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RESEARCH ARTICLE (Open Access)

Environmental impacts of the Australian poultry industry. 1. Chicken meat production

M. A. Copley https://orcid.org/0000-0002-9748-3197 A * and S. G. Wiedemann A
+ Author Affiliations
- Author Affiliations

A Integrity Ag & Environment, 10511 New England Highway, Highfields, Qld 4352, Australia.


Handling Editor: Wayne Bryden

Animal Production Science 63(5) 489-504 https://doi.org/10.1071/AN22230
Submitted: 15 June 2022  Accepted: 26 August 2022   Published: 29 November 2022

© 2023 The Author(s) (or their employer(s)). Published by CSIRO Publishing. This is an open access article distributed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License (CC BY-NC-ND)

Abstract

Context: Steadily increasing consumption of chicken meat (Australia’s most consumed meat protein) has resulted in expanded production. With societal expectations that industries improve sustainability, understanding baseline impacts is vital.

Aims: This study determined carbon footprint (kg CO2-e), fossil energy (MJ), fresh water consumption (L), stress (L H2O-e) and scarcity (m3), and land-occupation (m2) impacts for conventional (C) and free-range (FR) production systems, identified hotspots and the implications of changes in production over the past decade, to establish targets for future improvement.

Methods: In the largest study of its kind, attributional life-cycle assessment with data collected for ~50% of birds processed was used, reporting impacts per kilogram of the typical market mix of chicken products, and boneless chicken. Uncertainty was assessed through Monte Carlo analysis, and results are presented as the means and standard deviation.

Key results: Slightly lower impacts per kilogram of chicken meat product were observed for C production (2.1 ± 0.03 kg CO2-e, 18.0 ± 0.3 MJ, 178.6 ± 22.4 L, and 10.2 ± 0.1 m2) than for FR (2.2 ± 0.03 kg CO2-e, 18.5 ± 0.3 MJ, 189.6 ± 24.6 L, and 10.6 ± 0.1 m2). Feed production was the major hotspot, followed by grow-out and meat processing. Land use (LU) and direct land use-change (dLUC) impacts associated with imported soymeal added 1.7 ± 0.3 and 1.8 ± 0.3 kg CO2-e to C and FR respectively. FR carbon footprint and land occupation were significantly (P < 0.05) higher. Since 2010, fossil energy, arable land, and greenhouse-gas emissions have declined. One countertrend was LU and dLUC emissions, which increased due to changed soy imports, resulting in a slightly higher C carbon footprint.

Conclusions: Multi-indicator analysis is fundamental to understanding, communicating, and improving performance, and distinguishing between short-term fluctuations and long-term trends. Since 2010, feed-production impacts have increased (due to imported soymeal in poultry diets), indicating that alternative feed protein sources are a priority. Efficiency improvements reduced per-kilogram impacts across other indicators, demonstrating a positive trend in producing more food from fewer inputs.

Implications: Australian chicken meat is a low-impact animal protein. Future improvements require alternative feed proteins, technology adoption and practice change to maintain or reduce impacts as production expands alongside consumer demand.

Keywords: carbon footprint, chicken meat, energy, greenhouse gases, land use change, life cycle assessment, sustainability indicators, sustainable agriculture, water stress.


References

ABS (2021a) Water use on Australian farms, 2019–2020 – catalogue number 4618.0. (Australian Bureau of Statistics (ABS): Canberra, ACT, Australia) Available at https://www.abs.gov.au/statistics/industry/agriculture/water-use-australian-farms/

ABS (2021b) Agricultural Commodities, Australia, 2019–20 – Catalogue number 7121.0. (Australian Bureau of Statistics (ABS)). Available at https://www.abs.gov.au/statistics/industry/agriculture/agricultural-commodities-australia/2019-20

ACMF (2020) ‘Facts and figures.’ (ACMF: Australia) Available at https://www.chicken.org.au/facts-and-figures/

ALCAS (2017) AusLCI. Australian Life Cycle Assessment Society (ALCAS). (ALCAS: Australia) Available at http://auslci.com.au/

Arrieta EM, Cuchietti A, Cabrol D, González AD (2018) Greenhouse gas emissions and energy efficiencies for soybeans and maize cultivated in different agronomic zones: a case study of Argentina. Science of The Total Environment 625, 199–208.
Greenhouse gas emissions and energy efficiencies for soybeans and maize cultivated in different agronomic zones: a case study of Argentina.Crossref | GoogleScholarGoogle Scholar |

Australian Bureau of Agricultural and Resource Economics and Sciences (2020) Australian crop report. Australian Bureau of Agricultural and Resource Economics and Sciences.

