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40 results for “hyporheic zone”

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zenodo32/100

FIGURE 6. Yacana ventania n. gen. n in A new genus and species of Ingolfiellidae (Crustacea, Ingolfiellida) from the hyporheic zone in the Sierra de la Ventana, and its biogeographic relevance

FIGURE 6. Yacana ventania n. gen. n. sp. A. Left pereiopod 6, paratype female. B. Detail of merus and carpus of left pereiopod 6, paratype female. C. Detail of claw of pereiopod 6, paratype female. D. Left pereiopod 7, paratype female. E. Setation and spines of merus and carpus of female´s pereiopod 7. F. Claw of female's pereiopod 7. Scale bars: Scale bars: 50 µm. G. Left pereiopod 7, allotype male. H. Detail of the arrangement of the setae of male pereiopod 7. I. Claw of male's pereiopod 7. J. Sensory feature of seta, indicated with an arrow on pereiopods 7 of the female and male specimens. Scale bars: 100 µm.

opennotspecifiedDec 2017View details →
zenodo32/100

FIGURE 5. Yacana ventania n. gen. n in A new genus and species of Ingolfiellidae (Crustacea, Ingolfiellida) from the hyporheic zone in the Sierra de la Ventana, and its biogeographic relevance

FIGURE 5. Yacana ventania n. gen. n. sp. A. Left pereiopod 3, paratype female. B. Detail of claw of pereiopod 3, paratype female. C. Right pereiopod 4, paratype male. D. Detail of claw of pereiopod 4, paratype male. E. Left pereiopod 5, paratype female. F. Detail of claw of pereiopod 5, paratype female. Scale bars: Scale bars: 50 µm.

opennotspecifiedDec 2017View details →
zenodo32/100

FIGURE 11 in Two new species of Pseudocrangonyx (Amphipoda: Pseudocrangonyctidae) from the hyporheic zones in South Korea

FIGURE 11. Maximum likelihood and Bayesian inference analyses based on nuclear 28S rRNA and mitochondrial COI sequences. Numbers on nodes represent bootstrap values for maximum likelihood and Bayesian posterior probabilities.

opennotspecifiedApr 2024View details →
zenodo32/100

FIGURE 7 in Two new species of Pseudocrangonyx (Amphipoda: Pseudocrangonyctidae) from the hyporheic zones in South Korea

FIGURE 7. Pseudocrangonyx danyangensis sp. nov., holotype female, NNIBRIV69645. A–G, I, J; paratype male, NNIBRIV69646, H. A, antenna 1, medial view; B, accessory flagellum of antenna 1, medial view; C, antenna 2, medial view; D, upper lip, posterior view; E, left mandible, medial view; F, incisor, lacinia mobilis of right mandible, medial view; G, lower lip, dorsal view; H, maxilla 1, dorsal view; I, maxilla 2, dorsal view; J, maxilliped, ventral view.

opennotspecifiedApr 2024View details →
zenodo32/100

FIGURE 1 in Two new species of Pseudocrangonyx (Amphipoda: Pseudocrangonyctidae) from the hyporheic zones in South Korea

FIGURE 1. Map showing the collection locality of the specimens examined in this study. A, type locality (Seomjingang River) of Pseudocrangonyx seomjinensis sp. nov.; B, type locality (Namhangang River) of Pseudocrangonyx danyangensis sp. nov..

opennotspecifiedApr 2024View details →
zenodo32/100

FIGURE 10 in Two new species of Pseudocrangonyx (Amphipoda: Pseudocrangonyctidae) from the hyporheic zones in South Korea

FIGURE 10. Pseudocrangonyx danyangensis sp. nov., paratype male, NNIBRIV69646. A, antenna 1, medial view; B, accessory flagellum of antenna 1, medial view; C, antenna 2, lateral view; D, gnathopod 1, lateral view; E, gnathopod 2, lateral view; F, uropod 1, ventral view; G, uropod 2, ventral view; H, uropod 3, dorsal view; I, telson, ventral view.

opennotspecifiedApr 2024View details →
zenodo32/100

FIGURE 9 in Two new species of Pseudocrangonyx (Amphipoda: Pseudocrangonyctidae) from the hyporheic zones in South Korea

FIGURE 9. Pseudocrangonyx danyangensis sp. nov., holotype female, NNIBRIV69645. A–C, Pleopod 1–3, lateral view; D, uropod 1, ventral view; E, uropod 2, dorsal view; F, uropod 3, dorsal view; G, telson, ventral view.

