration of the secondary walls of tracheids (RLS), MPEF-Pb 10767 K uniseriate rays (TLS), MPEF-Pb 10767 L uniseriate rays (TLS), MPEF-Pb 10747. Scale bars: 5 mm (A); 200 μm (B, K); 100 μm (C, L); 50 μm (D, F, G, H, I, J); 20 μm (E).
Figure 2 from: Pujana RR, Wilf P, Gandolfo MA (2020) Conifer wood assemblage dominated by Podocarpaceae, early Eocene of Laguna del Hunco, central Argentinean Patagonia. PhytoKeys 156: 81-102. https://doi.org/10.3897/phytokeys.156.54175
Figure 2 Protophyllocladoxylon francisiae, MPEF-Pb 10694: A Growth rings of type D (transverse section, TS) B detail of a growth ring of type D boundary (TS) C opposite (arrowheads) intertracheary radial pits (radial longitudinal section, RLS) D alternate (arrowheads) intertracheary radial pits (RLS) E and F cross-fields (RLS) G wall alteration of the secondary walls of tracheids (tangential longitudinal section, TLS) H uniseriate rays (TLS) I uniseriate rays (TLS). Scale bars: 5 mm (A); 500 μm (B); 50 μm (C, D, E, F, G); 100 μm (H); 200 μm (I).
Figure 1 from: Pujana RR, Wilf P, Gandolfo MA (2020) Conifer wood assemblage dominated by Podocarpaceae, early Eocene of Laguna del Hunco, central Argentinean Patagonia. PhytoKeys 156: 81-102. https://doi.org/10.3897/phytokeys.156.54175
Figure 1 Location map and satellite images (Instituto Geográfico Nacional de la República Argentina, upper, and Google, CNES / Airbus, below) showing the Laguna del Hunco section and sampling locations. Scale in the satellite image below (tilted) varies across the map.
Fig. 6 in New Early Jurassic gastropods from west-central Patagonia, Argentina
Fig. 6. Neighbor joining clustering, Euclidean similarity measures with root final branch algorithm. Note good clustering of the Calliotropis–Pseudomelania−dominated samples next to a cluster containing Globularia and Cryptaulax–Procerithium dominated samples.
Figure 1 in Covering behaviour in the sea urchin Pseudechinus magellanicus (Temnopleuridae) in central Patagonia, Argentina
Figure 1. Map showing sampling locations in central Patagonia, Argentina.
Figure 1 in Relationship between environmental conditions and hostseeking activity of Ochlerotatus albifasciatus (Diptera: Culicidae) in an agroecosystem and in an urban area in Chubut, Central Patagonia, Argentina
Figure 1. Absolute frequencies of Ochlerotatus albifasciatus for the catches in Sarmiento Valley.
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OpenNeuro
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