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1,055 results for “Bridge”

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zenodo40/100

Dataset for acceleration measurements at the research bridge openLAB in Bautzen, Germany - Change of dynamic behavior in the concrete hardening process

<p>This data set was collected during the construction phase of the openLAB in Bautzen, Germany during the period from 22.01.2024 - 30.04.2024. It includes acceleration measurements and temperature measurements that record the dynamic behavior of the bridge over a period of 49 days (from 22.01.2024 to 11.03.2024; the remaining data cannot be uploaded due to the Zenodo upload restriction, but can be released on request). The detailed documentation of the data set can be found in the file "Bartels, Dunkel, Marx_2024_Documentation.pdf". The documentation describes the structure, the applied monitoring system and the collected data in detail.</p>

opencc-by-4.0Jul 2024View details →
zenodo40/100

Understanding Electrochemical Reversibility using Density Functional Theory: Bridging Theoretical Scheme of Squares and Experimental Cyclic Voltammetry

<p>#<strong> Scheme of Squares</strong></p> <p>## <strong>Overview</strong></p> <p>The `SchemeOfSquares.tar` archive contains essential data and examples related to our research on redox reactions. The contents are organized into two primary subfolders: `datasets` and `examples`.</p> <p>##<strong> Getting Started</strong></p> <p>### <em><strong>Extracting the Archive</strong></em></p> <p>To extract the contents of the `SchemeOfSquares.tar` file, use the following command in a Linux environment:</p> <p>```sh<br>tar -xvf SchemeOfSquares.tar<br>```</p> <p>### <strong><em>Directory Structure</em></strong></p> <p>After extracting, you will find the following structure:</p> <p>- **datasets/**<br>&nbsp; - **ET/**: Contains Gaussian input and output files for electron transfer (ET) redox reactions.<br>&nbsp; - **PET/**: Contains Gaussian input and output files for proton-coupled electron transfer (PET) redox reactions.<br>&nbsp;&nbsp;<br>- **examples/**: Includes sample cases discussed in the main paper, along with the corresponding scaling code.</p> <p>## <strong>Details</strong></p> <p>### <em><strong>Datasets</strong></em></p> <p>- **ET Subfolder**: Houses all the data files related to electron transfer reactions. Each file here represents a specific reaction and contains Gaussian input and output data.<br>- **PET Subfolder**: Contains data files for proton-coupled electron transfer reactions, similarly structured with Gaussian input and output data.</p> <p>### <em><strong>Examples</strong></em></p> <p>- The `examples` folder provides illustrative samples that were elaborated upon in the main research paper. This includes the scaling code necessary for replicating the results.</p> <p>## <strong>References</strong></p> <p>For a comprehensive understanding of the data and examples provided, please refer to the main paper associated with this repository.</p> <p>## <strong>Contact</strong></p> <p>For any questions or further information, please contact Amir Mahdian / Arsalan Hahsemi&nbsp; at firstname.lastname@aalto.fi.</p>

opencc-by-4.0Jul 2024View details →
zenodo40/100

Data sets of multi-body models for conventional, articulated, and equidistant-axles trains and single span bridges

<p>Information about characteristics of multi-body models of conventional, articulated, and equidistant-axles trains.</p> <p>Information about bridge data set, used for vehicle-bridge interaction investigations.</p>

opencc-by-4.0Aug 2024View details →
zenodo40/100

Cellulose test input dataset for simulations with Galaxy and BRIDGE

<p>This coordinate and protein structure file dataset is that of&nbsp;cellulase and&nbsp;octaose&nbsp;substrate <em>in vacuo</em>. It&nbsp;has been derived from the <a href="https://www.rcsb.org/structure/7cel">7CEL PDB</a> structure of a fungal cellobiohydrolase.&nbsp;</p> <p>The original enzyme has been modified to revert the mutation at position&nbsp;217 and to include disulfide bonds. The octaose substrate&nbsp;is an oligosaccharide consisting&nbsp;of 8 beta 1-4 linked glucose monomers.&nbsp;</p> <p>The files includes are:&nbsp;</p> <ul> <li><strong>cbh1test.crd</strong>: the coordinates of the entire system (protein and substrate) in CHARMM coordinate&nbsp;format.&nbsp;</li> <li><strong>cbh1test.psf</strong>: the CHARMM protein structure file which&nbsp;contains lists of&nbsp; molecular&nbsp;information&nbsp;including atomic masses, all bond pairs, angle triples and so on.</li> </ul>

opencc-by-4.0May 2019View details →
zenodo40/100

Webis Simulation Data Mining Bridge Models Corpus 2012 (Webis-SDMbridge-12)

