https://doi.org/10.25678/0003YF

DATA For: The capture technology matters: Composition of municipal wastewater solids drives complexity of microbial community structure and volatile fatty acid profile during anaerobic fermentation

The production of volatile fatty acids (VFAs) represents a relevant option to valorize municipal wastewater (MWW). In this context, different capture technologies can be used to recover organic carbon from wastewater in form of solids, while pre-treatment of those solids has the potential to increase VFA production during subsequent fermentation. Our study investigates how VFA composition produced by fermentation is influenced (i) by the choice of the capture technology, as well as (ii) by the use of thermal alkaline pre-treatment (TAP). Therefore, the fermentation of solids originating from a primary settler, a micro-sieve, and a high-rate activated sludge (HRAS) system was investigated in continuous lab-scale fermenters, with and without TAP. Our study demonstrates that the capture technology strongly influences the composition of the produced solids, which in turn drives the complexity of the fermenter’s microbial community and ultimately, of the VFA composition. Solids captured with the primary settler or micro-sieve consisted primarily of polysaccharides, and led to the establishment of a microbial community specialized in the degradation of complex carbohydrates. The produced VFA composition was relatively simple, with acetate and propionate accounting for >90% of the VFAs. In contrast, the HRAS system produced biomass-rich solids associated with higher protein contents. The microbial community which then developed in the fermenter was therefor more diversified and capable of converting a wider range of substrates (polysaccharides, proteins, amino acids). Ultimately, the produced VFA composition was more complex, with equal fractions of iso-acids and propionate (both ~20%), while acetate remained the dominant acid (~50%). Finally, TAP did not significantly modify the VFA composition while increasing VFA yields on HRAS and sieved material by 35% and 20%, respectively. Overall, we demonstrated that the selection of the technology used to capture organic substrates from MWW governs the composition of the VFA cocktail, ultimately with implications for their further utilization.

Data and Resources

Citation

This Data Package

Brison, A., Rossi, P., Gelb, A., & Derlon, N. (2021). DATA For: The capture technology matters: Composition of municipal wastewater solids drives complexity of microbial community structure and volatile fatty acid profile during anaerobic fermentation (Version 1.0) [Data set]. Eawag: Swiss Federal Institute of Aquatic Science and Technology. https://doi.org/10.25678/0003YF

The associated article

Brison, A., P. Rossi, A. Gelb, and N. Derlon (2022), The capture technology matters: Composition of municipal wastewater solids drives complexity of microbial community structure and volatile fatty acid profile during anaerobic fermentation, Science of The Total Environment, 815, 152762, doi:10.1016/j.scitotenv.2021.152762.

Metadata

Open Data Open Data
Author(s)
  • Brison, Antoine
  • Rossi, Pierre
  • Gelb, Arnaud
  • Derlon, Nicolas
Keywords volatile fatty acids,fermentation of municipal wastewater solids,microbial community structure of fermenters,sieved material,primary sludge,high-rate activated-sludge
Variables
  • ammonium-nitrogen
  • chemical_oxygen_demand
  • dissolved_reactive_phosphate
  • total_nitrogen
  • total_phosphorus
  • total_solids
  • volatile_solids
Substances (scientific names)
  • (iso)Butyric acid (InChI=1S/C4H8O2/c1-2-3-4(5)6/h2-3H2,1H3,(H,5,6))
  • (iso)Valeric acid (InChI=1S/C5H10O2/c1-2-3-4-5(6)7/h2-4H2,1H3,(H,6,7))
  • Acetic acid (InChI=1S/C2H4O2/c1-2(3)4/h1H3,(H,3,4))
  • Propionic acid (InChI=1S/C3H6O2/c1-2-3(4)5/h2H2,1H3,(H,4,5))
Substances (generic terms)
  • organic acids
  • organic solids
Taxa (scientific names)
  • Carnobacteriaceae
  • Christensenellaceae
  • Comamonadaceae
  • Muribaculaceae
  • Porphyromonadaceae
  • Propionibacteriaceae
  • Rhodobacteraceae
  • Rhodocyclaceae
  • Rikinellaceae
  • Ruminococcaceae
Organisms (generic terms)
  • microorganisms
Systems
  • lab-scale fermentation reactors (8L)
Timerange
  • 2018-09 TO 2018-12
  • 2019-05 TO 2019-06
  • 2020-01 TO 2020-03
Geographic Name(s)
  • Eawag, Dübendorf
Review Level general
Curator Brison, Antoine
Contact Nicolas.Derlon@eawag.ch
DOI 10.25678/0003YF