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Table 1 Screw characteristics Two-arm screws Max.
Open image in new window Fig. 1 Screw fixation technique used in the study.
This indicates substantial improvement in composite action when the stand-off screw quantity is increased from 1 screw at 6 in. to 2 screws at 6 in.
Figure 8 shows theoretical and measured load-deflection relationships for the beam specimens in Groups 1 and 2. Also shown are some code-prescribed deflection limits (International Code Council (ICC) 2012) in terms of the span length, L. The results indicate that when the stand-off screw density was 1 screw at 6 in.
When the stand-off screw quantity was increased from 1 screw at 6 in. to 2 screws at 6 in., the average strength increased by 53.8 %, the average effective stiffness, taken at an applied load of 6 kips, increased by 81.8%%, and the average measured slip for Group 1 specimens was more than six times that of Group 2 specimens.
Alright folks, I'm WALKING to the Vanity Fair Party cuz 1) screw traffic & 2) I am from NYC and walking is what we do pic.twitter.com/4IcLnBULlP.
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Owing to their non-planar cores, 1/2〈1 1 1〉 screw dislocations govern the plastic deformation of body-centered cubic (bcc) metals.
Since both 〈1 1 1〉 and 〈0 0 1〉 screw dislocations may possess non-planar cores if undissociated and will then control plastic properties analogously as 1/2〈1 1 1〉 screw dislocations in body-centered cubic metals, the dissociations have been analyzed for screw dislocations.
The easy, hard and split core configurations of the 〈1 1 1〉 screw dislocation and the energy pathways between them are studied in body-centered cubic (bcc) Fe and W using different density functional theory (DFT) approaches.
In this paper, we develop a link between the atomic-level modeling of the glide of 1/2〈1 1 1〉 screw dislocations at 0 K and the thermally activated motion of these dislocations via nucleation of pairs of kinks.
The recently formulated constrained nudged elastic band method with atomic relaxations (NEB + r) (Gröger R, Vitek V. Model Simul Mater Sci Eng 2012 20 035019) is used to investigate the dependence of the Peierls barrier of 1/2〈1 1 1〉 screw dislocations in body-centered cubic metals on non-glide stresses.
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