Find research datasets worth reusing
Search datasets from major research repositories and use ShareScore to quickly assess how well each record supports discovery, access, and reuse.
104
datasets available to search
ShareScore release 0.9.0
Dataset results
104 results for “Thermal conductivity”
IODP Expedition 360 Thermal conductivity
Thermal conductivity was measured using the heated needle method in either full-space needle configuration (soft/saturated sediments) or half-space needle configuration (harder materials) of a TeKa Berlin TK-04 thermal conductivity meter. Heat is applied to the sample and then thermal equilibrium is sought. The heating and equilibration curve is reduced to derive the thermal conductivity value. Raw data are stored if a user wishes to do off-line or postexpedition reduction.
Evaluation of soil thermal conductivity schemes for use in land surface modeling
<p>The Common Land Model outputs for the paper "Evaluation of soil thermal conductivity schemes for use in land surface modelling".</p>
Impact of Salt Precipitation on Thermal conductivity of Sandy Soil
<p>This is the dataset form the study "<span>Impact of Salt Precipitation on Thermal conductivity of Sandy Soil", including test data and X-ray CT images.</span></p>
Lattice thermal conductivity of Cu-based sulvanites
<p>Input ShengBTE files (CONTROL file and IFC files) and output file with main results.</p>
DFT-based Phonon-computations for "Considering the Role of Ion Transport in Diffuson-Dominated Thermal Conductivity"
<p>These are the harmonic phonon and Grüneisen parameter computations for the publication "Considering the Role of Ion Transport in DiffusonDominated Thermal Conductivity". VASP and Phonopy outputs are included in this data set.</p>
Charting the Lattice Thermal Conductivities of I-III-VI2 Chalcopyrite Semiconductors
<p>Dataset of VASP and ShengBTE calculations for the chalcopyrites collection considered in the article.</p>
Data and code for "Efficient calculation of the lattice thermal conductivity by atomistic simulations with ab-initio accuracy"
<p>This data set contains data and code related to the publication "Efficient calculation of the lattice thermal conductivity by atomistic simulations with ab-initio accuracy".</p>
Data for: Alfvén Pulse-Driven Spicule-like jets in the presence of thermal conduction and ion-neutral collision in a two-fluid regime
Open the record for dataset details and reuse information.
Experimental electrical resistivity values and computed thermal conductivities
Open the record for dataset details and reuse information.
IODP Expedition 361 Thermal conductivity
<p>Thermal conductivity was measured using the heated needle method in either full-space needle configuration (soft/saturated sediments) or half-space needle configuration (harder materials) of a TeKa Berlin TK-04 thermal conductivity meter. Heat is applied to the sample and then thermal equilibrium is sought. The heating and equilibration curve is reduced to derive the thermal conductivity value. Raw data are stored if a user wishes to do off-line or postexpedition reduction.</p>
Data from: Thermal conductance and basal metabolic rate are part of a coordinated system for heat transfer regulation
Thermal conductance measures the ease with which heat leaves or enters an organism's body. Although the analysis of this physiological variable in relation to climatic and ecological factors can be traced to studies by Scholander and colleagues, only small advances have occurred ever since. Here, we analyse the relationship between minimal thermal conductance estimated during summer (Cmin) and several ecological, climatic and geographical factors for 127 rodent species, in order to identify the exogenous factors that have potentially affected the evolution of thermal conductance. In addition, we evaluate whether there is compensation between Cmin and basal metabolic rate (BMR)—in such a way that a scale-invariant ratio between both variables is equal to one—as could be expected from the Scholander–Irving model of heat transfer. Our major findings are (i) annual mean temperature is the best single predictor of mass-independent Cmin. (ii) After controlling for the effect of body mass, there is a strong positive correlation between log10 (Cmin) and log10 (BMR). Further, the slope of this correlation is close to one, indicating an almost perfect compensation between both physiological variables. (iii) Structural equation modelling indicated that Cmin values are adjusted to BMR values and not the other way around. Thus, our results strongly suggest that BMR and thermal conductance integrate a coordinated system for heat regulation in endothermic animals and that summer conductance values are adjusted (in an evolutionary sense) to track changes in BMRs.
