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710 results for “seamount”
Fig. 2 in New Cheilostomata (Bryozoa) from NE Atlantic seamounts, islands, and the continental slope: evidence for deep-sea endemism
Fig. 2. Atlantisina atlantis gen. et sp. nov., Atlantis Smt. A. Overview of colony growing on a stylasterid skeleton; note the biserial-branching growth (paratype MNHN-IB-2014-47). B. Several autozooids and ovicellate zooids (paratype MNHN-IB-2014-49). C. Close-up of orifice and the base of a severed ovicell protruding from the distal communication pore (paratype MNHN-IB-2014-49). D. Ooecium (OLL 2016/127). E. Periancestrular region (paratype OLL 2016/123). F. Ancestrula and first-generation autozooid (paratype OLL 2016/123). Scale bars: A = 1 mm; B = 500 µm; C–D = 50 µm; E = 300 µm; F = 100 µm.
Fig. 9 in New Cheilostomata (Bryozoa) from NE Atlantic seamounts, islands, and the continental slope: evidence for deep-sea endemism
Fig. 9. Atlantisina gorringensis gen. et sp. nov., Gorringe Bank. A. Overview of holotype (MNHN- IB-2014-70). B. Periancestrular region, the constricted oral region of the partly overgrown ancestrula is to the left (paratype OLL 2016/147). C. Two ovicellate zooids, the lower one with a well-preserved suboral crest (MNHN-IB-2014-70). D. The same zooid in lateral view (MNHN-IB-2014-70). E. Closeup of orifice (OLL 2016/147). Scale bars: A = 500 µm; B = 300 µm; C–D = 100 µm; E = 50 µm.
Fig. 8 in New Cheilostomata (Bryozoa) from NE Atlantic seamounts, islands, and the continental slope: evidence for deep-sea endemism
Fig. 8. Atlantisina lionensis gen. et sp. nov. Intraspecific variability in the morphology of the suboral crest. Scale bar: 200 µm.
Fig. 14 in New Cheilostomata (Bryozoa) from NE Atlantic seamounts, islands, and the continental slope: evidence for deep-sea endemism
Fig. 14. Calvetopora otapostasis gen. et sp. nov., Atlantis Smt. A. Overview of the holotype (MNHN- IB-2014-78). B. Close-up of an ooecium and the suboral avicularia (holotype MNHN-IB-2014-78). C. Slightly oblique view of an autozooid at the growth margin showing the communication pores in the lateral walls as well as marginal areolar pores (black arrow) and the roughly crescentically arranged pseudopores (white arrows) in the frontal shield (paratype MNHN-IB-2014-280). D. Close-up of orifice; note that the condyles are so short that usually only one can be seen (paratype OLL 2016/153). E. Ancestrula and early astogenetic autozooids (paratype MNHN-IB-2014-81). F. Interior frontal shield showing the lateral areolar pores and the central pseudopores (paratype OLL 2016/153). Scale bars: A = 500 µm; B, D, F = 100 µm; C, E = 200 µm.
Fig. 15 in New Cheilostomata (Bryozoa) from NE Atlantic seamounts, islands, and the continental slope: evidence for deep-sea endemism
Fig. 15. Calvetopora sp., Great Meteor Bank, OLL 2016/157. A. Overview of colony fragment. B. Closeup of orifice and avicularia. Scale bars: A = 300 µm, B = 100 µm.
Fig. 3 in A new genus and species of axiid shrimp (Crustacea, Decapoda) from a southwestern Indian Ocean seamount
Fig. 3. Montanaxius mediumquod gen. et sp. nov., paratype, ♀, NHMW 25676. A. Front in lateral view. B. Same in dorsal view. C. Major cheliped in lateral view. D. Same, fingers in mesial view. E. Minor cheliped in lateral view. F. Same, fingers in mesial view. G. Second pereopod, lateral view. H. Third pereopod, lateral view. I. Same, detail of distal articles. J. Fourth pereopod in lateral view. K. Fifth pereopod in lateral view. L. Sternites 6–8 in ventral view. M. Telson and right uropods, dorsal view. Setation omitted in A–F. Scale bars: 1 mm.
