Environmental, economic, and energetic costs and benefits of biodiesel and ethanol biofuels
Экологические, экономические и энергетические издержки и выгоды биодизеля и этаноловых биотоплив
2006-07-12
SCID: 54.1/aaksbzzy
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corn ethanolgreenhouse gas emissionslife-cycle accountingnet energy balancesoybean biodiesel
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Abstract (AI)
Negative environmental consequences of fossil fuels and concerns about petroleum supplies have spurred the search for renewable transportation biofuels. To be a viable alternative, a biofuel should provide a net energy gain, have environmental benefits, be economically competitive, and be producible in large quantities without reducing food supplies. We use these criteria to evaluate, through life-cycle accounting, ethanol from corn grain and biodiesel from soybeans. Ethanol yields 25% more energy than the energy invested in its production, whereas biodiesel yields 93% more. Compared with ethanol, biodiesel releases just 1.0%, 8.3%, and 13% of the agricultural nitrogen, phosphorus, and pesticide pollutants, respectively, per net energy gain. Relative to the fossil fuels they displace, greenhouse gas emissions are reduced 12% by the production and combustion of ethanol and 41% by biodiesel. Biodiesel also releases less air pollutants per net energy gain than ethanol. These advantages of biodiesel over ethanol come from lower agricultural inputs and more efficient conversion of feedstocks to fuel. Neither biofuel can replace much petroleum without impacting food supplies. Even dedicating all U.S. corn and soybean production to biofuels would meet only 12% of gasoline demand and 6% of diesel demand. Until recent increases in petroleum prices, high production costs made biofuels unprofitable without subsidies. Biodiesel provides sufficient environmental advantages to merit subsidy. Transportation biofuels such as synfuel hydrocarbons or cellulosic ethanol, if produced from low-input biomass grown on agriculturally marginal land or from waste biomass, could provide much greater supplies and environmental benefits than food-based biofuels.
Key Findings
1
Biodiesel from soybeans yields a 93% net energy gain (93% more energy than invested).
2
Biodiesel releases less air pollutants per net energy gain than ethanol due to lower agricultural inputs and more efficient feedstock-to-fuel conversion.
3
Ethanol from corn yields a 25% net energy gain (25% more energy than invested).
4
Even if all U.S. corn and soybean production were dedicated to biofuels, they would meet only 12% of gasoline demand and 6% of diesel demand, so food-based biofuels cannot replace much petroleum without affecting food supplies.
5
High production costs made biofuels unprofitable without subsidies until recent petroleum price increases; biodiesel's environmental advantages justify subsidy.
6
Per unit net energy gain, biodiesel emits only 1.0% of agricultural nitrogen, 8.3% of phosphorus, and 13% of pesticide pollutants compared with ethanol.
7
Relative to displaced fossil fuels, ethanol reduces greenhouse gas emissions by 12% while biodiesel reduces them by 41%.
8
Transportation biofuels produced from low-input biomass on marginal land or from waste (e.g., synfuels or cellulosic ethanol) could offer much greater supply and environmental benefits than food-based biofuels.
Research Object
Ethanol from corn grain and biodiesel from soybeans (transportation biofuels)
Research Subject
Life-cycle environmental, economic, and energetic costs and benefits, including net energy yield, greenhouse gas and pollutant emissions, agricultural inputs, production scalability, and competitiveness relative to petroleum
Publication Details
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2006-07-12
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