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The chemical structure of the fabric samples was identified with FTIR spectra.
The morphology, crystal phase, and chemical structure of the fabric were characterized by scanning electron microscope, X-ray diffraction and energy dispersive X-ray spectroscopy.
Permeability models based on the structure of the fabric are attractive for any design process to enhance the experimental permeability data.
In fact, the softness of the fibres makes the cavitation to produce small erosion effect and the reticulate structure of the fabric favours the formation of air bubble layers which obstruct wave penetration.
It was found that unit hydraulic resistance of such cartridges significantly depends upon the size of the flow passages and the geometry of the structuring gauzes, at the same, practically not depending upon the structure of the fabric and upon the external shape of the cartridge.
Results illustrated that the infiltrating process of molten PC into the CEF-NF is enhanced with increasing laminating temperature and pressure, whereas the network structure of the fabric may be damaged under excessively high laminating parameters, which leads to the deterioration of its EMI shielding performance.
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c Structure of the fabric-based supercapacitor (top) and a photograph when it is stretched (bottom).
The 3D meso-structure model of the MMWK composite is based on an idealized geometrical model according to the preform structure of the MMWK fabric.
The surface morphology, crystal phase and chemical structure of the treated fabrics were characterized by field emission and scanning electron microscopy (FE-SEM and SEM), X-ray diffraction (XRD), and energy dispersive X-ray spectroscopy (EDX).
The morphology and structure of the resultant fabrics were characterized by SEM, AFM and ATR FTIR and dyeing color depth (K/S value), the electrical and ultraviolet protective properties were also evaluated.
XRD measurements were performed to investigate the crystalline structure of the silk fabrics after treatment.
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