Integrated Process for Ethanol, Biogas, and Edible Filamentous Fungi-Based Animal Feed Production from Dilute Phosphoric Acid-Pretreated Wheat Straw

Appl Biochem Biotechnol. 2018 Jan;184(1):48-62. doi: 10.1007/s12010-017-2525-1. Epub 2017 Jun 8.

Abstract

Integration of wheat straw for a biorefinery-based energy generation process by producing ethanol and biogas together with the production of high-protein fungal biomass (suitable for feed application) was the main focus of the present study. An edible ascomycete fungal strain Neurospora intermedia was used for the ethanol fermentation and subsequent biomass production from dilute phosphoric acid (0.7 to 1.2% w/v) pretreated wheat straw. At optimum pretreatment conditions, an ethanol yield of 84 to 90% of the theoretical maximum, based on glucan content of substrate straw, was observed from fungal fermentation post the enzymatic hydrolysis process. The biogas production from the pretreated straw slurry showed an improved methane yield potential up to 162% increase, as compared to that of the untreated straw. Additional biogas production, using the syrup, a waste stream obtained post the ethanol fermentation, resulted in a combined total energy output of 15.8 MJ/kg wheat straw. Moreover, using thin stillage (a waste stream from the first-generation wheat-based ethanol process) as a co-substrate to the biogas process resulted in an additional increase by about 14 to 27% in the total energy output as compared to using only wheat straw-based substrates. ᅟ.

Keywords: Bioethanol; Biogas; Dilute acid pretreatment; Filamentous fungi; Integration; N. intermedia; Wheat straw.

Publication types

  • Validation Study

MeSH terms

  • Animal Feed*
  • Biofuels*
  • Ethanol / metabolism*
  • Fermentation
  • Hydrolysis
  • Neurospora / metabolism*
  • Phosphoric Acids / chemistry*
  • Triticum*

Substances

  • Biofuels
  • Phosphoric Acids
  • Ethanol
  • phosphoric acid