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462 results for “Moon”

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zenodo40/100

FIG. 9. — Element 1818 in Animal Management, preparation and sacrifice: reconstructing burial 6 at the Moon Pyramid, Teotihuacan, México

FIG. 9. — Element 1818: A, in situ in Burial 6; B, deformed right femoral shaft; C, head injury along the nuchal crest; D, right innonimate with deformed acetabulum.

opencc-by-4.0Dec 2013View details →
zenodo40/100

FIG. 8. — Element 2246 in Animal Management, preparation and sacrifice: reconstructing burial 6 at the Moon Pyramid, Teotihuacan, México

FIG. 8. — Element 2246: A, pathology on the distal humeri, B, breakage along the occipital region of the cranium; C, perforation on the left coracoids bone.

opencc-by-4.0Dec 2013View details →
zenodo40/100

FIG. 7 in Animal Management, preparation and sacrifice: reconstructing burial 6 at the Moon Pyramid, Teotihuacan, México

FIG. 7. — Comparisons of the element distribution (grey=absent) and surface modifications (black arrow) present on the modern and archaeological sample: A, modern comparative sample; B, Element 2193; C, overlap of the two templates, areas in dark grey indicate where the element in both the comparative and archaeological sample were absent.

opencc-by-4.0Dec 2013View details →
zenodo40/100

FIG. 1 in Animal Management, preparation and sacrifice: reconstructing burial 6 at the Moon Pyramid, Teotihuacan, México

FIG. 1. — Iconographic representations of: A, close up of a canid depicted in mural painting "Coyote with Sacrifical Knife" probably from Techinantitla (taken from Millon 1988b: Figure V.12, tracing by S. Sugiyama); B, eagle from Atetelco apartment compound (photo taken by N. Sugiyama).

opencc-by-4.0Dec 2013View details →
zenodo40/100

FIG. 2 in Animal Management, preparation and sacrifice: reconstructing burial 6 at the Moon Pyramid, Teotihuacan, México

FIG. 2. — Plan view drawing of Burial 6. Each dotted circle shows a grouping within the burial complex, these groupings are distributed in cardinal and intercardinal directions and at the center of the dedicatory cache. Abreviations: E, eagles; F, felids; C, canids. Burial Scale bar: 1 m.

opencc-by-4.0Dec 2013View details →
zenodo40/100

Red Moon, by Daniel Henrion, France

<p>Third place in the 2021 IAU OAE Astrophotography Contest, category Total lunar eclipse.</p> <p>Time-lapse images of a total supermoon lunar eclipse that took place on 28 September 2015. The photos show the Moon during the time it moved through the Earth&acute;s umbra: Earth&acute;s umbra touched the Moon&acute;s outer limb at 1.07 a.m. UTC (upper left corner) and left the Moon&acute;s surface at 4.27 a.m. UTC (lower right corner).</p> <p>Credit:&nbsp;Daniel Henrion/IAU OAE</p>

opencc-by-4.0Aug 2021View details →
zenodo40/100

Selene meets the Moon, by Sheila Wiwchar, Canada

<p>First place in the 2021 IAU OAE Astrophotography Contest, category Sun/Moon haloes.</p> <p>Photographed at Kaleida, Manitoba in Canada, this fisheye image beautifully captures the rare optical phenomena encircling the moon known as the &ldquo;22&deg; halo&rdquo; and the horizontal white circle passing through the moon called the &ldquo;paraselenic circle&rdquo;. The white band circling the whole sky at the same altitude as the moon is named after Selene, the ancient Greek Titan, famously called the goddess of the moon. The more commonly observed counterpart produced by the sun is known as the parhelic circle, named after the Greek god of the sun, Helios. Both the 22&deg; halo and the paraselenic circle are produced due to reflection of the moonlight from near vertical surfaces of ice crystals. Parts closer to the moon are caused due to external reflections, whereas those further away are created due to internal reflections. The constellation of the big dipper at the center makes this image even more spectacular. Can you spot it?</p> <p>Credit:&nbsp;Sheila Wiwchar/IAU OAE</p>

opencc-by-4.0Aug 2021View details →
zenodo40/100

Dataset for "Radiation environment at the surface and subsurface of the Moon: Model development and validation" publication in Journal of Geophysical Research: Planets