Fig. 1 in A new genus and species of axiid shrimp (Crustacea, Decapoda) from a southwestern Indian Ocean seamount
Fig. 1. Montanaxius mediumquod gen. et sp. nov., holotype, ³, NHMW 25677. A. Carapace in lateral view. B. Same, dorsal view. C. Minor cheliped in dorsal view. D. Major cheliped in dorsal view. E. Tip of pereopod 2. F. Sternites 6–8. G. Ventral part of coxa 5 and pleomere 1 with Plp1 (first article bent) in lateral view. H. Left Plp1 in anterior view. I. Terminus of left Plp1, posterior view. J. Left Plp2, mesial view. K. Right Plp2, anterior view. Setation omitted in C and D. Scale bars: A–H, J–K = 1 mm; I = 500 µm.
Fig. 4 in A new genus and species of axiid shrimp (Crustacea, Decapoda) from a southwestern Indian Ocean seamount
Fig. 4. Montanaxius mediumquod gen. et sp. nov., holotype, ³, NHMW 25677. A. Front in dorsal view. B. Same in lateral view. C. Terminus of left first pleopod, posterior view. Abbreviations: c = cincinnuli (appendix interna); s = spine. Scale bars: A–B = 1 mm; C = 500 µm.
Fig. 2 in A new genus and species of axiid shrimp (Crustacea, Decapoda) from a southwestern Indian Ocean seamount
Fig. 2. Montanaxius mediumquod gen. et sp. nov., paratype, ♀, NHMW 25675. A. Front in lateral view (rostrum broken). B. Pleon in lateral view. C. Left eyestalk, dorsal view. D. Right antennule in mesial view. E. Right antenna in ventral view. F. Third maxilliped in lateral view. G. Same in mesial view. H. Sternites 6–8. I. Left first pleopod in lateral view. J. Right second pleopod in posterior view. All setation omitted except in F and I. Scale bars: 1 mm.
Seamounts Gravity Accompanying Material
<p>Gravity effect of seamount eruptions (mass change), as spherical harmonics coefficients. Accompanying data for:</p> <p>Braitenberg, C., Pastorutti, A. Detectability of Seamount Eruptions Through a Quantum Technology Gravity Mission MOCAST+: Hunga Tonga, Fani Maoré and Other Smaller Eruptions. <em>Surv Geophys</em> (2024). doi:<a href="https://doi.org/10.1007/s10712-024-09839-7">10.1007/s10712-024-09839-7</a></p> <h4>Data format</h4> <p>The SH expansions are provided in the <a href="http://icgem.gfz-potsdam.de/ICGEM-Format-2011.pdf">ICGEM gfc format</a>.</p> <p>The "model_name" field is populated with three <em>key=value</em> pairs: name, lon, and lat of the modelled seamount.</p>
pyMelt_MultiNest inversion files for Nekrylov et al. "Magmatic evolution along the Emperor-Hawaiian seamount chain revealed by olivine-hosted melt inclusions"
<p>pyMelt_MultiNest inversion data collected for Nekrylov et al. "Magmatic evolution along the Emperor-Hawaiian seamount chain revealed by olivine-hosted melt inclusions"</p>
Fig. 3 in Anthomastus nanhaiensis, new species, and Bathyalcyon robustum Versluys, 1906, two mushroom soft corals (Octocorallia: Coralliidae) from Zhenbei Seamount in the South China Sea
Fig. 3. Sclerites of Anthomastus nanhaiensis, new species. A, sclerites from autozooid tentacle tip; B, sclerites from tentacle base; C, sclerites from pharynx. Scale bars = 0.10 mm (A, B), and 0.05 mm (C).
