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596 results for “cast”
Cast Bronze Eagle
Cast bronze sculpture made by Joe Valasek of Carveture (https://carveture.com/) in 1985. Source: Objaverse 1.0 / Sketchfab
CAST Strong Lensing Finder Deep Learning models
<p>Deep Learning models used in the paper "Developing a Victorious Strategy to the Second Strong Gravitational<br> Lensing Data Challenge".</p> <p>We share the Deep Learning models weights trained using II Strong Lensing Gravitational Challenge dataset in the configurations presented in table 1 from the aforementioned paper. We also release notebooks with examples of usage and adaptation to other datasets in <a href="https://github.com/cdebom/cast_lensfinder">github.com/cdebom/cast_lensfinder</a>.</p> <p>The file names are structure as follows:<br> <br> <strong>efn2_typeofentry_preprocessing_aug.tar.gz</strong><br> <br> where <em><strong>typeofentry </strong></em>is the input format according to table 1 in the paper and preprocessing can be <strong><em>chpre</em> </strong>or <strong><em>newpre </em></strong>is the preprocessing used in the II SLGC, and the novel proposed preprocessing for the paper, respectively.<br> <br> <br> </p>
Cast Al-Si-Mg alloy APT data
<p>Data from publication. Will be opened when publication is online (hopefully 2022).</p> <p>Atom probe tomography data.</p>
Thermal conductivity of slip-cast quartz at various temperatures
<p><strong>Thermal conductivity of</strong> <strong>slip-cast quartz at various temperatures</strong></p> <p>Junjie Chen</p> <p>Contributor: Junjie Chen, ORCID: 0000-0001-5055-4309, E-mail address: komcjj@gmail.com, Department of Energy and Power Engineering, School of Mechanical and Power Engineering, Henan Polytechnic University, 2000 Century Avenue, Jiaozuo, Henan, 454000, P.R. China</p> <p> </p> <p>Slip casting, or slipcasting, is a ceramic forming technique for pottery and other ceramics, especially for shapes not easily made on a wheel.[1] In this method, a liquid clay body slip is poured into plaster moulds and allowed to form a layer, the cast, on the inside walls of the mould. The process usually takes at least 24 hours per piece. It gives very precise and consistent shapes, and is now the most common technique used for commercial mass-produced pottery. The type of clay body suited for slip casting differs from that for throwing. It is essential to make a good quality casting slip to get an intended result. The behavior of the slip will depend on multiple factors, including the types and proportions of water, clay, other chemicals, and deflocculant used; temperature, humidity and other local conditions; and the amount of energy involved in mixing the ingredients together to form a suspension. The process of changing a slurry from something thick and gooey to something thin and pourable that can be used in slip casting is called deflocculation. The process by which particles come out of the suspension is called flocculation. The technique is suited to the production of complex shapes, especially if with relief decoration and thin walls. Much modern fine factory porcelain is made by the technique, very often the entire production. It is also commonly used for sanitaryware, such as toilets and basins, and smaller pieces like figurines and teapots. The technique can also be used for small-scale production runs or to produce limited-edition, one-off objects, especially reproductions of antique dolls and modern porcelain doll-making.</p> <p> </p> <p>Thermodynamic temperature (degrees kelvin), Thermal conductivity (watts per meter-kelvin)</p> <p>500 0.34</p> <p>700 0.39</p> <p>900 0.45</p> <p>1100 0.51</p> <p>1300 0.62</p> <p>900 0.63</p> <p>1000 0.66</p> <p>1100 0.69</p>
Thermal conductivity of cast iron at various temperatures
<p><strong>Thermal conductivity of cast iron at various temperatures</strong></p> <p>Junjie Chen</p> <p>Contributor: Junjie Chen, ORCID: 0000-0001-5055-4309, E-mail address: komcjj@gmail.com, Department of Energy and Power Engineering, School of Mechanical and Power Engineering, Henan Polytechnic University, 2000 Century Avenue, Jiaozuo, Henan, 454000, P.R. China</p> <p> </p> <p>Cast iron is a class of iron-carbon alloys with a carbon content more than 2 percent. Its usefulness derives from its relatively low melting temperature. The alloy constituents affect its color when fractured: white cast iron has carbide impurities which allow cracks to pass straight through, grey cast iron has graphite flakes which deflect a passing crack and initiate countless new cracks as the material breaks, and ductile cast iron has spherical graphite "nodules" which stop the crack from further progressing. Carbon and silicon are the main alloying elements of cast iron. Iron alloys with lower carbon content are known as steel. Cast iron tends to be brittle, except for malleable cast irons. With its relatively low melting point, good fluidity, castability, excellent machinability, resistance to deformation and wear resistance, cast irons have become an engineering material with a wide range of applications and are used in pipes, machines and automotive industry parts, such as cylinder heads, cylinder blocks and gearbox cases. It is resistant to damage by oxidation but is notoriously difficult to weld. Cast iron is made from pig iron, which is the product of melting iron ore in a blast furnace. Cast iron can be made directly from the molten pig iron or by re-melting pig iron, often along with substantial quantities of iron, steel, limestone, carbon and taking various steps to remove undesirable contaminants. Phosphorus and sulfur may be burnt out of the molten iron, but this also burns out the carbon, which must be replaced. Depending on the application, carbon and silicon content are adjusted to the desired levels.