Assessment of kinetic and statistical models for predicting breakthrough curves of bio-colloid transport through saturated porous media

J Contam Hydrol. 2023 Nov:259:104246. doi: 10.1016/j.jconhyd.2023.104246. Epub 2023 Sep 19.

Abstract

The microbial contamination of groundwater and its prevention is a widespread concern in developing countries. The present study simulated the transportation and interception of bio-colloid, Escherichia coli in porous media experimentally using packed columns to address certain aspects of underexplored sorption potential and validated using several kinetic models. The breakthrough curves obtained through experiments are observed to be in good agreement with its prediction using kinetic models namely Thomas, Yoon-Nelson and Modified Dose-Response. The overall comparisons of R2 among all the three models suggest that the MDR model fits more perfectly to experimental results. The combined effect of independent factors (column depth, particle size and alumina content) on response factors (maximum relative concentration and time required to achieve peak concentration) was investigated by using Box-Behnken Design under Response Surface Methodology (RSM) to check statistical significancy of independent factors. The R2 values for both response factors are observed to be 0.94 and 0.99, indicating a very high correlation between predicted and actual values. The results obtained in the present study also confirms that the travel distance and particle size are the statistically significant parameters that efficiently impact on sorption of Escherichia coli during their transport whereas the alumina content also affects the sorption but is observed to be a statistically non-significant.

Keywords: Adsorption; Box-Behnken design; Escherichia coli; Kinetic models; Response surface methodology.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Adsorption
  • Aluminum Oxide
  • Colloids*
  • Escherichia coli
  • Models, Statistical*
  • Porosity

Substances

  • Colloids
  • Aluminum Oxide