<p>This corpus provides the simulation data mining community with a collection of 14641 bridge models and simulated behavior.</p> <p><strong>1. Folder &quot;1-designs&quot;</strong></p> <p>The text files in this directory should contain all information for the<br> independent variables any machine learning experiment. For reference, all 14641 IFC models are supplied in subfolders 001 to 147.</p> <p><strong>2. Folder &quot;2-simulation&quot;</strong></p> <p>This folder contains samples of the simulation output that may be viewed in Paraview (http://www.paraview.org). The original model contains the &quot;Org&quot; filename fragment, and the maximum and minimum behaviors are indicated with &quot;Max&quot; and &quot;Min&quot; filename fragments. Displacement, strain, and stress behaviors are all given. Only three of the 14641 models are given as the file sizes are<br> around 1.4 to 2.2 megabytes each. The complete data (approximately 81 gigabytes) can be regenerated and provided if necessary on request (email webis@medien.uni-weimar.de).</p> <p><strong>3. Folder &quot;3-aggregation&quot;</strong></p> <p>Maximum displacement, strain, and stress measurements are given in the text files individually, and together in the files with the &quot;vtk&quot; filename fragment. This data should be sufficient for the dependent variables of any machine learning experiment.</p>

opencc-by-4.0Jun 2012View details →
zenodo40/100

Raw data of "Bridging of nucleosome-proximal DNA double-strand breaks by PARP2 enhances its interaction with HPF1"

<p>Raw data used in the following article:</p> <p>Bridging of nucleosome-proximal DNA double-strand breaks by PARP2 enhances its interaction with HPF1</p> <p>Guillaume Gaullier, Genevieve Roberts, Uma M. Muthurajan, Samuel Bowerman, Johannes Rudolph, Jyothi Mahadevan, Asmita Jha, Purushka S. Rae, Karolin Luger</p> <p>bioRxiv 846618; doi: <a href="https://doi.org/10.1101/846618">https://doi.org/10.1101/846618</a></p> <p>This includes:</p> <ul> <li>uncropped and unaltered images of all SDS-PAGE and native PAGE</li> <li>all size exclusion chromatograms and light scattering data</li> <li>raw data of all fluorescence polarization and FRET binding curves</li> <li>thermal shif assay raw data</li> </ul>

opencc-by-4.0Nov 2019View details →
zenodo40/100

Text-fig. 6. Platanaceae 1–3. Platanites raynoldsii (NEWBERRY) comb. nov. 1. Holotype of Platanus raynoldsii NEWBERRY (1868, 1898), Banks of the Yellowstone River, Montana, USNM 7000. 2. Holotype of Platanites canadensis MCIVER et BASINGER (1993), here treated as synonym of P. raynoldsii, showing clearly the position of the lateral leaflets, US 3-66, Ravenscrag Formation, Saskatchewan, Canada. 3. Specimen from Yellowstone Bridge, Miles City, Montana. UF19021-39390. 4. Detail from fig. 2. Scale bars 5 cm. in Revisions To Roland Brown'S North American Paleocene Flora

Text-fig. 6. Platanaceae 1–3. Platanites raynoldsii (NEWBERRY) comb. nov. 1. Holotype of Platanus raynoldsii NEWBERRY (1868, 1898), Banks of the Yellowstone River, Montana, USNM 7000. 2. Holotype of Platanites canadensis MCIVER et BASINGER (1993), here treated as synonym of P. raynoldsii, showing clearly the position of the lateral leaflets, US 3-66, Ravenscrag Formation, Saskatchewan, Canada. 3. Specimen from Yellowstone Bridge, Miles City, Montana. UF19021-39390. 4. Detail from fig. 2. Scale bars 5 cm.

opencc-by-4.0Dec 2014View details →
zenodo40/100

Text-fig. 2. Map showing the distribution of localities included in the treatment of Brown (1962), based on the coordinates presented in Appendix Table 1. Localities are distributed across New Mexico (NM), Colorado (CO), Wyoming (WY), Montana (MT), South Dakota (SD) and North Dakota (ND). Also plotted are cited Canadian localities: Joffre Bridge, in Alberta (AB), and Ravenscrag, in Saskatchewan (SK). Map generated with Map-It (2014) website. in Revisions To Roland Brown'S North American Paleocene Flora

