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This PDF approach models the fluctuating chemical source term by a product of a beta distribution for the species mass fraction and a lognormal distribution for the particle concentration, and yields a mean species solution that agrees very well with the three-dimensional results for the range of Ar and Da considered in this study.
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It is shown that for small coupling reactivity coefficient the species initially behave like uncoupled constituents, the dispersive transport of which can be studied via single-species solution scheme.
One- and three-dimensional examples are presented to illustrate the steps involved in extending single-species solutions to a four-species system with sequential first-order reactions.
A substitution method is used to transform the multi-species reactive transport problem to one that can be solved using previously published single-species solutions for various initial and boundary conditions.
At equilibrium, the homodimers are the dominant species in solution.
The square brackets designate the equilibrium concentrations of species in solution.
Sorption of Cd2+ and PO4 3− species from solution backwards onto Cd-HAP surface.
One of the two species in solution is comparatively well defined whereas the other is fluxional.
Partial neutralization by cationic species in solution circumvents this, allowing coiling and folding of the polymer.
To approach this problem, the absorption of the two species in solution was compared.
ITCC exists as a mixture of monomeric and dimeric species in solution.
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Justyna Jupowicz-Kozak
CEO of Professional Science Editing for Scientists @ prosciediting.com