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325 results for “Brackish water”
FIGURE 3 in Freshwater and brackish water fishes of Sakhalin Island (Russia) in inland and coastal waters: an annotated checklist with taxonomic comments
FIGURE 3. Tym' River, Sakhalin Island (photo by S.S. Makeev)
FIGURE 2 in Freshwater and brackish water fishes of Sakhalin Island (Russia) in inland and coastal waters: an annotated checklist with taxonomic comments
FIGURE 2. Amur estuary, Sakhalin coast (photo by V.N. Koshelev)
FIGURE 1 in Freshwater and brackish water fishes of Sakhalin Island (Russia) in inland and coastal waters: an annotated checklist with taxonomic comments
FIGURE 1. Map of Sakhalin Island and the adjacent areas
FIGURE 6 in Integrative taxonomy study of brackish water crabs of the genus Ptychognathus Stimpson, 1858 (Crustacea: Brachyura: Varunidae) from Polynesia, with description of two new species
FIGURE 6. Distribution map of the species studied. Stars indicate type localities.
FIGURE 1 in Integrative taxonomy study of brackish water crabs of the genus Ptychognathus Stimpson, 1858 (Crustacea: Brachyura: Varunidae) from Polynesia, with description of two new species
FIGURE 1. Map of the Polynesian triangle and Polynesian sub-regions.
Figure 1. – Map showing the 247 in AfriBasins: a new framework in FishBase for the analysis of African fresh and brackish water fish distributions, with a discussion on the Congo basin fauna
Figure 1. – Map showing the 247 AfriBasins. Rivers based on the HydroSHEDS 15-arc seconds dataset, lakes modified from the RWDB2 River and Surface Water Body Outlines African Water Resources Database. A high resolution version is available online.
Figure 6 in AfriBasins: a new framework in FishBase for the analysis of African fresh and brackish water fish distributions, with a discussion on the Congo basin fauna
Figure 6 (left). – Scatterplots of the first two axes from the correspondence analyses on the fish distribution data for the Congo Basin s.s. A: All 28 AfriBasins, 970 species; B: 24 AfriBasins, 789 species; C: 8 AfriBasins, 504 species; D: 16 AfriBasins, 573 species; E: 9 AfriBasins, 474 species. Colours correspond to the clusters identified in the cluster analyses (Fig. 5).
Figure 4. – AfriBasin units for the Congo River basin s.s in AfriBasins: a new framework in FishBase for the analysis of African fresh and brackish water fish distributions, with a discussion on the Congo basin fauna
Figure 4. – AfriBasin units for the Congo River basin s.s. Rivers based on the HydroSHEDS 15-arc seconds dataset, lakes modified from the RWDB2 River and Surface Water Body Outlines African Water Resources Database (see Jenness et al., 2007a, b).
Figure 3 in AfriBasins: a new framework in FishBase for the analysis of African fresh and brackish water fish distributions, with a discussion on the Congo basin fauna
Figure 3. – Total number and percentage of native and endemic species per family within the Congo Basin s.s. Families ordered by total number of species. "Other" includes the following families, all with no more than three species of which none are endemic: Dasyatidae, Hepsetidae, Protopteridae, Channidae, Mugilidae, Notopteridae, Syngnathidae, Ariidae, Carangidae, Cynoglossidae, Elopidae, Latidae, Megalopidae, Ophichthidae, Pantodontidae, Phractolaemidae, Pristidae and Pristigasteridae.
Figure 2 in Quantum yield, chlorophyll, and cell damage in yellow passion fruit under irrigation strategies with brackish water and potassium
Figure 2. Variable fluorescence – Fv of 'BRS GA1' yellow passion fruit plants as a function of the interaction between brackish water irrigation strategies and potassium doses at 360 days after transplanting.Vertical bars represent the standard error of the mean (n = 4). Means followed by the same lowercase letters indicate no significant difference between brackish water irrigation strategies by the Scott-Knott test (p≤0.05) for the same potassium dose; the same uppercase letter indicates no significant difference between potassium doses by the F test (p ≤0.05) for the same strategy. For details of BWIS see Table 4.