Text-fig. 2. Map showing the distribution of localities included in the treatment of Brown (1962), based on the coordinates presented in Appendix Table 1. Localities are distributed across New Mexico (NM), Colorado (CO), Wyoming (WY), Montana (MT), South Dakota (SD) and North Dakota (ND). Also plotted are cited Canadian localities: Joffre Bridge, in Alberta (AB), and Ravenscrag, in Saskatchewan (SK). Map generated with Map-It (2014) website.

opencc-by-4.0Dec 2014View details →
zenodo40/100

Fig. 8. Stingrays from Summerville, upper Chattian. A in Late Oligocene sharks and rays from the Chandler Bridge Formation, Dorchester County, South Carolina, USA

Fig. 8. Stingrays from Summerville, upper Chattian. A. Dasyatis cavernosa (Probst,1877), BCGM 9097, occlusal (A1) and labial (A2) view. B. D. cf. cavernosa, BCGM 9103, male tooth, occlusal (B1) and labial (B2) view. C. D. rugosa (Probst, 1877), BCGM 9099, occlusal (C1) and labial (C2) view. D. Dasyatidae gen. et. sp. indet., BCGM 9101, occlusal (D1), labial (D2), and lateral (D3) view. E. BCGM 9106, Dasyatis sp. denticle, lateral−oblique view.

opencc-by-4.0Aug 2009View details →
zenodo40/100

Fig. 7. Skates from Summerville, upper Chattian. A, B in Late Oligocene sharks and rays from the Chandler Bridge Formation, Dorchester County, South Carolina, USA

Fig. 7. Skates from Summerville, upper Chattian. A, B, Raja sp. A. BCGM 9088, male anterior tooth, occlusal (A1), lateral (A2), and lingual (A3) view. B. BCGM 9089, female lateral tooth, labial (B1) and lateral (B2) view. C, D, Raja mccollumi sp. nov. C. BCGM 9093 (holotype), male anterior tooth, occlusal (C1), lateral (C2), labial (C3), and lingual (C4) view. D. BCGM 9199 (paratype), male lateral tooth, basal (D1), lateral (D2), lingual (D3) view. E. BCGM 9095, Raja sp. denticle, lateral−oblique view. F–H, R. mccollumi sp. nov. F. BCGM 9200 (paratype), female anterior tooth, occlusal (F1), labial (F2), and lingual (F3) view. G. BCGM 9201 (paratype), female lateral tooth, labial (G1) and lingual (G2) view. H. BCGM 9202 (paratype), female posterior tooth, occlusal (H1), labial (H2), lingual (H3) view.

opencc-by-4.0Aug 2009View details →
zenodo40/100

Fig. 3. Shark remains from Summerville, upper Chattian. A in Late Oligocene sharks and rays from the Chandler Bridge Formation, Dorchester County, South Carolina, USA

Fig. 3. Shark remains from Summerville, upper Chattian. A. Squatina cf. S. angeloides van Beneden, 1873, BCGM 9043, antero−lateral tooth, labial view. B. Nebrius cf. N. serra (Leidy, 1877), SC2009.18.1, antero−lateral tooth, labial view. C. Rhincodon cf. R. typus (Smith, 1828), BCGM 9045, anterior tooth, labial (C1), lateral (C2), and basal (C3) view. D.?Cetorhinus parvus (Leriche, 1908), BCGM 9050, dermal scale, dorsal view, anterior at bottom.

opencc-by-4.0Aug 2009View details →
zenodo40/100

Fig. 2 in Late Oligocene sharks and rays from the Chandler Bridge Formation, Dorchester County, South Carolina, USA

Fig. 2. Stratigraphy of the Chandler Bridge Formation showing facies designations of Katuna et al. (1997) and their correlative units (Beds 1–3) as discussed by Sanders and Weems (1986). Marine/marginal marine facies constitute a coarsening upward sequence from poorly sorted, sandy to silty clay to moderately sorted silty, very fine sand, whereas the bay/estuarine facies is poorly sorted silty to clayey fine quartz sand with occasional phosphate pebbles, and fluvial/estuarine facies consists of poorly sorted, clayey, fine sand with abundant phosphate pebbles.

opencc-by-4.0Aug 2009View details →
zenodo40/100

Fig. 5. Carcharhiniform sharks from Summerville, upper Chattian. A–D in Late Oligocene sharks and rays from the Chandler Bridge Formation, Dorchester County, South Carolina, USA

