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500 results for “pitting”
FIGURE 5 in A taxonomic revision of the South Asian hump-nosed pit vipers (Squamata: Viperidae: Hypnale)
FIGURE 5. Hypnale nepa: a, iconotype, male, reproduced from Seba (1734); b, WHT 6515, neotype, male, 367.0 mm SVL, Agra Arboretum, Agrapatana, Sri Lanka; c, topotypical specimen showing different coloration, not preserved.
FIGURE 9 in A taxonomic revision of the South Asian hump-nosed pit vipers (Squamata: Viperidae: Hypnale)
FIGURE 9. Hypnale sp. 'amal': a, WHT 7140, male, 325.0 mm SVL; b, collection locality: a home garden at Wataraka, Galle, Sri Lanka.
FIGURE 8 in A taxonomic revision of the South Asian hump-nosed pit vipers (Squamata: Viperidae: Hypnale)
FIGURE 8. Hypnale sp. 'amal', WHT 7140, male, 325.0 mm SVL: a, b,c, lateral, dorsal and ventral aspects respectively of head; d, dorsal view of paravertebral scale; e, medial view of right palatine; and f, distribution in Sri Lanka.
FIGURES 40–41 in Six new Dinotrema species (Hymenoptera, Braconidae) from Spain, with prescutellar pit and medially sculptured propodeum
FIGURES 40–41. Dinotrema enanum sp. nov. (female). 40. Metasoma and ovipositor, lateral view. 41. Fore and hind wings.
FIGURES 26–27 in Six new Dinotrema species (Hymenoptera, Braconidae) from Spain, with prescutellar pit and medially sculptured propodeum
FIGURES 26–27. Dinotrema broadi sp. nov. (female). 26. Metasoma and ovipositor. 27. Fore and hind wings.
FIGURES 2–7 in Six new Dinotrema species (Hymenoptera, Braconidae) from Spain, with prescutellar pit and medially sculptured propodeum
FIGURES 2–7. Dinotrema achterbergi sp. nov. (female) 2. Habitus, lateral view. 3. Head, lateral view. 4. Mandible. 5. Antenna. 6. Head, dorsal view. 7. Mesosoma, lateral view.
FIGURES 60–65 in Six new Dinotrema species (Hymenoptera, Braconidae) from Spain, with prescutellar pit and medially sculptured propodeum
FIGURES 60–65. Dinotrema munki sp. nov. (female). 60. Head, dorsal view. 61. Mesosoma, lateral view. 62. Mesoscutum. 63. Propodeum. 64. Hind leg. 65. First metasomal tergite.
FIGURES 20–25 in Six new Dinotrema species (Hymenoptera, Braconidae) from Spain, with prescutellar pit and medially sculptured propodeum
FIGURES 20–25. Dinotrema broadi sp. nov. (female). 20. Head, dorsal view. 21. Mesosoma, lateral view. 22. Mesonotum. 23. Propodeum. 24. First metasomal tergite. 25. Hind leg.
FIGURES 74–79 in Six new Dinotrema species (Hymenoptera, Braconidae) from Spain, with prescutellar pit and medially sculptured propodeum
FIGURES 74–79. Dinotrema pappi sp. nov. (female). 74. Mesonotum. 75. Propodeum. 76. Hind leg. 77. First metasomal tergite. 78. Metasoma and ovipositor, lateral view. 79. Fore wing.
FIGURES 34–39 in Six new Dinotrema species (Hymenoptera, Braconidae) from Spain, with prescutellar pit and medially sculptured propodeum
FIGURES 34–39. Dinotrema enanum sp. nov. (female). 34 Head, subdorsal view. 35. Mesosoma, lateral view. 36. Mesonotum. 37. Propodeum. 38. Hind leg. 39. First metasomal tergite.
FIGURES 14–19 in Six new Dinotrema species (Hymenoptera, Braconidae) from Spain, with prescutellar pit and medially sculptured propodeum
FIGURES 14–19. Dinotrema broadi sp. nov. (14, 16–19, female; 15, male). 14, 15. Habitus, lateral view. 16. Head, anterolateral view. 17. Mandible. 18. Antenna. 19. Basal segments of antenna.