FIGURE 1 in Macrostomum shenda and M. spiriger, two new brackish-water species of Macrostomum (Platyhelminthes: Macrostomorpha) from China
FIGURE 1. The locations of the two new species of Macrostomum in Guangdong Province, China.
Figure 5 from: Conde-Vela VM (2019) Sinkhole and brackish water nereidid polychaetes: Revision of Stenoninereis Wesenberg-Lund, 1958 (Annelida). Subterranean Biology 30: 95-115. https://doi.org/10.3897/subtbiol.30.36273
Figure 5 Stenoninereislackeyi (Hartman, 1958) comb. n. A–F non-type specimen (USNM 45699) A whole specimen, dorsal view B left jaw, dorsal view C Chaetiger 2, right parapodium, anterior view D Chaetiger 6, right parapodium, anterior view E Chaetiger 17, right parapodium, anterior view F Chaetiger 23, right parapodium, anterior view G Chaetiger 29, right parapodium, anterior view. Scale bars: 1 mm (A); 50 µm (B); 0.1 mm (C–G).
Figure 2 from: Conde-Vela VM (2019) Sinkhole and brackish water nereidid polychaetes: Revision of Stenoninereis Wesenberg-Lund, 1958 (Annelida). Subterranean Biology 30: 95-115. https://doi.org/10.3897/subtbiol.30.36273
Figure 2 Stenoninereismartini Wesenberg-Lund, 1958 A, C–F syntypes (USNM 29726) B non-type (USNM 61623) A whole specimens, dorsal view B whole specimen, dorsal view C close-up of prostomium, dorsal view D chaetiger 6, left parapodium, anterior view (dorsal cirrostyle incomplete) E chaetiger 13, left parapodium, anterior view F chaetiger 18, left parapodium, anterior view. Scale bars: 0.5 mm (A–B); 0.1 mm (C–F).
Figure 1 from: Conde-Vela VM (2019) Sinkhole and brackish water nereidid polychaetes: Revision of Stenoninereis Wesenberg-Lund, 1958 (Annelida). Subterranean Biology 30: 95-115. https://doi.org/10.3897/subtbiol.30.36273
Figure 1 Morphology of Stenoninereis species A non-type of S.lackeyi comb. n. (USNM 53273) B, I syntypes of S.elisae sp. nov. (USNM 55366) C–F non-type of S.elisae sp. nov. (USNM 55360) G non-type of S.martiniWesenberg-Lund 1958 (USNM 61623) H holotype of S.tecolutlensis de León-González & Solís-Weiss, 1997 (USNM 174870) A anterior end, dorsal view B chaetiger 6, left parapodium (solid and dashed red lines: vessels; solid and dashed light blue lines: unknown structures, likely nerves) C shaft of notopodial sesquigomph spinigers, chaetiger 20 D shaft of neuropodial supra-acicular sesquigomph spiniger, same chaetiger E shaft of neuropodial sub-acicular heterogomph spiniger, chaetiger 20 F Shaft of neuropodial sub-acicular heterogomph falciger, chaetiger 20 G–I anterior ends, dorsal view. Abbreviations: AC, anterior cirri; An, antennae; Cp, cirrophore; Cs, cirrostyle; DC, dorsal cirrus; Es, esophagus; NeL, neuroacicular ligule; NoD, notopodial dorsal ligule; NoV, notopodial ventral ligule; Ph, pharynx; Pp, palpophore; Ps, palpostyle; VC, ventral cirrus; ¿?, unknown structures, likely nerves by their position. Scale bars: 0.2 mm (A, G–I); 0.1 mm (B); 5 µm (C–F).
