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Monitoring food-related material flows with the use of economy-wide material system analysis

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  • Kovanda, Jan

Abstract

The article applies a newly developed method of economy-wide material system analysis (EW-MSA) for food-related primary materials and products. EW-MSA builds on economy-wide material flow analysis (EW-MFA) and further splits the economic system into extraction, manufacturing, use, waste treatment and waste treatment – recycling sub-components. The results of EW-MSA of food-related primary materials and products are discussed in relation to Czech policies focusing on food self-sufficiency, environmental impacts of food production, and waste treatment. The self-sufficiency in manufacturing of food-related products is very high in the Czech Republic, but significantly lower in the use of these products. If the Czech Republic plans to maintain or even increase its food self-sufficiency, the reduction in environmental impacts of food production can only be achieved by an increase in environmental efficiency or by decreasing food exports. Both international and Czech waste policies require an increase in waste recycling in order to support a transition to a circular economy. The EW-MSA shows that there is still some scope for improvement in recycling of waste and water emissions from food products and beverages in the Czech Republic.

Suggested Citation

  • Kovanda, Jan, 2022. "Monitoring food-related material flows with the use of economy-wide material system analysis," Ecological Economics, Elsevier, vol. 195(C).
  • Handle: RePEc:eee:ecolec:v:195:y:2022:i:c:s0921800922000544
    DOI: 10.1016/j.ecolecon.2022.107392
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    1. Jean-Yves Courtonne & Julien Alapetite & Pierre-Yves Longaretti & Denis Dupré & Emmanuel Prados, 2015. "Downscaling material flow analysis: the case of the cereals supply chain in France," Working Papers hal-01142357, HAL.
    2. Michael Lahr & Louis de Mesnard, 2004. "Biproportional Techniques in Input-Output Analysis: Table Updating and Structural Analysis," Economic Systems Research, Taylor & Francis Journals, vol. 16(2), pages 115-134.
    3. Jean-Yves Courtonne & Julien Alapetite & Pierre-Yves Longaretti & Denis Dupre, 2015. "Downscaling material flow analysis: the case of the cereal supply chain in France," Post-Print halshs-01321742, HAL.
    4. Klinglmair, Manfred & Vadenbo, Carl & Astrup, Thomas Fruergaard & Scheutz, Charlotte, 2017. "An MFA-based optimization model for increased resource efficiency: Phosphorus flows in Denmark," Resources, Conservation & Recycling, Elsevier, vol. 122(C), pages 1-10.
    5. Heinz Schandl & James West, 2012. "Material Flows and Material Productivity in China, Australia, and Japan," Journal of Industrial Ecology, Yale University, vol. 16(3), pages 352-364, June.
    6. Dirk Godenau & Jose Juan Caceres-Hernandez & Gloria Martin-Rodriguez & Jose Ignacio Gonzalez-Gomez, 2020. "A consumption-oriented approach to measuring regional food self-sufficiency," Food Security: The Science, Sociology and Economics of Food Production and Access to Food, Springer;The International Society for Plant Pathology, vol. 12(5), pages 1049-1063, October.
    7. Courtonne, Jean-Yves & Alapetite, Julien & Longaretti, Pierre-Yves & Dupré, Denis & Prados, Emmanuel, 2015. "Downscaling material flow analysis: The case of the cereal supply chain in France," Ecological Economics, Elsevier, vol. 118(C), pages 67-80.
    8. West, James & Schandl, Heinz & Krausmann, Fridolin & Kovanda, Jan & Hak, Tomas, 2014. "Patterns of change in material use and material efficiency in the successor states of the former Soviet Union," Ecological Economics, Elsevier, vol. 105(C), pages 211-219.
    9. Yuting Wang & Lei Wang & Zhemin Li, 2020. "Dynamic Analysis of China’s Imported Raw Milk Powder Consumption," Sustainability, MDPI, vol. 12(4), pages 1-15, February.
    10. Singh, Shweta & Compton, Jana E. & Hawkins, Troy R. & Sobota, Daniel J. & Cooter, Ellen J., 2017. "A Nitrogen Physical Input-Output Table (PIOT) model for Illinois," Ecological Modelling, Elsevier, vol. 360(C), pages 194-203.
    11. Jan Kovanda, 2021. "Economy‐wide material system analysis: Mapping material flows through the economy," Journal of Industrial Ecology, Yale University, vol. 25(5), pages 1121-1135, October.
    12. Krausmann, Fridolin & Gingrich, Simone & Eisenmenger, Nina & Erb, Karl-Heinz & Haberl, Helmut & Fischer-Kowalski, Marina, 2009. "Growth in global materials use, GDP and population during the 20th century," Ecological Economics, Elsevier, vol. 68(10), pages 2696-2705, August.
    13. Stefan Giljum, 2004. "Trade, Materials Flows, and Economic Development in the South: The Example of Chile," Journal of Industrial Ecology, Yale University, vol. 8(1‐2), pages 241-261, January.
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