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1,209 results for “eastern Australia”
Figure 9 in The Tumbarumba Basaltic Gem Field, New South Wales: In Relation to Sapphire-Ruby Deposits of Eastern Australia
Figure 9. (a,b) Comparison between trace element concentrations in theoretical Tumbarumba primary magmas, and calculated curves for non-modal batch partial melting. See text for explanation. Each curve represents a different combination of mantle type and bulk trace element composition. PM = primitive mantle (Sun & McDonough, 1989); MM = metasomatised mantle (sample WGBM 15, O'Reilly & Griffin, 1988). Curve increments are listed in the Key, as well as being shown on the diagrams. The method for calcu lating trace element compositions of "primary" magmas is detailed in the text, with mineral/melt partition coefficients for olivine an d cpx being obtained from: Ablay et al. (1998), Ewart & Chappell (1989), Kostopoulos & James (1992), McKenzie & O'Nions (1991), Nielsen (1998) and Panter et al. (1997). Source of partition coefficients used in the melting calculations are: all olivine, cpx, opx, garnet and spinel from Kostopoulos & James (1992), except for the REE (McKenzie & O'Nions 1991); all amphibole and kaersutite from Ionov et al. (1997), except REE for phlogopite (McKenzie & O'Nions, 1991).
Figure 8. Normalised incompatible element plots, Tumbarumba basalts. a in The Tumbarumba Basaltic Gem Field, New South Wales: In Relation to Sapphire-Ruby Deposits of Eastern Australia
Figure 8. Normalised incompatible element plots, Tumbarumba basalts. a—primary-near primary basanites (DR13820, 13835, 14650, 14662); b—primary alkali basalt (DR14639); c—mildly evolved basanites and alkali basalt (DR13828, 14641); d—primary olivine micro-dolerite (DR13822).
Figure 7 in The Tumbarumba Basaltic Gem Field, New South Wales: In Relation to Sapphire-Ruby Deposits of Eastern Australia
Figure 7. Sub-basaltic paleodrainage related to basalt lava exposures, Tumbarumba-Kiandra region (Yarrangobilly 1:100 000 sheet). Palaeochannels (thick lines) showing direction of drainage flow (arrows) are based on subbasaltic contours (thin lines) shown at 400 m contour intervals.
Figure 5 in The Tumbarumba Basaltic Gem Field, New South Wales: In Relation to Sapphire-Ruby Deposits of Eastern Australia
Figure 5. Chemical ratio variation diagram, Tumbarumba corundums. Types as for Fig. 3. TiO2/Ga2O3 against Fe2O3/Cr2O3.
Figure 30 in The Annelid Community of a Natural Deep-sea Whale Fall off Eastern Australia
Figure 30. Phylogeny of the Sphaerodoridae familybasedon Bayesiananalysisof the COI, 16S and 18S gene fragments. Numbersadjacent to nodes indicate posterior probabilities, and taxa for which sequences have been contributed by the present study are indicated in bold.
Figure 28 in The Annelid Community of a Natural Deep-sea Whale Fall off Eastern Australia
Figure 28. Osedax byronbayensis sp. nov. holotype AMW.53707. (A) Ethanol-preserved holotype showing majority of tube, scale bar is 1 mm; (B) detail of palp inside tube (arrowed), scale bar is 500 µm.
Figure 26 in The Annelid Community of a Natural Deep-sea Whale Fall off Eastern Australia
Figure 26 (facing page). Osedax waadjum sp. nov. (A) Living female specimen inside tube (NHMUK ANEA 2022.403), scale is 3 mm; (B) anterior of living specimen outside of tube (NHMUK ANEA 2022.403), scale is 1 mm; (C) posterior of preserved specimen showing boundary between palps and trunk (arrowed), NHMUKANEA 2022.402, scale is 1 mm; (D) posterior of preserved holotype specimen, AM W.53706, showing short oviduct emerging from top of trunk, scale is 500 µm; (E) posterior of specimen AM W.53706 showing alterative side of trunk where a small crinkled lobe is present, scale is 500 µm; (F) male specimen from tube of NHMUKANEA 2022.401, with inset showing detail of hooked chaetae (arrowed). Scale is 50 µm in main image and 25 µm in inset.
