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3,295 results for “Fracture”
FIGURE 24. Alyonushka hystricosa n. gen., n in Bryozoa (Cyclostomata and Ctenostomata) from polymetallic nodules in the Russian exploration area, Clarion - Clipperton Fracture Zone, eastern Pacific Ocean-taxon novelty and implications of mining
FIGURE 24. Alyonushka hystricosa n. gen., n. sp. A, B, holotype, ZIRAS 1/50711, apical and oblique views of capitulum with gonozooid; C, D, same specimen showing entire colony. Arrows indicate the same ooeciostome in each photo. Scale bars: 250 µm.
FIGURE 34. Calyssopora clarionensis n. gen., n in Bryozoa (Cyclostomata and Ctenostomata) from polymetallic nodules in the Russian exploration area, Clarion - Clipperton Fracture Zone, eastern Pacific Ocean-taxon novelty and implications of mining
FIGURE 34. Calyssopora clarionensis n. gen., n. sp. A, D, G, J, holotype, ZIRAS 1/50719, respectively showing an apical view of the fertile colony and profiles of the hooded ooeciostome; B, E, H, K, paratype 2, ZIRAS 3/50721, respectively showing an apical view of the gonozooid and profiles of a more-truncated ooeciostome; C, F, I, L, paratype 3, ZIRAS 4/50722, similar views of a colony with a more-open ooeciostome; M, specimen YMG4–13, Stn 287, mitriform shape of autozooecial orifice when seen in oblique lateral view; N, specimen GLD4–11, Stn 209, oblique view of autozooidal peristome and aperture showing spinose granulation of interior and exterior surfaces; O, P, paratype 1, ZIRAS 2/50720, respectively showing trabecula joining two peristomes and vertical view of autozooidal aperture. Scale bars: A–F, 200 µm; G–I, 100 µm; J–P, 50 µm.
FIGURE 20. Saccocamera ampulla n. gen., n in Bryozoa (Cyclostomata and Ctenostomata) from polymetallic nodules in the Russian exploration area, Clarion - Clipperton Fracture Zone, eastern Pacific Ocean-taxon novelty and implications of mining
FIGURE 20. Saccocamera ampulla n. gen., n. sp. Holotype, ZIRAS 1/50709. A, Frontal (apical) view of gonozooid, with peristome at 4 o'clock; B, lateral view of gonozooid, peristome directed to right; note the numerous alveolar openings; C, D, gonozooid showing lageniform ooeciostome; E, ooeciopore; F–J, profiles of autozooidal peristomes showing surface texture and spinose processes; K, autozooidal aperture. Scale bars: A, B, 200 µm; C, D, F–J, 100 µm; E, K, 50 µm.
FIGURE 41. Anyuta anastema n. gen., n in Bryozoa (Cyclostomata and Ctenostomata) from polymetallic nodules in the Russian exploration area, Clarion - Clipperton Fracture Zone, eastern Pacific Ocean-taxon novelty and implications of mining
FIGURE 41. Anyuta anastema n. gen., n. sp. Progressive stages of development of young colonies. A–D, specimen YMG4–14, Stn 360, three-zooid stage; E–H, specimen YMG4–14, Stn 338, five–six-zooid stage; I–L, specimen YMG4–13, Stn 281, and M–P, specimen YMG4–06, Stn 71, showing later stages in which trabecular walls define spaces destined to become either autozooids or alveoli. Scale bars: 200 µm.
FIGURE 54. Rallocytus ridiculus n. gen., n in Bryozoa (Cyclostomata and Ctenostomata) from polymetallic nodules in the Russian exploration area, Clarion - Clipperton Fracture Zone, eastern Pacific Ocean-taxon novelty and implications of mining
FIGURE 54. Rallocytus ridiculus n. gen., n. sp. Micro-CT scans of paratype 2, NIWA 127726, as surface (A) and back-face isosurface renders showing colony interiors. A, surface and interior views of seven-zooid colony with dimorphic ancestrular zooid (daz) colored purple in the right-hand image; note small cluster of flattened kenozooidal chambers surrounding protoecium but absent from sides of column; B, lateral view, with entire dimorphic ancestrular zooid seen in left half; C, apical view of calyx, showing flattened kenozooidal/alveolar chambers filling center, dimorphic peristome at right indicated by arrowhead. Scale bars: 100 µm.
