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131 results for “Surface Structure”

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zenodo28/100

Figures 23-26 from: Akkari N, Enghoff H (2011) On some surface structures of potential taxonomic importance in families of the suborders Polydesmidea and Dalodesmidea (Polydesmida, Diplopoda). ZooKeys 156: 1-24. https://doi.org/10.3897/zookeys.156.2134

Figures 23-26 - The structure of the limbus in 23 Amphitomeus attemsi (Oniscodesmidae) 24 cyrtodesmid sp. (Cyrtodesmidae) 25 Elassystremma sp. (Ammodesmidae) 26 Elythesmus enghoffi (Cryptodesmidae). Abbreviations: L limbus, lo lobe, sp spike, pa: palette-like lobe.

opencc-by-4.0Dec 2011View details →
zenodo28/100

Figures 18-22 from: Akkari N, Enghoff H (2011) On some surface structures of potential taxonomic importance in families of the suborders Polydesmidea and Dalodesmidea (Polydesmida, Diplopoda). ZooKeys 156: 1-24. https://doi.org/10.3897/zookeys.156.2134

Figures 18-22 - The structure of the limbus in 18 Prosopodesmus jacobsoni (Haplodesmidae) 19 Rharodesmus tabarkensis (Pyrgodesmidae) 20 Cynedesmus sp. (Pyrgodesmidae) 21 Tonodesmus sp. (Pyrgodesmidae) 22 Cryptocorypha ornata (Pyrgodesmidae). Abbreviations: L limbus, lo lobe, pa palette-like lobe, sp spike, t tooth-like lobe.

opencc-by-4.0Dec 2011View details →
zenodo28/100

Figures 14-17 from: Akkari N, Enghoff H (2011) On some surface structures of potential taxonomic importance in families of the suborders Polydesmidea and Dalodesmidea (Polydesmida, Diplopoda). ZooKeys 156: 1-24. https://doi.org/10.3897/zookeys.156.2134

Figures 14-17 - Fine sculpture of the prozonite in 14 Ophiodesmus albonanus (Macrosternodesmidae) 15 nearctodesmid sp. (Nearctodesmidae) 16 Solaenaulus butteli (Opisotretidae) 17 Napocodesmus endogeus (Trichopolydesmidae). Abbreviations: a anterior part of the prozonite, b posterior part of the prozonite, r ridge.

opencc-by-4.0Dec 2011View details →
zenodo28/100

Figures 7-9 from: Akkari N, Enghoff H (2011) On some surface structures of potential taxonomic importance in families of the suborders Polydesmidea and Dalodesmidea (Polydesmida, Diplopoda). ZooKeys 156: 1-24. https://doi.org/10.3897/zookeys.156.2134

Figures 7-9 - Fine sculpture of the prozonite in pyrgodesmid species. 7 Tonodesmus sp. 8 Cynedesmus sp. 9 Cryptocorypha ornata. Abbreviations: a anterior part of the prozonite, b posterior part of the prozonite, r ridge, s spherical knobs.

opencc-by-4.0Dec 2011View details →
zenodo28/100

Figures 50-51 from: Akkari N, Enghoff H (2011) On some surface structures of potential taxonomic importance in families of the suborders Polydesmidea and Dalodesmidea (Polydesmida, Diplopoda). ZooKeys 156: 1-24. https://doi.org/10.3897/zookeys.156.2134

Figures 50-51 - 50 Family-level cladogram of suborders Polydesmidea + Dalodesmidea according to Simonsen (1990). Haplodesmidae here corresponds to Haplodesmidae + Doratodesmidae on Simonsen's original cladogram; families not studied here are marked with asterisks 51 Branching diagrams (not cladograms) based on Fig. 50 but modified to illustrate the distribution of the different states of the three studied characters: A. presence of knobs on the anterior part of the prozonite, B. shape of the limbus, C. presence of intercalary micro-scutes on the metazonites (see Appendix for character states).

opencc-by-4.0Dec 2011View details →
zenodo28/100

Figures 1-6 from: Akkari N, Enghoff H (2011) On some surface structures of potential taxonomic importance in families of the suborders Polydesmidea and Dalodesmidea (Polydesmida, Diplopoda). ZooKeys 156: 1-24. https://doi.org/10.3897/zookeys.156.2134

Figures 1-6 - Fine sculpture of the prozonite in the families Ammodesmidae, Cryptodesmidae, Cyrtodesmidae, Haplodesmidae, Oniscodesmidae and Pyrgodesmidae 1 Elassystremma sp. 2 Elythesmus enghoffi, 3 cyrtodesmid sp. 4 Prosopodesmus jacobsoni 5 Amphitomeus attemsi 6 Rharodesmus tabarkensis. Abbreviations: a anterior part of the prozonite, b posterior part of the prozonite, r ridge, s spherical knobs.

opencc-by-4.0Dec 2011View details →
zenodo28/100

Figures 52-53 from: Akkari N, Enghoff H (2011) On some surface structures of potential taxonomic importance in families of the suborders Polydesmidea and Dalodesmidea (Polydesmida, Diplopoda). ZooKeys 156: 1-24. https://doi.org/10.3897/zookeys.156.2134

Figures 52-53 - Prozonite and limbus in Aporodesmus sp. (Cryptodesmidae) 52 Prozonite fine sculpture 53 The limbus. Abbreviations: a anterior part of the prozonite, b posterior part of the prozonite, L limbus, le dentate leaf-shaped element of the limbus, r ridge, sp spike.

