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72 results for “Seto Inland Sea”
Fig. 6. Glycera nicobarica Grube, 1866 in First Record of Epitokous Metamorphosis and Swimming Behaviour of Glycera nicobarica (Polychaeta: Glyceridae), in the Seto Inland Sea, Western Japan
Fig. 6. Glycera nicobarica Grube, 1866. Comparison of parapodia and chaetal arrangement in chaetiger 110 between epitoke (A) and atoke (B), posterior view. A, Epitokous female, 1.9 mm BW, NSMT-Pol 111427; B, atoke, 1.8 mm BW, NSMT-Pol 111428. Scale bar: 0.2 mm.
Fig. 1 in First Record of Epitokous Metamorphosis and Swimming Behaviour of Glycera nicobarica (Polychaeta: Glyceridae), in the Seto Inland Sea, Western Japan
Fig. 1. Collection sites of epitokes (solid circles) and atokes (open circles) of Glycera nicobarica Grube, 1866 in the Seto Inland Sea and Ariake Sea, Japan. 1, Uno Port, Okayama Prefecture; 2, Tadanoumi, Hiroshima Prefecture; 3, Imabari Port, Ehime Prefecture; 4, Yanai Port, Yamaguchi Prefecture; 5, off Nagashima Island, Kaminoseki, Yamaguchi Prefecture; 6, Himeshima Port, Oita Prefecture; a, Kasaoka Bay, Okayama Prefecture; b, Kure, Hiroshima Prefecture; c, Bouchi-no-su, Ehime Prefecture; d, Nukari-no-seto, Hiroshima Prefecture; e, off Iwaijima Island, Yamaguchi Prefecture; f, Kojiro-nagahama, Isahaya Bay, Nagasaki Prefecture.
Fig. 4. Glycera nicobarica Grube, 1866 in First Record of Epitokous Metamorphosis and Swimming Behaviour of Glycera nicobarica (Polychaeta: Glyceridae), in the Seto Inland Sea, Western Japan
Fig. 4. Glycera nicobarica Grube, 1866. Scanning electron micrographs of two kinds of papillae on proboscis. A, B, Epitokous male (NSMT-Pol 111423); C, D, atoke (NSMT-Pol 111429). A, C, conical papillae with 3 U-shaped ridges; B, D, oval papilla. Scale bars: 10 µm.
Fig. 9 in First Record of Epitokous Metamorphosis and Swimming Behaviour of Glycera nicobarica (Polychaeta: Glyceridae), in the Seto Inland Sea, Western Japan
Fig. 9. Small holes (one arrowed) on ventral surface of bases of parapodia of spent G. nicobarica Grube, 1866 (MS). Scale bar: 0.1 mm.
Fig. 8 in First Record of Epitokous Metamorphosis and Swimming Behaviour of Glycera nicobarica (Polychaeta: Glyceridae), in the Seto Inland Sea, Western Japan
Fig. 8. Timing of reproductive swimming of epitokes of Glycera nicobarica Grube, 1866 at six sites in July to November in 2009 to 2011. Numbers above black squares indicate the number of epitokes collected on each ocassion. The locality numbers () correspond to those in Fig. 1.
Fig. 7 in First Record of Epitokous Metamorphosis and Swimming Behaviour of Glycera nicobarica (Polychaeta: Glyceridae), in the Seto Inland Sea, Western Japan
Fig. 7. Presumed parasites attached to epitokous males of Glycera nicobarica Grube, 1866. A, Copepod (arrow) (NSMT-Cr 22387) attached to parapodia of male (NSMT-Pol 111425); B, enlargement of copepod, dorsal view; C, nematodes (arrows) (NSMT-As 3962) attached to parapodia in mid-body of another male (NSMT-Pol 111424); D, enlargement of nematode. Scale bars: 0.5 mm (A–C); 0.1 mm (D).
