Published April 2012 | Version v1
Journal article

The impact of dry matter loss during herbaceous biomass storage on net greenhouse gas emissions from biofuels production

  • 1. Ecological Sciences and Engineering IGP, Purdue University, West Lafayette IN (United States)
  • 2. Department of Agricultural and Biological Engineering, Purdue University, West Lafayette IN (United States)
  • 3. Laboratory of Renewable Resources Engineering, Purdue University, West Lafayette IN (United States)

Description

Life cycle inventory models of greenhouse gas emissions from biofuel production have become tightly integrated into government mandates and other policies to encourage biofuel production. Current models do not include life cycle impacts of biomass storage or reflect current literature on emissions from soil and biomass decomposition. In this study, the GREET model framework was used to determine net greenhouse gas emissions during ethanol production from corn and switchgrass via three biomass storage systems: wet ensiling of whole corn, and indoor and outdoor dry bale storage of corn stover and switchgrass. Dry matter losses during storage were estimated from the literature and used to modify GREET inventory analysis. Results showed that biomass stability is a key parameter affecting fuel production per farmed hectare and life cycle greenhouse gas emissions. Corn silage may generate 5358 L/ha of ethanol at 26.5 g CO2 eq/MJ, relative to 5654 L/ha at 52.3 g CO2 eq/MJ from combined corn stover and conventional grain corn ethanol production, or 3919 L/ha at 21.3 g CO2 eq/MJ from switchgrass. Dry matter losses can increase net emissions by 3–25% (ensiling), 5–53% (bales outdoors), or 1–12% (bales indoors), decreasing the net GHG reduction of ethanol over gasoline by up to 10.9%. Greater understanding of biomass storage losses and greenhouse gas fluxes during storage is necessary to accurately assess biomass storage options to ensure that the design of biomass supply logistics systems meet GHG reduction mandates for biofuel production. -- Highlights: ► Analyzed the impact of biomass loss during storage. ► Probable dry matter losses strongly depend on storage method and infrastructure. ► Assessed impact of storage losses on LCA for cellulosic ethanol production. ► Storage losses increase GHG emissions by 1–53% depending upon storage conditions.

Availability note (English)

Available from http://dx.doi.org/10.1016/j.biombioe.2012.01.004

Additional details

Identifiers

DOI
10.1016/j.biombioe.2012.01.004;
PII
S0961-9534(12)00005-0;

Publishing Information

Journal Title
Biomass and Bioenergy
Journal Volume
39
Journal Issue
Complete
Journal Page Range
p. 237-246
ISSN
0961-9534
CODEN
BMSBEO

Optional Information

Copyright
Copyright (c) 2012 Elsevier Science B.V., Amsterdam, The Netherlands, All rights reserved.