Figure 29 in The Annelid Community of a Natural Deep-sea Whale Fall off Eastern Australia
Figure 29. Sphaerodoropsis sp. (A) AM W.52205 Whole specimen scale bar 1 mm; (B) parapodia with digiform acicular lobe, scale bar is 50 µm; (C) parapodia with digiform acicular lobe and compound chaetae, scale bar is 20 µm; (D) compound chaetae with blades, scalebaris 20 µm.
Figure 24 in The Annelid Community of a Natural Deep-sea Whale Fall off Eastern Australia
Figure 24. Protodrilus cf. puniceus. (A) anterior end, scalebaris 100 µm; (B) anterior end, scalebaris 200 µm; (C) whole animal, scalebaris 200 µm.
Figure 23 in The Annelid Community of a Natural Deep-sea Whale Fall off Eastern Australia
Figure 23.?Pseudomystides sp., specimen NHMUKANEA 2022.409–411. (A) Photoofanethanol-preservedspecimen, scalebaris 200 µm; (B) light micrograph of prostomium and tentacular cirri of the first segment, scale bar is 75 µm; (C) light micrograph of compound spinigers, scale bar is 25 µm; (D) light micrograph of pygidium with anal cirri and papilla (arrow), scale bar is 100 µm.
Figure 22 in The Annelid Community of a Natural Deep-sea Whale Fall off Eastern Australia
Figure 22. Phylogeny of the genus Eumida (Phyllodocidae) based on Bayesian analysis of the COI gene only. Numbers adjacent to nodes indicate posterior probabilities, and taxa for which sequences have been contributed by the present study are indicated in bold.
Figure 21 in The Annelid Community of a Natural Deep-sea Whale Fall off Eastern Australia
Figure 21. Eumida cf. longicirrata. (A) Photo of a live specimen (NHMUK ANEA 2022.406), scale bar is 1 mm; (B) ventral aspect of the anterior end showing the prostomium and tentacular cirri (NHMUK ANEA 2022.407–408), scale bar is 250 µm; (C) fully everted proboscis (NHMUK ANEA 2022.404), scale bar is 750 µm; (D) light micrograph of mid-body parapodium (NHMUK ANEA 2022.404), scale bar is 200 µm; (E) light micrograph of heterogomph spinigers (NHMUK ANEA 2022.404), scale bar is 50 µm; (F) light micrograph of pygidium missing one anal cirrus (NHMUK ANEA 2022.406), scale bar is 250 µm.
Figure 19 in The Annelid Community of a Natural Deep-sea Whale Fall off Eastern Australia
Figure 19. Phylogeny of the Orbiniidae family based on Bayesian analysis of a combined dataset of the genes COI, 16S and 18S. Numbers adjacent to nodes indicate posterior probabilities, and taxa for which sequences have been contributed by the present study are indicated in bold.
Figure 20 in The Annelid Community of a Natural Deep-sea Whale Fall off Eastern Australia
Figure 20. Orbiniella sp. specimen NHMUK.2022.431. (A) Preserved specimen in lateral view, scale bar is 1 mm; (B) branchiae from posterior segments, scale bar is 250 µm; (C) example of crenulated capillaries, scale bar is 25 µm; (D) example of spines, scale bar is 25 µm; (E) juveniles (NHMUKANEA 2022.421–430), scalebaris 500 µm.
Figure 18 in The Annelid Community of a Natural Deep-sea Whale Fall off Eastern Australia
Figure 18. Orbiniellajamesi sp. nov. (A) Live specimen (holotype AMW.53705), scale is 1 mm; (B) preserved specimen (holotype AM W.53705) in ventro-lateral view; (C) prostomium in dorsal view, NHMUKANEA 2023.1201; (D) anterior parapodiumwith postchaetal lobe (holotype AMW.53705), scale bar is 100 µm; (E) mid-body neuropodial postchaetal lobe, specimen NHMUKANEA 2023.1201, scale bar is 25 µm; (F) small ovoid branchiae, specimen NHMUKANEA 2023.1201, scale bar is 100 µm; (G) elongated strap-like branchiae, specimen NHMUKANEA 2023.1201, scale bar is 100 µm; (H) chaetal types (crenulated capillaries and short acicular spines) of anterior parapodia, scale is 50 µm. Abbreviations: as, acicular spines; cc, crenulated capillaries.
