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Measurements of swelling degree and the elastic properties of samples having different esterification degree were treated according to the theory developed for semirigid chains: the values of the ν (number of elastically active chains) and χ (polymer solvent interaction parameter) were calculated and used to interpret some experimental behaviours.
The method achieves high correlation with experimental data (Matthews correlation coefficient of 0.812) and only fails to predict 2/14 experimental behaviours available in the original experimental publication.
Finally, we argue that further refinement of the model, to reproduce all 14 experimental behaviours available in Song et al. (2008) would require quantitative fine-tuning of parameters and would result in over fitting.
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The experimental behaviour is illustrated by video clips (electronic annexes).
The strength values were not divided by safety coefficients, in order to catch the experimental behaviour of the element.
The numerical models accurately captured the observed experimental behaviour of the adhesive.
The existing experimental behaviour has been captured properly, compared with other previously suggested FE models.
Experimental behaviour was modelled with a non-linear model able to describe the cracking behaviour.
As can be seen, between local midnight and 1000 local time the modeled height of the maximum electron concentrations closely followed their experimental behaviour.
In this paper, finite element simulations have been used to understand the experimental behaviour.
The finite element models (FEMs) were able to predict the experimental behaviour reasonably well.
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Justyna Jupowicz-Kozak
CEO of Professional Science Editing for Scientists @ prosciediting.com