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March 2, 20260 citationsOpen Access

Acidogenic Anaerobic Digestion of Municipal Wastewater: Temperature Effects on Organic Carbon Kinetics, VFA Production, and Implications for Nutrient Removal

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MAManuel L. AguadoFVFrancisco VázquezSCS. Fernando F. Calatrava

Key Points

  • The central aim is to investigate how temperature influences organic carbon kinetics and VFA production in anaerobic digestion.
  • Operated an anaerobic sequencing batch reactor under acidogenic conditions
  • Developed a kinetic model to describe carbon fraction transformations
  • Validated model against experimental data with deviations under 10%
  • Temperature significantly affects acidogenic performance and carbon transformation pathways
  • Estimated kinetic constants showed strong temperature dependence for hydrolysis and acidogenic pathways
  • The novel kinetic model successfully predicts VFA production for optimizing nutrient removal

Abstract

Biological wastewater treatment relies primarily on activated sludge and anaerobic digestion for the removal of organic matter. In urban wastewater treatment plants discharging into eutrophication-sensitive environments, the simultaneous removal of carbon, nitrogen, and phosphorus is required to meet increasingly stringent discharge limits. Under these conditions, the transformation of complex organic matter into volatile fatty acids (VFAs) represents a more efficient strategy than complete mineralization, as biodegradable carbon is essential to sustain biological nitrogen and phosphorus removal processes. In this study, an anaerobic sequencing batch reactor was operated under acidogenic conditions to promote the conversion of organic matter into VFAs. For the first time, this study demonstrates how temperature-controlled acidogenic pretreatment can reliably supply biodegradable carbon to support efficient downstream nitrogen and phosphorus removal in municipal wastewater treatment. A kinetic model was developed to describe the temporal evolution of the different carbon fractions involved in anaerobic digestion, including biodegradable and non-biodegradable organic matter, intermediate compounds, short-chain volatile fatty acids, and biogas. The model assumes first-order kinetics and constant biomass concentration and was successfully validated against experimental data, with deviations below 10%. Estimated kinetic constants exhibited a strong temperature dependence, particularly for hydrolysis and acidogenic pathways, whereas methanogenic steps showed lower sensitivity. Overall, the results demonstrate that temperature is a key operational parameter governing acidogenic performance and carbon transformation pathway. The simple and novel proposed kinetic model provides a useful tool for predicting VFA production and optimizing anaerobic pretreatment strategies aimed at enhancing downstream nutrient removal processes. Optimizing SBR operation for nutrient removal also offers sustainability benefits by improving resource efficiency and reducing energy and chemical inputs.

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Cite This Study

Aguado et al. (2026) studied this question.

synapsesocial.com/papers/69a52e64f1e85e5c73bf2099https://doi.org/10.3390/cleantechnol8020028
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