</p> <p> </p> <p>Thermodynamic temperature (degrees kelvin), Thermal conductivity (watts per meter-kelvin)</p> <p>298 55</p> <p>303.2 12.8</p> <p>323.2 13.3</p> <p>362.2 14.3</p> <p>373.2 14.5</p> <p>425.2 17.3</p> <p>303.2 29.5</p> <p>323.2 29.7</p> <p>361.2 30</p> <p>373.2 30.1</p> <p>427.2 31.1</p> <p>353.7 48.5</p> <p>376.7 48.1</p> <p>418.2 46.9</p> <p>429.7 47.3</p> <p>431.7 46.9</p> <p>447.2 46</p>
The head of "Doryphoros"– a plaster cast
The head of "Doryphoros"– a plaster cast of an antique sculpture ID no.: Rz 7 Museum of the Academy of Fine Arts in Kraków https://muzea.malopolska.pl/en/objects-list/2270 Digitalisation: RDW MIC, Virtual Małopolska project Source: Objaverse 1.0 / Sketchfab
Rosedale Bank Top cast iron model
One of a set of 3 models depicting the landscape as it used to be. Source: Objaverse 1.0 / Sketchfab
Cast of Trajan´s Column at V&A
**Trajan´s Column Fragment** - Scanned with iPad pro Lidar Scanner, from the replica at Victoria and Albert Museum (London UK) V&A museum collection information: https://collections.vam.ac.uk/item/O102467/trajans-column-copy-of-trajans-apollodorus-of-damascus/ Source: Objaverse 1.0 / Sketchfab
Cast Iron Tetsubin
First try at a realistic prop. Started off with creating the cast iron material in substance designer and added normal detail and further weathering in substance painter, modelled in Maya. Had a lot of fun with this one, feedback is appreciated! Source: Objaverse 1.0 / Sketchfab
"Star 6" Cast Iron Stove from Sukeek's Cabin
This "Star 6" Cast Iron Stove is a reconstruction of a stove found at the Sukeek's Cabin Site, a late 1800s site at Jefferson Patterson Park and Museum that was the first home of Sukeek and her family after emancipation. Two stoves were present, a smaller one inside for heating and light cooking and a larger one outside. This Star 6 was probably the smaller one. Made by the American Stove and Hollow Ware Company of Philadelphia between 1869 and 1881 it cost $17.50; despite this relatively large cost, Sukeek's Cabin seems to have been designed from the start to use a stove rather than a fireplace. For more information on Sukeek and the site named after her, see our collection of related artifacts on SketchFab or visit [this finding aid](https://apps.jefpat.maryland.gov/neh/18CV426-%20Sukeek's%20Cabin%20Finding%20Aid.aspx). Made with photogrammetry and 3D modeling of missing sections. Special thanks to Rebecca Morehouse, Kirsti Uunila, Ed Chaney, and the Hagley Museum and Library for their assistance. Source: Objaverse 1.0 / Sketchfab
Puinen valumuotti / Wooden casting model
Työkalutehtaalla tehty kuivauskoneen hammaspyörän puumalli. Puumallien perusteella metallinen osa valmistettiin. Wooden model of a drying machine cog. In the Lapua cartridge factory tool department these wooden models were used as example for producing the actual metallic parts for machinery. Before modern technology, every part was made by skilled craftsmen by hand. Lapuan patruunatehtaan museon kokoelmat / Lapua cartridge factory museum collections. Model produced without texture, Scanned with Shining3D Einscan PRO 2X and EinScan Scanner Industrial Pack. 3D model may include touch-ups, additions or edits. Source: Objaverse 1.0 / Sketchfab
"Leonidas" cast
"Leonidas" cast, Museum of Classical Archaeology, Cambridge. Object details: http://museum.classics.cam.ac.uk/collections/casts/leonidas Processed from photos by [Daniel Pett](https://sketchfab.com/danielpett). The photos are in the `crestedFigureClassicalArchaeology` folder [here](https://goo.gl/CWqZj2). Processed in PhotoScan with an initial "medium" quality pass, then mask application/cleanup, followed by "high" quality and meshed to 500k polygons. Source: Objaverse 1.0 / Sketchfab
Data from: Caste-biased patterns of brain investment in the subterranean termite Reticulitermes flavipes
<p>Investment into neural tissue is expected to reflect the specific sensory and behavioral capabilities of a particular organism. Termites are eusocial insects that exhibit a caste system in which individuals can develop into one of several morphologically and behaviorally distinct castes. However, it is unclear to what extent these differences between castes are reflected in the anatomy of the brain. To address this question, we used deformation-based morphometry to conduct pairwise comparisons between the brains of different castes in the eastern subterranean termite, <em>Reticulitermes flavipes</em>. The dataset presented here consists of the confocal images of all the brains used in our analysis, separated by caste. Brains from five castes are presented - workers, soldiers, ergatoids, nymphs, and alates - which are further divided by sex.</p>
