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69 results for “anchorage”
Temporal transect of moss-associated N2 fixation rates in Anchorage, Fairbanks, and Toolik
This is a dataset coving multiple moss species (Hylocomium splendens, Ptilium crista-castrensis, Pleurozium schreberi, Sphagnum sp., others) and their associated d15N following incubation with 15N2 in June, July, and August over the course of one growing season in 2017. Three sites at each location (Anchorage, Fairbanks, and Toolik Field Station) were sampled. We measured rates of nitrogen fixation using 15N2 incubations in a common garden close to the sites of collection.
Dataset: Long-Term Resistance of Gradient Anchorage for Prestressed CFRP Strips in Structural Concrete Retrofitting
<p>This dataset presents experimental research results on the long-term behaviour of a non-mechanical prestressed CFRP anchorage for concrete retrofitting.<br> The following data is included:<br> - Force-slip of lap-shear tests.<br> - Slip profiles (at last stage) of prestress force releasing and lap-shear tests.</p> <p> </p> <p>Further details on the experimental setup, as well as representation of datasets can be found in the following works.<br> Please cite the following works, if any part of the dataset is used within your research.</p> <p>https://doi.org/10.1016/j.compositesb.2017.11.062<br> https://doi.org/10.3390/polym10060565<br> Harmanci, Yunus Emre. Long-Term Resistance of Gradient Anchorage for Prestressed CFRP Strips in Structural Concrete Retrofitting. Diss. ETH Zurich, 2018.</p>
Fig. 2 in Effect of tenthredinid leaf miner invasions on growth of Alaska white birch in Anchorage, Alaska, USA, and the interaction with biological control of amber-marked birch leaf miner
Fig. 2. Time series analysis of mean radial growth increments (mm) of Alaska white birch (Betula neoalaskana) in Anchorage, Alaska (n = 99) from 1984 to 2018: (1) pre-amber-marked birch leaf miner (Profenusa thomsoni) outbreak control period (1984–1995) (black dots); (2) amber-marked birch leaf miner outbreak period (1996–2007) (red dots); and (3) the amber-marked birch leaf miner suppression period due to biological control (2008–2018) (green dots). Time Series Mean = 1.7938, Std = 0.3843, N = 35, Zero Mean ADF (Augmented Dickey Fuller test) = −0.9887, Single ADF = −2.8315, Trend ADF = −4.8800.
Fig. 1 in Effect of tenthredinid leaf miner invasions on growth of Alaska white birch in Anchorage, Alaska, USA, and the interaction with biological control of amber-marked birch leaf miner
Fig. 1. Percentage of Alaska white birch (Betula neoalaskana) leaves in Anchorage mined by the amber-marked birch leaf miner (AMBLM on graph) (Profenusa thomsoni) or the late birch leaf edge miner (LEM on graph) (Heterarthrus nemoratus) from 1990 to 2019, from the initial invasion of amber-marked birch leaf miner (around 1991) through its suppression by classical biocontrol (2004– 2015) and the invasion of a second species of leaf miner (H. nemoratus) (around 2008). Data on percentage of birch leaves mined by each species were taken from multiple sources: (1) P. thomsoni: 2006–2011 (Soper et al. 2015); 2015 and 2018 (Wenninger unpublished 2018); and 2019 (Andersen et al. 2021); and (2) H. nemoratus: 2008–2010 (Lundquist et al. 2012); 2011 (Mulvey &Lamb 2012, p. 15); 2015 and 2018 (Wenninger unpublished 2018); and 2019 (Andersen et al. 2021).
Fig. 3 in Effect of tenthredinid leaf miner invasions on growth of Alaska white birch in Anchorage, Alaska, USA, and the interaction with biological control of amber-marked birch leaf miner
Fig. 3. Trends in annual radial growth increment (mm) from Alaska white birch (Betula neoalaskana) in Anchorage, Alaska (n = 99 cores) during each of 3 periods: (A) the pre-amber-marked birch leaf miner (Profenusa thomsoni) outbreak period (1984–1995, (B) the amber-marked birch leaf miner outbreak period (1996– 2007), and (C) the biological control amber-marked birch leaf miner suppression period (2008–2018).
Guam is about 30 miles long and 4 to 8 miles wide. The portion of the island northeast of Agana, the capital, is a limestone plateau 200 to 300 feet in elevation. The docks are at Piti, and a channel 2 miles long extends to the ship anchorage in the outer part of Apra Harbor. Heavy lines on the map are automobile roads, broken lines are trails, and heavy broken lines are poor roads. in Map of Guam
Guam is about 30 miles long and 4 to 8 miles wide. The portion of the island northeast of Agana, the capital, is a limestone plateau 200 to 300 feet in elevation. The docks are at Piti, and a channel 2 miles long extends to the ship anchorage in the outer part of Apra Harbor. Heavy lines on the map are automobile roads, broken lines are trails, and heavy broken lines are poor roads.
