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Fig. 4 in Darwin wasps of the genus Seticornuta Morley, 1913 (Ichneumonidae: Metopiinae) in the Neotropical region, with a key to species
Fig. 4. Details of Seticornuta curupira sp. nov. A. ♀, holotype (USUC), habitus, lateral view. B. ♀, paratype (USUC), facial view. C. ♀, paratype (USUC), mesosoma and first metasomal tergite, dorsal view. Scale bar = 1 mm.
PICASO 3.0 Atmospheric Models of WASP-39 b for the JWST Transiting Exoplanet Community Early Release Science Program
<p><strong>OVERVIEW</strong></p> <p>The exoplanetary atmospheric models used in the recent <a href="https://www.nature.com/articles/s41586-022-05269-w">discovery of CO<sub>2 </sub>in WASP- 39 b's atmosphere</a> by the JWST transiting exoplanet community early release science program are presented here. These models are also being used to analyze multiple observations of WASP 39-b obtained using various JWST instruments and observational modes by the transiting exoplanet ERS team. The 1D Radiative-Convective-Thermochemical Equilibrium (RCTE) atmospheric models were computed using the open-source 1D climate model <a href="https://natashabatalha.github.io/picaso/">PICASO 3.0</a> (<a href="https://ui.adsabs.harvard.edu/abs/2022arXiv220807836M/abstract">Mukherjee et al. (2022)</a>). These atmospheric models were then post-processed with condensation clouds using the open-source cloud model <a href="https://natashabatalha.github.io/virga/">VIRGA</a> (<a href="https://ui.adsabs.harvard.edu/abs/2022ApJ...925...33R/abstract">Rooney et al. (2022)</a>). The atmospheric models were also post-processed with the 1D photochemical network code <a href="https://github.com/exoclime/VULCAN">VULCAN</a> (<a href="https://arxiv.org/abs/2108.01790">Tsai et al. (2021)</a>) to explore photochemistry in WASP-39 b's atmosphere.</p> <p><strong>1D RCTE CLOUD-FREE MODELS</strong></p> <p>The base 1D RCTE grid includes atmospheric metallicity points at 0.1, 0.3, 1.0, 3.0, 10.0, 30.0, 50.0, and 100.0x solar values. The Carbon-to-Oxygen (C/O) ratio value is varied between four values - 0.23, 0.46, 0.69, and 0.92. The intrinsic temperature of the planet has been varied across 100, 200, and 300 K, whereas two values of the heat redistribution factor - 0.4 and 0.5 are included. A heat redistribution factor of 0.5 corresponds to the case of full heat redistribution. With these grid points, the grid includes a total of 8x4x3x2= 192 different models.</p> <p>These models are in the "RCTE_cloud_free.zip" folder. The naming scheme of these files is "profile_eq_planet_[T_int]_grav_4.5_mh_[MH]_CO_[CtoO]_sm_0.0486_v_[rfacv]_.nc" where [T_int] represents the intrinsic temperature of the planet, [MH] is the log<sub>10 </sub>of the atmospheric metallicity relative to solar, [CtoO] is the C/O ratio relative to solar, and [rfacv] is the heat-redistribution factor. So, a metallicity value of 0.3xsolar will have a [MH] value of -0.5, and a C/O 0.46 is considered 1xsolar and will correspond to [CtoO]=1. [T_int] and [rfacv] can assume values described in the previous paragraph.</p> <p><strong>1D RCTE CLOUDY MODELS</strong></p> <p>The base 1D RCTE cloud-free models were post-processed to include condensation cloud species Na<sub>2</sub>S, MnS, and MgSiO<sub>3</sub>. The cloud structure and optical property calculations were performed using the VIRGA model where the sedimentation efficiency <em>f<sub>sed </sub></em>and the vertical eddy diffusion coefficient (<em>K<sub>zz</sub></em>) are free parameters. For the cloudy models, 5 <em>f<sub>sed </sub></em> values - 0.6, 1, 3, 6, and 10 were used along with 3 different values of log<sub>10</sub><em>K<sub>zz </sub></em>- 5, 7, 9, and 11, where <em>K<sub>zz </sub></em>is in cm<sup>2</sup>/s. These models are included in the "RCTE_cloudy.zip" folder following the naming structure "profile_eq_planet_[T_int]_grav_4.5_mh_[MH]_CO_[CtoO]_sm_0.0486_v_[rfacv]_kzz_1e[log10Kzz]_fsed_[fsed].cld.nc" where two other variables are added in the name - [log10Kzz] and [fsed]. Both of these variables can take values listed here.