Fig. 5. Carcharhiniform sharks from Summerville, upper Chattian. A–D. Carharhinus gibbesi (Woodward, 1889). A. BCGM 9059, juvenile upper anterior tooth, labial view. B. BCGM 9060, adult upper anterior tooth, labial view. C. BCGM 9061, juvenile upper lateral tooth, labial view. D. BCGM 9058, adult lower anterior tooth, labial view. E, F. Physogaleus aduncus (Agassiz, 1835). E. BCGM 9064, upper lateral tooth, labial view. F. BCGM 9066, lower anterior tooth, labial view. G. Physogaleus sp., BCGM 9068, antero−lateral tooth, labial view. H. Rhizoprionodon sp., BCGM 9070, labial view. I, J. Hemipristis serra (Agassiz, 1835). I. BCGM 9073, adult upper lateral tooth, labial view. J. BCGM 9072, juvenile upper lateral tooth, labial view. K. Sphyrna cf. S. media Springer, 1940, BCGM 9077, lateral tooth, labial view. L. Sphyrna zygaena (Linneaus, 1758), BCGM 9079, lateral tooth, lingual view. M. Bythaelurus sp., BCGM 9074, labial view. N–P. Galeorhinus sp. N. BCGM 9081, parasymphyseal tooth, labial view. O. BCGM 9082, antero−lateral tooth, labial view. P. BCGM 9083, lateral tooth, labial view.

opencc-by-4.0Aug 2009View details →
zenodo40/100

Fig. 6. Batoids from Summerville, upper Chattian. A in Late Oligocene sharks and rays from the Chandler Bridge Formation, Dorchester County, South Carolina, USA

Fig. 6. Batoids from Summerville, upper Chattian. A. Rhynchobatus pristinus (Probst, 1877), BCGM 9085, occlusal view. B, C. Myliobatinae gen. indet. B. BCGM 9117, lateral tooth, occlusal view. C. BCGM 9116, partial medial tooth, occlusal (C1) and lingual (C2) view. D. Paramobula fragilis (Cappetta, 1970), BCGM 9113, anterolateral tooth, occlusal (D1), labial (D2), and lateral (D3) view. E, F. Plinthicus stenodon Cope, 1869. E. BCGM 9120, partial anterior tooth, lateral (E1) and lingual (E2) view. F. BCGM 9121, lateral tooth, lateral (F1) and labial (F2) view. G. Rhinoptera cf. R. studeri (Agassiz, 1843), BCGM 9123, occlusal (G1) and lingual (G2) view. H. Gymnura sp., BCGM 9107, lateral (H1) and labial (H2) view.

opencc-by-4.0Aug 2009View details →
zenodo40/100

Fig. 4. Lamniform sharks from Summerville, upper Chattian. A, B in Late Oligocene sharks and rays from the Chandler Bridge Formation, Dorchester County, South Carolina, USA

Fig. 4. Lamniform sharks from Summerville, upper Chattian. A, B. Alopias cf. A. vulpinus (Bonnaterre, 1788). A. BCGM 9047, anterior tooth, labial view. B. BCGM 9048, lateral tooth, labial view. C. Carcharias sp., BCGM 9054, labial view. D. Carcharias cuspidatus (Agassiz, 1843), BCGM 9052, lower lateral tooth, labial view. E. Carcharocles sp., BCGM 9055, labial view.

opencc-by-4.0Aug 2009View details →
zenodo40/100

Bridge force waveforms obtained by systematically bowing various cello G-string models