MAP OF GUA:i\I Guam is about 30 miles long and 4 to 8 miles wide. The portion of the island northeast of Agana, the capital, is a limestone plateau 200 to 300 feet in elevation. The docks are at Piti, and a channel 2 miles long extends to the ship anchorage in the outer part of Apra Harbor. Heavy lines on the map are automobile roads, broken lines are trails, and heavy broken lines are poor roads. in Map of Guam
MAP OF GUA:i\I Guam is about 30 miles long and 4 to 8 miles wide. The portion of the island northeast of Agana, the capital, is a limestone plateau 200 to 300 feet in elevation. The docks are at Piti, and a channel 2 miles long extends to the ship anchorage in the outer part of Apra Harbor. Heavy lines on the map are automobile roads, broken lines are trails, and heavy broken lines are poor roads.
MAP OF GUAM Guam is about 30 miles long and 4 to 8 miles wide. The portion of the island northeast of Agana, the capital, is a limestone plateau 200 to 300 feet in elevation. The docks are at Piti, and a channel 2 miles long extends to the ship anchorage in the outer part of Apra Harbor. Heavy lines on the map are automobile roads, broken lines are trails, and heavy broken lines are poor roads. in Map of Guam
MAP OF GUAM Guam is about 30 miles long and 4 to 8 miles wide. The portion of the island northeast of Agana, the capital, is a limestone plateau 200 to 300 feet in elevation. The docks are at Piti, and a channel 2 miles long extends to the ship anchorage in the outer part of Apra Harbor. Heavy lines on the map are automobile roads, broken lines are trails, and heavy broken lines are poor roads.
Data and code for: Evolution of aerial spider webs coincided with repeated structural optimization of silk anchorages
<p><strong>Data and Code for the article:</strong></p> <p><strong>Evolution of aerial spider webs coincided with repeated structural optimization of silk anchorages</strong><br> <br> <em>Jonas O. Wolff, Gustavo B. Paterno, Daniele Liprandi, Martín J. Ramírez, Federico Bosia, Arie van der Meijden, Peter Michalik, Helen M. Smith, Braxton R. Jones, Alexandra M. Ravelo, Nicola Pugno and Marie E. Herberstein</em><br> <br> Journal: <strong>Evolution</strong> <br> DOI: <a href="https://doi.org/10.1111/evo.13834">https://doi.org/10.1111/evo.13834</a> </p> <p>Github repository: https://github.com/paternogbc/Wolff_et_al_Evolution_aerial_spider_webs</p> <p><br> When using the <strong>data available</strong> in this repository, please cite the original publication. </p> <p>Contact jonas.wolff@mq.edu.au for any further information. </p> <p>Wolff, J. O., Paterno, G. B., Liprandi, D. , Ramírez, M. J., Bosia, F. , der Meijden, A. , Michalik, P. , Smith, H. M., Jones, B. R., Ravelo, A. M., Pugno, N. and Herberstein, M. E. (2019), <strong>Evolution of aerial spider webs coincided with repeated structural optimization of silk anchorages</strong>. Evolution. Accepted Author Manuscript. doi:10.1111/evo.13834</p>
Temporary Anchorage Devices for Ridge Preservation
ClinicalTrials.gov study NCT03205800. IPD Sharing: NO. Countries: 1. Publications: 1.
Chesterfield Micro-implant Study Involving Three Types of Anchorage Methods in Orthodontics
ClinicalTrials.gov study NCT00995436. IPD Sharing: Not stated. Countries: 1. Publications: 1.
Traumatic mating increases anchorage of mating male and reduces female remating duration and fecundity in a scorpionfly species
Open the record for dataset details and reuse information.
Effects of the Herbst Appliance With Different Anchorages and Twin-Block Appliance in Class II Malocclusion
ClinicalTrials.gov study NCT02411812. IPD Sharing: Not stated. Countries: 1. Publications: 26.
Anchorage Reinforcement in Bimaxillary Proclination Cases
ClinicalTrials.gov study NCT04705545. IPD Sharing: NO. Countries: 1. Publications: 6.
Assessment of Decision Support System Software in Extraction and Anchorage Planning Among Adult Patients Using Computer Algorithm
ClinicalTrials.gov study NCT05348109. IPD Sharing: UNDECIDED. Countries: 1. Publications: 33.
Comparative Evaluation Of Two Bone-Anchored Maxillary Molar Distalization Appliances: Direct Versus Indirect Anchorage
ClinicalTrials.gov study NCT06507319. IPD Sharing: NO. Countries: 1. Publications: 0.
Single Palatal Temporary Anchorage Device for Anterior Open Bite
ClinicalTrials.gov study NCT04419805. IPD Sharing: NO. Countries: 1. Publications: 1.
Miniscrews as Anchorage Device for Orthodontic Treatment
ClinicalTrials.gov study NCT02644811. IPD Sharing: NO. Countries: 1. Publications: 11.
Patients' Satisfaction and Clinical Investigation of Removable Partial Denture Anchorage With Extracoronal Adhesive Attachments in Comparison With Clasp-retained Partial Dentures
ClinicalTrials.gov study NCT07160660. IPD Sharing: NO. Countries: 1. Publications: 7.
Evaluation of Mini Plates Anchorage With Forsus Fatigue Resistant Device
ClinicalTrials.gov study NCT02475785. IPD Sharing: Not stated. Countries: 1. Publications: 21.
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Allen Brain Atlas
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Annotated Behaviour and Observability Dataset (ABODe)
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DANDI Archive for NWB datasets
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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.