</p> <p><strong>PHOTOCHEMICAL CLOUD-FREE MODELS</strong></p> <p>A much smaller subset of the base 1D RCTE models were post-processed with the 1D photochemical network code VULCAN to simulate the effects of vertical mixing and photochemistry in WASP-39 b's atmosphere. log<sub>10</sub><em>K<sub>zz </sub></em>was varied again between the 5, 7, 9, and 11 for this purpose. These files are named as "profile_diseq_planet_[T_int]_grav_4.5_mh_[MH]_CO_[CtoO]_sm_0.0486_v_[rfacv]_kzz_1e[log10Kzz].nc" and can be found in the "photochem_cloud_free.zip" folder.<br> <br> <strong>PHOTOCHEMICAL CLOUDY MODELS</strong></p> <p>The photochemical models were post-processed with clouds to simulate a cloudy atmosphere with disequilibrium chemistry. The <em>f<sub>sed </sub></em> and log<sub>10</sub><em>K<sub>zz </sub></em> grid system for the RCTE cloudy models has been used again for these models as well. These files are in the "photochem_cloudy.zip" folder and are named according to the format "profile_diseq_planet_[T_int]_grav_4.5_mh_[MH]_CO_[CtoO]_sm_0.0486_v_[rfacv]_kzz_1e[log10Kzz]_fsed_[fsed].cld.nc".</p> <p><strong>FILE FORMATTING AND USAGE</strong></p> <p>All the files are released in the <a href="https://docs.xarray.dev/en/stable/">xarray</a> format. Each model has one single xarray file containing all metadata of that model. This metadata includes the input parameters used to compute the model, for example, the metallicity, C/O ratio, and intrinsic temperature. The temperature-pressure (<em>T(P)</em>) profile and the volume mixing ratio profiles of all the different gases in each model is also included in the metadata. The computed transmission spectrum of the model planet from 0.3-6 microns is included in the same file as well. The spectrum is calculated with resampled opacities at a spectral resolution of 60,000, but they should be re-binned at a spectral resolution of 3000 or less for comparison with observed data. For cloudy models, the wavelength dependant optical depth, asymmetry parameter, and single scattering albedo for each atmospheric layer are included in these xarray files.</p> <p>We refer to this <a href="https://natashabatalha.github.io/picaso/notebooks/codehelp/data_uniformity_tutorial.html#Reading/interpreting-an-xarray-file">PICASO tutorial</a> for reading/writing these xarray files. The spectrum from these xarray files can be easily extracted using the following code.</p> <pre><code class="language-python">import xarray as xr path = "path/to/files" ds_sm = xr.open_dataset(path+"profile_eq_planet_300_grav_4.5_mh_+2.0_CO_2.0_sm_0.0486_v_0.5_.nc") # for spectrum wavelength = ds_sm['wavelength'].values transit_depth = ds_sm['transit_depth'].values # for T(P) profile temperature = ds_sm['temperature'].values pressure = ds_sm['pressure'].values</code></pre> <p><a href="https://github.com/natashabatalha/picaso/blob/master/docs/notebooks/fitdata/GridSearch.ipynb">This tutorial</a> shows how to use these models to analyze the NIRSpec Prism observations of WASP-39 b, which led to <a href="http://www.nature.com/articles/s41586-022-05269-w">CO<sub>2 </sub>detection</a>. Please note that the folders must be unzipped before using them with this notebook.