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Fitting of experimental data to the Mean Transport-Pore Model provides model parameters (transport parameters) that are independent of the gas kind and composition.
Hence, a heuristic correlation between pulsation frequency and flow parameters, transport properties, in particular the Damköhler number, and oscillation amplitude has been developed and awaits theoretical interpretation.
This equation is governed by two parameters, transport velocity and dispersion coefficient.
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The model includes five free parameters: the transport parameters K1 (transport from blood across the blood brain barrier into the tissue), k2 (transport from tissue to blood), k3 (phosphorylation by Tk1), k4 (dephosphorylation), and vB (the fraction of blood volume in the tissue).
A wide and thorough clinical evaluation and multidisciplinary ECMO team allowed the optimization of clinical parameters before transport and a safely transfer.
Parameters controlling transport for these conditions are the diffusion coefficient and sorption parameters.
This discrepancy is difficult to explain by uncertainties of boundary spectrum parameters or transport coefficients.
The correlation between electrochemical parameters and transport properties is also studied.
We then established the relationships among the convergence rates, structural parameters, and transport properties of porous networks.
The kinetic parameters for transport of dye are presented in Table 3.
It is assumed that these parameters affect transport processes within the materials and losses due to degradation and evaporation.
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