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Two possible route planning scenarios for the robotic fish model inspired from the Carangiform motion are performed.
Additionally, Computational Fluid Dynamics (CFD) simulations of the in-cylinder charge motion are performed to describe the turbulent flow field.
Finally, direct integrations of the equations of motion are performed to verify the accuracy of the proposed method.
Then, some comparisons between the results from the both energy formulations and also from the statistical energy analysis and the numerical solution of the equations of motion are performed with two damped plates at high frequency.
The seismic reliability analyses of an in-service self-anchored suspension bridge (modeled using a 15,530 nodes and 20,875 elements) with 31 random parameters subjected to earthquake motion are performed to illustrate the comparable much higher efficiency of the proposed method (especially for low failure probability cases) compared to using the direct Monte Carlo simulation (MCS).
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This motion is performed regardless of food size.
Simultaneous correction of eddy-current effects and head motion was performed using the FSL EDDY tool.
Then, numerical integration of the equations of motion is performed via the Runge Kutta scheme.
Computer-controlled substrate motion was performed to acquire preliminary information of its effect on mass retention.
In a single software, a thorough and effective clinical and biomechanical analysis of human motion was performed.
The platform motion is performed by successive slow bending and quick stretching of the tubes (i.e., legs).
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