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The effects of braiding angle and fiber volume fraction on the engineering elastic constants are discussed.
The effects of braiding angle and temperature difference on the thermo-mechanical behaviors were studied.
The influence of braiding angle on the stress, strain and deformation of the composite joint under tensile loading were calculated.
We found that fiber chemistry dictated cell adhesion while braiding angle dictated the tissue-specific lineage commitment of hiPSC-MSCs.
Improved longitudinal performance results from increased axial fiber content and decreased braiding angle, but at the expense of transverse properties.
For this purpose, braided stents were produced by varying different materials, structural and process parameters such as mono-filament type and diameter, braiding angle and mandrel diameter.
Similar(36)
Good agreement was observed in the moduli and strengths estimated using both proposed methods and the multi-scale approach, for braided composites with braiding angles ranging from 15 to 75 degrees subjected to uniaxial tension and compression.
This paper reports a numerical modeling on the compressive behaviors of 3-D braided carbon/epoxy composites with different braided angles under high temperatures at microstructure level.
3D and 5-direction braided preforms with different braiding angles, thicknesses and fiber volume fractions were prepared.
First, the unit cell models of 3D 4-directional braided composites with different braiding angles and fiber volume fraction were built up using ABAQUS.
A similar method was applied by Wang et al. (2016a) to predict tensile strength of bi-axial braided composites with various braiding angles (Fig. 5), while studies by Ahn and Yu (2016) and Zhong et al. (2017) focused on a bending response of braided composites.
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