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The transient responses of the laminated composite beam under a half-cycle pulse force and a rectangular pulse force are then solved by the reverberation-ray matrix analysis method (RRM).
This paper provides insight into the plastic deformation behavior of bi-metal tubes subjected to progressive magnetic pulse force, using experiments with the FE method.
The mode shapes for free vibration, displacement and strain due to simple harmonic and half-sine pulse force excitation are presented in graphical form.
Experimental data corresponding to the controlled and to the uncontrolled systems are also presented considering fixed frequency and pulse force excitation.
A continuous increasing acceleration is established by constructing a constant force that is equivalent to the pulse force, with the mass of the satellite decreasing throughout maneuver.
This paper reports a developed reverberation-ray matrix (DRRM) method to predict the transient response for laminated composite frame subjected to pulse force based on the first-order shear deformation theory (FSDT).
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This phenomenon is referred to as absorption and occurs when a pulse forces nodes to exceed their firing threshold, causing them to fire immediately.
The air pulse forces the cornea inwards (i.e., the ingoing phase) through applanation (i.e., the first or ingoing applanation) into a concavity phase until it achieves the highest concavity (HC).
We applied a double-pulse force protocol that allows the separation of the unfolding of CD4D1D2 from that of I27 domains.
According to the Hertzian impact theory (McLaskey and Glaser 2010), the impulse force (or force pulse) is approximated by a "half sine" pulse, and the duration of the pulse depends on the geometry and material properties of a ball and a massive material that the ball hits; however, the most influential factor is the radius of the ball.
Overpressure in the filter cavity is related to the pulse cleaning force.
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