Figure 4 from: Conde-Vela VM (2019) Sinkhole and brackish water nereidid polychaetes: Revision of Stenoninereis Wesenberg-Lund, 1958 (Annelida). Subterranean Biology 30: 95-115. https://doi.org/10.3897/subtbiol.30.36273
Figure 4 Stenoninereislackeyi (Hartman, 1958) comb. n. A–J paratype (AHF-POLY-806) A whole specimen, dorsal view B anterior end, dorsal view C posterior end, dorsal view D notopodial sesquigomph spiniger, chaetiger 27 E supra-acicular sesquigomph spinigers, chaetiger 27 F sub-acicular heterogomph spiniger, chaetiger 27 G sub-acicular heterogomph falcigers (uppermost one at the left), chaetiger 27 H chaetiger 7, right parapodium, anterior view I chaetiger 19, right parapodium, anterior view J chaetiger 26, right parapodium, anterior view. Scale bars: 1 mm (A); 0.25 mm (B–C); 10 µm (D–G) 0.1 mm (H–J).
Figure 3 from: Conde-Vela VM (2019) Sinkhole and brackish water nereidid polychaetes: Revision of Stenoninereis Wesenberg-Lund, 1958 (Annelida). Subterranean Biology 30: 95-115. https://doi.org/10.3897/subtbiol.30.36273
Figure 3 Stenoninereismartini Wesenberg-Lund, 1958 A–J non-type specimens (USNM 61623) A chaetiger 2, right parapodium, anterior view B chaetiger 9, right parapodium, anterior view C chaetiger 21, right parapodium, anterior view D chaetiger 27, right parapodium, anterior view E chaetiger 28, left parapodium, anterior view F notopodial sesquigomph spinigers, chaetiger 28 G supra-acicular sesquigomph spinigers, chaetiger 28 H sub-acicular heterogomph spiniger, chaetiger 28 I sub-acicular heterogomph spiniger, chaetiger 28 J left jaw, dorsal view. Scale bars: 50 µm (A, D); 0.1 mm (B–C); 10 µm (F–I); 50 µm (J).
Figure 6 from: Conde-Vela VM (2019) Sinkhole and brackish water nereidid polychaetes: Revision of Stenoninereis Wesenberg-Lund, 1958 (Annelida). Subterranean Biology 30: 95-115. https://doi.org/10.3897/subtbiol.30.36273
Figure 6 Stenoninereiselisae sp. nov. A–M Syntypes (USNM 55366) A whole specimen, dorsal view B whole specimens, dorsal view C anterior end, dorsal view D Posterior end, dorsal view E chaetiger 6, right parapodium, anterior view F chaetiger 16, right parapodium, anterior view G chaetiger 18, right parapodium, anterior view H chaetiger 24, right parapodium, anterior view I subacicular heterogomph spinigers, chaetiger 18 J–L subacicular heterogomph falcigers, chaetiger 18 M notopodial homogomph spiniger, chaetiger 49. Scale bars: 0.5 mm (A–B); 0.25 mm (C); 0.2 mm (E–H); 10 µm (I–L); 30 µm (M).
Fig. 2 in Testate Amoebae as Proxy for Water Level Changes in a Brackish Tidal Marsh
Fig. 2. Environmental variables (flooding frequency, particle sizes, organic content, bulk density, soil conductivity, vegetation) and testate amoebae concentrations over the elevation gradient (m ~ MHWL) of the brackish tidal marsh. The four indicated zones are based on cluster analyses of testate amoebae assemblages (see Fig. 3).
Fig. 5 in Testate Amoebae as Proxy for Water Level Changes in a Brackish Tidal Marsh
Fig. 5. Result of the RDA both on the intertidal zone and the supratidal bio-zone. Sub-zones were indicated by circles. Species abbreviations were used, full names can be found in Fig. 3.
Figure 3 from: Rodcharoen E, Bruce N, Pholpanthin P (2014) Cirolana songkhla, a new species of brackish-water cirolanid isopod (Crustacea, Isopoda, Cirolanidae) from the lower Gulf of Thailand. ZooKeys 375: 1-14. https://doi.org/10.3897/zookeys.375.6573
Figure 3 - Cirolana songkhla sp. n., male paratype (PSUZC-CR0281-2) (11.2 mm) (A–F), ovigerous female paratype (PSUZC-CR0281-2) (8.7 mm) (G). A right madible B robust setae C right maxillule D right maxilla E right maxilliped F maxilliped endite G left maxiliped, basal articles.
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