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Soil Carbon Dioxide Equivalent Emissions and Theoretical Ethanol Yield from Midwestern Bioenergy Systems

Frank E. Johnson; Adebukola O. Dada; Shalamar D. Armstrong; Douglas R. Smith; Jeffrey J. Volenec; Sylvie M. Brouder
BioEnergy Research · Vol. 18, Issue 1 · 2025

Abstract

There has been a significant demand to increase biofuel production and usage in the USA. Bioenergy crops also have the potential to mitigate greenhouse gas (GHG) emissions from agricultural systems but crop type (annual vs. perennial) may impact mitigation potential. Objectives of this research were to (1) assess cumulative carbon dioxide equivalence (CO 2 eq) of annual and perennial crops, (2) evaluate the theoretical ethanol yield (TTEY) from annual and perennial crops, and (3) assess the CO 2 eq/TTEY ratio (CTR) of annual and perennial crops. This study was conducted from 2008 to 2016 at the Purdue University Water Quality Field Station near West Lafayette, IN. Replicated treatments ( n = 4) included continuous corn (CC), continuous sorghum (CS), Miscanthus (MS), switchgrass (SG), and restored prairie (RP). This study calculated CO 2 eq using CO 2 and N 2 O emissions. To estimate TTEY, yield of stover carbohydrate pools, recovery efficiencies of sugars from cell wall polysaccharides, fermentation efficiency of sugars to ethanol, the theoretical ethanol yield from sugars, and grain (for corn and sorghum) were used. Averaging over the course of the study, the highest annual CO 2 eq observed were 7.8 and 6.7 Mg CO 2 -C ha −1 year −1 from RP and SG, respectively. Average CO 2 eq for CC, CS, and MS were 5.8, 5.5, and 5.0 Mg CO 2 -C ha −1 year −1 , respectively. The highest and lowest TTEY were observed in MS and RP, yielding 189.4 and 26.7 GJ EtOH ha −1 year −1 , respectively. Thus, MS had the lowest CTR out of these treatments. Averaging across plant type, CO 2 eq, TTEY, and CTR were 6.5 Mg CO 2 -C ha −1 year −1 , 89.8 GJ EtOH ha −1 year −1 , and 345 kg CO 2 -C GJ −1 EtOH, respectively, for perennials, and 5.7 Mg CO 2 -C ha −1 year −1 , 118 GJ EtOH ha −1 year −1 , and 52.1 kg CO 2 -C GJ −1 EtOH, respectively, for annuals. Although these results suggest lower CO 2 eq, higher TTEY, and lower CTR for annual crops compared to perennials, the mitigation potential of emitted GHGs from perennials in agricultural systems used for biofuel production is also highlighted.

Bibliographic Information

JournalBioEnergy Research
PublisherSpringer
Publication Date2025-03-26
Publication Year2025
Volume18
Issue1
Document TypeJournal Article
eISSN1939-1242
DOI10.1007/s12155-025-10832-0

Access Information

NARA Access Coverage2008-01-01~Current
Journal Homepagehttps://www.springer.com/journal/12155
Publisher PageOpen Publisher Page
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