Fig. 5 in Redescription of Bicotyle reticulata (Monogenea: Heteraxinidae) from Pampus punctatissimus (Scombriformes: Stromateidae) in the Seto Inland Sea, Japan
Fig. 5. Bayesian inference (BI) tree for the Microcotylinea based on partial 28S rDNA data (840 bp) using two species of Plectanocotylidae as the outgroup. The species newly sequenced in this study is indicated in bold. The corresponding INSD accession numbers are shown. The tree includes results for Bayesian inference and ML with PP/BS branch support values.
Fig. 2 in Redescription of Bicotyle reticulata (Monogenea: Heteraxinidae) from Pampus punctatissimus (Scombriformes: Stromateidae) in the Seto Inland Sea, Japan
Fig. 2. Bicotyle reticulata (Goto, 1894) from Pampus punctatissimus (Temminck and Schlegel, 1845). A, Clamp on right side (closed, ventral view, MPM Coll.-No. 25262); B, clamp on left side (open, apical view, MPM Coll.-No. 25262); C, mouth (MPM Coll.-No. 25262); D, genital atrium (MPM Coll.-No. 25261); E, vaginal pore (MPM Coll.-No. 25261). Scale bars: A, B, 50 µm; C, 600 µm; D, E, 250 µm.
Fig. 1 in Redescription of Bicotyle reticulata (Monogenea: Heteraxinidae) from Pampus punctatissimus (Scombriformes: Stromateidae) in the Seto Inland Sea, Japan
Fig. 1. Bicotyle reticulata (Goto, 1894) from Pampus punctatissimus (Temminck and Schlegel, 1845). Whole body (ventral view, MPM Coll.-No. 25262). Scale bar: 10 mm.
Fig. 4 in Redescription of Bicotyle reticulata (Monogenea: Heteraxinidae) from Pampus punctatissimus (Scombriformes: Stromateidae) in the Seto Inland Sea, Japan
Fig. 4. Digestive tract of Bicotyle reticulata (Goto, 1894) from Pampus punctatissimus (Temminck and Schlegel, 1845) (ventral view, MPM Coll.-No. 25262). Scale bar: 5 mm.
Fig. 3 in Redescription of Bicotyle reticulata (Monogenea: Heteraxinidae) from Pampus punctatissimus (Scombriformes: Stromateidae) in the Seto Inland Sea, Japan
Fig. 3. Bicotyle reticulata (Goto, 1894) from Pampus punctatissimus (Temminck and Schlegel, 1845). Reproductive organs (ventral view, MPM Coll.-No. 25262). Scale bar: 500 µm.
Dataset for "Tidal control of the flow through long, narrow straits: a modeling study for the Seto Inland Sea"
<p>This dataset contains simulated results used to draw figures in the following paper.</p> <p>Kurogi, M. & Hasumi, H. Tidal control of the flow through long, narrow straits: a modeling study for the Seto Inland Sea, Sci. Rep. 9, 11077 (2019).</p> <p>==== List of data</p> <p> dep_T.nc: Depth of tracer point<br> dep_V.nc: Depth of velocity point<br> ssh.nc: Sea Surface Height for TIDE (hourly snapshots of July 2012)<br> ubt_TIDE.nc: Eastward barotropic velocity for TIDE (monthly mean)<br> vbt_TIDE.nc: Northward barotropic velocity for TIDE (monthly mean)<br> ubt_NTIDE.nc: Eastward barotropic velocity for NTIDE (monthly mean)<br> vbt_NTIDE.nc: Northward barotropic velocity for NTIDE (monthly mean)<br> ubt_NTIDE_DV0.nc: Eastward barotropic velocity for NTIDE_DV0 (monthly mean)<br> vbt_NTIDE_DV0.nc: Northward barotropic velocity for NTIDE_DV0 (monthly mean)<br> ubt_NTIDE_D.nc: Eastward barotropic velocity for NTIDE_D (monthly mean)<br> vbt_NTIDE_D.nc: Northward barotropic velocity for NTIDE_D (monthly mean)<br> ubt_NTIDE_DV.nc: Eastward barotropic velocity for NTIDE_DV (monthly mean)<br> vbt_NTIDE_DV.nc: Northward barotropic velocity for NTIDE_DV (monthly mean)<br> ubt_NTIDE_DVA.nc: Eastward barotropic velocity for NTIDE_DVA (monthly mean)<br> vbt_NTIDE_DVA.nc: Northward barotropic velocity for NTIDE_DVA (monthly mean)<br> ubt_inout.nc: Eastward barotropic velocity for the inflow-outflow model (monthly mean)<br> vbt_inout.nc: Northward barotropic velocity for the inflow-outflow model (monthly mean)<br> amv_TIDE.nc: Vertical average of vertical viscosity for TIDE (monthly mean)<br> ahv_TIDE.nc: Vertical average of vertical diffusivity for TIDE (monthly mean)<br> amv_NTIDE.nc: Vertical average of vertical viscosity for NTIDE (monthly mean)<br> ahv_NTIDE.nc: Vertical average of vertical diffusivity for NTIDE (monthly mean)<br> ke.nc: Vertical average of kinetic energy per unit mass for TIDE (monthly mean)<br> ke_bt.nc: Vertical average of barotropic kinetic energy per unit mass for TIDE (monthly mean)</p> <p> </p>
