Assessment of the Environmental Footprint of Various Food Production Systems

Authors

  • Donny Shalom Strathmore University

DOI:

https://doi.org/10.47941/jfs.1843

Keywords:

Assessment, Environmental Footprint, Food Production Systems, Sustainability, Agroecology, Agricultural Practices, Systems Theory, Environmental Impact, Sustainable Farming, Regulation, Consumer Education, International Collaboration, Biodiversity, Carbon Pricing, Mitigation

Abstract

Purpose: This study sought to assess the environmental footprint of various food production systems.

Methodology: The study adopted a desktop research methodology. Desk research refers to secondary data or that which can be collected without fieldwork. Desk research is basically involved in collecting data from existing resources hence it is often considered a low cost technique as compared to field research, as the main cost is involved in executive's time, telephone charges and directories. Thus, the study relied on already published studies, reports and statistics. This secondary data was easily accessed through the online journals and library.

Findings: The findings reveal that there exists a contextual and methodological gap relating to the environmental footprint of various food production systems. Preliminary empirical review revealed that with a call for transformative changes to mitigate ecological impacts while ensuring food security and human well-being. Through a comprehensive analysis, significant variations in resource use and emissions were highlighted across different production methods. The study emphasized the interconnectedness between dietary choices, agricultural practices, and environmental outcomes, urging policymakers to enact evidence-based policies and agricultural stakeholders to adopt regenerative farming practices. Ultimately, the study served as a call to action for concerted efforts to transition towards a more sustainable and resilient food system, integrating ecological principles, social equity, and economic viability to promote harmony between human activities and the natural environment.

Unique Contribution to Theory, Practice and Policy: The Systems theory, Ecological Economics and Agroecology models may be used to anchor future studies on the environmental footprint of various food production systems. The study made significant contributions to theory, practice, and policy in the realm of sustainable food production and environmental conservation. It advanced theoretical understanding by advocating for a systems-based approach to assessing environmental impacts and highlighting the importance of considering multiple dimensions of sustainability. In practice, the study recommended the adoption of agroecological approaches and the promotion of sustainable farming practices to mitigate environmental harm. Policy recommendations included the implementation of regulatory interventions and incentives to promote sustainability, while consumer education and international collaboration were emphasized for driving demand for sustainable food products and facilitating knowledge sharing. Lastly, the study underscored the importance of investment in research and innovation to drive continuous improvements in sustainable food production systems.

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References

Alexander, P., Brown, C., Arneth, A., Finnigan, J., Moran, D., & Rounsevell, M. D. A. (2017). Losses, inefficiencies and waste in the global food system. Agricultural Systems, 153, 190-200.

Altieri, M. A., & Nicholls, C. I. (2017). Agroecology: Principles and Strategies for Designing Sustainable Farming Systems. CRC Press.

Bryngelsson, D., Wirsenius, S., Hedenus, F., Sonesson, U., & Nybrant, T. (2016). How can the EU climate targets be met? A combined analysis of technological and demand-side changes in food and agriculture. Food Policy, 59, 152-164.

Chopin, T., Buschmann, A. H., Halling, C., Troell, M., Kautsky, N., Neori, A., Kraemer, G. P., Zertuche-González, J. A., Yarish, C., & Neefus, C. (2020). Integrated multitrophic aquaculture (IMTA): A potential strategic choice for promoting economic and environmental stewardship in marine and coastal areas. Marine Policy, 119, 104013. https://doi.org/10.1016/j.marpol.2020.104013

Clark, M. A., Springmann, M., Hill, J., Tilman, D., & Ballon, P. (2020). Global food system emissions could preclude achieving the 1.5° and 2°C climate change targets. Science, 370(6517), 705-708.

Daly, H. E., & Farley, J. (2011). Ecological Economics: Principles and Applications. Island Press.

Environment Agency. (2020). Water abstraction statistics for the United Kingdom 2019. UK Environment Agency. https://www.gov.uk/government/statistics/water-abstraction-statistics-for-the-united-kingdom-2019

EPA. (2021). Inventory of U.S. greenhouse gas emissions and sinks: 1990-2019. United States Environmental Protection Agency. https://www.epa.gov/ghgemissions/inventory-us-greenhouse-gas-emissions-and-sinks

FAO. (2013). Food and Agriculture Organization of the United Nations. Save and Grow: A policymaker's guide to the sustainable intensification of smallholder crop production. http://www.fao.org/3/a-i3575e.pdf

Foley, J. A., Ramankutty, N., Brauman, K. A., Cassidy, E. S., Gerber, J. S., Johnston, M., Mueller, N. D., O'Connell, C., Ray, D. K., West, P. C., Balzer, C., Bennett, E. M., Carpenter, S. R., Hill, J., Monfreda, C., Polasky, S., Rockström, J., Sheehan, J., Siebert, S., Tilman, D., ... Zaks, D. P. M. (2011). Solutions for a cultivated planet. Nature, 478(7369), 337-342. https://doi.org/10.1038/nature10452

Food and Agriculture Organization. (2020). The state of food and agriculture 2020: Overcoming water challenges in agriculture. FAO.