<p>data set used for plots in manuscript &quot;Radiation environment at the surface and subsurface of the Moon: Model development and validation&quot; submitted to GRL</p>

opencc-by-4.0Apr 2021View details →
zenodo40/100

Moon-Mercury-Pleiades Conjunction

<p>Honourable mention in the 2022 IAU OAE Astrophotography Contest, category Still images of celestial patterns.</p> <p>&nbsp;</p> <p>This photograph shows the young lunar crescent, some of the nine brightest stars of the Pleiades (with one behind a cloud) on the right, and the planet Mercury, looking slightly red, in the middle of the image.</p> <p>This picture is rather suggestive of the idea that the Pleiades might possibly consist of seven stars. However, the viewer is misled by the clouds; five of the stars form a tiny chariot, one is next to the handle, and three are at the other end of the quadrilateral. Eight stars would be clearly visible if there were no clouds.</p> <p>This configuration of the young Moon next to the Pleiades is visible only in the northern hemisphere spring. Thus it was used by the ancient Babylonians to determine the second month of their year and to judge whether or not an intercalary month was necessary. At least as early as the second millennium before the common era, the Babylonians used several asterisms for each month, with another one of them reappearing every five days after invisibility during daylight. To determine the necessity of intercalation in order to synchronise the solar and the lunar year, the Babylonians used several asterisms, not only the Pleiades. For instance, they also made use of the bright stars Arcturus and Sirius, and they observed a configuration with the Moon as well as heliacal phenomena. The modern Jewish and modern Islamic traditions still make use of some of the Babylonian astronomical rules. However, given that the constellations have shifted as a result of precession, and the fact that nowadays we also have computational means to calculate our calendars, this configuration of the small crescent Moon and the Pleiades is less useful, though it remains exceptionally beautiful. Thus the ancient Babylonian and middle Babylonian tradition survives only rudimentarily. Furthermore, it is unlikely that it is depicted in the Nebra Disc from Bronze Age Europe, as has long been claimed.</p> <p>This image was taken on Elba Island, Italy, in May 2022.</p> <p>Credit: Giulio Colombo/IAU OAE&nbsp;(<a href="https://creativecommons.org/licenses/by/4.0/legalcode">CC BY&nbsp;4.0</a>)</p>

opencc-by-4.0Dec 2022View details →
zenodo40/100

Data for The Moon before mare

<p>This archive contains spherical harmonic and gridded data files for <em>The Moon before mare&nbsp;Broquet A. &amp; Andrews-Hanna, J. C., submitted to Icarus (2023).</em></p> <p>All spherical harmonic solutions are for the nominal model presented in the study. The models are&nbsp;defined up to degree 500, and use the <a href="https://shtools.github.io/SHTOOLS/index.html">SHTOOLs</a> format convention. Note that because of spherical harmonic transforms, non-zero mare thicknesses outside of mare regions can be found. The gridded files have shapes of&nbsp;(1003, 2005).</p> <p>Crust_nomare.sh: Nominal thickness of the feldspathic (or pre-mare)&nbsp;crust&nbsp;[km].</p> <p>Crust.sh: Nominal thickness of the bulk crust (feldspathic + mare)&nbsp;[km].</p> <p>Mare_clip.sh: Nominal thickness of the maria clipped to known mare and cryptomare regions&nbsp;[km].</p> <p>Mare_Du_clip.sh: Nominal thickness of the maria clipped to known mare and cryptomare regions including the constraints from Du et al. (2019) [km].&nbsp;</p> <p>Topo_nomare.sh: Nominal pre-mare elevations [km].</p> <p>Grid_crust_nomare.txt: Gridded nominal&nbsp;feldspathic (pre-mare) crustal thickness [km].</p> <p>Grid_crust.txt:&nbsp;Gridded nominal bulk (feldspathic + mare) crustal thickness [km].</p> <p>Grid_mare_Du_Te20.txt: Gridded mare thickness assuming an elastic thickness of 20 km including the constraints from Du et al. (2019) [km].&nbsp;</p> <p>Grid_mare_Du_Te40.txt: Gridded mare thickness assuming an elastic thickness of 40 km including the constraints from Du et al. (2019) [km].&nbsp;</p> <p>Grid_mare_Du_Te60.txt: Gridded mare thickness assuming an elastic thickness of 60 km including the constraints from Du et al. (2019) [km].&nbsp;</p> <p>Grid_topo_nomare.txt:&nbsp;Gridded nominal pre-mare elevations [km].</p>

opencc-by-4.0Jul 2023View details →
dryad40/100

Data from: Survival limits of yeasts and other extremophilic microorganisms with relevance for planetary protection of the icy moons

Open the record for dataset details and reuse information.

publicAug 2025View details →
dryad40/100

The moon’s influence on the activity of tropical forest mammals

Open the record for dataset details and reuse information.

publicAug 2024View details →
zenodo36/100

Spherical harmonic model of the Moon's magnetic field derived from gridded data in Tsunakawa et al. (2015)