</p> <p><strong>CREDITS</strong></p> <p>If you use these modeling products in your work, please cite this zenodo repository along with the following papers depending on the part of the grid being used:</p> <p>1) RCTE_cloud_free.zip</p> <p> <a href="https://ui.adsabs.harvard.edu/abs/2022arXiv220807836M/abstract">Mukherjee et al. (2022)</a>, <a href="https://ui.adsabs.harvard.edu/abs/2019ApJ...878...70B/abstract">Batalha et al. (2019)</a> </p> <p>2) RCTE_cloudy.zip</p> <p><a href="https://ui.adsabs.harvard.edu/abs/2022ApJ...925...33R/abstract">Rooney et al. (2022)</a>, <a href="https://ui.adsabs.harvard.edu/abs/2022arXiv220807836M/abstract">Mukherjee et al. (2022)</a>, <a href="https://ui.adsabs.harvard.edu/abs/2019ApJ...878...70B/abstract">Batalha et al. (2019)</a> </p> <p>3) photochem_cloud_free.zip</p> <p> <a href="https://arxiv.org/abs/2108.01790">Tsai et al. (2021)</a> , <a href="https://ui.adsabs.harvard.edu/abs/2022arXiv220807836M/abstract">Mukherjee et al. (2022)</a>, <a href="https://ui.adsabs.harvard.edu/abs/2019ApJ...878...70B/abstract">Batalha et al. (2019)</a> </p> <p>4) photochem_cloudy.zip</p> <p> <a href="https://arxiv.org/abs/2108.01790">Tsai et al. (2021)</a> , <a href="https://ui.adsabs.harvard.edu/abs/2022arXiv220807836M/abstract">Mukherjee et al. (2022)</a>, <a href="https://ui.adsabs.harvard.edu/abs/2019ApJ...878...70B/abstract">Batalha et al. (2019)</a>, <a href="https://ui.adsabs.harvard.edu/abs/2022ApJ...925...33R/abstract">Rooney et al. (2022)</a></p> <p> </p>
Fig. 1 in A new mesoserphid wasp from the Middle Jurassic of northeastern China (Hymenoptera, Proctotrupoidea)
Fig. 1. Holotype of Juraserphus modicus gen. et sp. nov. A. Part. B. Counterpart. C. Left forewing and left hind wing of part. D. Head and mesosoma of part (in ethanol). E. Metasoma of part. Scale bars = 2 mm.
Fig. 2 in A new mesoserphid wasp from the Middle Jurassic of northeastern China (Hymenoptera, Proctotrupoidea)
Fig. 2. Line drawings of Juraserphus modicus gen. et sp. nov. A. Habitus. B. Left forewing. C. Left hind wing. Abbreviations: N1 = pronotum; N2 = mesonotum; N3 = metanotum; nv = notaulus; tms = transverse mesonotal suture; Sc = mesoscutellum; Pr = propodeum; Vf1 = valvifer 1; Vf2 = valvifer 2; Vf3 = valvula 3. Scale bar = 2 mm.
FIGURES 59–61 in A Revision of the Wasp Genus Aulacophilinus Lomholdt, 1980 with Descriptions of Three New Species (Hymenoptera: Crabronidae)
FIGURES 59–61. Aulacophilinus weiri. (59) Male sternum VIII (ventral surface); (60) Male genitalia dorsally; (61) Male genitalia laterally.
FIGURES 49–50 in A Revision of the Wasp Genus Aulacophilinus Lomholdt, 1980 with Descriptions of Three New Species (Hymenoptera: Crabronidae)
FIGURES 49–50. Aulacophilus tegularis. (49) Female clypeus and mandibles; (50) Female tegula and adjacent scutum.
FIGURES 41–45 in A Revision of the Wasp Genus Aulacophilinus Lomholdt, 1980 with Descriptions of Three New Species (Hymenoptera: Crabronidae)
FIGURES 41–45. Aulacophilinus rennellensis. (41) Female tergum I dorsally; (42) Female tergum I laterally; (43) Male sternum VIII (from Lomholdt, 1980); (44) Male genitalia ventrally (from Lomholdt, 1980);.(45) Male geni- talia laterally (from Lomholdt, 1980). 45
FIGURES 52–58 in A Revision of the Wasp Genus Aulacophilinus Lomholdt, 1980 with Descriptions of Three New Species (Hymenoptera: Crabronidae)
FIGURES 52–58. Aulacophilinus weiri. (52) Female clypeus and mandibles; (53) Male clypeus and mandibles; (54) Upper frons of female; 55) Female head in dorsal view; (56) Female head in lateral view (arrow shows postorbital carina); (57) Female head in lateral oblique view (arrow shows occipital carina); (58) Female tegula and adjacent portion of scutum.
FIGURES 24–28 in A Revision of the Wasp Genus Aulacophilinus Lomholdt, 1980 with Descriptions of Three New Species (Hymenoptera: Crabronidae)
FIGURES 24–28. Aulacophilinus mandibulatus. (24) Female clypeus and mandibles; (25) Ppropodeal dorsum of female; (26) Male sternum VIII (ventral surface); (27) Male genitalia dorsally; (28) Male genitalia laterally.
FIGURES 30–36 in A Revision of the Wasp Genus Aulacophilinus Lomholdt, 1980 with Descriptions of Three New Species (Hymenoptera: Crabronidae)
FIGURES 30–36. Aulacophilus pyrrhicus. (30) Female clypeus and mandibles; (31) Female head in dorsal view; (32) Female tegula and adjacent portion of scutum; (33) Male sternum VIII (ventral surface); (34) Male sternum VIII in lateral view; (35) Male genitalia dorsally; (36) Male genitalia laterally.