Figure 16 in The Annelid Community of a Natural Deep-sea Whale Fall off Eastern Australia
Figure 16. Phylogeny of the Nereididae family based on Bayesian analysis of a combined dataset of the genes COI, 16S and 18S. Numbers adjacent to nodes indicate posterior probabilities, and taxa for which sequences have been contributed by the present study are indicated in bold.
Figure 31 in The Annelid Community of a Natural Deep-sea Whale Fall off Eastern Australia
Figure 31. Phascolosoma sp. fragments. (A) AMW.52203 anterior fragment, scalebaris 1 mm; (B) AMW.52201 anterior fragment, scale bar is 1 mm; (C) AM W.52202 fragment, scale bar is 1 mm; (D) AM W.52203 anterior fragment, scale bar is 1 mm.
Figure 13 in The Annelid Community of a Natural Deep-sea Whale Fall off Eastern Australia
Figure 13. Vrijenhoekia timoharai sp. nov. holotype AM W.53702. (A) Ethanol-preserved entire specimen (prostomium features have been outlined in grey for clarity), scale bar is 1 mm; (B) dorsal view of prostomium stained with Shirlastain, scale bar is 500 µm; (C) ventral view of partially everted pharynx stained with Shirlastain, scale bar is 1 mm; (D) parapodium, scale bar is 200 µm; (E) neurochaetae, scale bar is 30 µm; (F) dorsal view of pygidium, scale bar is 500 µm. Abbreviations: a, antennae; ft, facial tubercle; ma, median antennae; no, nuchal organ; pp, palpophore; ps, palpostyle; dc, dorsal cirri; dcp, dorsal cirriphore; nra, neuroacicula; vc, ventral cirri; chb, chaetal blade; chs, chaetal shaft.
Figure 14 in The Annelid Community of a Natural Deep-sea Whale Fall off Eastern Australia
Figure 14. Neanthes adriangloveri sp. nov., holotype AM W.53703. (A) Live specimen, scale bar is 5 mm; (B) detail of prostomium, scale bar is 500 µm; (C) anterior parapodium (number 5), scale bar is 200 µm; (D) mid-body parapodium (number 35), scale bar is 200 µm; (E) parapodium from near end of incomplete holotype specimen (number 48), scale bar is 200 µm; (F) notospinigers (parapodium number 5), scalebaris 20 µm; (G) subneurofalcigers (parapodium number 5), scalebaris 20 µm; (H) supraneurofalcigers (parapodium number 5), scale bar is 20 µm; (I) supraneurofalcigers (parapodium number 35), scale bar is 20 µm; (J) neuropodium of parapodium number 48, scalebaris 100 µm.
Figure 12 in The Annelid Community of a Natural Deep-sea Whale Fall off Eastern Australia
Figure 12. Phylogeny for the Hesionidae, Microphthalmidae and Chrysopetalidae families based on Bayesian analysis of a combined dataset of the genes COI, 16S and 18S. Numbers adjacent to nodes indicate posterior probabilities, and taxa for which sequences have been contributed by the present study are indicated in bold.
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These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
Allen Brain Atlas
Allen Brain Atlas is an Allen Institute collection of brain map atlases, datasets, APIs, and analysis tools covering mouse, human, and non-human primate brain resources.
Annotated Behaviour and Observability Dataset (ABODe)
ABODe is a University of Edinburgh DataShare dataset for behavior classification in group-housed mice using home-cage video, identities, bounding boxes, ground-plate positions, and annotator labels.
DANDI Archive for NWB datasets
DANDI is a BRAIN Initiative archive for publishing and sharing neurophysiology data, including electrophysiology, optophysiology, and behavioral data packaged as NWB and related standards.
International Brain Laboratory public data
The International Brain Laboratory public data releases expose standardized mouse decision-making experiments, including Neuropixels recordings, widefield calcium imaging, behavior, and session metadata accessed through the ONE API.
OpenNeuro
OpenNeuro is a free, open platform for sharing neuroimaging datasets, with public search, dataset pages, and download paths for web, S3, DataLad, and the OpenNeuro CLI.