Bengtsson J, Seddon J (2013) Cradle to retailer or quick service restaurant gate life cycle assessment of chicken products in Australia. Journal of Cleaner Production 41, 291–300.
Cradle to retailer or quick service restaurant gate life cycle assessment of chicken products in Australia.Crossref | GoogleScholarGoogle Scholar |

BOM (2019) Rainfall. Australian Government, Bureau of Meteorology, Australia. Available at http://www.bom.gov.au/climate/current/annual/aus/2019/#tabs=Rainfall

BOM (2020) Special Climate Statement 70 update: drought conditions in Australia and impact on water resources in the Murray–Darling Basin. (Australian Government, Bureau of Meteorology: Australia). Available at http://www.bom.gov.au/climate/current/statements/scs70.pdf

Boulay A-M, Bare J, Benini L, Berger M, Lathuillière MJ, Manzardo A, Margni M, Motoshita M, Núñez M, Pastor AV, Ridoutt B, Oki T, Worbe S, Pfister S (2018) The WULCA consensus characterization model for water scarcity footprints: assessing impacts of water consumption based on available water remaining (AWARE). The International Journal of Life Cycle Assessment 23, 368–378.
The WULCA consensus characterization model for water scarcity footprints: assessing impacts of water consumption based on available water remaining (AWARE).Crossref | GoogleScholarGoogle Scholar |

Brock P, Madden P, Schwenke G, Herridge D (2012) Greenhouse gas emissions profile for 1 tonne of wheat produced in Central Zone (East) New South Wales: a life cycle assessment approach. Crop & Pasture Science 63, 319–329.
Greenhouse gas emissions profile for 1 tonne of wheat produced in Central Zone (East) New South Wales: a life cycle assessment approach.Crossref | GoogleScholarGoogle Scholar |

Clune S, Crossin E, Verghese K (2017) Systematic review of greenhouse gas emissions for different fresh food categories. Journal of Cleaner Production 140, 766–783.
Systematic review of greenhouse gas emissions for different fresh food categories.Crossref | GoogleScholarGoogle Scholar |

Cockerill SA, Gerber PF, Walkden-Brown SW, Dunlop MW (2020) Suitability of litter amendments for the Australian chicken meat industry. Animal Production Science 60, 1491–1481.
Suitability of litter amendments for the Australian chicken meat industry.Crossref | GoogleScholarGoogle Scholar |

Commonwealth of Australia (2021a) Australia’s long-term emissions reduction plan. (Commonwealth of Australia)

Commonwealth of Australia (2021b) National greenhouse accounts factors: 2021. (Australian Government, Department of the Environment and Energy: Canberra, ACT, Australia)

Commonwealth of Australia (2021c) Livestock Products, Australia. Table 15 – Chicken meat produced: all series (tonnes) – catalogue number 7215.0. (Commonwealth of Australia) Available at https://www.abs.gov.au/statistics/industry/agriculture/livestock-products-australia/latest-release

Commonwealth of Australia (2021d) National inventory report 2019. Vol. 1. Australian Government, Department of Industry, Energy and Resources: Canberra, ACT, Australia.

Commonwealth of Australia (2021e) National inventory report 2019. Vol. 2. (Commonwealth of Australia: Canberra, ACT, Australia) Available at https://www.dcceew.gov.au/climate-change/publications/national-greenhouse-accounts-2019/national-inventory-report-2019

Craddock T, Hollitt J (2010) ‘Piloting chicken litter usage in broadacre cropping-Setting research directions.’ (Rural Industry Research and Development Corporation (RIRDC): Canberra, ACT, Australia)

Directorate-Generale for Environment (2021) ‘Recommendation on the use of environmental footprint methods.’ (European Commission). Available at https://ec.europa.eu/environment/publications/recommendation-use-environmental-footprint-methods_en