FIGURE 32. Calyssopora vasiformis n. gen., n in Bryozoa (Cyclostomata and Ctenostomata) from polymetallic nodules in the Russian exploration area, Clarion - Clipperton Fracture Zone, eastern Pacific Ocean-taxon novelty and implications of mining
FIGURE 32. Calyssopora vasiformis n. gen., n. sp. Stages of colony development. A–D, specimen GLD4–11, Stn 228, at apparent four-zooid stage with large alveoli; E–H, specimen GLD4–11, Stn 201, at a later stage, with more-developed calyx center. Scale bars: 200 µm.
FIGURE 44. Rallocytus ridiculus n. gen., n in Bryozoa (Cyclostomata and Ctenostomata) from polymetallic nodules in the Russian exploration area, Clarion - Clipperton Fracture Zone, eastern Pacific Ocean-taxon novelty and implications of mining
FIGURE 44. Rallocytus ridiculus n. gen., n. sp. Progressive stages of development of ancestrulate colonies. A–D, specimen YMG4–14, Stn 340, at three-zooid stage, with no distinction among peristomes; E–H, specimen GLD4–09, Stn 183, with four functional zooids, one dimorphic; I–L, specimen GLD4–08, Stn 159, with six functional zooids, one dimorphic; M–P, specimen GLD4–11, Stn 206, five functional zooids, none dimorphic. Scale bars: A, E, 150 µm; B–D, F–P, 200 µm.
FIGURE 19. Saccocamera ampulla n. gen., n in Bryozoa (Cyclostomata and Ctenostomata) from polymetallic nodules in the Russian exploration area, Clarion - Clipperton Fracture Zone, eastern Pacific Ocean-taxon novelty and implications of mining
FIGURE 19. Saccocamera ampulla n. gen., n. sp. A–D, four profiles of fertile holotype colony, ZIRAS 1/50709, YMG4–14, Stn 359. Scale bars: 250 µm.
FIGURE 51. Orectopora flabellum n. gen., n in Bryozoa (Cyclostomata and Ctenostomata) from polymetallic nodules in the Russian exploration area, Clarion - Clipperton Fracture Zone, eastern Pacific Ocean-taxon novelty and implications of mining
FIGURE 51. Orectopora flabellum n. gen., n. sp. Micro-CT scans of paratype, NIWA 127723, as back-face isosurface renders showing colony interiors. A, colony curvature in lateral view showing part of abfrontal (left) and frontal (right) surfaces; note large cluster of kenozooidal chambers at lower left, becoming longer distally and near autozooidal tubes; B, like A, but from opposite side, showing more of abfrontal surface; note pseudopore density; C, en face view of colony frontal surface, with only the part in the square shown as backface isosurface render; note the kenozooids in the interior angle between two-right-hand fascicles (lobes); D, E, abfrontal side of colony, with that in D showing differentiating tip of middle lobe; note elongate kenozooids on either side of or abfrontal to autozooidal tubes; F, close-up of part of A showing variability of kenozooidal chambers. Scale bars: 100 µm.
FIGURE 17. Frontohornera frontalis n. gen., n in Bryozoa (Cyclostomata and Ctenostomata) from polymetallic nodules in the Russian exploration area, Clarion - Clipperton Fracture Zone, eastern Pacific Ocean-taxon novelty and implications of mining
FIGURE 17. Frontohornera frontalis n. gen., n. sp. Holotype, ZIRAS 1/50707, showing details of morphology. A, part of branch distal to gonozooid, showing cancelli and zooidal peristomes; B, part of infertile branch with fewer cancelli; C, D, parts of infertile branch showing peristomial dimorphism; E, part of branch near gonozooid showing numerous cancelli and peristomial dimorphism; F, zooids showing peristomial and apertural dimorphism; G, abfrontal part of branch in vicinity of gonozooid; H, J, K, gonozooid profiles; I, autozooidal peristome showing interior spinules; L, ooeciostome and ooeciopore. Scale bars: A, B, D, E, G, 300 µm; C, H, J, K, 200 µm; F, 150 µm; I, 100 µm; L, 50 µm.