opencc-by-4.0Dec 2011View details →
zenodo28/100

Figures 10-13 from: Akkari N, Enghoff H (2011) On some surface structures of potential taxonomic importance in families of the suborders Polydesmidea and Dalodesmidea (Polydesmida, Diplopoda). ZooKeys 156: 1-24. https://doi.org/10.3897/zookeys.156.2134

Figures 10-13 - Fine sculpture of the prozonite in 10 Fuhrmannodesmus lividus (Fuhrmannodesmidae) 11 Gyrophallus sp. (Fuhrmannodesmidae) 12 Propolydesmus laevidentatus (Polydesmidae) 13 Icosidesmus sp. (Dalodesmidae). Abbreviations: a anterior part of the prozonite, b posterior part of the prozonite, r ridge.

opencc-by-4.0Dec 2011View details →
zenodo28/100

Figures 44-49 from: Akkari N, Enghoff H (2011) On some surface structures of potential taxonomic importance in families of the suborders Polydesmidea and Dalodesmidea (Polydesmida, Diplopoda). ZooKeys 156: 1-24. https://doi.org/10.3897/zookeys.156.2134

Figures 44-49 - Ozopores 44 Rharodesmus tabarkensis (Pyrgodesmidae) 45 Tonodesmus sp. (Pyrgodesmidae) 46 Elassystremma sp. (Ammodesmidae) 47 Propolydesmus laevidentatus (Polydesmidae) 48 Gyrophallus sp. (Fuhrmannodesmidae) 49 Corypholophus sp. (Opisotretidae).

opencc-by-4.0Dec 2011View details →
zenodo28/100

Figures 42-43 from: Akkari N, Enghoff H (2011) On some surface structures of potential taxonomic importance in families of the suborders Polydesmidea and Dalodesmidea (Polydesmida, Diplopoda). ZooKeys 156: 1-24. https://doi.org/10.3897/zookeys.156.2134

Figures 42-43 - Cuticular outgrowths 42 Rharodesmus tabarkensis (Pyrgodesmidae) 43 Elassystremma sp. (Ammodesmidae).

opencc-by-4.0Dec 2011View details →
dryad28/100

Data from: Jumping without slipping: leafhoppers (Hemiptera: Cicadellidae) possess special tarsal structures for jumping from smooth surfaces

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publicApr 2018View details →
dryad28/100

Data from: Study on surface settlement and structural deformation for large span subway station using a new pre-supporting system

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publicJan 2019View details →
dryad28/100

Data from: The influence of cactus spine surface structure on puncture performance and anchoring ability is tuned for ecology

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publicNov 2018View details →
dryad28/100

Data from: Mechanistic insights into landscape genetic structure of two tropical amphibians using field-derived resistance surfaces

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publicDec 2014View details →
dryad28/100

Data from: Structure of the rare archaeal biosphere and seasonal dynamics of active ecotypes in surface coastal waters

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publicApr 2013View details →
dryad28/100

Data from: Water-repellent plant surface structure induced by gall-forming insects for waste management

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publicSep 2018View details →
geo24/100

In Situ Structure of Intestinal Apical Surface Reveals Nanovilli on Microvilli

GEO Series GSE167859. Caenorhabditis elegans. 1 samples. Type: Expression profiling by high throughput sequencing.

openGEO-OpenApr 2021View details →
geo24/100

Liquid-infused structured titanium surfaces for dental implants: antiadhesive mechanism to repel bacterial biofilms

GEO Series GSE129981. Streptococcus oralis. 11 samples. Type: Expression profiling by high throughput sequencing.

openGEO-OpenMay 2020View details →
dryad24/100

Data from: Insect adhesion on rough surfaces: analysis of adhesive contact of smooth and hairy pads on transparent micro-structured substrates

Insect climbing footpads are able to adhere to rough surfaces, but the details of this capability are still unclear. To overcome experimental limitations of randomly rough, opaque surfaces, we fabricated transparent test substrates containing square arrays of 1.4 µm diameter pillars, with variable height (0.5 and 1.4 µm) and spacing (from 3 to 22 µm). Smooth pads of cockroaches (Nauphoeta cinerea) made partial contact (limited to the tops of the structures) for the two densest arrays of tall pillars, but full contact (touching the substrate in between pillars) for larger spacings. The transition from partial to full contact was accompanied by a sharp increase in shear forces. Tests on hairy pads of dock beetles (Gastrophysa viridula) showed that setae adhered between pillars for larger spacings, but pads were equally unable to make full contact on the densest arrays. The beetles' shear forces similarly decreased for denser arrays, but also for short pillars and with a more gradual transition. These observations can be explained by simple contact models derived for soft uniform materials (smooth pads) or thin flat plates (hairy-pad spatulae). Our results show that microstructured substrates are powerful tools to reveal adaptations of natural adhesives for rough surfaces.

opencc-zeroDec 2013View details →
zenodo24/100

Internal tides vertical structure and steric sea surface height signature south of New Caledonia revealed by glider observations

<p>Data to reproduce the figures of the manuscript <em>Internal tides vertical structure and steric sea surface height signature south of New Caledonia revealed by glider observations</em>, accepted for publication in Ocean Science.</p>

opencc-by-4.0Nov 2023View details →

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Allen Brain Atlas

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DANDI Archive for NWB datasets

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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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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