Predicting greenhouse gas emissions and soil carbon from changing pasture to an energy crop.

Bioenergy related land use change would likely alter biogeochemical cycles and global greenhouse gas budgets. Energy cane (Saccharum officinarum L.) is a sugarcane variety and an emerging biofuel feedstock for cellulosic bio-ethanol production. It has potential for high yields and can be grown on ma...

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Main Authors: Benjamin D Duval, Kristina J Anderson-Teixeira, Sarah C Davis, Cindy Keogh, Stephen P Long, William J Parton, Evan H DeLucia
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2013-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC3749112?pdf=render
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spelling doaj-205359a2f85b4173906705ae3a34e83e2020-11-25T01:32:06ZengPublic Library of Science (PLoS)PLoS ONE1932-62032013-01-0188e7201910.1371/journal.pone.0072019Predicting greenhouse gas emissions and soil carbon from changing pasture to an energy crop.Benjamin D DuvalKristina J Anderson-TeixeiraSarah C DavisCindy KeoghStephen P LongWilliam J PartonEvan H DeLuciaBioenergy related land use change would likely alter biogeochemical cycles and global greenhouse gas budgets. Energy cane (Saccharum officinarum L.) is a sugarcane variety and an emerging biofuel feedstock for cellulosic bio-ethanol production. It has potential for high yields and can be grown on marginal land, which minimizes competition with grain and vegetable production. The DayCent biogeochemical model was parameterized to infer potential yields of energy cane and how changing land from grazed pasture to energy cane would affect greenhouse gas (CO2, CH4 and N2O) fluxes and soil C pools. The model was used to simulate energy cane production on two soil types in central Florida, nutrient poor Spodosols and organic Histosols. Energy cane was productive on both soil types (yielding 46-76 Mg dry mass · ha(-1)). Yields were maintained through three annual cropping cycles on Histosols but declined with each harvest on Spodosols. Overall, converting pasture to energy cane created a sink for GHGs on Spodosols and reduced the size of the GHG source on Histosols. This change was driven on both soil types by eliminating CH4 emissions from cattle and by the large increase in C uptake by greater biomass production in energy cane relative to pasture. However, the change from pasture to energy cane caused Histosols to lose 4493 g CO2 eq · m(-2) over 15 years of energy cane production. Cultivation of energy cane on former pasture on Spodosol soils in the southeast US has the potential for high biomass yield and the mitigation of GHG emissions.http://europepmc.org/articles/PMC3749112?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Benjamin D Duval
Kristina J Anderson-Teixeira
Sarah C Davis
Cindy Keogh
Stephen P Long
William J Parton
Evan H DeLucia
spellingShingle Benjamin D Duval
Kristina J Anderson-Teixeira
Sarah C Davis
Cindy Keogh
Stephen P Long
William J Parton
Evan H DeLucia
Predicting greenhouse gas emissions and soil carbon from changing pasture to an energy crop.
PLoS ONE
author_facet Benjamin D Duval
Kristina J Anderson-Teixeira
Sarah C Davis
Cindy Keogh
Stephen P Long
William J Parton
Evan H DeLucia
author_sort Benjamin D Duval
title Predicting greenhouse gas emissions and soil carbon from changing pasture to an energy crop.
title_short Predicting greenhouse gas emissions and soil carbon from changing pasture to an energy crop.
title_full Predicting greenhouse gas emissions and soil carbon from changing pasture to an energy crop.
title_fullStr Predicting greenhouse gas emissions and soil carbon from changing pasture to an energy crop.
title_full_unstemmed Predicting greenhouse gas emissions and soil carbon from changing pasture to an energy crop.
title_sort predicting greenhouse gas emissions and soil carbon from changing pasture to an energy crop.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2013-01-01
description Bioenergy related land use change would likely alter biogeochemical cycles and global greenhouse gas budgets. Energy cane (Saccharum officinarum L.) is a sugarcane variety and an emerging biofuel feedstock for cellulosic bio-ethanol production. It has potential for high yields and can be grown on marginal land, which minimizes competition with grain and vegetable production. The DayCent biogeochemical model was parameterized to infer potential yields of energy cane and how changing land from grazed pasture to energy cane would affect greenhouse gas (CO2, CH4 and N2O) fluxes and soil C pools. The model was used to simulate energy cane production on two soil types in central Florida, nutrient poor Spodosols and organic Histosols. Energy cane was productive on both soil types (yielding 46-76 Mg dry mass · ha(-1)). Yields were maintained through three annual cropping cycles on Histosols but declined with each harvest on Spodosols. Overall, converting pasture to energy cane created a sink for GHGs on Spodosols and reduced the size of the GHG source on Histosols. This change was driven on both soil types by eliminating CH4 emissions from cattle and by the large increase in C uptake by greater biomass production in energy cane relative to pasture. However, the change from pasture to energy cane caused Histosols to lose 4493 g CO2 eq · m(-2) over 15 years of energy cane production. Cultivation of energy cane on former pasture on Spodosol soils in the southeast US has the potential for high biomass yield and the mitigation of GHG emissions.
url http://europepmc.org/articles/PMC3749112?pdf=render
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