Conversion of biomass to biofuels and life cycle assessment: a review
Конверсия биомассы в биотопливо и оценка жизненного цикла: обзор
2021-07-23
SCID: 54.1/cg8fsx7h
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biochemical conversionbiofuelsbiomass conversionlife cycle assessmentthermochemical conversion
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Abstract (AI)
Abstract The global energy demand is projected to rise by almost 28% by 2040 compared to current levels. Biomass is a promising energy source for producing either solid or liquid fuels. Biofuels are alternatives to fossil fuels to reduce anthropogenic greenhouse gas emissions. Nonetheless, policy decisions for biofuels should be based on evidence that biofuels are produced in a sustainable manner. To this end, life cycle assessment (LCA) provides information on environmental impacts associated with biofuel production chains. Here, we review advances in biomass conversion to biofuels and their environmental impact by life cycle assessment. Processes are gasification, combustion, pyrolysis, enzymatic hydrolysis routes and fermentation. Thermochemical processes are classified into low temperature, below 300 °C, and high temperature, higher than 300 °C, i.e. gasification, combustion and pyrolysis. Pyrolysis is promising because it operates at a relatively lower temperature of up to 500 °C, compared to gasification, which operates at 800–1300 °C. We focus on 1) the drawbacks and advantages of the thermochemical and biochemical conversion routes of biomass into various fuels and the possibility of integrating these routes for better process efficiency; 2) methodological approaches and key findings from 40 LCA studies on biomass to biofuel conversion pathways published from 2019 to 2021; and 3) bibliometric trends and knowledge gaps in biomass conversion into biofuels using thermochemical and biochemical routes. The integration of hydrothermal and biochemical routes is promising for the circular economy.
Key Findings
1
Biomass conversion can produce solid and liquid biofuels through thermochemical and biochemical routes, including gasification, combustion, pyrolysis, enzymatic hydrolysis, and fermentation.
2
Integrating hydrothermal and biochemical conversion routes is highlighted as promising for advancing circular-economy biofuel systems, while knowledge gaps remain.
3
Life cycle assessment provides evidence for evaluating environmental impacts and sustainability across biofuel production chains; the review synthesizes findings from 40 studies published between 2019 and 2021.
4
Pyrolysis is identified as promising because it operates at temperatures up to 500 °C, substantially lower than gasification’s 800–1300 °C range.
5
The review evaluates advantages, drawbacks, and potential integration of thermochemical and biochemical conversion pathways to improve process efficiency.
Research Object
Biomass-to-biofuel conversion pathways and their production chains
Research Subject
Conversion-route performance, integration potential, environmental impacts assessed by life cycle assessment, bibliometric trends, and knowledge gaps
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2021-07-23
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