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Finally, the effect of the moving load velocity on the maximum heave and pitch motions of the ship is discussed.
Some numerical results are provided in tabular form and in figures to examine the effects of the material gradation, moving load velocity, aspect ratio and different boundary conditions on the dynamic responses of BDFG beam.
Finally, the influences of temperature rise, material graded index, moving load velocity, elastic foundation parameters and boundary conditions on the dynamic behavior of FG plates in thermal environment and subjected to moving load is presented.
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This model turns out to be particularly appropriate in the explication of problems connected to high velocity, since it evaluates both inertial and viscous effects activated by the moving load speed.
The influence of anchor stiffness, moving load and moving velocity on SFT tube can be learned about by analyzing the simulation results.
The dynamic response of floating bridges consisting from simply connected non-deformable pontoons under the action of a moving load with constant velocity is thoroughly studied.
Natural frequencies and transient dynamic deflections are obtained for porous beams under different loading conditions, including a harmonic point load, an impulsive point load and a moving load with constant velocity.
Using a series solution for the dynamic deflection in terms of normal modes the individual and coupling effect of the mass of the moving load, of its velocity and of other parameters is fully assessed.
The coupled effects of the speed of a moving load and the flow velocity of a fluid on the stability of the shell system were also investigated.
The dynamic behavior of a rotating shaft subject to a constant velocity moving load is investigated.
A technique for defining the velocity of moving load and normalizing the deflection introduced which makes the DI independent from beam material parameters.
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CEO of Professional Science Editing for Scientists @ prosciediting.com