GS_LIMOGES_SLIP_CASTING-audio
<p>GS_LIMOGES_SLIP_CASTING-audio</p>
DeepCCZ cruise: western Clarion-Clipperton Zone CTD cast and bottle sample physicochemical datasets
<p>DeepCCZ was a cruise to the three western Areas of Particular Environmental Interest (APEIs) in the Clarion-Clipperton Zone of the North Pacific Gyre in May-June, 2018. The primary goal of this cruise was to assess overall biodiversity across as many trophic levels as feasible in these APEIs, both to provide baseline data before the potential start of mining activity in the region and to assist with assessments as to the representativity of the APEI network. A secondary goal was to contrast biodiversity associated with abyssal plains and neighboring seamounts in this region. This dataset contains water column biogeochemical data collected with a CTD package mounted on a sampling rosette, as well as bottle data from samples collected at sea and analyzed in on-shore laboratories.</p> <p>Bottle data, as well as cast locations and CTD results, are collected in the .xlsx file. Processed individual CTD cast results, in .cnv format, are also archived.</p> <p>Contact for questions about this dataset: Emma Wear, ekwear.oceans@gmail.com</p>
Data from: Macroevolutionary integration of phenotypes within and across ant worker castes
<p>Phenotypic traits are often integrated into evolutionary modules: sets of organismal parts that evolve together. In social insect colonies the concepts of integration and modularity apply to sets of traits both within and among functionally and phenotypically differentiated castes. On macroevolutionary timescales, patterns of integration and modularity within and across castes can be clues to the selective and ecological factors shaping their evolution and diversification. We develop a set of hypotheses describing contrasting patterns of worker integration and apply this framework in a broad (246 species) comparative analysis of major and minor worker evolution in the hyperdiverse ant genus Pheidole. Using geometric morphometrics in a phylogenetic framework, we inferred fast and tightly integrated evolution of mesosoma shape between major and minor workers, but slower and more independent evolution of head shape between the two worker castes. Thus, Pheidole workers are evolving as a mixture of intra- and inter-caste integration and rate heterogeneity. The decoupling of homologous traits across worker castes may represent an important process facilitating the rise of social complexity.</p>
Raw data for Investment casting of periodic aluminum cellular structures using slurry-cast table salt moulds
<p>This dataset includes the raw data used to draw the conclusions of the paper entitled "Investment casting of periodic aluminum cellular structures using slurry-cast table salt moulds". </p> <p>The work presents a precision-casting process specifically designed to manufacture periodic cellular structures.</p>
Queens control caste allocation in the ant Cardiocondyla obscurior
<p>Social insect queens and workers can engage in conflict over reproductive allocation when they have different fitness optima. Here, we show that queens have control over queen-worker caste allocation in the ant <em>Cardiocondyla</em> <em>obscurior</em>, a species in which workers lack reproductive organs. We describe crystalline deposits that distinguish castes from the egg stage onwards, providing the first report of a discrete trait that can be used to identify ant caste throughout pre-imaginal development. Comparison of queen- and worker-destined eggs and larvae revealed size and weight differences in late development, but no discernible differences in traits that may be used in social interactions, including hair morphology and cuticular odors. In line with a lack of caste-specific traits, adult workers treated developing queens and workers indiscriminately. Together with previous studies demonstrating queen control over sex allocation, these results show that queens control reproductive allocation in <em>C. obscurior</em> and suggest that the fitness interests of colony members are aligned to optimise resource allocation in this ant.</p>
"Charioteer of Delphi" – a plaster cast
"Charioteer of Delphi" – a plaster cast of an antique figure Id no.: Rz 37 Museum of the Academy of Fine Arts in Kraków https://muzea.malopolska.pl/en/objects-list/2234 Digitalisation: RDW MIC, Virtual Małopolska project Source: Objaverse 1.0 / Sketchfab
Preoperative Serial Casting, Education, and Therapy for Dupuytren's Contracture
ClinicalTrials.gov study NCT07024576. IPD Sharing: YES. Countries: 1. Publications: 1.
ScienceDex guides
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These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
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.