Kinetics and microbial ecology of batch sulfidogenic bioreactors for co-treatment of municipal wastewater and acid mine drainage

J Hazard Mater. 2016 Mar 15:305:200-208. doi: 10.1016/j.jhazmat.2015.11.041. Epub 2015 Dec 2.

Abstract

The kinetics and microbial ecology in sulfidogenic bioreactors used in a novel two-stage process for co-treatment of acid mine drainage (AMD) and municipal wastewater (MWW) were investigated. Michaelis-Menten modeling of COD oxidation by sulfate reducing bacteria (SRB) (Vmax=0.33mgL(-1)min(-1), Km=4.3mgL(-1)) suggested that the Vmax can be reasonably achieved given the typical COD values in MWW and anticipated mixing with AMD. Non-competitive inhibition modeling (Ki=6.55mgL(-1)) indicated that excessive iron level should be avoided to limit its effects on SRB. The COD oxidation rate was positively correlated to COD/sulfate ratio and SRB population, as evidenced by dsrA gene copies. Phylogenetic analysis revealed diverse microbial communities dominated by sulfate reducing delta-proteobacteria. Microbial community and relative quantities of SRB showed significant differences under different COD/sulfate ratios (0.2, 1 and 2), and the highest dsrA gene concentration and most complex microbial diversity were observed under COD/sulfate ratio 2. Major species were associated with Desulfovirga, Desulfobulbus, Desulfovibrio, and Syntrophus sp. The reported COD kinetics, SRB abundances and the phylogenetic profile provide insights into the co-treatment process and help identify the parameters of concerns for such technology development.

Keywords: Acid mine drainage (AMD); Kinetics modelling; Municipal wastewater (MWW); Phylogenetic analysis; Sulfidogenic bioreactors.

MeSH terms

  • Biological Oxygen Demand Analysis
  • Bioreactors / microbiology*
  • Industrial Waste
  • Kinetics
  • Mining
  • Oxidation-Reduction
  • Phylogeny
  • RNA, Bacterial / genetics
  • RNA, Ribosomal, 16S / genetics
  • Sulfur-Reducing Bacteria / genetics
  • Sulfur-Reducing Bacteria / isolation & purification
  • Sulfur-Reducing Bacteria / metabolism*
  • Waste Disposal, Fluid / methods
  • Wastewater

Substances

  • Industrial Waste
  • RNA, Bacterial
  • RNA, Ribosomal, 16S
  • Waste Water