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The morphology, compression stress-strain curves, wettability, and swelling and rheological behaviors of the HECS/CEL scaffolds were characterized by SEM, mechanical test, contact angle measurement and rheometer.
No contact bouncing behavior can be observed under the acceleration amplitude ∼466 g and the test contact duration can reach 390 μs, longer than the microwitch with only one flexible electrode.
To evaluate the adhesion and patterning, the PEDOT nanofilms and mixed monolayer were investigated with a Scotch® tape peel test, contact angle analyzer, X-ray photoelectron spectrometer, and optical and atomic force microscopes.
X-ray fluorescence (XRF) technique was used to determine the chemical compositions of the samples after short-term ponding test (contact with the 3% NaCl solution for 72 h).
The blends thus obtained were characterized by using Fourier transform infrared spectroscopy (FT-IR), thermogravimetric analysis (TGA), differential scanning calorimetry (DSC), tensile strength test, contact angle measurements and atomic force microscopy (AFM).
A previously developed three-dimensional finite element method (FEM) model was used for calculating the first principal stress distribution in a scratch test contact as a spherical diamond tip is moving with increased load on DLC and TiN coated high speed steel surfaces containing no residual stresses.
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Also, the flyability test, drag test, Contact-Start-Stop (CSS) test, and load/unload test were performed for each substrate while monitoring the friction as well as acoustic emission signals.
The test contacts the catalyst and feed for prolonged periods, during which deactivation of the FCC catalyst proceeds, and coke- and temperature profiles may develop over the catalyst bed.
During all the tests, contact forces over the users' hand surfaces were measured through a pair of gloves instrumented with ten force sensors each.
They were characterized by tensile strength testing, contact angle metering and wide angle X-ray diffraction (XRD), scanning electron microscopy (SEM) and positron annihilation lifetime spectroscopy (PALS).
We employed a wide range of characterization techniques to evaluate the properties of the resulting electrospun nanocomposites, including Field Emission Scanning Electronic Microscopy (FE-SEM), Transmission Electronic Microscopy (TEM), tensile tests, contact angle measurements (CA) and biological assays.
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