<p>This dataset provides the waveforms of the bridge forces used in the research article titled &ldquo;An experimental approach for comparing the influence of cello string type on bowed attack response&rdquo; (see <em>JASA Express Letter </em>https://doi.org/10.1121/10.0034330 ). The data consists of audio recordings containing the force signals that the string exerts at the bridge (bridge force) during a systematic bowing action. The recordings capture bridge force signals at different bow forces and bow accelerations. Various cello G2-strings (98 Hz)&nbsp; models were used, as the main goal of this study was to investigate the influence of string properties on attack playability (how quickly the string responds to a bowing action). Details on the experimental procedure and methodology can be found in the related work.</p> <p>In general, this dataset offers resources for researchers interested in:</p> <ul> <li>Investigating bow-string interaction phenomena</li> <li>Analysing characteristics of bowed-string transients</li> <li>Developing or validating models of bowed-string instruments</li> </ul> <p><strong>Data Organization:</strong></p> <p>The folders of this repository are organised as follows:</p> <ul> <li><strong>waveforms&nbsp;</strong>This folder contains all the waveforms <ul> <li><strong>Model_X_Y </strong>The folder refers to a tested string<strong>.</strong> The cello string model is named X, from A to D, and the sample is numbered with Y: 1 or 2. For example,&nbsp;<em>Model_A_1 </em>is the folder containing the recording of the string model A and sample number 1. In the related work, only the samples numbered 2 were taken into account for the playability analysis.&nbsp;<br> <ul> <li><strong>yyyy-mm-dd(_r)&nbsp;</strong>Each subfolder refers to a measurement session in which the string was bowed at different bow forces and bow acceleration to populate a Guettler diagram. The day of the measurement session is indicated in the folder name: yyyy is the year, mm the month, and dd the day. Additionally, some measurements were performed reverting the order of measurements, and they are indicated with _r at the end of the name. The numbering used for indicating the Guettler diagrams in the related work, referred to it as &ldquo;repetition n. 1, 2, &hellip;&rdquo;, follows the chronological order reported in the name of these subfolders. <ul> <li><strong>Fb_nnn_a_mmm.wav </strong>The recording are single channel wav files sampled at 50kHz at a 64 bit rate. The bow force Fb and the bow acceleration a at which the bowing action was performed, is indicated in the file name. For example, a file named <em>Fb_3.76_a_1.96.wav&nbsp;</em>contains the waveform of the bridge force of the string bowed with an average bow force of 3.76 Newton and a constant acceleration of 2.96 m/s^2.&nbsp;</li> </ul> </li> </ul> </li> </ul> </li> </ul> <p><strong>Notes:</strong></p> <ul> <li>To obtain the bridge force in Newton, it is sufficient to multiply the signals by 10.</li> <li>Signals' length vary depending on the bow acceleration. Since the recordings capture the bridge force at a constant length bow stroke, higher accelerations lead to shorter recordings.&nbsp; Short recordings are around 0.22 seconds long, while longs last for about 0.9 seconds.&nbsp;</li> </ul>

opencc-by-4.0Aug 2024View details →
zenodo40/100

Linked collectors and determiners for: Bridging the distributional gap of Tylorida striata (Thorell, 1877) and new synonymy (Araneae: Tetragnathidae).

Natural history specimen data linked to collectors and determiners held within, "Bridging the distributional gap of Tylorida striata (Thorell, 1877) and new synonymy (Araneae: Tetragnathidae)". Claims or attributions were made on Bionomia by volunteer Scribes, <a href="https://bionomia.net/dataset/292a24a0-c75f-4bb9-beba-d106282a2d92">https://bionomia.net/dataset/292a24a0-c75f-4bb9-beba-d106282a2d92</a> using specimen data from the dataset aggregated by the Global Biodiversity Information Facility, <a href="https://gbif.org/dataset/292a24a0-c75f-4bb9-beba-d106282a2d92">https://gbif.org/dataset/292a24a0-c75f-4bb9-beba-d106282a2d92</a>. Formatted as a Frictionless Data package.

opencc-zeroJan 2024View details →
zenodo40/100

FIG. 1. — This concrete bridge replaced a in Pigs and ritual-hunting among the highland Tau-Buhid in Mounts Iglit-Baco natural park, Philippines

FIG. 1. — This concrete bridge replaced a hanging bridge as part of the State modernization plan for the Mounts Iglit-Baco Natural Park. For many Tau-Buhid, the concrete bridge represents a denial of their legal and customary rights within and over the extent of their lands, and is a threat to the survival of their way of life. Through this bridge, State surveillance and control of highland activities intensified. Photo credits: C. A. Rosales.

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

FIGURE 8 in Pectoral morphology in Doliodus: bridging the 'acanthodian'-chondrichthyan divide

FIGURE 8. Three plausible alternative phylogenetic positions of Doliodus within the chondrichthyan total group (comprising "acanthodians" and "conventionally defined chondrichthyans" [shaded]). A, within "conventional" chondrichthyans; B, C, outside "conventional" chondrichthyans; B, close to Gyracanthides (and/or Lupopsyrus?), based on similar pectoral spine arrangement; C, close to Climatius (based on similarities in spine structure and ornament). Tree after Burrow et al. (2016).

opencc-by-4.0Mar 2017View details →
zenodo40/100

FIGURE 6 in Pectoral morphology in Doliodus: bridging the 'acanthodian'-chondrichthyan divide

FIGURE 6. Detail of left prepelvic spines, showing ornamented and internal surfaces with open base. A, B, anterior prepelvic spine; C, D, posterior prepelvic spine. Anterior to top. Scale bar = 5 mm.

opencc-by-4.0Mar 2017View details →

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