opennotspecifiedApr 2024View details →
zenodo32/100

FIGURE 8 in Two new species of Pseudocrangonyx (Amphipoda: Pseudocrangonyctidae) from the hyporheic zones in South Korea

FIGURE 8. Pseudocrangonyx danyangensis sp. nov., holotype female, NNIBRIV69645. A, gnathopod 1, lateral view; B, gnathopod 2, lateral view; C, pereopod 3, lateral view; D, dactylus of pereopod 3, lateral view; E, pereopod 4, lateral view; F, dactylus of pereopod 4, lateral view; G, pereopod 5, lateral view; H, dactylus of pereopod 5, lateral view; I, pereopod 6, lateral view; J, dactylus of pereopod 6, lateral view; K, pereopod 7, lateral view; L, dactylus of pereopod 7, lateral view.

opennotspecifiedApr 2024View details →
zenodo32/100

FIGURE 6 in Two new species of Pseudocrangonyx (Amphipoda: Pseudocrangonyctidae) from the hyporheic zones in South Korea

FIGURE 6. Pseudocrangonyx seomjinensis sp. nov., paratype male, NNIBRIV69643. A, antenna 1, medial view; B, accessory flagellum of antenna 1, medial view; C, antenna 2, medial view; D, calceolus of antenna 2, medial view; E, gnathopod 1, lateral view; F, gnathopod 2, lateral view; G, uropod 1, dorsal view; H, uropod 2, dorsal view; I, uropod 3, ventral view; J, telson, dorsal view.

opennotspecifiedApr 2024View details →
zenodo32/100

FIGURE 3 in Two new species of Pseudocrangonyx (Amphipoda: Pseudocrangonyctidae) from the hyporheic zones in South Korea

FIGURE 3. Pseudocrangonyx seomjinensis sp. nov., holotype female, NNIBRIV69642, A–C, G–J; paratype male, NNIBRIV69643, D; paratype female, NNIBRIV69641, E, F. A, antenna 1, medial view; B, accessory flagellum of antenna 1, medial view; C, antenna 2, lateral view; D, upper lip, posterior view; E, right mandible, medial view; F, incisor, lacinia mobilis of left mandible, medial view; G, lower lip, dorsal view; H, maxilla 1, dorsal view; I, maxilla 2, ventral view; J, maxilliped, ventral view.

opennotspecifiedApr 2024View details →
zenodo32/100

FIGURE 5 in Two new species of Pseudocrangonyx (Amphipoda: Pseudocrangonyctidae) from the hyporheic zones in South Korea

FIGURE 5. Pseudocrangonyx seomjinensis sp. nov., holotype female, NNIBRIV69642. A–C, pleopod 1–3, lateral view; D, uropod 1, ventral view; E, uropod 2, ventral view; F, uropod 3, dorsal view; G, telson, ventral view.

opennotspecifiedApr 2024View details →
zenodo32/100

FIGURE 2 in Two new species of Pseudocrangonyx (Amphipoda: Pseudocrangonyctidae) from the hyporheic zones in South Korea

FIGURE 2. Habitus of two new species. A, Pseudocrangonyx seomjinensis sp. nov.; B, Pseudocrangonyx danyangensis sp. nov..

opennotspecifiedApr 2024View details →
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FIGURE 4 in Two new species of Pseudocrangonyx (Amphipoda: Pseudocrangonyctidae) from the hyporheic zones in South Korea

FIGURE 4. Pseudocrangonyx seomjinensis sp. nov., holotype female, NNIBRIV69642. A, gnathopod 1, lateral view; B, gnathopod 2, lateral view; C, pereopod 3, lateral view; D, dactylus of pereopod 3, lateral view; E, pereopod 4, lateral view; F, dactylus of pereopod 4, lateral view; G, pereopod 5, lateral view; H, dactylus of pereopod 5, lateral view; I, pereopod 6, lateral view; J, dactylus of pereopod 6, lateral view; K, pereopod 7, lateral view.

opennotspecifiedApr 2024View details →
zenodo32/100

Transport of Phosphorus in the Hyporheic Zone

<p>The purpose of this study is to investigate the transport and distribution of phosphorus in the hyporheic zone by means of laboratory experiments and numerical simulations.</p>

opencc-by-4.0Mar 2022View details →
zenodo32/100

FIGURE 3 in Hyporheic zone, a blind spot: Discovery of the larva of Kisaura (Trichoptera: Philopotamidae) from Japan

FIGURE 3. Maximum Likelihood tree of Japanese Philopotamidae based on mtDNA barcode region COI. Scale bar indicates the genetic distance of 0.05. Numbers on the internodes represent the bootstrap values. Sequences for Kisaura minakawai Arefina 2005 and for larvae of K. minakawai are identified with an orange line and an orange box, respectively.

