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Fig. 2 in Arthropod trace fossils from Eocene cold climate continental strata of King George Island, West Antarctica
Fig. 2. Location of plant and trace fossil collection area as seen from Martel Inlet, Admiralty Bay, King George Island, Antarctica. Photograph by AG, January 2007.
Fig. 10 in Arthropod trace fossils from Eocene cold climate continental strata of King George Island, West Antarctica
Fig. 10. Recent traces (A–C) of the caddisfly larvae Philopotamus montanus (Donovan, 1813) (D), Lejowa Valley, Tatra Mountains, southern Poland.
Fig. 5. Productid brachiopod Heteralosia slocomi King, 1938 in Functional morphology and modifications on spine growth in the productid brachiopod Heteralosia slocomi
Fig. 5. Productid brachiopod Heteralosia slocomi King, 1938; Moorman Ridge, White Pine County, Nevada, USA; middle Desmoinesian (Moscovian), UCMP 155660. A. Disarticulated ventral valve of a specimen attached in situ to a bryozoan colony, showing spines modified up to 90° (arrowed) from the original direction of growth. B. Spines adap− ted and following grooves (arrowed) developed on the surface of a bryozoan colony. Scale bars 1 mm.
Fig. 6. Juvenile productid brachiopod Heteralosia slocomi King, 1938 in Functional morphology and modifications on spine growth in the productid brachiopod Heteralosia slocomi
Fig. 6. Juvenile productid brachiopod Heteralosia slocomi King, 1938; Moorman Ridge, White Pine County, Nevada, USA; middle Desmoinesian (Moscovian). A. UCPM 155661, disarticulated valve of a specimen inside of a ventral valve of a mature specimen. B. UCMP 155662, specimen growing in situ inside of a dissociated ventral valve of a dead individual, with spines modifying the original course of growth (arrowed) to prevent breakage. Scale bars 1 mm.
Fig. 26. A in Cambrian microfossils from glacial erratics of King George Island, Antarctica
Fig. 26. A. Steinkern of initial part of Stapicyathus cera Debrenne archaeocyath cup, ZPAL Ac.I/53U7, erratic Me33. B, C. Problematic?tommotiid sclerite. B. Fragment of sclerite wall, ZPAL V.VI/49U4, erratic Me66. C. Fragment of sclerite wall, ZPAL V.VI/49U3, erratic Me66; C1, general view; C2, detail showing lamellar structure at the edge (arrowed). D, E. Aetholicopalla adnata Conway Morris. D. Specimen with external wall exfoliated, ZPAL V.VI/38S6, erratic Me32. E. Specimen ZPAL V.VI/38S1, erratic Me66; E1, oblique view, showing inner wall and tubules; E2, detail of surface of inner wall.
Fig. 24. A in Cambrian microfossils from glacial erratics of King George Island, Antarctica
Fig. 24. A. Diagrammatic cross−section of the wall of Mongolitubulus squamifer Missarzhevsky. B. Energy dispersive spectrum (EDS) for the M. squamifer sclerite. C. Broken end of the specimen figured in Fig. 23D, showing layered wall structure including outer hyaline layer and fibrous inner layer.
Fig. 22. A in Cambrian microfossils from glacial erratics of King George Island, Antarctica
Fig. 22. A. Diagrammatic cross section of the sclerite Hadimopanella staurata sp. nov. B. Energy dispersive spectrum (EDS) for the H. staurata sclerite.
Fig. 9. A in Cambrian microfossils from glacial erratics of King George Island, Antarctica
Fig. 9. A. Energy dispersive spectrum (EDS) for Dailyatia ajax Bischoff sclerite. B–E. Diagrammatic reconstruction of the relationship between Dailyatia sclerite element and secretory epithelium during growth, based on the multilamellar wall structure and the polygonal pattern covering the entire sclerite, except for a nipple−like termination of the apex.
Fig. 10 in Cambrian microfossils from glacial erratics of King George Island, Antarctica
Fig. 10. Sclerite of Dailyatia sp., ZPAL V.VI/31S2, erratic Me33. A. Oblique right lateral (anterior) view of asymmetrical triangular sclerite, type C. B. Oblique apical view. C. Oblique left lateral view. D. Enlargement of ornamentation showing growth ribs.
Fig. 21 in Cambrian microfossils from glacial erratics of King George Island, Antarctica
Fig. 21. Sclerite of Hadimopanella staurata sp. nov., ZPAL V.VI/24S24, errratic boulder Me40. A. Oblique lateral view. B. Upper view. C, D. Enlargements of B showing arrangement of phosphate crystallites in the external layer.
Fig. 20 in Cambrian microfossils from glacial erratics of King George Island, Antarctica
Fig. 20. Holotype of Hadimopanella staurata sp. nov., ZPAL V.VI/24S3, errratic boulder Me66. A. Oblique lateral view, stereo−pair. B. Upper view. C. Enlargement showing (in a hole) arrangement of phosphate crystallites in the external sclerite layer.
