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202 results for “Bon”
A green approach to achieve extended lubricity of tribological systems: car-bon nanoparticles as a case study
<p>The videos show the testing of Nickel samples using a <span>a custom-built ring-on-block prototype against a SAE 1045 counter body ring. The reference corresponds to the unreinforced Nickel, whereas the CNT sample corresponds to a laser-textured Ni/CNT composite with CNT-coating. <br></span></p> <p><span>A<span>n impressive noise reduction was detected during testing the laser-textured Ni/CNT composite with CNT-coating sample. Although the noise reduction was not quantified, it is evident that a qualitatively improvement in noise pollution can be appreciated.<br></span></span></p> <p> </p>
Couleur ivoire de la face remontant sur les aires paraoculaires nettement plus haut que sur l'aire supraclypéale in Les abeilles du genre Xylocopa Latreille (Hymenoptera : Apoidea : Apidae) au Burundi, de bons pollinisateurs des légumineuses
Couleur ivoire de la face remontant sur les aires paraoculaires nettement plus haut que sur l'aire supraclypéale
Plateau des tibias postérieurs situé sur le quart basal de la longueur du tibia; pilosité jaune vert; un peu plus petit (longueur 28 mm); propodeum plus abrupt in Les abeilles du genre Xylocopa Latreille (Hymenoptera : Apoidea : Apidae) au Burundi, de bons pollinisateurs des légumineuses
Plateau des tibias postérieurs situé sur le quart basal de la longueur du tibia; pilosité jaune vert; un peu plus petit (longueur 28 mm); propodeum plus abrupt
Chemical profiles of Leach's storm-petrel (Oceanodroma leucorhoa) feathers collected on Bon Portage Island, Nova Scotia, Canada
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Land use and land cover in communities along the Bons Sinais estuary, Mozambique
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Figure 5 from: Sabbatini Peverieri G, Mitroiu M-D, Bon M-C, Balusu R, Benvenuto L, Bernardinelli I, Fadamiro H, Falagiarda M, Fusu L, Grove E, Haye T, Hoelmer K, Lemke E, Malossini G, Marianelli L, Moore MR, Pozzebon A, Roversi P-F, Scaccini D, Shrewsbury P, Tillman G, Tirello P, Waterworth R, Talamas EJ (2019) Surveys of stink bug egg parasitism in Asia, Europe and North America, morphological taxonomy, and molecular analysis reveal the Holarctic distribution of Acroclisoides sinicus (Huang & Liao) (Hymenoptera, Pteromalidae). Journal of Hymenoptera Research 74: 123-151. https://doi.org/10.3897/jhr.74.46701
Figure 5 Boxplot of pair-wise molecular distances between (left) the Acroclisoides haplotypes evidenced in this study, (center) conspecific individuals in the Pteromalinae, (right) individuals from different species of the same genus in the Pteromalinae.
Figure 4 from: Sabbatini Peverieri G, Mitroiu M-D, Bon M-C, Balusu R, Benvenuto L, Bernardinelli I, Fadamiro H, Falagiarda M, Fusu L, Grove E, Haye T, Hoelmer K, Lemke E, Malossini G, Marianelli L, Moore MR, Pozzebon A, Roversi P-F, Scaccini D, Shrewsbury P, Tillman G, Tirello P, Waterworth R, Talamas EJ (2019) Surveys of stink bug egg parasitism in Asia, Europe and North America, morphological taxonomy, and molecular analysis reveal the Holarctic distribution of Acroclisoides sinicus (Huang & Liao) (Hymenoptera, Pteromalidae). Journal of Hymenoptera Research 74: 123-151. https://doi.org/10.3897/jhr.74.46701
Figure 4 Haplotype network of the 49 Acroclisoides sinicus barcodes analyzed in this study. Each circle corresponds to one haplotype; circle size gives the proportion of individuals belonging to the haplotype. The color of the circles represents the geographical origin. Numbers correspond to the haplotype numbers. Hash marks symbolize the number of mutations between haplotypes.
