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127 results for “Setup”
Video of the experimental setup for fragment impact loading using Fragment Simulating Projectiles
<p>The experiment is conducted using the launcher of the Accredited Ballistic Applications Laboratory (ABAL) in the department of ballistics at the Royal Military Academy. It allows to impact a target by a Fragment Simulating Projectile with a user-defined range of velocities. The different components of the experimental setup is shown in this video. </p> <p>Two FSP calibers are used for the different tests: 7.62mm and 12.7mm. They are accelerated up to 322m/s by means of a powder gun. The FSP dimensions are taken from STANAG-NATO. The aluminum plate specimens EN AW-1050A-H24 (average elastic properties: Young’s modulus of 62.5GPa and a Poisson’s ratio of 0.33) with dimensions of 400mm x 400mm x 2mm are fixed to a steel frame with dimensions of 1000mm x 1000mm x 15mm. They are positioned at a distance of 5m from the launcher. The central part of the aluminum specimens is painted by application of a white background and a black speckle pattern. </p> <p>During the experiments, the plate behavior is observed using a field of view of 300mm x 300mm. Two Photron Fastcam SA5 high speed cameras HSC (camera 2 and 3) are mounted in a stereoscopic configuration to record synchronized images during the impact process. The high speed cameras are placed behind a shield protector at a safe distance from the plate in order to avoid damage by the projectiles. Two light emitting diodes LEDs are used to increase the illumination of the aluminum plate. This was done to maintain adequate contrast throughout the experiment. During its flight, the FSP velocity is measured by a pair of light barriers (velocity gates). The FSP initial velocity is chosen to be higher than the plate’s ballistic limit velocity. This choice allows for the deformation to be limited to a small region around the impact point. The striking velocities are recorded using measurements by HSC1.</p>
Dataset, setups and scripts to numerically reproduce the breaching process
<p>This dataset is part of the article: Numerical investigation of mode failures in submerged granular columns - E. P. Montellà, J. Chauchat, C. Bonamy, D. Weij, G. H. Keetels and T. J. Hsu.</p> <p>This file contains the numerical results obtained with SedFoam to model the breaching experiments of Weij (2020) (full thesis available at https://pure.tudelft.nl/ws/portalfiles/portal/84166231/2020_03_05_thesis_dweij.pdf ).</p> <p>The folder and files are set to reproduce the Experiments 8 and 16 in case the user wants to re-launch the numerical simulations. These simulations can be executed with ./Allrun.</p> <p>Two Python scripts are available for post-processing. The Python scripts require the fluidfoam package to be installed and it is freely available at https://github.com/fluiddyn/fluidfoam .</p> <p> </p>
Prehabilitation for Pelvic Cancer: Changes in Setup Variability
ClinicalTrials.gov study NCT03242538. IPD Sharing: NO. Countries: 1. Publications: 1.
Estimating Setup Uncertainty in Pediatric Proton Therapy Using Volumetric Images
ClinicalTrials.gov study NCT04125095. IPD Sharing: Not stated. Countries: 1. Publications: 1.
Electrical Stimulation Effect on Ankle Instability During Walking in Virtual Reality Setup
ClinicalTrials.gov study NCT06484712. IPD Sharing: UNDECIDED. Countries: 1. Publications: 0.
Effectiveness and Retention of Pit and Fissure Sealants in Rural Setup: A School-based Clinical Trial in Nepal
ClinicalTrials.gov study NCT05894200. IPD Sharing: UNDECIDED. Countries: 1. Publications: 3.
