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223 results for “Caspian Sea”
FIGURE 3 in Identifying Neogobius species from the southern Caspian Sea by otolith shape (Teleostei: Gobiidae)
FIGURE 3. Sagittal otoliths of: A – B: N. pallasi (TL: 95 mm); A, male; B, female. C – D: N. caspius (TL: 95 mm); C, male; D, female. E – F: N. melanostomus (TL: 95 mm); E, male; F, female.
FIGURE 2 in Identifying Neogobius species from the southern Caspian Sea by otolith shape (Teleostei: Gobiidae)
FIGURE 2. SEM micrograph of sagittal otolith of a 60 mm specimen of Neogobius pallasi and its features.
Fig. 4 in Distribution Of Sibling Species Yellow-Legged Gull, Larus Michahellis And Caspian Gull, Larus Cachinnans (Charadriiformes, Laridae), On The Black Sea Coast
Fig. 4. Settlements of Larus cachinnans (circles) and Larus michahellis (triangles) in the northern part of the Black Sea. Yellow figures — the species was determined by means of the analysis of mitochondrial DNA, red ones — by means of the analysis of museum specimens or photos of alive birds. According to Belik, 2018; Klein, Buchheim, 1997; Kuzikov, 2021; Liebers et al., 2004; Mnatsekanov et al., 1992; Sikorsky, 2016; Siokhin et al., 2000; Til'ba, Filipov, 2016; Tsvelykh, 2016, 2018 and data from this study.
Fig. 5 in Distribution Of Sibling Species Yellow-Legged Gull, Larus Michahellis And Caspian Gull, Larus Cachinnans (Charadriiformes, Laridae), On The Black Sea Coast
Fig. 5. Breeding ranges of Larus michahellis (orange) and Larus cachinnans (red) on the Black sea and Sea of Azov coasts.
Fig. 1 in Distribution Of Sibling Species Yellow-Legged Gull, Larus Michahellis And Caspian Gull, Larus Cachinnans (Charadriiformes, Laridae), On The Black Sea Coast
Fig. 1. Differences in coloration of the outer primaries of Larus michahellis (left column) and Larus cachinnans (right column) from the Black Sea coast. A — Kobuleti, Georgia. August 20, 1910 (collection of the National Museum of Natural History, the National Academy of Sciences of Ukraine), B — Karadag, Crimean Peninsula, Ukraine, July 2, 1946; (collection of the Zoological Museum of Kyiv National University), C — Vilkovo, Danube Delta, Ukraine, April 26, 1948 (collection of the Zoological Museum of Kyiv National University), D — Swan Islands, Karkinitian Bay, Ukraine, February 22, 1972 (collection of the National Museum of Natural History of the National Academy of Sciences of Ukraine).
Figure 5 in Effects of climatic parameters on Tetranychus urticae (Acari: Tetranychidae) populations based on remote sensing in the southeastern Caspian Sea
Figure 5. The relationship between UV Aerosol Index extracted from Sentinel-5 imagery and spider mite population (mean score of each window) from June 9, 2020 to September 17, 2020 (First window, May 30 to June 9 was not spider mite distribution data).
Figure 6 in Effects of climatic parameters on Tetranychus urticae (Acari: Tetranychidae) populations based on remote sensing in the southeastern Caspian Sea
Figure 6. The relationship between daily CHIRPS-precipitation and spider mite population (mean score of each window) from June 9, 2020 to September 17, 2020 (First window, May 30 to June 9 was not spider mite distribution data).
Figure 9 in Effects of climatic parameters on Tetranychus urticae (Acari: Tetranychidae) populations based on remote sensing in the southeastern Caspian Sea
Figure 9. The relationship between NDVI (10 m) provided form Sentinal-2 and density of spider mite during monitoring windows based on ANOVA for linear regression. The alphabetical letters indicate of the sequence windows from June 9, 2020 to September 17, 2020 (First window, May 30 to June 9 was not spider mite distribution data).
Figure 4 in Effects of climatic parameters on Tetranychus urticae (Acari: Tetranychidae) populations based on remote sensing in the southeastern Caspian Sea
Figure 4. Distribution maps of spider mite based on IDW model during monitoring windows, a–n are the sequence windows form June 9, 2020 to September 17, 2020 (First window, May 30 to June 9 was not spider mite population data).
Figure 8 in Effects of climatic parameters on Tetranychus urticae (Acari: Tetranychidae) populations based on remote sensing in the southeastern Caspian Sea
Figure 8. The relationship between MODIS-Evapotranspiration and spider mite population (mean score of each window) from June 9, 2020 to September 17, 2020. (First window, May 30 to June 9 was not spider mite distribution data).
Figure 3 in Effects of climatic parameters on Tetranychus urticae (Acari: Tetranychidae) populations based on remote sensing in the southeastern Caspian Sea
Figure 3. Spider mite distribution throughout Golestan province; 6 (min.) × 6 (min.) grid cells in the DMS coordinate system (yellow points indicate the monitoring fields).