Dong H, Mangino J, McAllister T, Hatfield J, Johnson D, Lassey K, Aparecida de Lima M, Romanovskaya A, Bartram D, Gibb D, Martin J (2006) Emissions from Livestock and Manure Management. In ‘IPCC Guidelines for National Greenhouse Gas Inventories. Vol. 4: Agriculture, Forestry and other Land Use’. (Eds S Eggleston, L Buendia, K Miwa, T Ngara, K Tanabe) pp. 10.1–10.87. (Institute for Global Environmental Strategies: Kanagawa, Japan)

Doran-Browne NA, Ive J, Graham P, Eckard RJ (2016) Carbon-neutral wool farming in south-eastern Australia. Animal Production Science 56, 417–422.
Carbon-neutral wool farming in south-eastern Australia.Crossref | GoogleScholarGoogle Scholar |

da Silva Lima ND, de Alencar Nääs I, Garcia RG, de Moura DJ (2019) Environmental impact of Brazilian broiler production process: evaluation using life cycle assessment. Journal of Cleaner Production 237, 117 752
Environmental impact of Brazilian broiler production process: evaluation using life cycle assessment.Crossref | GoogleScholarGoogle Scholar |

Dunlop MW, McAuley J (2021) Direct surface wetting sprinkler system to reduce the use of evaporative cooling pads in meat chicken production: indoor thermal environment, water usage, litter moisture content, live market weights, and mortalities. Poultry Science 100, 101 078
Direct surface wetting sprinkler system to reduce the use of evaporative cooling pads in meat chicken production: indoor thermal environment, water usage, litter moisture content, live market weights, and mortalities.Crossref | GoogleScholarGoogle Scholar |

Ecoinvent (2020) ‘ecoinvent 3.6 database.’ (Ecoinvent Centre). Available at https://www.ecoinvent.org/database/ecoinvent-36/ecoinvent-36.html

Gavrilova O, Leip A, Dong H, MacDonald J, Alfredo C, Bravo G, Amon B, Rosales R, Prado A, Lima M, Oyhantcabal W, Weerden T, Widiawati Y (2019) Emissions From Livestock and Manure Management. In ‘2019 Refinement to the IPCC Guidelines for National Greenhouse Gas Inventories’. (Eds E Calvo Buendia, K Tanabe, A Kranjc, J Baasansuren, M Fukuda, S Ngarize, A Osako, Y Pyroshenko, P Shermanau, S Federici).

Harris S, Narayanaswamy V (2009) A literature review of life cycle assessment in agriculture. Available at http://www.rirdc.gov.au

Ibidhi R, Hoekstra AY, Gerbens-Leenes PW, Chouchane H (2017) Water, land and carbon footprints of sheep and chicken meat produced in Tunisia under different farming systems. Ecological Indicators 77, 304–313.
Water, land and carbon footprints of sheep and chicken meat produced in Tunisia under different farming systems.Crossref | GoogleScholarGoogle Scholar |

ISO (2014) Environmental management – water footprint – principles, requirements and guidelines. ISO 14046:2014. International Organisation for Standardisation (ISO), Geneva.

ISO 14067 (2018) ‘ISO 14067:2018 – Greenhouse gases – Carbon footprint of products – Requirements and guidelines for quantification.’ (International Organization for Standardization (ISO): Geneva, Switzerland)

Kalhor T, Rajabipour A, Akram A, Sharifi M (2016) Environmental impact assessment of chicken meat production using life cycle assessment. Information Processing in Agriculture 3, 262–271.
Environmental impact assessment of chicken meat production using life cycle assessment.Crossref | GoogleScholarGoogle Scholar |

LEAP (2016) ‘Greenhouse gas emissions and fossil energy use from poultry supply chains: guidelines for assessment.’ (FAO: Rome, Italy) Available at http://www.fao.org/partnerships/leap/publications/en/

Leinonen I, Williams AG, Wiseman J, Guy J, Kyriazakis I (2012) Predicting the environmental impacts of chicken systems in the United Kingdom through a life cycle assessment: broiler production systems. Poultry Science 91, 8–25.
Predicting the environmental impacts of chicken systems in the United Kingdom through a life cycle assessment: broiler production systems.Crossref | GoogleScholarGoogle Scholar |

Lesschen JP, van den Berg M, Westhoek HJ, Witzke HP, Oenema O (2011) Greenhouse gas emission profiles of European livestock sectors. Animal Feed Science and Technology 166–167, 16–28.
Greenhouse gas emission profiles of European livestock sectors.Crossref | GoogleScholarGoogle Scholar |