opennotspecifiedMay 2022View details →
zenodo32/100

FIGURES 5A–5I in Hyporheic zone, a blind spot: Discovery of the larva of Kisaura (Trichoptera: Philopotamidae) from Japan

FIGURES 5A–5I. Heads of Dolophilodes spp. and Kisaura minakawai larvae, right lateral. 5A, D. auriculata Martynov 1933 (from Ashibetsu-shi, Hokkaidô, Japan); 5B, D. nomugiensis (Kobayashi 1980) (from Mukawa-chô, Hokkaidô, Japan); 5C, D. commata (Kobayashi 1980)(from Tsushima, Japan); 5D, D. shinboensis (Kobayashi 1980) (from Chitose-shi, Hokkaidô, Japan); 5E, D. japonica (Banks 1906) (from Maniwa-shi, Okayama, Japan); 5F, D. dilatata Kuhara 2005 (from Daisen-shi, Akita, Japan); 5G, D. iroensis (Kobayashi 1980)(from Takinoue-chô, Hokkaidô, Japan); 5H, D. angustata Kuhara 2005 (from Nichinan-chô, Tottori, Japan); 5I, K. minakawai Arefina 2005 (in Arefina &amp; Armitage 2005) (from Nachikatsuura-chô, Wakayama, Japan). Scale bar = 1 mm.

opennotspecifiedMay 2022View details →
zenodo32/100

FIGURES 4A–4G. Kisaura minakawai Arefina 2005 in Hyporheic zone, a blind spot: Discovery of the larva of Kisaura (Trichoptera: Philopotamidae) from Japan

FIGURES 4A–4G. Kisaura minakawai Arefina 2005, final instar larva (from Wakayama). 4A, habitus, left lateral; 4B, head and prothorax, right lateral; 4C, head and prothorax, dorsal; 4D, head, ventral; 4E, mandibles, dorsal, left (4Ea) and right (4Eb); 4F, right and left mandibles, respectively, outer right lateral (4Fa) and outer left lateral (4Fb); 4G, left legs, in posterolateral view, fore- (4Ga), mid- (4Gb), and hind legs (4Gc). Scale bar = 1 mm.

opennotspecifiedMay 2022View details →
zenodo32/100

FIGURES 1A–1C. 1A in Hyporheic zone, a blind spot: Discovery of the larva of Kisaura (Trichoptera: Philopotamidae) from Japan

FIGURES 1A–1C. 1A, parts of the "T-shaped device" for collecting hyporheic invertebrate fauna, without the pump; 1B, an image of the "T-shaped device" in use; 1C, pictoral instructions for use of the "T-shaped device."

opennotspecifiedMay 2022View details →
zenodo32/100

A numerical exploration of hyporheic zone solute transport behavior estimated from electrical resistivity inversions

<p>1). We run the Comsol model (ER3D_cs300ws6ds20_Zxl1.m) with an electrical push-pull loop, and then the voltage at every electrode of each time is printed to model_name.out and resistivity to model_name.ro.&nbsp;</p> <p>2). superposition.m is used to create final voltage results for later use in R2 inversions.</p> <p>3). postproc_c_dual.m is used to create the pixel breakthrough curves of the simulated results.</p> <p>4). plot_c_comsol.m read the resistivity result from step (1), convert the resistivity to bulk EC, and plot the bulk EC contour map.&nbsp;</p> <p>5). protocal_pc.m is used to take the voltages, add some random noise, and make the input files and batch scripts for R2.</p> <p>6). runr2.bat and runr2_TL.bat are used to generate inverted bulk EC.</p> <p>7). plot_C_r2_dual.m is used to plot the inversed bulk EC.</p>

opencc-by-4.0May 2023View details →
zenodo28/100

FIGURE 2. A in Hyporheic zone, a blind spot: Discovery of the larva of Kisaura (Trichoptera: Philopotamidae) from Japan

FIGURE 2. A hole dug in the stream bank for a Karaman-Chappuis sample.

opennotspecifiedMay 2022View details →

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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.

dandi-nwb
electrophysiologyopenPublished Dandiset metadata and archive endpoints are available through the production DANDI API.
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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.

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behavioral-neuroscienceopenPublic sessions can be searched and loaded from the IBL public data server through ONE.
Last verified 2026-04-29Open record

OpenNeuro

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openneuro
neuroscienceopenPublished datasets are available on demand over the internet.
Last verified 2026-04-29Open record