Fig. 22 in Ponto-Caspian And Mediterranean Faunal And Floral Records Of Upper Pleistocene-Holocene Sediments From The İzmit Gulf (Marmara Sea, Turkey)
Fig. 22 Chronostratigraphic and faunal correlation of the İzmit Gulf drillings. The radiocarbon dates are expressed as uncalibrated (boundary of marine isotope stages from Imbre et al., 1984). The lower intervals of drillings 10MB-204 (120-80 m), 10MB-205 (117.2-40 m), 10MB-206 (122-80 m), 10MB-207 (120.9-50 m) and 10MB-208 (200-40 m) are not shown due to absence of sample.
Fig. 21 in Ponto-Caspian And Mediterranean Faunal And Floral Records Of Upper Pleistocene-Holocene Sediments From The İzmit Gulf (Marmara Sea, Turkey)
Fig. 21 Microphotographs of diatom taxa identified from drilling 10MB-203. a. Actinocyclus normanii, 95 m. b. Amphipleura pellucida, 95 m. c. Amphora libyca, 143.5 m. d. Cocconeis disculus, 95 m. e. Cyclotella comensis, 143.5 m. f. Diploneis elliptica, 95 m. g. Diploneis parma, 143.5 m. h. Epithemia turgida var. westermannii, 143.5 m. j. Fragilaria sp, 95 m. k. Fragilaria lancettula, 143.5 m. l. Stenopterobia sigmatella, 95 m. m. Stephanodiscus aegyptiacus, 95 m. n. Stephanodiscus alpinus, 95 m. o. Stephanodiscus lucens, 95 m. p. Stephanodiscus medius, 95 m. r. Stephanodiscus niagarae, 95 m.
Fig. 20 in Ponto-Caspian And Mediterranean Faunal And Floral Records Of Upper Pleistocene-Holocene Sediments From The İzmit Gulf (Marmara Sea, Turkey)
Fig. 20 Photographs of selected bivalvia species identified from the İzmit Gulf drillings. a1, a2. Nucula nucleus, height: 5 mm, 208/1 m. b1, b2. Anadara diluvi, height: 2 mm, 207/9 m. c1, c2. Chlamys glabra, height: 2 mm, 208/9 m. d1, d2. Lucinella divaricata, height: 1.5 mm, 208/5 m. e1, e2. Dreissena rostriformis distincta, height: 4 mm, 207/26 m. f1, f2. Dreissena rostriformis tschaudae, height: 3mm, 204/13 m. g1, g2. Parvicardium exiguum, height: 2 mm, 201/1 m. h1, h2. Spisula subtruncata, height: 7 mm, 207/1 m. i1, i2. Lentidium mediterraneum, height: 3mm, 208/9 m. j1, j2. Timoclea ovata, height: 6 mm, 205/1.5 m. k1, k2. Clausinella fascita, height: 3 mm, 208/1 m. l1, l2. Clausinella sp., height: 2 mm, 207/1 m. m1, m2. Gouldia minima, height: 2 mm, 208/5 m. n1, n2. Corbula gibba, height: 4 mm, 207/1 m.
Fig. 17 in Ponto-Caspian And Mediterranean Faunal And Floral Records Of Upper Pleistocene-Holocene Sediments From The İzmit Gulf (Marmara Sea, Turkey)
Fig. 17 Scanning electron micrographs of selected Mediterranean origin ostracod species identified from the İzmit Gulf drilling cores. a. Pterygocythereis jonesii; left valve, 208/2 m; b. Sagmatocythere versicolor; left valve, 206/33 m; c. Sclerochilus contortus; left valve, 208/14 m; d. Semicytherura alifera; right valve, 201/1 m; e. Semicytherura diafora; right valve, 208/18 m; f. Semicytherura incongruens; left valve, 208/2 m; g-h. Semicytherura inversa; g right valve, 208/9 m, h left valve, 208/5 m; i. Semicytherura paradoxa; right valve, 206/37.5 m; j. Semicytherura punctata; left valve, 206/37.5m; k. Semicytherura sulcata; left valve, 203/100 m; l. Tetracytherura irregularis; right valve, 205/1.5 m; m-n. Urocythereis crenulosa; m left valve, n right valve, 206/33 m; o-p. Xestoleberis depressa; p left valve, q right valve, 206/33 m; r. Xestoleberis communis; right valve, 206/4.5 m.
Fig. 19 in Ponto-Caspian And Mediterranean Faunal And Floral Records Of Upper Pleistocene-Holocene Sediments From The İzmit Gulf (Marmara Sea, Turkey)
Fig. 19 Photographs of selected gastropod species identified from the İzmit Gulf drillings. a1, a2. Nassarius sp., height: 1.5 mm, 207/13m. b1, b2. Opalia crenata, height: 2.5 mm, 207/13 m. c1, c2. Retusa umbilicata, height: 2.5 mm, 207/9 m. d1, d2. Chrysallida indistincta, height: 1 mm, 207/9 m. e1, e2. Chrysallida obtusa, height: 1.5 mm, 207/13 m. f1, f2. Odostomia acuta, height: 1.5 mm, 206/41m. g1, g2. Odostomia sp., height: 1mm, 207/26 m. h1-h2, i1-i2. Turbonilla lactea, height: 2 mm, 207/13 m. and hight: 2.5 mm, 208/5 m. j1, j2. Creseis virgua, height: 1 mm, 208/5m. k1, k2. Bythinella pannonica, height: 2 mm, 201/81 m.