Figure 1 from: Sabbatini Peverieri G, Mitroiu M-D, Bon M-C, Balusu R, Benvenuto L, Bernardinelli I, Fadamiro H, Falagiarda M, Fusu L, Grove E, Haye T, Hoelmer K, Lemke E, Malossini G, Marianelli L, Moore MR, Pozzebon A, Roversi P-F, Scaccini D, Shrewsbury P, Tillman G, Tirello P, Waterworth R, Talamas EJ (2019) Surveys of stink bug egg parasitism in Asia, Europe and North America, morphological taxonomy, and molecular analysis reveal the Holarctic distribution of Acroclisoides sinicus (Huang & Liao) (Hymenoptera, Pteromalidae). Journal of Hymenoptera Research 74: 123-151. https://doi.org/10.3897/jhr.74.46701
Figure 1 Typical shapes of exit holes produced by egg parasitoids of Halyomorpha halys in Europe: Anastatus bifasciatus male (A) and female (B) (NE-Italy); Acroclisoides sinicus (C, D) (NE-Italy); Trissolcus mitsukurii (E) (NE-Italy) and Trissolcus japonicus (F) (Switzerland).
Figure 3 from: Sabbatini Peverieri G, Mitroiu M-D, Bon M-C, Balusu R, Benvenuto L, Bernardinelli I, Fadamiro H, Falagiarda M, Fusu L, Grove E, Haye T, Hoelmer K, Lemke E, Malossini G, Marianelli L, Moore MR, Pozzebon A, Roversi P-F, Scaccini D, Shrewsbury P, Tillman G, Tirello P, Waterworth R, Talamas EJ (2019) Surveys of stink bug egg parasitism in Asia, Europe and North America, morphological taxonomy, and molecular analysis reveal the Holarctic distribution of Acroclisoides sinicus (Huang & Liao) (Hymenoptera, Pteromalidae). Journal of Hymenoptera Research 74: 123-151. https://doi.org/10.3897/jhr.74.46701
Figure 3 Acroclisoides sinicus: paratype of A. solus ♀ (U.S.A.), habitus in lateral view (A); idem, head in frontal view (B); ♂ (Switzerland), habitus in lateral view (C); idem, head in frontal view (D).
Figure 2 from: Sabbatini Peverieri G, Mitroiu M-D, Bon M-C, Balusu R, Benvenuto L, Bernardinelli I, Fadamiro H, Falagiarda M, Fusu L, Grove E, Haye T, Hoelmer K, Lemke E, Malossini G, Marianelli L, Moore MR, Pozzebon A, Roversi P-F, Scaccini D, Shrewsbury P, Tillman G, Tirello P, Waterworth R, Talamas EJ (2019) Surveys of stink bug egg parasitism in Asia, Europe and North America, morphological taxonomy, and molecular analysis reveal the Holarctic distribution of Acroclisoides sinicus (Huang & Liao) (Hymenoptera, Pteromalidae). Journal of Hymenoptera Research 74: 123-151. https://doi.org/10.3897/jhr.74.46701
Figure 2 Acroclisoides sinicus, ♀ (Italy, Cordenons): habitus in dorso-lateral view (A); head in frontal view (B); head in dorsal view (C); fore wing (D); antennae (E); mesosoma in dorsal view (F); mesosoma in lateral view (G).
Figures 8-11 from: Ganjisaffar F, Talamas EJ, Bon MC, Perring TM (2020) First report and integrated analysis of two native Trissolcus species utilizing Bagrada hilaris eggs in California. Journal of Hymenoptera Research 80: 49-70. https://doi.org/10.3897/jhr.80.57024
Figures 8-11 Trissolcus utahensis, head, anterior view 8 DPI_FSCA00033239 (ex. B. hilaris) 9 FSCA 00033041 (ex. P. maculiventris) 10 FSCA 00000302 (ex. P. maculiventris) 11 FSCA 00033040 (Ex. P. maculiventris). Scale bars in millimeters.
Figure 3 from: Ganjisaffar F, Talamas EJ, Bon MC, Perring TM (2020) First report and integrated analysis of two native Trissolcus species utilizing Bagrada hilaris eggs in California. Journal of Hymenoptera Research 80: 49-70. https://doi.org/10.3897/jhr.80.57024
Figure 3 TCS COI haplotype network for the four clades of T. utahensis by fixing connection limits at 50 steps. Each haplotype is represented by a colored circle. Lines represent one mutational step between haplotypes, and dark circles represent unsampled haplotypes inferred from the data. Interrupted lines were used when haplotypes were separated by a long branch of more than 7 mutation steps.
Figures 23-25 from: Ganjisaffar F, Talamas EJ, Bon MC, Perring TM (2020) First report and integrated analysis of two native Trissolcus species utilizing Bagrada hilaris eggs in California. Journal of Hymenoptera Research 80: 49-70. https://doi.org/10.3897/jhr.80.57024
Figures 23-25 Trissolcus utahensis (FSCA 00091872, ex. B. hilaris) 23 head, anterior view 24 lateral habitus 25 head, mesosoma, metasoma, dorsal view. Scale bars in millimeters.
