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The present semi-analytical solution method accurately predicts the natural frequency and vibration modes of the shells with a cutout.
Experimental results show that the method accurately predicts the effect of design changes on the structure's radiated sound power.
It has been shown that the proposed method accurately predicts the statistics and probability density functions of various relevant parameters.
The validation of the new approach against experimental data shows that the proposed method accurately predicts the shear capacity of all investigated types of shear span.
This method accurately predicts local stress fields in stress concentration regions and is computationally efficient as compared with the solution of a full scale microstructural model.
As a main result, the rheological modelling shows that this new method accurately predicts the time variation of complex shear modulus at any temperature and [TEMPO]/[DCP] ratio.
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Comparisons between experimental results and analytical predictions showed that this method accurately predicted the bending stiffness and midspan deflection as well as the ultimate capacity of CFGF slabs.
The results from the evaluation of prediction accuracy showed that this method accurately predicted TS and DT, suggesting that it could construct a reliable response surface for TS and DT with a small number of samples.
The method accurately predicted that the first patient would die within three years, while the other would survive more than 10 years.
Subsequent application of the proposed method to a case study conducted in a sub-humid region in China showed that, the method accurately predicted the design storms for the existing rain garden, the predicted overflows under large storm events were within 13 50% of the measured volumes.
The proposed method accurately predicted the overall cyclic responses.
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Justyna Jupowicz-Kozak
CEO of Professional Science Editing for Scientists @ prosciediting.com