Page 136 - Materials Chemistry, Second Edition
P. 136
Life cycle assessment and agriculture: challenges and prospects
Crutzen PJ, Mosier AR, Smith KA and Winiwarter W (2007) N O release from agro-fuel pro- 123
2
duction negates global warming reduction by replacing fossil fuels. Atmospheric Chemistry
and Physics Discussions 7, 11 191–11 205.
Denmead O, MacDonald B, Bryant G, Reilly R, Griffith D, Stainlay W, White I and Melville M
(2005) Gaseous nitrogen losses from acid sulfate sugarcane soils on the coastal lowlands.
Proceedings of the Australian Society of Sugar Cane Technologists, 3–6 May 2005, Bundaberg,
QLD. ASSCT: 211–219.
Duxbury JM (2005) Soil Carbon Sequestration and Nitrogen Management for Greenhouse Gas
Mitigation, in Climate Change and Agriculture: Promoting Practical and Profitable Responses.
p. IV-5–IV-7. <http://www.climateandfarming.org/pdfs/FactSheets/IV.2Soil.pdf>.
Eckard R (2006) Are there win-win strategies for minimising greenhouse gas emissions from
agriculture? Proceedings of OUTLOOK 2006, Australian Bureau of Agricultural and
Resource Economics (ABARE), Canberra.
Edis R, Chen D, Wang G, Turner D, Park K, Meyer M and Kirkby C (2008) Soil nitrogen
dynamics in irrigated maize systems as impacted on by nitrogen and stubble manage-
ment. Australian Journal of Experimental Agriculture 48(3), 382–386.
Ehhalt D and Prather M (2001) Atmospheric chemistry and greenhouse gases. In: Climate
Change 2001: The Scientific Basis. (Eds JT Houghton, Y Ding, DJ Griggs, M Noguer, PJ van
der Linden, X Dai, K Maskell and CA Johnson) pp. 239–287. Cambridge University Press,
Cambridge.
FAO (2008) UN Food and Agriculture Association website. Retrieved 3 March 2008 from
<http://www.fao.org/es/ESD/gstudies.htm>.
Feitz AJ, Lundie S, Dennien G, Morain M and Jones M (2007) Generation of an industry-
specific physico-chemical allocation matrix: application in the dairy industry and impli-
cations for systems analysis. International Journal of Life Cycle Assessment 12(2), 109–117.
Flessa H, Ruser R, Dörsch P, Kamp T, Jimenez MA, Munch JC and Beese F (2002) Integrated
evaluation of greenhouse gas emissions (CO , CH , N O) from two farming systems in
2 4 2
southern Germany. Agriculture, Ecosystems and Environment 91, 175–189.
Follett RF (2001) Soil management concepts and carbon sequestration in cropland soils. Soil
and Tillage Research 61, 77–92.
Global Footprint Network and the University of Sydney (2005) The Ecological Footprint of
Victoria Assessing Victoria’s Demand on Nature. EPA Victoria, Melbourne.
Grant T and Beer T (2008) Life cycle assessment of greenhouse gas emissions from irrigated
maize and their significance in the value chain. Australian Journal of Experimental
Agriculture 48, 1–8.
Hill SB (1998) Redesigning agroecosystems for environmental sustainability: a deep systems
approach. Systems Research and Behavioural Science 15, 391–402.
IPCC (1997) Greenhouse Gas Inventory Reporting Instructions. Revised 1996 IPCC Guidelines
for National Greenhouse Gas Inventories, Volumes 1–3. The Intergovernmental Panel on
Climate Change, London, UK.
IPCC (2006) 2006 Guidelines for National Greenhouse Gas Inventories. Volume 4, Chapter 11:
N O emissions from managed soils, and CO emissions from lime and urea application.
2 2
Institute for Global Environmental Strategies (IGES), Hayama, Japan.
IPCC (2007) ‘Climate change 2007: impacts, adaptation and vulnerability’. Contribution of
Working Group II to the Fourth Assessment Report of the Intergovernmental Panel on
Climate Change. p. 285. Cambridge University Press, Cambridge.
Kirkby C, Fattore A, Smith D and Meyer M (2006) Life cycle assessment of greenhouse gas
emissions from irrigated maize stubble treatments and plant/soil responses. In: Water to
Gold, Proceedings of the Maize Association of Australia 6th Triennial Conference. (Eds E
Humphreys, K O’Keeffe, N Hutchins and R Gill) pp. 177–184. The Maize Association of
Australia, Shepparton, Vic.
100804•Life Cycle Assessment 5pp.indd 123 17/02/09 12:46:22 PM