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A perspective on the combination of alkali pre-treatment with bioaugmentation to improve biogas production from lignocellulose biomass. | LitMetric

A perspective on the combination of alkali pre-treatment with bioaugmentation to improve biogas production from lignocellulose biomass.

Bioresour Technol

MaREI Centre, Environmental Research Institute, University College Cork, Cork, Ireland; Civil, Structural and Environmental Engineering, School of Engineering and Architecture, University College Cork, Cork, Ireland.

Published: May 2022

AI Article Synopsis

  • Anaerobic digestion (AD) is a bioprocess that generates renewable energy and biofertilizer while helping to cut down greenhouse gas emissions, but improvements in biogas production efficiency from tough-to-digest lignocellulosic biomass are needed.
  • The article discusses current challenges in AD technology related to feedstock digestibility and suggests solutions like pre-treatment and bioaugmentation to enhance efficiency.
  • It introduces an innovative model that integrates alkali pre-treatment, temperature-phased AD, and bioaugmentation, aiming for a 90% biodegradability index and a 47% increase in methane production, potentially reducing energy costs and making biomethane production more sustainable and economically viable.

Article Abstract

Anaerobic digestion (AD) is a bioprocess technology that integrates into circular economy systems, which produce renewable energy and biofertilizer whilst reducing greenhouse gas emissions. However, improvements in biogas production efficiency are needed in dealing with lignocellulosic biomass. The state-of-the-art of AD technology is discussed, with emphasis on feedstock digestibility and operational difficulty. Solutions to these challenges including for pre-treatment and bioaugmentation are reviewed. This article proposes an innovative integrated system combining alkali pre-treatment, temperature-phased AD and bioaugmentation techniques. The integrated system as modelled has a targeted potential to achieve a biodegradability index of 90% while increasing methane production by 47% compared to conventional AD. The methane productivity may also be improved by a target reduction in retention time from 30 to 20 days. This, if realized has the potential to lower energy production cost and the levelized cost of abatement to facilitate an increased resource of sustainable commercially viable biomethane.

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Source
http://dx.doi.org/10.1016/j.biortech.2022.126950DOI Listing

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