<p><strong>T2015_449</strong> is a 449 degree and order spherical harmonic model of the magnetic potential of the Moon. This model was used in Wieczorek (2018) and is a spherical harmonic expansion of the global magnetic field model of Tsunakawa et al. (2015). The original gridded data are from the file &quot;globalSVM20150511/LunarSVM_000_02_v01.dat&quot; and the spherical harmonic coefficients use the standard Schmidt semi-normalization, excluding the Condon-Shortley phase factor of (-1)<sup>m</sup>. The coefficients are in units of Teslas.</p>

opencc-by-4.0Jan 2018View details →
zenodo36/100

12th C CE Water-Moon Guanyin - point cloud

Twelfth-century Water-Moon Guanyin, now in the collection of the Minneapolis Institute of Art. From the sculpture's description on artsmia.org: "This form of the bodhisattva presides over his own paradise, Potolaka, which is described in scripture as a rugged seaside cave from which Avalokiteshvara could admire the reflection of the moon in the water. Appropriately, he appears meditative and relaxed and is seated informally in the "royal-ease" posture. Ornately dressed, with silk robes, fluttering sashes, jewelry, and an elaborate hairstyle, he also wears a headpiece that features an image of Amitābha, the buddha to whom Avalokiteshvara attends. Believers might look to a sculpture like this as a guide for their own journeys toward enlightenment." The sculpture on Mia's website: https://collections.artsmia.org/art/32122/seated-guanyin-china The mesh version of the object is here: https://skfb.ly/68PAA Source: Objaverse 1.0 / Sketchfab

opencc-zeroMay 2017View details →
zenodo36/100

Moon footprint

This is the iconic footprint left in 1969 by "Buzz" Aldrin on the Moon. You can see an article about this and other traces left in the moon surface here: Half a century after the first bootprint on the lunar surface: The ichnological side of the Moon. Earth Science Reviews. https://www.sciencedirect.com/science/article/abs/pii/S0012825220304980 https://doi.org/10.1016/j.earscirev.2020.103452 Source: Objaverse 1.0 / Sketchfab

opencc-byMay 2020View details →
zenodo36/100

Long Case Grandfather Clock with Moon Dial

The Long Case or Floor Clock was invented in the mid-17th century with pendulums calibrated to swing once a second. Thereafter these became items of high-end decoration as well as reliable time pieces. In the early 18th century, the moon or lunar dial was added. Around 1876 Long Case Clocks became better known as 'grandfather clocks' due to a popular song retelling the story of the song-writers putative grandfather's clock. This model would stand 1.95 metres tall, which is a typical size. Source: Objaverse 1.0 / Sketchfab

opencc-byAug 2021View details →
zenodo36/100

FS1592 Crescent Moon, Main Barn, Site 13

This model is part of an ongoing project to document "at risk" features at Heritage Sites in the Coconino Forest due to natural or vandalism related issues. This is a full 360 degree 3D (1157 photos) of the Main Barn at the Crescent Moon Recreation Area close to Sedona, Arizona. The initial view is from the west side. The building was constructed in the 1930s. Much of the wood is in poor condition. There are other localized areas of degradation of the wood highlighted in other detailed models. Each color bar on the scale pole are 20cm. long. Additional information about the Red Rock District of the Coconino Forest can be found at the following web sites http://www.sedonaredrocktrails.org/ http://www.fs.usda.gov/recmain/coconino/recreation Information about volunteer opportunities in the Coconino Forest including the creation of the 3D models and other projects can be found at http://www.friendsoftheforestsedona.org/ Source: Objaverse 1.0 / Sketchfab

opencc-byJun 2019View details →
zenodo36/100

The moon god Toth

Like the moon, the wise god Toth has two faces: a baboon's round head at full moon, and an ibis head when the moon is waxing. Here the baboon is sitting on a column with an ibis relief. Of Toth himself, in his human form, only a hand on the moon disk remains; the rest of the god's statue is missing. In Roman Egypt Toth was identified with the god Mercury. Marble, Egypt (?), ca. AD 100 -150. Inventory number: 7946 Source: Objaverse 1.0 / Sketchfab

opencc-byOct 2016View details →
zenodo36/100

Baboon (Moon God Thoth)

Faience baboon, 7th - 6th C BCE, about 16cm / 6 inches tall. From the sculpture's gallery description: "The baboon was usually associated with Thoth, one of the moon gods. This animal has a hole in the crown that once held a lunar disk sitting on top of a crescent moon, an attribute of Thoth. For a 2600-year-old artwork it is in remarkable condition, and though the animal is small in size, its posture and expression command authority." More information about the model here: https://collections.artsmia.org/art/126884/baboon-egypt Source: Objaverse 1.0 / Sketchfab

opencc-zeroOct 2017View details →
zenodo36/100

Supporting material for: Geostratigraphic mapping of the intrusive Valentine Domes on the Moon

<p>This dataset is the supporting information for the article called: Geostratigraphic mapping of the intrusive Valentine Domes on the Moon. It contains a QGIS project, the vector data, and the rastar data used to create the geostratigraphic maps of the zone.</p>

opencc-by-4.0Mar 2024View details →

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