FIGURES 48–53 in Six new Dinotrema species (Hymenoptera, Braconidae) from Spain, with prescutellar pit and medially sculptured propodeum
FIGURES 48–53. Dinotrema fischerianum sp. nov. (female). 48. Mesonotum. 49. Propodeum. 50. Hind leg. 51. First metasomal tergite. 52. Metasoma and ovipositor, lateral view. 53. Fore and hind wings.
FIGURES 54–59 in Six new Dinotrema species (Hymenoptera, Braconidae) from Spain, with prescutellar pit and medially sculptured propodeum
FIGURES 54–59. Dinotrema munki sp. nov. (54, 56-59, female; 55, male). 54. Habitus, in lateral view. 56. Head, lateral view. 57. Mandible. 58. Antenna. 59. Basal segments of antenna.
FIGURES 8–13 in Six new Dinotrema species (Hymenoptera, Braconidae) from Spain, with prescutellar pit and medially sculptured propodeum
FIGURES 8–13. Dinotrema achterbergi sp. nov. (female) 8. Mesonotum. 9. Propodeum. 10. Hind leg. 11. First metasomal tergite. 12. Metasoma and ovipositor. 13. Fore wing.
FIGURES 42–47 in Six new Dinotrema species (Hymenoptera, Braconidae) from Spain, with prescutellar pit and medially sculptured propodeum
FIGURES 42–47. Dinotrema fischerianum sp. nov. (female). 42. Habitus, lateral view. 43. Head, lateral view. 44. Mandible. 45. Antenna. 46. Head, dorsal view. 47. Mesosoma, lateral view.
FIGURES 28–33 in Six new Dinotrema species (Hymenoptera, Braconidae) from Spain, with prescutellar pit and medially sculptured propodeum
FIGURES 28–33. Dinotrema enanum sp. nov. (28, 20, 31, female; 29, male). 28, 29. Habitus, lateral view. 30. Head, lateral view. 31. Mandible. 32. Antenna. 33. Basal segments of antenna.
FIGURES 68–73 in Six new Dinotrema species (Hymenoptera, Braconidae) from Spain, with prescutellar pit and medially sculptured propodeum
FIGURES 68–73. Dinotrema pappi sp. nov. (female) 68. Habitus, lateral view. 69. Head, lateral view. 70. Mandible. 71. Antenna. 72. Head, dorsal view. 73. Mesosoma, lateral view.
FIGURES 66–67 in Six new Dinotrema species (Hymenoptera, Braconidae) from Spain, with prescutellar pit and medially sculptured propodeum
FIGURES 66–67. Dinotrema munki sp. nov. (female). 66. Metasoma and ovipositor. 67. Fore and hind wings.
and metatarsal trichobothria as well as the bristles and the tibial and metatarsal bristleshaped hairs are drawn but no normal hairs; 6) retrolateral aspect of the left retroclaw IV; 7) genital area in front of the epigastral furrow in which no epiandrous gland spigots are recognizable. Not all of the hairs anteriorly of the pit are drawn; 8) outline of the anterior spinnerets, ventral aspect; 9) retrolateral aspect of the right pedipalpus; 10) prolateral aspect of the right pedipalpus. Only two of the long retrolateral bristle-shaped cymbial hairs are drawn; 11) ventral aspect of the right pedipalpus; 12) slightly different retroventral aspects of the distal part of the right pedipalpus. C = conductor, E = embolus, M = median apophysis, O = proventral-distal outgrowth of the pedipalpal tibia. Scale bars 0.5 mm in figs. 1-2 and 5, 0.05 in fig. 4 and 6, 0.1 in fig. 7, 0.2 in the remaining figs; in On European Spiders Of The Nominal Families Liocranidae, Miturgidae And Zoridae (Araneae), With Descriptions Of New Taxa
