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The multiscale nature of the proposed model allows determination of the influence of the mix-design, the material behavior of each constituent, and the type of loading on the overall fatigue performance.
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It proposes a mechanical model allowing determination of the pole-vaulter's actions on the pole.
Pressure and production history matching of the field performance with the proposed model allow determination of OGIP in each compartment and transmissibility coefficients.
These basic models allow determination of the instantaneous heat production, the conversion and the reactive production rate from state estimation algorithms.
Oral glucose tolerance tests (OGTTs), hyperinsulinemic-isoglycemic clamp tests, and mechanistic mathematical modeling allowed determination of whole-body insulin sensitivity (M/I), OGTT and clamp test β-cell function, and gastrointestinal glucose absorption.
This includes a finite element modeling that allows determination of axial tool displacements (radial to the workpiece) and voltage activation using a developed fuzzy algorithm.
The model allows the determination of the failure probability of a structure subjected to fatigue loading.
The model allows the determination of the state of unburned gas and combustion products during the combustion process.
Thus, the model allows the determination of E from compression data alone, as the wall thickness is also determined.
Application of this model allows the determination of the diffusion coefficient of the electrons within the film, De ≈ 10−10 cm2 s−1.
The proposed model allows the determination of the scheme parameters that minimize the total expected quality and maintenance cost of the procedure.
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Justyna Jupowicz-Kozak
CEO of Professional Science Editing for Scientists @ prosciediting.com