Supporting data for: The setup and relaxation of spring upwelling in a deep, rotationally influenced lake
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Data from: Motion analysis of non-model organisms using a hierarchical model: influence of setup enclosure dimensions on gait parameters of Swinhoe’s striped squirrels as a test case
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A versatile mechanized setup for controlled experiments in archeology [Electronic Supplementary Material]
<p><strong>Supplementary Material 1. </strong>Preliminary tests on the Universal Robot UR5 <strong>(top)</strong> and inotec SMARTTESTER<sup>®</sup> <strong>(bottom)</strong>. Each machine was programmed to move a scriber (needle) uni-directional linear motion from a starting point to an ending point (distance ≈ 19 cm) with a 50 N (UR5) or 5 kg (SMARTTESTER<sup>®</sup>) load applied onto the tip. One and five programmatically identical strokes were performed on an aluminum plate. The red dotted lines are straight lines drawn from the starting point to the end point. The arrows indicate the direction of the movement.</p> <p>The width of each groove was measured around the middle (where the black marks are) and are, from top to bottom: 407, 587, 814 and 961 µm.</p> <p>The images were acquired with a digital microscope Smartzoom 5 (Carl Zeiss Microscopy GmbH, Jena, Germany) equipped with a Plan Apo D 1.6×/0.1 objective, at 34× total on-screen (17.5”) resolution. Each image was acquired in two parts, each part being itself an automatically stitched image. The two parts were then manually stitched together in GIMP 2.10.14.</p> <p>The grooves being very long and thin, the reader is advised to digitally zoom into the images to see the details. The resolution of 1200 dpi should allow a great level of details to be visible.</p> <p> </p> <p><strong>Supplementary Material 2. </strong>Scripts of the experiments used for the present paper:</p> <p>(1) Linear setup (Fig. 3 and Supplementary Material 4)</p> <p>(2) Rotary setup (Fig. 4 and Supplementary Material 5)</p> <p>(3) Percussion setup (Fig. 5 and Supplementary Material 6)</p> <p>(4) Oscillating setup (Fig. 6 and Supplementary Material 7)</p> <p>(5) Test of parallelism (Supplementary Material 1)</p> <p> </p> <p><strong>Supplementary Material 3. </strong>Specifications of drives and sensors.</p> <p> </p> <p><strong>Supplementary Material 4.</strong> Video of the linear setup: flint flake cutting a pine board in uni-directional movements. Three strokes (357 mm each at 600 mm.s<sup>-1</sup> and 4,000 mm.s<sup>-2</sup>), with 2 kg weights, were cutting into a pine board. Each stroke cut into a fresh portion of the board thanks to the movement of the table (Y direction).</p> <p> </p> <p><strong>Supplementary Material 5. </strong>Video of the rotary setup: limestone pebbles grinding linseeds. 30 rotations at 300°.s<sup>-1</sup> and 600°.s<sup>-2</sup>; 1 kg weight.</p> <p> </p> <p><strong>Supplementary Material 6. </strong>Video of the percussion setup: limestone pebbles cracking the tibia of a juvenile roe deer previously used in gnawing experiments. Dropping height ≈ 20 cm; 1 kg weight.</p> <p> </p> <p><strong>Supplementary Material 7. </strong>Video of the oscillating setup: shaking sand with two flint flakes. 20 rotations at 600°.s<sup>-1</sup> and 600°.s<sup>-2</sup>; linear movement amplitude approximately 16 cm.</p> <p> </p> <p>Instructions to download all files at once are given here: <a href="https://doi.org/10.5281/zenodo.4011952">https://doi.org/10.5281/zenodo.4011952</a></p>
Data from: Setup in a clinical workflow and impact on radiotherapy routine of an in vivo dosimetry procedure with an electronic portal imaging device
High conformal techniques such as intensity-modulated radiation therapy and volumetric-modulated arc therapy are widely used in overloaded radiotherapy departments. In vivo dosimetric screening is essential in this environment to avoid important dosimetric errors. This work examines the feasibility of introducing in vivo dosimetry (IVD) checks in a radiotherapy routine. The causes of dosimetric disagreements between delivered and planned treatments were identified and corrected during the course of treatment. The efficiency of the corrections performed and the added workload needed for the entire procedure were evaluated. The IVD procedure was based on an electronic portal imaging device. A total of 3682 IVD tests were performed for 147 patients who underwent head and neck, abdomen, pelvis, breast, and thorax radiotherapy treatments. Two types of indices were evaluated and used to determine if the IVD tests were within tolerance levels: the ratio R between the reconstructed and planned isocentre doses and a transit dosimetry based on the γ-analysis of the electronic portal images. The causes of test outside tolerance level was investigated and corrected and IVD test was repeated during subsequent fraction. The time needed for each step of the IVD procedure was registered. Pelvis, abdomen, and head and neck treatments had 10% of tests out of tolerance whereas breast and thorax treatments accounted for up to 25%. The patient setup was the main cause of 90% of the IVD tests out of tolerance and the remaining 10% was due to patient morphological changes. An average time of 42 min per day was sufficient to monitor a daily workload of 60 patients in treatment. This work shows that IVD performed with an electronic portal imaging device is feasible in an overloaded department and enables the timely realignment of the treatment quality indices in order to achieve a patient's final treatment compliant with the one prescribed.