Fig. 7 in Quatrefoil light traps for free-swimming stages of cymothoid parasitic isopods and seasonal variation in their species compositions in the Seto Inland Sea, Japan
Fig. 7. Number of Mothocya parvostis collected at tidal levels: low tide, 1/3 tide, 2/3 tide, and high tide during the three days of sampling.
Fig. 6 in Quatrefoil light traps for free-swimming stages of cymothoid parasitic isopods and seasonal variation in their species compositions in the Seto Inland Sea, Japan
Fig. 6. Temporal variation in water temperature from October 2020 to December 2021. The gap in data is due to faulty logging equipment.
Fig. 8 in Quatrefoil light traps for free-swimming stages of cymothoid parasitic isopods and seasonal variation in their species compositions in the Seto Inland Sea, Japan
Fig. 8. Number of Mothocya parvostis collected on each sampling date (solid line) and tidal levels (broken line) from November 15 (new moon) to December 15 (new moon).
Fig. 5 in Quatrefoil light traps for free-swimming stages of cymothoid parasitic isopods and seasonal variation in their species compositions in the Seto Inland Sea, Japan
Fig. 5. Number of cymothoid juveniles collected in each month from October 2020 to December 2021. Dot bars (red) indicate Mothocya parvostis and diagonal right pattern bars (blue) indicate Ceratothoa verrucosa. (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)
Fig. 4 in Quatrefoil light traps for free-swimming stages of cymothoid parasitic isopods and seasonal variation in their species compositions in the Seto Inland Sea, Japan
Fig. 4. Number of cymothoid mancae collected in each month from October 2020 to December 2021. Dot bars (red) indicate Mothocya parvostis, diagonal right pattern bars (blue) indicate Ceratothoa verrucosa, diagonal left pattern bars (green) indicate Ceratothoa carinata. (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)
Fig. 3 in Quatrefoil light traps for free-swimming stages of cymothoid parasitic isopods and seasonal variation in their species compositions in the Seto Inland Sea, Japan
Fig. 3. Dorsal views of cymothoid free-swimming stages collected by the light trap. (a) and (d): Mothocya parvostis, (b) and (e): Ceratothoa verrucosa, (c): Ceratothoa carinata. (a)–(c): mancae, (d) and (e): juveniles. Scale bars indicate (a)–(c): 1 mm, (d) and (e): 3 mm.
Fig. 2 in Quatrefoil light traps for free-swimming stages of cymothoid parasitic isopods and seasonal variation in their species compositions in the Seto Inland Sea, Japan
Fig. 2. Map showing location of the Seto Inland Sea and sampling site, where light trap sampling was performed.
Fig. 1 in Quatrefoil light traps for free-swimming stages of cymothoid parasitic isopods and seasonal variation in their species compositions in the Seto Inland Sea, Japan
Fig. 1. The quatrefoil light trap using in this study. (a): front view, (b): bottom view without net, (c): Light traps in use underwater. A: 15 W LED fishing light, B: Net to collect organisms in trap (0.5 mm mesh).
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Annotated Behaviour and Observability Dataset (ABODe)
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