Optimizing biomethane production of mesophilic chicken manure and sheep manure digestion: Mono-digestion and co-digestion kinetic investigation, autofluorescence analysis and microbial community assessment

J Environ Manage. 2019 May 1:237:103-113. doi: 10.1016/j.jenvman.2019.02.050. Epub 2019 Feb 16.

Abstract

Optimization of mesophilic methane production from Chicken manure (CM) and Sheep manure (SM) at total solid (TS) of 8% and 1.6% were obtained by sequence tests in mono-digestion. However, the positive synergy of co-digestion with an optimum CM/SM of 2.5 (310 mLCH4/gVSadded) resulted in a high hydrolytic capacity and methane production. The modified Gompertz model (R2 > 0.98) and modified Aiba model (R2 > 0.88) illustrated co-digestion significantly improved the methane generation rate with strong ammonia tolerance. Dissolved Organic Matter (DOM) variation in response to the metabolic rate of microbial community illustrated that the SMP-like and protein-like components half-split by EEM-PARAFAC were significantly negative corresponded to bio-methane production. Moreover, the canonical correlation analysis (CCA) resulted a significant difference between the substrate and DOM composition. Potential functional metabolic illustrated statistically significance difference between mono and co-digestion, however, Methanosaeta and Syntrophobacter predominated the syntrophic methanogenesis. The constructed complex metabolic cooperation caused the co-digestion stable and high efficiency.

Keywords: Canonical correlation analysis (CCA); EEM-PARAFAC; Kinetic simulation; Metabolic potential; Mono/co-digestion.

MeSH terms

  • Anaerobiosis
  • Animals
  • Biofuels
  • Bioreactors
  • Chickens
  • Manure*
  • Methane
  • Microbiota*
  • Sheep

Substances

  • Biofuels
  • Manure
  • Methane