The TRAPUM Large Magellanic Cloud pulsar survey with MeerKAT I: Survey setup and first seven pulsar discoveries (Archive files)
<p>PSRCHIVE archive files of the seven new LMC radio pulsars as described in the paper <em>The TRAPUM Large Magellanic Cloud pulsar survey with MeerKAT I: Survey setup and first seven pulsar discoveries </em>(Prayag et al. 2024).</p>
Initial conditions for galaxy merger setup in the Phantom smoothed particle hydrodynamics and magnetohydrodynamics code
<p>** these files are downloaded automatically by Phantom when running the code **</p> <p>The two files here contain initial conditions (particle positions, velocities etc) for the sample galaxy merger simulation shown in Figure 55 of the Phantom code paper (<a href="http://adsabs.harvard.edu/abs/2018PASA...35...31P">Price et al. 2018</a>). They were created by James Wurster as part of a code comparison with the Hydra code described in section 6.4 of the paper.</p> <p>The files were originally created for use in <a href="http://adsabs.harvard.edu/abs/2013MNRAS.431..539W">Wurster & Thacker (2013)</a></p> <p>For details of how to read these files, see the Phantom source code (<a href="https://github.com/danieljprice/phantom/blob/master/src/setup/setup_galaxies.f90">setup_galaxies.f90</a>)</p>
Database for the article "Acclimation of fine root systems to soil warming: comparison of an experimental setup and a natural soil temperature gradient", published in Ecosystems
<p>The database contains measurements of fine root biomass, absorptive fine root biomass, absorptive root morphology (diameter, specific root length, specific root area, root tissue density, root tip length, root tip weight and branching per length and weight) and identifications and sequences of root-colonizing ectomycorrhizal fungi.</p>
Total experimental setup of the plasma source.
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The Open Field test as a tool for behavior analysis in pigs - is a standardization of setup necessary? A systematic review.
<p>Systematic review.</p>
Model setup for simulations of melting beneath Thwaites Glacier
<p>Model parameter and forcing files needed to simulate the ocean beneath Thwaites Glacier during the period 2011-2022 as described in the paper "Strong ocean melting feedback during the recent retreat of Thwaites Glacier" in Geophysical Research Letters by the same authors. This is version 2 of the model setup. Version 1 had the seabed bathymetry and ice shelf topography files incorrectly oriented.</p>
Linked Outcomes in Various EEG-Hyperscanning Setups
ClinicalTrials.gov study NCT07385027. IPD Sharing: NO. Countries: 1. Publications: 0.
Towards Efficient Personalization of Computerized Lower Limb Prostheses Via Reinforcement Learning in a Clinical Setup - Group 1
ClinicalTrials.gov study NCT07204925. IPD Sharing: NO. Countries: 1. Publications: 0.
PSG Versus Oxim-capnography to Setup Home NIV
ClinicalTrials.gov study NCT02444806. IPD Sharing: UNDECIDED. Countries: 0. Publications: 1.
Data from: Setup in a clinical workflow and impact on radiotherapy routine of an in vivo dosimetry procedure with an electronic portal imaging device
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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.