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Methane and nitrous oxide emissions affect the life-cycle analysis of algal biofuels
by
Palou-Rivera, Ignasi
, Han, Jeongwoo
, Frank, Edward D
, Wang, Michael Q
, Elgowainy, Amgad
in
Air pollution
/ Algae
/ Crude oil
/ Emission analysis
/ Fuels
/ Greenhouse effect
/ greenhouse gas emissions
/ Greenhouse gases
/ life-cycle analysis
/ Natural gas
2012
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Methane and nitrous oxide emissions affect the life-cycle analysis of algal biofuels
by
Palou-Rivera, Ignasi
, Han, Jeongwoo
, Frank, Edward D
, Wang, Michael Q
, Elgowainy, Amgad
in
Air pollution
/ Algae
/ Crude oil
/ Emission analysis
/ Fuels
/ Greenhouse effect
/ greenhouse gas emissions
/ Greenhouse gases
/ life-cycle analysis
/ Natural gas
2012
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Do you wish to request the book?
Methane and nitrous oxide emissions affect the life-cycle analysis of algal biofuels
by
Palou-Rivera, Ignasi
, Han, Jeongwoo
, Frank, Edward D
, Wang, Michael Q
, Elgowainy, Amgad
in
Air pollution
/ Algae
/ Crude oil
/ Emission analysis
/ Fuels
/ Greenhouse effect
/ greenhouse gas emissions
/ Greenhouse gases
/ life-cycle analysis
/ Natural gas
2012
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Methane and nitrous oxide emissions affect the life-cycle analysis of algal biofuels
Journal Article
Methane and nitrous oxide emissions affect the life-cycle analysis of algal biofuels
2012
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Overview
Researchers around the world are developing sustainable plant-based liquid transportation fuels (biofuels) to reduce petroleum consumption and greenhouse gas emissions. Algae are attractive because they promise large yields per acre compared to grasses, grains and trees, and because they produce oils that might be converted to diesel and gasoline equivalents. It takes considerable energy to produce algal biofuels with current technology; thus, the potential benefits of algal biofuels compared to petroleum fuels must be quantified. To this end, we identified key parameters for algal biofuel production using GREET, a tool for the life-cycle analysis of energy use and emissions in transportation systems. The baseline scenario produced 55 400 g CO2 equivalent per million BTU of biodiesel compared to 101 000 g for low-sulfur petroleum diesel. The analysis considered the potential for greenhouse gas emissions from anaerobic digestion processes commonly used in algal biofuel models. The work also studied alternative scenarios, e.g., catalytic hydrothermal gasification, that may reduce these emissions. The analysis of the nitrogen recovery step from lipid-extracted algae (residues) highlighted the importance of considering the fate of the unrecovered nitrogen fraction, especially that which produces N2O, a potent greenhouse gas with global warming potential 298 times that of CO2.
Publisher
IOP Publishing
Subject
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