and metatarsal trichobothria as well as the bristles and the tibial and metatarsal bristleshaped hairs are drawn but no normal hairs; 6) retrolateral aspect of the left retroclaw IV; 7) genital area in front of the epigastral furrow in which no epiandrous gland spigots are recognizable. Not all of the hairs anteriorly of the pit are drawn; 8) outline of the anterior spinnerets, ventral aspect; 9) retrolateral aspect of the right pedipalpus; 10) prolateral aspect of the right pedipalpus. Only two of the long retrolateral bristle-shaped cymbial hairs are drawn; 11) ventral aspect of the right pedipalpus; 12) slightly different retroventral aspects of the distal part of the right pedipalpus. C = conductor, E = embolus, M = median apophysis, O = proventral-distal outgrowth of the pedipalpal tibia. Scale bars 0.5 mm in figs. 1-2 and 5, 0.05 in fig. 4 and 6, 0.1 in fig. 7, 0.2 in the remaining figs;
Potentiodynamic polarisation curves and pitting descriptors of 316L stainless steel in NaCl electrolyte
<div>This deposit contains all data and code supporting the analysis in:</div> <div> </div> <div>Identifying stable pitting pathways in 316L stainless steel via fractal-inspired PCA-based clustering</div> <div>Coelho L.B., Amand T., Torres D., Olivier M., Ustarroz J. (accepted 21 April 2025, npj Materials Degradation)</div> <div> </div> <div>Included files</div> <div> </div> <div>calculated_epit_data.csv – the ML-estimated critical pitting potentials (Epit)</div> <div> </div> <div>calculated_logipit_data.csv – the ML-estimated log(jₚᵢₜ) values corresponding to Epit</div> <div> </div> <div>calculated_epass_data.csv – the ML-estimated passive potentials (Epass) and log(jₚₐₛₛ)</div> <div> </div> <div>calculated_epit_df_meta_data.csv – manually curated Epit values just before stable pit growth</div> <div> </div> <div>calculated_logipit_df_meta_data.csv – manually curated log(jₚᵢₜ) values just before stable pit growth</div> <div> </div> <div>Critical-descriptor definitions</div> <div> </div> <div>The critical pitting potentials (Epit) and passive potentials (Epass) were estimated using the machine learning (ML) model described previously [1].</div> <div>The files calculated_epit_df_meta_data.csv and calculated_logipit_df_meta_data.csv contain the last metastable-pitting descriptors—manually identified—immediately prior to the onset of stable pit growth.</div> <div> </div> <div>Experimental methods</div> <div>The macro-scale potentiodynamic polarization (PP) tests were performed at varying NaCl concentrations (0.005 M, 0.01 M and 0.05 M). Using an SP-300 (Bio-Logic) potentiostat inside a Faraday cage, the cell comprised:</div> <div> </div> <div>WE: 316L SS specimen (~1 cm² exposed area)</div> <div> </div> <div>RE: Ag/AgCl/KCl_sat inside a Luggin capillary</div> <div> </div> <div>CE: platinum foil</div> <div> </div> <div>After 60 min immersion to stabilize the open-circuit potential (OCP), polarization scans ran from –30 mV to +900 mV vs. OCP at 0.5 mV/s, matching our previous macro PP study on the same sample [2]. Each NaCl concentration was tested 28 times (84 curves total).</div> <div> </div> <div>References</div> <div> </div> <div>[1] L.B. Coelho, D. Torres, V. Vangrunderbeek, M. Bernal, G.M. Paldino, G. Bontempi, J. Ustarroz, Estimating pitting descriptors of 316 L stainless steel by machine learning and statistical analysis, Npj Mater Degrad 7 (2023) 82. https://doi.org/10.1038/s41529-023-00403-z.</div> <div> </div> <div>[2] L. B. Coelho, S. Kossman, A. Mejias, X. Noirfalise, A. Montagne, A. Van Gorp, M. Poorteman, M. G. Olivier, “Mechanical and corrosion characterization of industrially treated 316L stainless steel surfaces,” Surf. Coat. Technol. 382 (2020) 125175. https://doi.org/10.1016/j.surfcoat.2019.125175</div> <div> </div> <div> </div>
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