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Regionalized LCI Modeling: A Framework for the Integration of Spatial Data in Life Cycle Assessment

In: Advances and New Trends in Environmental Informatics

Author

Listed:
  • Juergen Reinhard

    (University of Zurich)

  • Rainer Zah

    (Quantis)

  • Lorenz M. Hilty

    (University of Zurich)

Abstract

Life Cycle Assessment (LCA), the most prominent technique for the assessment of environmental impacts of products, typically operates on the basis of average meteorological and ecological conditions of whole countries or large regions. This limits the representativeness and accuracy of LCA, particularly in the field of agriculture. The production processes associated with agricultural commodities are characterized by high spatial sensitivity as both inputs (e.g. mineral and organic fertilizers) and the accompanying release of emissions into soil, air and water (e.g. nitrate, dinitrogen monoxide, or phosphate emissions) are largely determined by micro-spatial environmental parameters (precipitation, soil properties, slope, etc.) and therefore highly context dependent. This spatial variability is vastly ignored under the “unit world” assumption inherent to LCA. In this paper, we present a new calculation framework for regionalized life cycle inventory modeling that aims to overcome this inherent limitation. The framework allows an automated, site-specific generation and assessment of regionalized unit process datasets. We demonstrate the framework in a case study on rapeseed cultivation in Germany. The results from the research are (i) a framework for generating regionalized data structures, and (ii) a first examination of the significance of further use cases.

Suggested Citation

  • Juergen Reinhard & Rainer Zah & Lorenz M. Hilty, 2017. "Regionalized LCI Modeling: A Framework for the Integration of Spatial Data in Life Cycle Assessment," Progress in IS, in: Volker Wohlgemuth & Frank Fuchs-Kittowski & Jochen Wittmann (ed.), Advances and New Trends in Environmental Informatics, pages 223-235, Springer.
  • Handle: RePEc:spr:prochp:978-3-319-44711-7_18
    DOI: 10.1007/978-3-319-44711-7_18
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    Cited by:

    1. Tianran Ding & Wouter Achten, 2023. "Coupling agent-based modeling with territorial LCA to support agricultural land-use planning," ULB Institutional Repository 2013/359527, ULB -- Universite Libre de Bruxelles.
    2. Tianran Ding & Wouter Achten, 2022. "Coupling agent-based modeling with territorial LCA to support agricultural land-use planning," ULB Institutional Repository 2013/352782, ULB -- Universite Libre de Bruxelles.

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