Recurrent multi-stressor floc treatments with sulphide and free ammonia enabled mainstream partial nitritation/anammox

Sci Total Environ. 2024 Feb 20:912:169449. doi: 10.1016/j.scitotenv.2023.169449. Epub 2023 Dec 18.

Abstract

Selective suppression of nitrite-oxidising bacteria (NOB) over aerobic and anoxic ammonium-oxidising bacteria (AerAOB and AnAOB) remains a major challenge for mainstream partial nitritation/anammox implementation, a resource-efficient nitrogen removal pathway. A unique multi-stressor floc treatment was therefore designed and validated for the first time under lab-scale conditions while staying true to full-scale design principles. Two hybrid (suspended + biofilm growth) reactors were operated continuously at 20.2 ± 0.6 °C. Recurrent multi-stressor floc treatments were applied, consisting of a sulphide-spiked deoxygenated starvation followed by a free ammonia shock. A good microbial activity balance with high AnAOB (71 ± 21 mg N L-1 d-1) and low NOB (4 ± 17 % of AerAOB) activity was achieved by combining multiple operational strategies: recurrent multi-stressor floc treatments, hybrid sludge (flocs & biofilm), short floc age control, intermittent aeration, and residual ammonium control. The multi-stressor treatment was shown to be the most important control tool and should be continuously applied to maintain this balance. Excessive NOB growth on the biofilm was avoided despite only treating the flocs to safeguard the AnAOB activity on the biofilm. Additionally, no signs of NOB adaptation were observed over 142 days. Elevated effluent ammonium concentrations (25 ± 6 mg N L-1) limited the TN removal efficiency to 39 ± 9 %, complicating a future full-scale implementation. Operating at higher sludge concentrations or reducing the volumetric loading rate could overcome this issue. The obtained results ease the implementation of mainstream PN/A by providing and additional control tool to steer the microbial activity with the multi-stressor treatment, thus advancing the concept of energy neutrality in sewage treatment plants.

Keywords: Biological nitrogen removal; Brocadia; Deammonification; Nitrification; Nitrite-oxidising bacteria; Nitrospira.

MeSH terms

  • Ammonia* / metabolism
  • Ammonium Compounds* / metabolism
  • Anaerobic Ammonia Oxidation
  • Bacteria / metabolism
  • Bioreactors / microbiology
  • Nitrites / metabolism
  • Nitrogen / metabolism
  • Oxidation-Reduction
  • Sewage
  • Sulfides / metabolism

Substances

  • Ammonia
  • Sewage
  • Nitrites
  • Ammonium Compounds
  • Nitrogen
  • Sulfides