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91 results for “creep”
Modeling of Creep Behavior of Particulate Composites with Focus on Interfacial Adhesion Effect
<p>Evaluation of creep compliance of particulate composites using empirical models always provides parameters depending on initial stress and material composition. The effort spent to connect model parameters with physical properties has not resulted in success yet. Further, during the creep, delamination between matrix and filler may occur depending on time and initial stress, reducing an interface adhesion and load transfer to filler particles. In this paper, the creep compliance curves of glass beads reinforced poly(butylene terephthalate) composites were fitted with Burgers and Findley models providing different sets of time-dependent model parameters for each initial stress. Despite the finding that the Findley model performs well in a primary creep, the Burgers model is more suitable if secondary creep comes into play; they allow only for a qualitative prediction of creep behavior because the interface adhesion and its time dependency is an implicit, hidden parameter. As Young’s modulus is a parameter of these models (and the majority of other creep models), it was selected to be introduced as a filler content-dependent parameter with the help of the <em>cube in cube</em> elementary volume approach of Paul. The analysis led to the time-dependent creep compliance that depends only on the time-dependent creep of the matrix and the normalized particle distance (or the filler volume content), and it allowed accounting for the adhesion effect. Comparison with the experimental data confirmed that the elementary volume-based creep compliance function can be used to predict the realistic creep behavior of particulate composites.</p>
Creep-to-runout transition of large landslides controlled by frictional velocity strengthening and weakening
<p>Providing a dynamic model accounting for the effects of pore water pressure and friction strengthening and weakening to predict the sliding process of catastrophic landslides</p>
Digitalized data for the transient creep of quartz and granulite at high temperature under wet conditions
<p>This repository contains the digitalized data from the following original publications and also intermediate results for our manuscript. </p> <p>1) Gleason, G. C., & Tullis, J. (1995). A flow law for dislocation creep of quartz aggregates determined with the molten salt cell. Tectonophysics, 247(1-4), 1–23.</p> <p>2) Zhou, Y., Zhang, H., Yao, W., Dang, J., & He, C. (2017). An experimental study on creep of partially molten granulite under high temperature and wet conditions. Journal of Asian Earth Sciences, 139, 15–29.</p>
FIGURE 2. Schizaea erecta. A. Habit showing erect axis. B. Short-creeping rhizome. C in A new species of grass fern, Schizaea erecta (Schizaeaceae), from Dinagat Island, Mindanao, Philippines
FIGURE 2. Schizaea erecta. A. Habit showing erect axis. B. Short-creeping rhizome. C. Dichotomous branching of lamina. D. Distal branch showing scattered projections of glandular hairs. E. Bases of glandular hairs. F. Sorophore. G. Lobes of sorophore showing the 2 rows of oblong sporangia with long white non-glandular hairs, and spore (inset). H. Dehisced sporangia showing vertical slit and long, white, non-glandular hairs.
CReep and Maintenance flUid Sodium Chloride ADministration rEduction in cRitically Ill adultS
ClinicalTrials.gov study NCT07189091. IPD Sharing: NO. Countries: 1. Publications: 15.
Fault asperities and the transition from aseismic creep to stick-slip: implications for earthquake precursors
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Prediction of creep failure time using machine learning
<p>Dataset from an elastoplastic element creep model with disorder from this publication:</p> <p>https://www.nature.com/articles/s41598-020-72969-6#author-information</p> <p>The data contains different disorder parameters, applied stresses and system sizes. Each sample is described by a csv file with four columns: The first one is a running index from zero to the number of rows in the file minus one, the second one is the number of relaxation steps performed (check the publication what this means), the third one is the index of the element being relaxed/failing and the fourth is a time increment. To get the total time, simply sum up the time increments. For information, please contact Soumyayajyoti Biswas.</p>
Fig. 4. Habrotrocha pavida Bryce, 1915. A. creeping, dorsal view. B. creeping, lateral view. C in Eight new records of monogonont and bdelloid rotifers from Korea
Fig. 4. Habrotrocha pavida Bryce, 1915. A. creeping, dorsal view. B. creeping, lateral view. C. feeding head and neck, dorsal view. D. spurs and toes, ventral view (Scales: A-C=50 μm; D=20 μm).
FIGURE 2 in Ceratopteris shingii, a new species of Ceratopteris with creeping rhizomes from Hainan, China
FIGURE 2. Chromosome number of C. shingii in mitotic root-tip cells. 2n=ca.154.
Figure 2 from: Hodge S, Prasad A (2013) Factors influencing the foraging activity of the allodapine bee Braunsapis puangensis on creeping daisy (Sphagneticola trilobata) in Fiji. Journal of Hymenoptera Research 35: 59-69. https://doi.org/10.3897/jhr.35.6006
Figure 2 - Braunsapis puangensis activity from 7am to 6pm on a single Sphagneticola trilobata patch at The University of the South Pacific, Laucala Campus (individuals counted in 30 s; mean ± SE, n = 5). Observations were made during sunny weather in April 2011, and during sunny and rain conditions in May 2011.
Figure 1 from: Hodge S, Prasad A (2013) Factors influencing the foraging activity of the allodapine bee Braunsapis puangensis on creeping daisy (Sphagneticola trilobata) in Fiji. Journal of Hymenoptera Research 35: 59-69. https://doi.org/10.3897/jhr.35.6006
Figure 1 - Maps of major Fiji Islands showing general location of study area, and of Greater Suva indicating locations of patches of Sphagneticola trilobata sampled in the current study. Dark circles indicate presence and white circles indicate absence of Braunsapis puangensis.
Figure 3 from: Hodge S, Prasad A (2013) Factors influencing the foraging activity of the allodapine bee Braunsapis puangensis on creeping daisy (Sphagneticola trilobata) in Fiji. Journal of Hymenoptera Research 35: 59-69. https://doi.org/10.3897/jhr.35.6006
Figure 3 - The relationship between activity of Braunsapis puangensis (counts in 30 s) and a light intensity b relative humidity and c temperature at a single patch of Sphagneticola trilobata on the USP Laucala campus during fine weather in April 2011.
On the Identification of Power-Law Creep Parameters from Conical Indentation
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Data from: Nanoindentation creep of synthesized calcium-(alumino)-silicate-hydrate
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Data from: Crossing the divide: gene flow produces intergeneric hybrid in feral transgenic creeping bentgrass population
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Translocation of Viable Gut Microbiota to Mesenteric Adipose Drives Formation of Creeping Fat in Humans
GEO Series GSE156776. Homo sapiens. 14 samples. Type: Expression profiling by high throughput sequencing.
Creeping fat-derived mechanosensitive fibroblasts drive intestinal fibrosis in Crohn’s disease strictures [Xenium]
GEO Series GSE296331. Homo sapiens. 8 samples. Type: Other.
Creeping fat-derived mechanosensitive fibroblasts drive intestinal fibrosis in Crohn’s disease strictures [Mouse scRNA-seq]
GEO Series GSE275148. Mus musculus. 2 samples. Type: Expression profiling by high throughput sequencing.
Creeping fat-derived mechanosensitive fibroblasts drive intestinal fibrosis in Crohn’s disease strictures [Human scRNA-seq]
GEO Series GSE275145. Homo sapiens. 29 samples. Type: Expression profiling by high throughput sequencing.
Transcriptomic analysis reveals the dynamic changes of immune responses during the development of creeping fat in Crohn's disease
GEO Series GSE227376. Homo sapiens. 59 samples. Type: Expression profiling by high throughput sequencing.
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