Active learning molecular dynamics-assisted insights into ultralow thermal conductivity of two-dimensional covalent organic frameworks
<p>This is a training sets for monolayer COF-5, which could be used for NEP trainging.</p>
Longyearbyen CO2 Lab - Thermal conductivity
<p>Thermal conductivity data retrieved from the Longyearbyen CO2 Lab boreholes.</p>
Thermal conductivity of gaskets at various temperatures
<p><strong>Thermal conductivity of gaskets 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>A gasket is a mechanical seal which fills the space between two or more mating surfaces, generally to prevent leakage from or into the joined objects while under compression. It is a deformable material that is used to create a static seal and maintain that seal under various operating conditions in a mechanical assembly. Gaskets allow for "less-than-perfect" mating surfaces on machine parts where they can fill irregularities. Gaskets are commonly produced by cutting from sheet materials. Given the potential cost and safety implications of faulty or leaking gaskets, it is critical that the correct gasket material is selected to fit the needs of the application. It is usually desirable that the gasket be made from a material that is to some degree yielding such that it is able to deform and tightly fill the space it is designed for, including any slight irregularities. Some types of gaskets require a sealant be applied directly to the gasket surface to function properly.</p> <p> </p> <p>Thermodynamic temperature (degrees kelvin), Thermal conductivity (watts per meter-kelvin)</p> <p>291.15 0.21</p> <p>338.7 0.77</p> <p>366.5 0.757</p> <p>394.3 0.749</p> <p>422.1 0.742</p> <p>449.8 0.739</p> <p>477.6 0.736</p> <p>505.4 0.736</p> <p>533.2 0.736</p> <p>560.9 0.733</p> <p>588.7 0.731</p>
Thermal conductivity of pure iron at various temperatures
<p><strong>Thermal conductivity of pure 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>Iron is a chemical element with the atomic number 26. It is a metal that belongs to the first transition series and group 8 of the periodic table. It is, by mass, the most common element on Earth, right in front of oxygen, forming much of Earth's outer and inner core. It is the fourth most common element in the Earth's crust. In its metallic state, iron is rare in the Earth's crust, limited mainly to deposition by meteorites. Iron ores, by contrast, are among the most abundant in the Earth's crust, although extracting usable metal from them requires kilns or furnaces capable of reaching 1,500 degrees Celsius or higher, about 500 degrees Celsius higher than that required to smelt copper. In the modern world, iron alloys, such as steel, stainless steel, cast iron and special steels, are by far the most common industrial metals, because of their mechanical properties and low cost. The iron and steel industry is thus very important economically. Pristine and smooth pure iron surfaces are mirror-like silvery-gray. However, iron reacts readily with oxygen and water to give brown to black hydrated iron oxides, commonly known as rust. Unlike the oxides of some other metals, that form passivating layers, rust occupies more volume than the metal and thus flakes off, exposing fresh surfaces for corrosion. Although iron readily reacts, high purity iron, called electrolytic iron, has better corrosion resistance.</p> <p> </p> <p>Thermodynamic temperature (degrees kelvin), Thermal conductivity (watts per meter-kelvin)</p> <p>2 149</p> <p>3 224</p> <p>4 297</p> <p>5 371</p> <p>6 442</p> <p>7 513</p> <p>8 580</p> <p>9 645</p> <p>10 705</p> <p>20 997</p> <p>30 814</p> <p>40 555</p> <p>50 372</p> <p>60 265</p> <p>70 204</p> <p>80 168</p> <p>90 146</p> <p>100 132</p> <p>200 94</p> <p>273.2 83.5</p> <p>300 80.3</p> <p>400 69.4</p> <p>500 61.3</p> <p>600 54.7</p> <p>700 48.7</p> <p>800 43.3</p> <p>900 38</p> <p>1000 32.6</p> <p>1100 29.7</p> <p>1183 29.9</p> <p>1183 27.9</p> <p>1200 28.2</p> <p>1300 29.9</p> <p>1400 30.9</p> <p>1500 31.8</p>
Data from: Thermal conductance and basal metabolic rate are part of a coordinated system for heat transfer regulation
Open the record for dataset details and reuse information.
Soil Thermal Conductivity Data (FIFE)
The purpose of the 1989 FIFE soil properties investigation was to obtain a description of the thermal properties of the soils within the FIFE study area. Soil thermal conductivity measurements describe the soil properties which govern the flow of heat through the soil. The thermal conductivity is defined as the quantity of heat that flows through a unit area in a unit time under a unit temperature gradient. These measurements were made using a hot wire probe in situ at two depths at twenty six FIFE sites during October 1987. The measurements were taken using a long electrically heated wire enclosed in a cylindrical probe . The probe is placed in the soil, the wire is heated by running a current through it, and the temperature rise is measured with a thermocouple placed next to the wire. A plot of temperature versus the log of time can be used to derive the thermal conductivity. The results may require a correction factor to account for the dimensions of the probe.
Supplementary tables for "Electrical resistivity and thermal conductivity of fcc Fe: Stratification of Mercury's core"
<p>Supplementary tables for "Electrical resistivity and thermal conductivity of fcc Fe: Stratification of Mercury’s core", which contain the results of first-principles calculations on the electrical resistivity and thermal conductivity of face-centered cubic (fcc) Fe up to 50 GPa and 3000 K.</p>
Dataset related to article: Equivariant graph neural network interatomic potential for Green-Kubo thermal conductivity in phase change materials
<p>This repository contains the dataset to train and test the GeTe Machine Learning Interatomic Potential (MLIP). The computational details are given in the manuscript. </p>
APOLLO 15 HEAT FLOW THERMAL CONDUCTIVITY RDR SUBSAMPLED V1.0
This data set comprises a reduced, subsampled set of the data returned from the Apollo 15 Heat Flow Experiment from 31 July 1971 through 31 December 1974. The experiment consisted of two probes placed by the Apollo 15 astronauts in holes drilled in the lunar surface near the Apollo 15 Lunar Surface Experiments Package site to measure the thermal conductivity. The data consist of a set of ten ASCII tables with time, temperature differences, and average temperatures readings measured by the thermocouples in the heat flow probes and probe cables. The data have been restored and reformatted from binary data held on magnetic tapes at the NASA National Space Science Data Center (NSSDC) under NSSDC ID of PSPG-00093 (old NSSDC ID 71-063C-06A).
ScienceDex guides
Understand access before you commit
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.