Fig. 2 in Anthomastus nanhaiensis, new species, and Bathyalcyon robustum Versluys, 1906, two mushroom soft corals (Octocorallia: Coralliidae) from Zhenbei Seamount in the South China Sea
Fig. 2. Morphology of the holotype of Anthomastus nanhaiensis, new species. A, the animal in situ; B, an autozooid; C, the colony in top view; D, the colony in lateral view; E, the longitudinal section of the colony, showing large cavities of autozooids (au) and small cavities of siphonozooids (arrows). Scale bars = 1 mm (B), 10 mm (C‒E).
Fig. 7 in Anthomastus nanhaiensis, new species, and Bathyalcyon robustum Versluys, 1906, two mushroom soft corals (Octocorallia: Coralliidae) from Zhenbei Seamount in the South China Sea
Fig. 7. Sclerites of Bathyalcyon robustum Versluys, 1906. A, sclerites from tentacle pinnules of autozooids; B, sclerites from tentacle rachis of autozooids; C, sclerites from anthocodial wall. Scale bars = 0.10 mm.
Fig. 8 in Anthomastus nanhaiensis, new species, and Bathyalcyon robustum Versluys, 1906, two mushroom soft corals (Octocorallia: Coralliidae) from Zhenbei Seamount in the South China Sea
Fig. 8. Sclerites of Bathyalcyon robustum Versluys, 1906. A, sclerites from pharynx; B, sclerites from outermost anthostelar coenenchyme; C, sclerites from deeper layer of coenenchyme; D, sclerites from holdfast. Scale bars = 0.10 mm.
Fig. 5 in Anthomastus nanhaiensis, new species, and Bathyalcyon robustum Versluys, 1906, two mushroom soft corals (Octocorallia: Coralliidae) from Zhenbei Seamount in the South China Sea
Fig. 5. Sclerites of Anthomastus nanhaiensis, new species. A, sclerites from surface of stalk; B, sclerites from interior of stalk. Scale bars = 0.10 mm.
Fig. 4 in Anthomastus nanhaiensis, new species, and Bathyalcyon robustum Versluys, 1906, two mushroom soft corals (Octocorallia: Coralliidae) from Zhenbei Seamount in the South China Sea
Fig. 4. Sclerites of Anthomastus nanhaiensis, new species. A, sclerites from surface of capitulum; B, sclerites from interior of capitulum. Scale bars = 0.10 mm.
Fig. 6 in Anthomastus nanhaiensis, new species, and Bathyalcyon robustum Versluys, 1906, two mushroom soft corals (Octocorallia: Coralliidae) from Zhenbei Seamount in the South China Sea
Fig. 6. Morphology of Bathyalcyon robustum Versluys, 1906. A, MBM286427 in situ; B, clonies in aggregation with MBM286428 in the most right; C, MBM286427 in preservation; D, MBM286428 in preservation; E, siphonozooids; F, transverse section through middle anthostele of MBM286427, showing pharynx and mesenteries. Scale bars = 10 mm (C, D), 0.5 mm (E), and 5 mm (F).
Figure 1 in A new species of Paraulopus (Aulopiformes: Paraulopidae) from seamounts of the Tasman Sea
Figure 1. Paraulopus balteatus sp. nov., holotype, AMS I.44606-001, 320 mm SL, male, Tasman Sea, Australia, New South Wales, Browns Mount off Botany Bay 34°02'S, 151°39'E (est.), 430 m, photo by S. Humphreys (AMS).
FIGURE 3 Holotype NMNS-8130-001 in Phylogeny of two new pheronematid sponges from the Caroline Seamount and South China Sea
FIGURE 3 Holotype NMNS-8130-001 of Pheronemoides curvipentactin sp. nov. A, the external morphology of dermal areas (scale bar = 5 cm); B, the external morphology of atrial areas.
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International Brain Laboratory public data
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OpenNeuro
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