Fig. 18 in Ponto-Caspian And Mediterranean Faunal And Floral Records Of Upper Pleistocene-Holocene Sediments From The İzmit Gulf (Marmara Sea, Turkey)
Fig. 18 Photographs of selected gastropod species identified from the İzmit Gulf drillings. a1, a2. Gibbula albida, height: 2 mm, 207/5 m. b1, b2. Gibbula varia, height: 1 mm, 208/5 m. c1, c2. Gibbula sp., height: 3.5 mm, 208/5 m. d1, d2. Tricolia pullus, height: 2 mm, 207/1 m. e1, e2. Omalogyra atomus, height: 1 mm, 205/14 m. f1, f2. Caecum trachea, height: 2 mm, 207/13 m. g1, g2. Alvania abbysicola, height: 2 mm, 205/10 m. h1, h2. Alvania cimex, height: 2 mm, 206/41 m. i1, i2. Alvania sp., height: 1 mm, 206/41 m. j1, j2. Cingula sp., height: 3 mm, 205/14 m. k1, k2. Monzonia crassa, height: 3 mm, 207/1 m. l1, l2. Rissoa marginata, height: 5 mm, 207/13 m. m1, m2. Rissoa pulchella, height: 2.5 mm, 207/13 m. n1, n2. Turritella sp., height: 1.5 mm, 207/9 m. o1, o2. Pirenella conica, height: 3.5mm, 205/1.5 m. p1, p2. Bittium latreilli, height: 2mm, 207/13 m. q1, q2. Natica rizzae, height: 5 mm, 206/41 m. r1, r2. Trophon sp., height: 2mm, 207/5 m.
Fig. 16 in Ponto-Caspian And Mediterranean Faunal And Floral Records Of Upper Pleistocene-Holocene Sediments From The İzmit Gulf (Marmara Sea, Turkey)
Fig. 16 Scanning electron micrographs of selected Mediterranean origin ostracod species identified from the İzmit Gulf drilling cores. a-b. Loxoconcha gibberosa; a left valve, b right valve, 206/33 m; c-d. Loxoconcha minima; c left valve, d right valve, 203/100 m; e. Microcytherura nigrescens; right valve, 208/2 m; f. Neonesidea frequens; left valve, 205/1.5 m; g. Neonesidea inflata; right valve, 205/10m; h-i. Palmaconcha agilis; h right valve, 206/33 m, i left valve internal view, 201/70 m; j-k. Paracytherida parallia; j right valve, 206/33 m, k left valve, 206/4.5 m; l. Paradoxostoma trieste, left valve, 201/1 m; m. Pontocypris rara; right valve, 201/1 m; n-o. Pontocythere turbida; n left valve, o right valve, 206/37.5 m; p. Pseudocytherura calcarata, right valve, 208/2 m; q. Pseudopsammocythere reniformis, right valve, 205/1.5 m; r. Pterygocythereis jonesii, right valve, 206/37.5 m.
Fig. 1 Location map. a. Turkey map, b in Ponto-Caspian And Mediterranean Faunal And Floral Records Of Upper Pleistocene-Holocene Sediments From The İzmit Gulf (Marmara Sea, Turkey)
Fig. 1 Location map. a. Turkey map, b. Gulf of İzmit and Osmangazi Bridge Route, c. Locations and numbers of drillings.
Fig. 15 in Ponto-Caspian And Mediterranean Faunal And Floral Records Of Upper Pleistocene-Holocene Sediments From The İzmit Gulf (Marmara Sea, Turkey)
Fig. 15 Scanning electron micrographs of selected Mediterranean origin ostracod species identified from the İzmit Gulf drilling cores. a. Costa edwardsii; right valve, 206/37.5 m; b. Costa tricostata; left valve, 205/1.5 m; c-d. Cyprideis torosa; c right valve, 206/37.5 m, d left valve, 208/9 m; e-f. Cytheridea acuminata; e right valve, 208/33 m, f right valve, 207/18 m; g-h. Cytherois sp.; g right valve, 205/1.5 m. h. left valve, 201/1 m; i. Cytheropteron rotundatum, left valve, 201/1 m; j-k. Hiltermanicythere rubra; j left valve, 208/1 m; k right valve, 208/1 m; l-m. Leptocythere bacescoi, l left valve, m right valve, 206/33 m; n-o. Leptocythere bituberculata; n right valve, 206/37.5 m, o left valve, 207/18 m.
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