Life cycle assessment of a corn stover torrefaction plant integrated with a corn ethanol plant and a coal fired power plant
- 1. Department of Bioproducts and Biosystems Engineering, University of Minnesota, 1390 Eckles Avenue, St. Paul, MN 55108 (United States)
- 2. Department of Applied Economics, University of Minnesota, 1994 Buford Avenue, St. Paul, MN 55108 (United States)
Description
A life cycle assessment (LCA) study was conducted to understand and assess potential greenhouse gas (GHG) emissions reduction benefits of a biomass torrefaction business integrated with other industrial businesses for the use of the excess heat from the torrefaction off-gas volatiles and biocoal. A torrefaction plant processing 30.3 Mg h−1 of corn stover at 17% wet basis (w.b.) moisture content was modeled. The torrefaction plant produced 136,078 Mg y−1 of biocoal at 1.1% w.b. moisture content and 28.1 MW of excess heat energy in the torrefaction off-gas volatiles. At the torrefaction plant gate, the life-cycle GHG emission for the production of biocoal (including corn stover logistics emissions) is 11.35 g MJ−1 carbon dioxide equivalent (dry basis) (i.e., 229.5 kg Mg−1 carbon dioxide equivalent of biocoal at 1.1% w.b. moisture content). The excess heat from the torrefaction plant met 42.8% of the process steam needs of a U.S. Midwest dry-grind corn ethanol plant producing 0.38 hm3 y−1 of denatured ethanol, which results in about 40% reduction in life-cycle GHG emissions for corn ethanol compared to gasoline. Co-firing 10%, 20%, and 30% (energy basis) of biocoal at a coal-fired power plant reduced the life-cycle GHG emissions of electricity generated by 8.5%, 17.0%, and 25.6%, respectively, compared to 100% coal-fired electricity. A sensitivity analysis showed that adding a combined heat and power (CHP) system at the torrefaction plant to meet 100% electricity demand of the torrefaction plant (2.5 MW) could further reduce the GHG emissions for biocoal, corn ethanol, and co-fired electricity. - Highlights: • Life cycle GHG emission (CO2 equivalent) for corn stover biocoal is 11.35 g MJ−1. • Using torrefaction gas for steam production reduced GHG emissions for corn ethanol. • Co-firing biocoal with coal reduced GHG emissions for coal-fired electricity
Availability note (English)
Available from http://dx.doi.org/10.1016/j.biombioe.2014.02.008Additional details
Identifiers
- DOI
- 10.1016/j.biombioe.2014.02.008;
- PII
- S0961-9534(14)00071-3;
Publishing Information
- Journal Title
- Biomass and Bioenergy
- Journal Volume
- 63
- Journal Page Range
- p. 92-100
- ISSN
- 0961-9534
- CODEN
- BMSBEO
INIS
- Country of Publication
- United Kingdom
- Country of Input or Organization
- International Atomic Energy Agency (IAEA)
- INIS RN
- 46106210
- Subject category
- S09: BIOMASS FUELS;
- Descriptors DEI
- AGRICULTURAL WASTES; AIR POLLUTION ABATEMENT; BIOETHANOL; BIOFUELS; BIOMASS; CARBON DIOXIDE; COAL; COMPARATIVE EVALUATIONS; ETHANOL PLANTS; GASOLINE; GREENHOUSE GASES; LIFE CYCLE ASSESSMENT; MAIZE; MOISTURE; POWER PLANTS
- Descriptors DEC
- ALCOHOLS; ALTERNATIVE FUELS; CARBON COMPOUNDS; CARBON OXIDES; CARBONACEOUS MATERIALS; CEREALS; CHALCOGENIDES; ENERGY SOURCES; ETHANOL; EVALUATION; FOSSIL FUELS; FUELS; GRAMINEAE; HYDROXY COMPOUNDS; INDUSTRIAL PLANTS; LILIOPSIDA; LIQUID FUELS; MAGNOLIOPHYTA; MATERIALS; ORGANIC COMPOUNDS; ORGANIC WASTES; OXIDES; OXYGEN COMPOUNDS; PETROLEUM PRODUCTS; PLANTS; POLLUTION ABATEMENT; RENEWABLE ENERGY SOURCES; WASTES
Optional Information
- Copyright
- Copyright (c) 2014 Elsevier Science B.V., Amsterdam, The Netherlands, All rights reserved.