English

Thermodynamic characterization of the ($CO_{2}$ + $O_{2}$) binary system for the development of models for CCS processes: Accurate experimental ($p$, $\rho$, $T$) data and virial coefficients

Chemical Physics 2024-09-11 v1

Abstract

Continuing our study on (CO2CO_{2} + O2O_{2}) mixtures, this work reports new experimental(pp, ρ\rho, TT) data for two oxygen-rich mixtures with mole fractions xx(O2O_{2}) = (0.50 and 0.75) mol/mol, in the temperature range TT = (250-375) K and pressure range pp = (0.5-20) MPa, using a single-sinker densimeter. Experimental density data were compared to two well-established equation-of-state models: EOS-CG and GERG-2008. In the pp, TT-range investigated, the EOS-CG gave a better reproduction for the equimolar mixture xx(O2O_{2}) = 0.5, whereas the GERG-2008 performed significantly better for the oxygen-rich mixture xx(O2O_{2}) = 0.75. The EOS-CG generally overestimates the density, while the GERG-2008 underestimates it. This complete set of new experimental data, together with previous measurements, is used to calculate the virial coefficients BB(TT, xx) and CC(TT, xx), as well as the second interaction virial coefficient B12B_{12}(TT) for the (CO2CO_{2} + O2O_{2}) system.

Keywords

Cite

@article{arxiv.2409.06312,
  title  = {Thermodynamic characterization of the ($CO_{2}$ + $O_{2}$) binary system for the development of models for CCS processes: Accurate experimental ($p$, $\rho$, $T$) data and virial coefficients},
  author = {Daniel Lozano-Martín and David Vega-Maza and M. Carmen Martín and Dirk Tuma and César R. Chamorro},
  journal= {arXiv preprint arXiv:2409.06312},
  year   = {2024}
}