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The static resistance function for SC walls is developed using results of numerical analyses and parametric studies conducted using benchmarked 3D finite element (FE) models.
In a previous report, we analyzed the capacity of Y-TZP to withstand maximum loading (static resistance) and the repeated application of loads lesser than those that provoke fracture (fatigue resistance).
This paper presents the development of static resistance functions for use in single-degree-of-freedom (SDOF) analyses to predict the maximum displacement response of SC walls subjected to missile impact and designed to resist local failure (perforation).
The paper describes a non-linear finite element (FE) model and numerical approximation and simulation methods used for the global sensitivity analysis of the static resistance of a beam under major axis bending.
Its fabrics offer four different properties: spill resistance, static resistance, body-heat absorption and stain release.
P1 and P2 are a function of the actual IOP, the static resistance of the cornea, and the dynamic (viscous) resistance of the cornea.
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The quasi-static resistance is normalized against the plastic hinge load, and the chord rotation is normalized against the plastic rotation.
This study represents a first step in determining the resistance of novel sandwich panels under blast pressure: it focuses on evaluating the quasi-static resistance function of the panels, which is instrumental to the determination of their dynamic response to blast, in accordance with recent American (ASCE/SEI 59-11) and Canadian (CSA S850-12) destandardsdardstandards
The contacting pressure and friction strength of compound fabric to probe was to resist against static puncture resistance, but mechanism for dynamic puncture resistance was due to fiber elongation of fabric interlayer and compactness of compound fabric.
With 20 wt% recycled Kevlar fibers, static puncture resistance had linear relation to number of layers, but dynamic puncture resistance showed a parabolic relationship.
Findings indicate that increase of Kevlar staple fibers fraction improved static puncture resistance more significantly, but inter-laminar shear effect influenced on dynamic puncture resistance more evidently.
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