Luo Z, Wang E, Sun OJ (2010) Soil carbon change and its responses to agricultural practices in Australian agro-ecosystems: a review and synthesis. Geoderma 155, 211–223.
Soil carbon change and its responses to agricultural practices in Australian agro-ecosystems: a review and synthesis.Crossref | GoogleScholarGoogle Scholar |

McGahan E, Barker S, Poad G, Wiedemann S, Batstone D (2013) ‘Conversion of waste to energy in the chicken meat industry.’ (Rural Industries Research and Development Corporation (RIRDC): Australia)

McGahan E, Davis R, Poad G (2014) ‘Quantifying on-farm energy usage in the australian meat chicken industry.’ RIRDC Publication No. 14/124. (Rural Industries Research and Development Corporation (RIRDC): Australia).

Mckay JC, Barton NF, Koerhuis ANM, Mcadam J (2007) The challenge of genetic change in the broiler chicken. BSAP Occasional Publication 27, 1–7.
The challenge of genetic change in the broiler chicken.Crossref | GoogleScholarGoogle Scholar |

Mekonnen MM, Hoekstra AY (2016) Four billion people facing severe water scarcity. Science Advances 2, e1500323
Four billion people facing severe water scarcity.Crossref | GoogleScholarGoogle Scholar |

Nahm KH (2007) Feed formulations to reduce N excretion and ammonia emission from poultry manure. Bioresource Technology 98, 2282–2300.
Feed formulations to reduce N excretion and ammonia emission from poultry manure.Crossref | GoogleScholarGoogle Scholar |

OEC (2019) Where does Australia import Soybean Meal from? Observatory of Economic Complexity (OEC). Available at https://oec.world/en/resources/about

Ogino A, Oishi K, Setoguchi A, Osada T (2021) Life cycle assessment of sustainable broiler production systems: effects of low-protein diet and litter incineration. Agriculture 11, 921
Life cycle assessment of sustainable broiler production systems: effects of low-protein diet and litter incineration.Crossref | GoogleScholarGoogle Scholar |

Pelletier N (2008) Environmental performance in the US broiler poultry sector: Life cycle energy use and greenhouse gas, ozone depleting, acidifying and eutrophying emissions. Agricultural Systems 98, 67–73.
Environmental performance in the US broiler poultry sector: Life cycle energy use and greenhouse gas, ozone depleting, acidifying and eutrophying emissions.Crossref | GoogleScholarGoogle Scholar |

Pfister S, Koehler A, Hellweg S (2009) Assessing the environmental impacts of freshwater consumption in LCA. Environmental Science & Technology 43, 4098–4104.
Assessing the environmental impacts of freshwater consumption in LCA.Crossref | GoogleScholarGoogle Scholar |

Pré-Consultants (2021) ‘SimaPro 9.3 Software.’ (Pré-Consultants: Amersfoort, Netherlands)

Ramachandran Nair PK, Nair VD, Mohan Kumar B, Showalter JM (2010) Carbon sequestration in agroforestry systems. In ‘Advances in agronomy’. (Ed. DL Sparks) pp. 237–307. (Academic Press) https://doi.org/10.1016/S0065-2113(10)08005-3

Sevenster M, Luo Z, Eady S, Grant T (2020) Including long-term soil organic carbon changes in life cycle assessment of agricultural products. The International Journal of Life Cycle Assessment 25, 1231–1241.
Including long-term soil organic carbon changes in life cycle assessment of agricultural products.Crossref | GoogleScholarGoogle Scholar |

Simmons AT, Murray A, Brock PM, Grant T, Cowie AL, Eady S, Sharma B (2019) Life cycle inventories for the Australian grains sector. Crop & Pasture Science 70, 575–584.
Life cycle inventories for the Australian grains sector.Crossref | GoogleScholarGoogle Scholar |

Skunca D, Tomasevic I, Nastasijevic I, Tomovic V, Djekic I (2018) Life cycle assessment of the chicken meat chain. Journal of Cleaner Production 184, 440–450.
Life cycle assessment of the chicken meat chain.Crossref | GoogleScholarGoogle Scholar |

Szögi AA, Vanotti MB, Hunt PG (2008) Phosphorus recovery from poultry litter. Transactions of the ASABE 51, 1727–1734.
Phosphorus recovery from poultry litter.Crossref | GoogleScholarGoogle Scholar |