Fig. 19 in Cambrian microfossils from glacial erratics of King George Island, Antarctica
Fig. 19. Representatives of Hadimopanella staurata sp. nov. sclerites showing variability in shape and ornamentation. A. ZPAL V.VI/24S24. B. ZPAL V.VI/24S26. C. ZPAL V.VI/24S33. D. ZPAL V.VI/19S9. E. ZPAL V.VI/24S33. F. ZPAL V.VI/24S30, in oblique lateral (F1) and upper (F2) views. G. ZPAL V.VI/24S3, holotype, in oblique lateral (G1) and upper (G2) views. H. ZPAL V.VI/35S24, in oblique lateral (H1) and upper (H2) views. I. ZPAL V.VI/14S9, in oblique lateral (I1) and upper (I2) views. J. ZPAL V.VI/17S8, in oblique lateral (J1) and upper (J2) views.
Fig. 1 in Cambrian microfossils from glacial erratics of King George Island, Antarctica
Fig. 1. Location map of King George Island (arrowed) in Antarctica (B) and the outcrops of Cambrian rocks (dark shaded) on the continent referred to in the text. The occurrence of glacio−marine formations (shaded) on the island (A) and the Early Miocene Cape Melville Formation and collection site (asterisk). Abbreviations: Mts., Mountains; Ra., Range; Gl., Glacier.
Fig. 17 in Cambrian microfossils from glacial erratics of King George Island, Antarctica
Fig. 17. Diagrammatic reconstruction of the Hadimopanella antarctica Wrona sclerite in oblique lateral (A) and dorsal (B) views; see also Wrona (1987). C. Energy dispersive spectrum (EDS) for the H. antarctica sclerite.
Fig. 2 in Cambrian microfossils from glacial erratics of King George Island, Antarctica
Fig. 2. Early Cambrian palaeogeograpic map (modified after Eldridge et al. 1997, Ushatinskaya 1996, and Brock et al. 2000), with the most important localities of small skeletal fossils showing distribution of selected genera. References for distribution data are in the text.
Fig. 13 in Cambrian microfossils from glacial erratics of King George Island, Antarctica
Fig. 13. Broken sclerite of Lapworthella fasciculata Conway Morris and Bengtson, ZPAL V.VI/30S1, erratic Me33. A. Ornamentation and growth ridges on the dorsal side, anterior view. B. Broken longitudinal section showing septa. C. The same sclerite, posterior view, showing fragment of flat area resembling duplicature. D. Enlargement of posterior side surface, showing growth ribs and interrib areas with longitudinal fluting.
Fig. 4 in Taxonomic revision of the king cobra Ophiophagus hannah (Cantor, 1836) species complex (Reptilia: Serpentes: Elapidae), with the description of two new species
Fig. 4. Plate XII from Cantor (1836), showing head in dorsal and ventral views, scale closeups and the posterior venter and tail of a syntype of Hamadryas hannah Cantor, 1836.
Fig. 6. Plate XVII, figures 8–9 in Taxonomic revision of the king cobra Ophiophagus hannah (Cantor, 1836) species complex (Reptilia: Serpentes: Elapidae), with the description of two new species
Fig. 6. Plate XVII, figures 8–9 from Schlegel (1837), showing head in dorsal and lateral views of lectotype of Naja bungarus Schlegel, 1837 (RMNH 1334).
Fig. 9 in Taxonomic revision of the king cobra Ophiophagus hannah (Cantor, 1836) species complex (Reptilia: Serpentes: Elapidae), with the description of two new species
Fig. 9. Head in dorsal, ventral and lateral views of respective type specimens of species of Ophiophagus Günther, 1864. A–C. Ophiophagus hannah (Cantor, 1836), neotype, ♀ (ZSI 8292). A. Dorsal view of head. B. Ventral view of head. C. Left lateral view of head. D–F. Ophiophagus bungarus (Schlegel, 1837) comb. nov., lectotype, ♂ (RMNH 1334). D. Dorsal view of head. E. Ventral view of head. F. Left lateral view of head. G–I. Ophiophagus kaalinga Gowri Shankar, Das & Ganesh sp. nov., holotype, ♂ (BNHS 3655). G. Dorsal view of head. H. Ventral view of head. I. Left lateral view of head. J–L. Ophiophagus salvatana Gowri Shankar, Das & Wüster sp. nov., holotype, ♂ (CAS 61329). J. Dorsal view of head. K. Ventral view of head. L. Left lateral view of head.
Fig. 1 in Taxonomic revision of the king cobra Ophiophagus hannah (Cantor, 1836) species complex (Reptilia: Serpentes: Elapidae), with the description of two new species
Fig. 1. Illustration of morphological characters and measurement landmarks used in the taxonomic descriptions of the Ophiophagus hannah species complex. Sketch by H.Vinod Kumar.
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OpenNeuro
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