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Tristability is predicted analytically, verified with finite element analysis and, for the first time, demonstrated experimentally.
A simple analytical model for the BMJ mechanism is derived and verified with finite element model simulation results for a variety of capped column geometric configurations.
The provided analytical expressions are verified with finite element simulations employing three-dimensional continuum elements and calibrated constitutive models specific to metallic foams.
Furthermore, the accuracy and applicability of those constitutive models were verified with finite element analysis in ABAQUS by comparing the results of experiments and simulations.
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The precision of the models as a function of time is verified with finite-element modeling.
The elastic field in the thin film is then verified with the finite element (FE) results.
The proposed methods are verified with shell finite element eigen-buckling studies.
The adapted analytical models for discontinuous heat extraction are verified with numerical finite element code.
Then the results obtained by the tolerance modelling were verified with the finite element method.
All the calculated design element sensitivities were verified with the Finite Difference Method and the results showed close agreement.
The analytical solutions are verified with the finite element analysis (FEA) and found to be in excellent agreement.
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