4.7 Article

Kinetic modelling of yeast growth and pollutant removal in secondary effluent

Journal

JOURNAL OF WATER PROCESS ENGINEERING
Volume 50, Issue -, Pages -

Publisher

ELSEVIER
DOI: 10.1016/j.jwpe.2022.103244

Keywords

Monod; Kinetic modelling; Wastewater treatment; Yeast growth; Pollutant consumption

Funding

  1. Newcastle University Overseas Research Scholarship (NUORS) from Newcaslte University (UK)
  2. Engineering and Physical Sciences Research Council (EPSRC) UK

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In recent years, there has been increasing interest in yeast-based wastewater treatment due to its high pollutant removal rate and ability to operate in non-sterile environments. This study developed a kinetic model to predict yeast growth and substrate consumption during wastewater treatment and used a unique approach to determine the biological constants for the model. The results showed that Candida utilis can effectively remove carbon, nitrogen, and phosphorus from wastewater within a short time period, and the model provided satisfactory descriptions of yeast growth and substrate consumption.
In recent years, there has been significant interest in yeast-based wastewater treatment due to its high pollutant removal rate and ability to perform in non-sterile environments. In this work, a kinetic model was developed to predict yeast growth and substrate consumption during wastewater treatment. To determine the biological constants for use in the kinetic models, a unique approach is presented. Candida utilis was cultivated in synthetic wastewater, using eight different ratios of carbon, nitrogen and phosphorus to determine its growth rate, and the removal rates of carbon, nitrogen, and phosphorus. The concentrations of C, N and P were chosen within the range of secondary effluent wastewater. In all experiments, carbon was found to be the limiting substrate, and 100 % TOC removal was achieved in all cases. Candida utilis reduced the COD concentration by up to 99 % in <24 h. In the model, both yeast growth and substrate consumption were satisfactorily described by Monod ki-netics. The apparent half-saturation coefficients for carbon, nitrogen, and phosphorus, determined via the optimization of the model, were found to the function of initial substrate concentration. The maximum specific growth rate found was 0.59 h-1. This model was used on different initial concentrations of substrates, and predicted data with an R2 above 80 %. Both model and experimental results suggest that Candida utilis can be used in the tertiary treatment of wastewater. The simple approach described here can be applied to find bio-logical coefficients for other microorganisms.

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