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Heterogeneous diffusion in aerobic granular sludge. | LitMetric

AI Article Synopsis

  • Aerobic granular sludge (AGS) technology is effective for removing nitrogen, phosphorus, and carbon in compact wastewater treatment systems, making its operation and design crucial for effective wastewater management.
  • This study utilized nuclear magnetic resonance (NMR) to analyze diffusive mass transfer in AGS, finding that water diffusion within the granules is about 70% of that in free water, and no major differences exist between full-scale and lab-scale AGS.
  • The modeling results indicate that variations in diffusion within granules have a negligible effect on overall performance, suggesting that a straightforward approach can adequately describe the mass transport processes in AGS.

Article Abstract

Aerobic granular sludge (AGS) technology allows simultaneous nitrogen, phosphorus, and carbon removal in compact wastewater treatment processes. To operate, design, and model AGS reactors, it is essential to properly understand the diffusive transport within the granules. In this study, diffusive mass transfer within full-scale and lab-scale AGS was characterized with nuclear magnetic resonance (NMR) methods. Self-diffusion coefficients of water inside the granules were determined with pulsed-field gradient NMR, while the granule structure was visualized with NMR imaging. A reaction-diffusion granule-scale model was set up to evaluate the impact of heterogeneous diffusion on granule performance. The self-diffusion coefficient of water in AGS was ∼70% of the self-diffusion coefficient of free water. There was no significant difference between self-diffusion in AGS from full-scale treatment plants and from lab-scale reactors. The results of the model showed that diffusional heterogeneity did not lead to a major change of flux into the granule (<1%). This study shows that differences between granular sludges and heterogeneity within granules have little impact on the kinetic properties of AGS. Thus, a relatively simple approach is sufficient to describe mass transport by diffusion into the granules.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC7818175PMC
http://dx.doi.org/10.1002/bit.27522DOI Listing

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