FIGURE 18. Frontohornera frontalis n. gen., n in Bryozoa (Cyclostomata and Ctenostomata) from polymetallic nodules in the Russian exploration area, Clarion - Clipperton Fracture Zone, eastern Pacific Ocean-taxon novelty and implications of mining
FIGURE 18. Frontohornera frontalis n. gen., n. sp. Progressive stages of development of young colonies. A–C, specimen GLD4–11, Stn 215, from different angles; D–F, specimen YMG4–14, Stn 334, from different angles; G–I, specimen GLD4–11, Stn 210, in frontal and abfrontal views and a close-up of the colony base with secondary calcification. Scale bars: A–H, 500 µm; I, 250 µm.
FIGURE 16. Frontohornera frontalis n. gen., n in Bryozoa (Cyclostomata and Ctenostomata) from polymetallic nodules in the Russian exploration area, Clarion - Clipperton Fracture Zone, eastern Pacific Ocean-taxon novelty and implications of mining
FIGURE 16. Frontohornera frontalis n. gen., n. sp. Holotype specimen, ZIRAS 1/50707, respectively seen in A, frontal and B, abfrontal views. Scale bars: 1 mm.
FIGURE 15. Abyssoecia elevata n. gen., n in Bryozoa (Cyclostomata and Ctenostomata) from polymetallic nodules in the Russian exploration area, Clarion - Clipperton Fracture Zone, eastern Pacific Ocean-taxon novelty and implications of mining
FIGURE 15. Abyssoecia elevata n. gen., n. sp. Progressive stages of development of young ancestrulate colonies viewed from different angles, showing development of either supportive columns or growth of lateral margins towards substratum as colony grows larger. A–C, specimen GLD4–09, Stn 196; D–F, specimen YMG4–07, Stn 129; G–L, specimen YMG4–04, Stn 44. Scale bars: A, B, D–F, 250 µm; C, 200 µm; G–L, 500 µm.
FIGURE 13. Abyssoecia elevata n. gen., n in Bryozoa (Cyclostomata and Ctenostomata) from polymetallic nodules in the Russian exploration area, Clarion - Clipperton Fracture Zone, eastern Pacific Ocean-taxon novelty and implications of mining
FIGURE 13. Abyssoecia elevata n. gen., n. sp. Holotype and paratype colonies detached from their substrata. A, B, holotype, ZIRAS 1/50703, frontal and profile views; note foramen in colony formed by growth and fusion of lobes around a space; C, D, paratype 1, ZIRAS 2/50704 frontal and abfrontal views; E, F, paratype 2, ZIRAS 3/50705, frontal and profile views. Scale bars: 500 µm.
FIGURE 9 in Bryozoa (Cyclostomata and Ctenostomata) from polymetallic nodules in the Russian exploration area, Clarion - Clipperton Fracture Zone, eastern Pacific Ocean-taxon novelty and implications of mining
FIGURE 9. Tubuliporina sp. incertae sedis. Specimen ZIRAS 1/50674. A–C, rotational and D, tilted, views of sole colony; E–H, rotational views of distal part of colony showing two autozooidal peristomes and a smaller-diameter (?female) peristome; I, J, close-ups of smaller peristome; K, close-up of right-hand peristomial aperture in D. Scale bars: A–D, 250 µm; E–H, 200 µm; I–K, 100 µm.
FIGURE 8. Orectopora flabellum n. gen., n in Bryozoa (Cyclostomata and Ctenostomata) from polymetallic nodules in the Russian exploration area, Clarion - Clipperton Fracture Zone, eastern Pacific Ocean-taxon novelty and implications of mining
FIGURE 8. Orectopora flabellum n. gen., n. sp. Colonies at early stages of astogeny. A–D, rotational views of specimen GLD4–08, Stn 151, with ancestrular region more magnified in D; E, F, rotational views of specimen GLD4–08, Stn 145; G, H, specimen GLD4–11, Stn 230; I, J, specimen GLD4–11, Stn 219; K–P, rotational views of paratype specimen, NIWA 127723. Scale bars: A–C, E–H, 300 µm; D, P, 200 µm; I–O, 500 µm.
FIGURE 1 in Bryozoa (Cyclostomata and Ctenostomata) from polymetallic nodules in the Russian exploration area, Clarion - Clipperton Fracture Zone, eastern Pacific Ocean-taxon novelty and implications of mining
FIGURE 1. Sampling stations in the eastern Russian exploration area of the CCZ, ranging from depths of 4510 m (orange) to 5280 m (purplish-blue).