Figure 2 from: Ganjisaffar F, Talamas EJ, Bon MC, Perring TM (2020) First report and integrated analysis of two native Trissolcus species utilizing Bagrada hilaris eggs in California. Journal of Hymenoptera Research 80: 49-70. https://doi.org/10.3897/jhr.80.57024
Figure 2 The Bayesian 50% majority rule consensus tree inferred from the 56 CO1 sequences of the six Trissolcus species including T. hullensis and T. utahensis. Only posterior probabilities >90% are indicated on the nodes. The tree is rooted with the outgroup Trissolcus thyantae (GenBank MN615574). The scale bar corresponds to 0.1 estimated substitutions per site.
Figures 6-7 from: Ganjisaffar F, Talamas EJ, Bon MC, Perring TM (2020) First report and integrated analysis of two native Trissolcus species utilizing Bagrada hilaris eggs in California. Journal of Hymenoptera Research 80: 49-70. https://doi.org/10.3897/jhr.80.57024
Figures 6-7 Trissolcus cosmopeplae, holotype female (USNMENT00989096) 6 head and mesosoma, lateral view 7 head and mesosoma, dorsal view. Scale bars in millimeters.
Figure 1 from: Ganjisaffar F, Talamas EJ, Bon MC, Perring TM (2020) First report and integrated analysis of two native Trissolcus species utilizing Bagrada hilaris eggs in California. Journal of Hymenoptera Research 80: 49-70. https://doi.org/10.3897/jhr.80.57024
Figure 1 Survey locations are displayed in red dots. The black rectangle shows the Agricultural Operations of the University of California, Riverside, where most of our surveys were conducted. Five Trissolcus hullensis were recovered from an alfalfa field (33.96508°N, 117.34084°W), one Trissolcus utahensis was recovered from a squash field with mustard weeds (33.96611°N, 117.34230°W), and eleven T. utahensis were recovered from roadside mustard weeds (33.99105°N, 117.33360°W).
Figures 26-29 from: Ganjisaffar F, Talamas EJ, Bon MC, Perring TM (2020) First report and integrated analysis of two native Trissolcus species utilizing Bagrada hilaris eggs in California. Journal of Hymenoptera Research 80: 49-70. https://doi.org/10.3897/jhr.80.57024
Figures 26-29 Trissolcus utahensis (FSCA 00033042, ex. P. maculiventris) 26 head, anterior view 27 head and mesosoma, lateral view 28 head and mesosoma, ventrolateral view 29 lateral habitus. Scale bars in millimeters.
Figure 4-5 from: Ganjisaffar F, Talamas EJ, Bon MC, Perring TM (2020) First report and integrated analysis of two native Trissolcus species utilizing Bagrada hilaris eggs in California. Journal of Hymenoptera Research 80: 49-70. https://doi.org/10.3897/jhr.80.57024
Figure 4-5 4Trissolcus hullensis (FSCA 00091886), head, mesosoma, metasoma, dorsolateral view 5T. utahensis (FSCA 00000302), head, mesosoma, metasoma, dorsolateral view. Scale bars in millimeters.
Figures 20-22 from: Ganjisaffar F, Talamas EJ, Bon MC, Perring TM (2020) First report and integrated analysis of two native Trissolcus species utilizing Bagrada hilaris eggs in California. Journal of Hymenoptera Research 80: 49-70. https://doi.org/10.3897/jhr.80.57024
Figures 20-22 Trissolcus utahensis20 FSCA 00033239 (ex. B. hilaris), head, mesosoma, metasoma, dorsal view 21 FSCA 00033041 (ex. P. maculiventris), head, mesosoma, metasoma, dorsolateral view 22 FSCA 00033040 (ex. P. maculiventris), head, mesosoma, metasoma, dorsal view. Scale bars in millimeters.
Figures 16-19 from: Ganjisaffar F, Talamas EJ, Bon MC, Perring TM (2020) First report and integrated analysis of two native Trissolcus species utilizing Bagrada hilaris eggs in California. Journal of Hymenoptera Research 80: 49-70. https://doi.org/10.3897/jhr.80.57024
Figures 16-19 Trissolcus utahensis, head and mesosoma, ventrolateral view 16 DPI_FSCA00033239 (ex. B. hilaris) 17 FSCA 00033041 (ex. P. maculiventris) 18 FSCA 00000302 (ex. P. maculiventris) 19 FSCA 00033040 (e. P. maculiventris). Scale bars in millimeters.
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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.