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A simple optimization is performed based on the developed models to obtain an efficient absorber configuration.
By FEM software ANSYS, nonlinear analyses are performed on bearing models to obtain necessary design results.
The experiments were performed for the 3D static models to obtain the lift/drag coefficients.
In the initial stage of the iterative procedure, we apply the unadapted speaker models to obtain initial separation.
For this study, 9 parameters are used for both models to obtain a wider perspective of generating a proxy model.
The second stage performs a discrete-event simulation using these models to obtain the cost and duration estimates.
Particle Swarm Optimization (PSO) routine is used in all three surrogate models to obtain the associated model parameters.
A cyclic feedback procedure is proposed in between the location and allocation models to obtain the best solution.
The last step is to postprocess the outcomes of models to obtain maps written in standard file formats.
We evaluated the performance of our proposed architecture and compared it with the existing models to obtain various performance measures.
An energy-based approach is adopted along with two different assumed buckled shapes (models) to obtain the analytical expressions.
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