Warn L (2013) ‘Poultry litter: alternative fertiliser for pastures and way to increase soil organic carbon.’ (Rural Industries Research & Development (RIRDC))

WCED (1987) ‘Our common future.’ (World Commission on Environment and Development (WCED): Brussels, Belgium) https://doi.org/10.4324/9781912281220

Wiedemann S (2018) Analysis of resource use and greenhouse gas emissions from four australian meat production systems, with investigation of mitigation opportunities and trade-offs. Doctoral thesis, Charles Sturt University, Australia. Available at https://researchoutput.csu.edu.au/ws/portalfiles/portal/75667383/Stephen_ Wiedemann_Thesis.pdf

Wiedemann S, Yan MJ (2014) Livestock meat processing: inventory data and methods for handling co-production for major livestock species and meat products. In ‘Proceeedings of the 9th International Conference on Life Cycle Assessment in the Agri-Food Sector (LCA Food 2014), San Francisco, California, USA, 8–10 October, 2014’. pp. 1512–1520. American Centre for Life Cycle Assessment.

Wiedemann S, McGahan E, Poad G (2012) Using life cycle assessment to quantify the environmental impact of chicken meat production. RIRDC Publication No. 12/029. (Rurual Industries Research and Development Corporation (RIRDC), Australia). Available at https://www.agrifutures.com.au/wp-content/uploads/publications/12-029.pdf

Wiedemann S, McGahan E, Murphy C, Yan M-J (2015a) Resource use and environmental impacts from beef production in eastern Australia investigated using life cycle assessment. Animal Production Science 56, 882–894.
Resource use and environmental impacts from beef production in eastern Australia investigated using life cycle assessment.Crossref | GoogleScholarGoogle Scholar |

Wiedemann SG, Bielefeld EN, McGahan EJ, Valentine JG, Murphy CM (2015b) ‘Grower options for spent litter utilisation.’ (Rural Industries Research & Development (RIRDC))

Wiedemann SG, Phillips FA, Naylor TA, McGahan EJ, Keane OB, Warren BR, Murphy CM (2016a) Nitrous oxide, ammonia and methane from Australian meat chicken houses measured under commercial operating conditions and with mitigation strategies applied. Animal Production Science 56, 1404–1417.
Nitrous oxide, ammonia and methane from Australian meat chicken houses measured under commercial operating conditions and with mitigation strategies applied.Crossref | GoogleScholarGoogle Scholar |

Wiedemann SG, Yan M-J, Murphy CM (2016b) Resource use and environmental impacts from Australian export lamb production: a life cycle assessment. Animal Production Science 56, 1070–1080.
Resource use and environmental impacts from Australian export lamb production: a life cycle assessment.Crossref | GoogleScholarGoogle Scholar |

Wiedemann SG, McGahan EJ, Murphy CM (2017) Resource use and environmental impacts from Australian chicken meat production. Journal of Cleaner Production 140, 675–684.
Resource use and environmental impacts from Australian chicken meat production.Crossref | GoogleScholarGoogle Scholar |

Williams A, Audsley E, Sandars D, Jones R, Whitmore A, Glendining M, Dailey G, Williams A, Audsley E, Sandars D (2006) Determining the Environmental Burdens and Resource Use in the Production of Agricultural and Horticultural Commodities: Defra Project Report No: IS0205. Department of the Environment, Food and Rural Affairs (DEFRA), UK. Available at http://randd.defra.gov.uk/Default.aspx

Willis S (2003) The use of Soybean meal and full fat Soybean meal by the animal feed industry. In ‘12th Australian Soybean Conference’. (Department of Primary Industries: Qld, Australia) Available at http://australianoilseeds.com/__data/assets/file/0019/1198/Sarah_Willis-The_Use_of_Soybean_Meal_and_Full_Fat_Soybean_Meal_by_the_Animal_Feed_Industry.pdf

Wiltshire J, Tucker G, Williams A, Foster C, Wynn S, Thorn R, Chadwick D (2009) Supplementary Technical Report to ‘Scenario building to test and inform the development of a BSI method for assessing GHG emissions from food’. Final report to Defra on research project FO0404, London, UK.

Zeltner E, Maurer V (2009) Welfare of organic poultry. In ‘Poultry Welfare Symposium’, 18–22 May 2009, Cervia, Italy. pp. 104–112.