FIGURES 38–40 in A Revision of the Wasp Genus Aulacophilinus Lomholdt, 1980 with Descriptions of Three New Species (Hymenoptera: Crabronidae)
FIGURES 38–40. Aulacophilinus rennellensis. (38) Female clypeus and mandibles; (39) Male clypeus and mandibles; (40) Female head dorsally.
FIGURES 20–22 in A Revision of the Wasp Genus Aulacophilinus Lomholdt, 1980 with Descriptions of Three New Species (Hymenoptera: Crabronidae)
FIGURES 20–22. Aulacophilus carinatus. (20) Male sternum VIII (ventral surface); (21) Male genitalia dorsally; (22) Male genitalia laterally.
FIGURES 10–14 in A Revision of the Wasp Genus Aulacophilinus Lomholdt, 1980 with Descriptions of Three New Species (Hymenoptera: Crabronidae)
FIGURES 10–14. Aulacophilinus caliginosus. (10) Female clypeus and mandibles; (11) Right wing, with normal venation; (12) Left wing of the same individual, venation abnormal (arrow shows additional submarginal cell); (13) Portion of left wing at a higher magnification (arrow shows additional submarginal cell); (14) Male sternum VIII (ventral surface).
FIGURES 2–8 in A Revision of the Wasp Genus Aulacophilinus Lomholdt, 1980 with Descriptions of Three New Species (Hymenoptera: Crabronidae)
FIGURES 2–8. Aulacophilus amblygnathus Menke. (2) Clypeus and mandibles, female; (3) Upper frons, female; (4) Clypeus and mandibles, male; (5) Upper frons, male; (6) Sternum VIII, ventral surface, male; (7) Genitalia, dorsal view, male; (8) Genitalia, lateral view, male.
FIGURES 18–19 in A Revision of the Wasp Genus Aulacophilinus Lomholdt, 1980 with Descriptions of Three New Species (Hymenoptera: Crabronidae)
FIGURES 18–19. Aulacophilus carinatus. (18) Female clypeus and mandibles; (19) Propodeal dorsum of female in lateral oblique view (arrow shows longitudinal carina).
FIGURES 15–16 in A Revision of the Wasp Genus Aulacophilinus Lomholdt, 1980 with Descriptions of Three New Species (Hymenoptera: Crabronidae)
FIGURES 15–16. Aulacophilinus caliginosus. (15) Male genitalia dorsally; (16) Male genitalia laterally
FIGURES 41–45 in A Revision of the Wasp Genus Aulacophilinus Lomholdt, 1980 with Descriptions of Three New Species (Hymenoptera: Crabronidae)
FIGURES 41–45. Aulacophilinus rennellensis. (41) Female tergum I dorsally; (42) Female tergum I laterally; (43) Male sternum VIII (from Lomholdt, 1980); (44) Male genitalia ventrally (from Lomholdt, 1980);.(45) Male genitalia laterally (from Lomholdt, 1980).
Figure 4 in The First Cretaceous Epyrine Wasp (Hymenoptera: Bethylidae): A New Genus and Species from Early Cenomanian Kachin Amber
Figure 4. Hukawngepyris setosus gen. et sp. nov., female holotype, MB.I.8638, (A) mesosoma in dorsolateral view; (B) metasoma in left posterolateral view; (C) drawing of fore and hind wings (dashed lines indicate flexion lines; pt = pterostigma). Scale bars = 0.5 mm.
Figure 2 in The First Cretaceous Epyrine Wasp (Hymenoptera: Bethylidae): A New Genus and Species from Early Cenomanian Kachin Amber
Figure 2. Hukawngepyris setosus gen. et sp. nov., female holotype, MB.I.8638, habitus in left lateroventral view. Scale bar = 1 mm.
Figure 3 in The First Cretaceous Epyrine Wasp (Hymenoptera: Bethylidae): A New Genus and Species from Early Cenomanian Kachin Amber
Figure 3. Hukawngepyris setosus gen. et sp. nov., female holotype, MB.I.8638, (A) head in left lateral view; (B) head and partial mesosoma in dorsal view (black arrow: notaulus; white arrow: parapsidal signum); (C) mesosoma in left lateroventral view (black arrow: propleural epicoxal sulcus; white arrow: protibial spur). Scale bars: A = 0.25 mm, B–C = 0.5 mm.
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