FIGURE 4. Pandanipora helix n. gen., n in Bryozoa (Cyclostomata and Ctenostomata) from polymetallic nodules in the Russian exploration area, Clarion - Clipperton Fracture Zone, eastern Pacific Ocean-taxon novelty and implications of mining
FIGURE 4. Pandanipora helix n. gen., n. sp. Details of morphology. A, specimen YMG4–13, Stn 289; B–D, paratype 4, ZIRAS 5/50671; E, paratype 5, ZIRAS 6/50672; F, G, Q, paratype 1, ZIRAS 2/50668; H, specimen GLD4–11, Stn 217; I, holotype, ZIRAS 1/50667; J, specimen YMG4–06, Stn 68; K, O, specimen YMG4–13, Stn 321; L, specimen YMG4–13, Stn 295; M, paratype 2, ZIRAS 3/50669; N, specimen GLD4–12, Stn 258; P, specimen GLD4–12, Stn 255. A, distal view of growing edge of colony showing early differentiation of daughter zooid and prop from the floor of the parent zooid, with chambers arranged in stacks; B, growing edge of colony showing differentiation of a daughter zooid (lower) from the floor of the parent zooid (upper); C, same, close-up; D, interior surface of developing zooid chamber showing imbricated foliated fabric of wedge-shaped crystallites and openings of pseudopores; E–I, variability of zooid size and geometry: E, elongated zooids with tall peristomes; F, part of ring-like colony; G, lateral view of same colony, two zooids near-perpendicular to plane of props; H, arcuate colony with overlapping peristome bases; I, lateral view of apical coil of spiral colony with subconnate peristome bases and shortened peristomes, most broken; J, frontolateral view of tubular peristome showing annular striae on the surface; K, lateral view of tubular peristome; L, peristomial aperture, frontal view; M, oblique view of peristomial aperture showing imbricated foliated fabric of wedge-shaped crystallites and interior openings of pseudopores; N, imbricated foliated fabric of wedge-shaped crystallites around internal opening of pseudopore; O, zooidal wall showing tiny sparse simple pseudopores; P, Q, close-up of zooidal wall showing crystallites. Scale bars: A, B, G, 250 µm; C, J, K, O, 100 µm; D, N, 10 µm; E, F, H, I, 500 µm; L, M, Q, 50 µm; P, 15 µm.
FIGURE 14. Abyssoecia elevata n. gen., n in Bryozoa (Cyclostomata and Ctenostomata) from polymetallic nodules in the Russian exploration area, Clarion - Clipperton Fracture Zone, eastern Pacific Ocean-taxon novelty and implications of mining
FIGURE 14. Abyssoecia elevata n. gen., n. sp. A–E, paratype 3, ZIRAS 4/50706; F, specimen YMG4–06, Stn 106; G, J, specimen YMG4–13, Stn 302; H, I, N, specimen YMG4–07, Stn 129; K, specimen GLD4–09, Stn 191; L, M, specimen YMG4–04, Stn 44. A, gonozooid at upper left of image with projecting ooeciostome; B, D, distal and distolateral views of gonozooid; C, E, frontal and distal views of ooeciostome with subcircular ooeciopore; F–H, distolateral (F) and distal views of colony margin with developing zooids; I–K, frontal views of short autozooidal peristomes; L–N, ancestrular region of two colonies. Scale bars: A, 500 µm; B, D, F–J, L–N, 200 µm; C, E, 100 µm; K, 50 µm.
FIGURE 12. Discantenna metallica n in Bryozoa (Cyclostomata and Ctenostomata) from polymetallic nodules in the Russian exploration area, Clarion - Clipperton Fracture Zone, eastern Pacific Ocean-taxon novelty and implications of mining
FIGURE 12. Discantenna metallica n. sp. Progressive stages of development of ancestrulate and young colonies. A–D, specimen YMG4–14, Stn 358; E–H, specimen GLD4–11, Stn 224; I–L, specimen GLD4–11, Stn 207. A–D, rotational views (respectively frontal, distolateral, lateral, proximal) of newly formed colony with ancestrular zooid and developing daughter peristome; note developing kenozooids in B; E–H, similar views of a slightly older colony with further kenozooidal development in F; I–L, apical and profile views of an older colony (ancestrular protoecium missing) with a definite stalk underway and peristomes opening all around it. Scale bars: A–H, J, 100 µm; I, K, L, 200 µm.
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Allen Brain Atlas
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