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The compressive axial forces of the transverse beam increase during the initial stages of the loading process, up to a vertical displacement of 32 mm.
As a result, the EF of the hybrid nanostructure will increase as the irradiance time and fluence of laser beam increase.
The simulation results show that the interfacial stresses at the ends of the beam increase with the load and the elastic modulus, but decrease with the thickness of the adhesive layer.
The tensile stresses and deflections in the middle span of RC beam increase by 20 27% and 5.2 10.8%, respectively due to the effect of drying shrinkage and AGS.
The progressive changes that are observed are time-dependent deviations of the beam shape from circular, wander of the centroid of the beam, increase in the width of the beam over and above that expected from diffraction, and breakup of the beam into distinct patches of illumination whose shapes and locations fluctuate with time.
It is seen that as the modal index and the thickness of the beam increase, shear deformation, rotatory inertia and warping effects become more pronounced on the natural frequencies, and therefore the errors can be unacceptably large if these effects are ignored.
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When the frequency of the laser is tuned to the frequency of the atoms moving with zero velocity relative to the laser source, the transmission of the probe beam increases.
Third, previous experiments showed that electron beam increases adhesion force between semiconductors and metals [34, 35].
The ductility of composite beam increased as the longitudinal reinforcement ratio increased.
Inside attenuating medium, the increased attenuating effect outweighed the fan beam increased counting efficiency.
The residual deformation of frame beam increases obviously with the increase of input acceleration.
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