Garrity, D. P., Akinnifesi, F. K., Ajayi, O. C., Weldesemayat, S. G., Mowo, J. G., & Kalinganire, A. (2010). Evergreen agriculture: A robust approach to sustainable food security in Africa. Food Security, 2(3), 197-214. https://doi.org/10.1007/s12571-010-0070-7

Gebremedhin, E., & Hoag, D. (2020). Water scarcity and water quality in Sub-Saharan Africa: A review of issues and possible solutions. Sustainability, 12(10), 4027. https://doi.org/10.3390/su12104027

Godfray, H. C. J., Beddington, J. R., Crute, I. R., Haddad, L., Lawrence, D., Muir, J. F., Pretty, J., Robinson, S., Thomas, S. M., & Toulmin, C. (2010). Food security: The challenge of feeding 9 billion people. Science, 327(5967), 812-818. https://doi.org/10.1126/science.1185383

Heller, M. C., & Keoleian, G. A. (2015). Greenhouse gas emission estimates of U.S. dietary choices and food loss. Journal of Industrial Ecology, 19(3), 391-401.

IEA. (2021). Japan - Country profile. International Energy Agency. https://www.iea.org/countries/japan

International Renewable Energy Agency. (2021). Africa: Renewable energy market analysis. International Renewable Energy Agency. https://www.irena.org/africa

Jose, S. (2009). Agroforestry for ecosystem services and environmental benefits: An overview. Agroforestry Systems, 76(1), 1-10. https://doi.org/10.1007/s10457-009-9229-7

Nair, P. K. R. (2012). Agroecological and other innovative approaches for sustainable agriculture and food systems. Agroecology and Sustainable Food Systems, 36(1), 4-6. https://doi.org/10.1080/10440046.2011.626899

Poore, J., & Nemecek, T. (2018). Reducing food's environmental impacts through producers and consumers. Science, 360(6392), 987-992.

Pretty, J., & Bharucha, Z. P. (2014). Sustainable intensification in agricultural systems. Annals of Botany, 114(8), 1571-1596. https://doi.org/10.1093/aob/mcu205

Pretty, J., Benton, T. G., Bharucha, Z. P., Dicks, L. V., Flora, C. B., Godfray, H. C. J., Goulson, D., Hartley, S., Lampkin, N., Morris, C., Pierzynski, G., Raine, N. E., & Vanbergen, A. J. (2018). Global trends in agricultural land-use intensity and productivity. Global Environmental Change, 52, 20-34. https://doi.org/10.1016/j.gloenvcha.2018.07.003

Reganold, J. P., & Wachter, J. M. (2016). Organic agriculture in the twenty-first century. Nature Plants, 2(2), 15221. https://doi.org/10.1038/nplants.2015.221

Springmann, M., Clark, M., Mason-D'Croz, D., Wiebe, K., Bodirsky, B. L., Lassaletta, L., ... & Willett, W. (2018). Options for keeping the food system within environmental limits. Nature, 562(7728), 519-525.

Tilman, D., & Clark, M. (2014). Global diets link environmental sustainability and human health. Nature, 515(7528), 518-522.

Troell, M., Naylor, R. L., Metian, M., Beveridge, M., Tyedmers, P. H., Folke, C., & Arrow, K. J. (2014). Does aquaculture add resilience to the global food system? Proceedings of the National Academy of Sciences, 111(37), 13257-13263. https://doi.org/10.1073/pnas.1404067111

Tuomisto, H. L., Hodge, I. D., Riordan, P., & Macdonald, D. W. (2012). Does organic farming reduce environmental impacts? - A meta-analysis of European research. Journal of Environmental Management, 112, 309-320. https://doi.org/10.1016/j.jenvman.2012.08.018

von Bertalanffy, L. (1968). General System Theory: Foundations, Development, Applications. George Braziller.

WHO. (2020). Ambient air pollution: Health impacts. World Health Organization. https://www.who.int/news-room/q-a-detail/ambient-(outdoor)-air-quality-and-health

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Published

2024-05-01

How to Cite

Shalom, D. . (2024). Assessment of the Environmental Footprint of Various Food Production Systems. Journal of Food Sciences, 5(1), 56–67. https://doi.org/10.47941/jfs.1843

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