SciELO - Scientific Electronic Library Online

 
vol.19 número2Determinación de las condiciones óptimas para la obtención de un fertilizante fosfatado a partir de la roca fosfórica cubanaEl desvanecimiento de las fronteras: La integralidad del conocimiento índice de autoresíndice de materiabúsqueda de artículos
Home Pagelista alfabética de revistas  

Servicios Personalizados

Revista

Articulo

Indicadores

Links relacionados

  • En proceso de indezaciónCitado por Google
  • No hay articulos similaresSimilares en SciELO
  • En proceso de indezaciónSimilares en Google

Compartir


Ingeniería y competitividad

versión impresa ISSN 0123-3033

Resumen

MARENA, Molano M.; MUESES, Miguel A  y  FIDERMAN, Machuca M. Modeling and experimental evaluation of a non-isothermal photocatalytic solar reactor: temperature effect on the reaction rate kinetics. Ing. compet. [online]. 2017, vol.19, n.2, pp.149-160. ISSN 0123-3033.  https://doi.org/10.25100/iyc.v19i2.5301.

Mathematical modeling and experimental evaluation of temperature effects on photocatalytic degradation process and kinetic of a standard pollutants using solar radiation and suspended titanium dioxide were performed in a CPC reactor at pilot scale.

The model of the system includes mass balance of the batch reactor with recycle, based on global isotropic parameters. The incident radiation was modeled using empirical models adjusted using experimental data from environmental reports and optimization algorithms in function of atmospheric variations. The effect of scattering-absorption of radiation inside the reactor was estimated by solving the radiative transfer equation. The effect of the temperature was modeled using a thermal balance coupled to heat transfer equations. The kinetic implemented model was a generalized model with a modification of the Arrhenius equation.

It was found that the temperature affected the reaction rates by varying the oxygen concentration during the reaction. Process performance was improved under normal operating conditions without temperature control. The mathematical model and the established solution algorithm were highly predictive, generating correlation coefficients of 0.99 and errors below 2.5%.

Palabras clave : Heterogeneous solar photocatalysis; LVRPA; Six-Flux Model; Thermal exchange; TiO2.

        · resumen en Español     · texto en Inglés     · Inglés ( pdf )