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Environmental and climate change impacts of eighteen biomass-based plants in the alpine region: A comparative analysis

  • E. Pieratti
  • , A. Paletto
  • , A. Atena
  • , S. Bernardi
  • , M. Palm
  • , D. Patzelt
  • , R. Manuela
  • , F. Teston
  • , G. Voglar
  • , T. Grebenc
  • , N. Krajnc
  • , T. Schnabel
  • Council for Agricultural Research and Economics (CREA), Research Centre for Forestry and Wood, Italy
  • BIOPRO Baden-Württemberg GmbH
  • Centre of Studies of Alps of Pieve Tesino, University of Tuscia
  • Institute for Regional Development, EURAC Research
  • Slovenian Forestry Institute

Research output: Contribution to journalArticlepeer-review

Abstract

In the energy and climate policy commitments of the European Union, the following targets have been foreseen up to 2030: reducing the greenhouse gas emissions of 40%, improving the energy conversion efficiency of 27%, and producing 27% of the energy from renewable energy sources. Nowadays, thanks to the development of reliable and efficient technologies, several possibilities exist to replace fossil fuels with renewable energy sources, such as wind power, solar, hydropower, geothermal, and biomass. In the Alpine region, biomass can play a key role for achieving the objectives foreseen by the EU policy strategy. In the last few years, due to the high available potentials of residues from forestry operations and sawmill processing, the Alpine region witnessed the development of centralized biomass district heating plants. The aim of the present study is to assess the environmental impacts of 18 biomass-based plants located in the Alpine region using a Life Cycle Assessment approach and to analyse the current market destination of the wood residues. The data were collected through face-to-face interviews with the stakeholders of the forest-wood supply chain (managers of biomass-based plant, sawmills, forest owners and enterprises). From the environmental point of view, the results of the Life Cycle Assessment (global climate change impact: 5–90 gCO2 MJ−1) show that the “critical points” in the forest-wood supply chain are: the transport phase (1–54 gCO2 MJ−1) and the wood processing phase (6–36 gCO2 MJ−1). The results provided by Life Cycle Assessment can be used to increase the scientific knowledge of the environmental impacts related to the biomass conversion technology and to underline the weak points of the forest-wood supply chain. Furthermore, these results can support the decision makers in defining climate change mitigation strategies at regional and local level.
Original languageEnglish
JournalJ. Clean. Prod.
Volume242
DOIs
Publication statusPublished - 1 Jan 2020

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 7 - Affordable and Clean Energy
    SDG 7 Affordable and Clean Energy
  2. SDG 12 - Responsible Consumption and Production
    SDG 12 Responsible Consumption and Production
  3. SDG 13 - Climate Action
    SDG 13 Climate Action

Keywords

  • Alpine region
  • Climate change mitigation
  • Environmental impacts
  • Forest-wood chain
  • Life cycle assessment
  • Renewable energy policy
  • Artificial life
  • Bioconversion
  • Biomass
  • Conversion efficiency
  • Decision making
  • Economic and social effects
  • Environmental impact
  • Environmental technology
  • Forestry
  • Fossil fuels
  • Gas emissions
  • Geothermal energy
  • Greenhouse gases
  • Life cycle
  • Sawing
  • Sawmills
  • Supply chains
  • Wind power
  • Wood products
  • Alpine regions
  • Biomass conversion technologies
  • Energy and climate policies
  • Global climate change impact
  • Life Cycle Assessment (LCA)
  • Renewable energy source
  • Climate change

Classification according to Österreichische Systematik der Wissenschaftszweige (ÖFOS 2012)

  • 205008 Wood technology

Applied Research Level (ARL)

  • ARL Level 6 - Principle in operating environment

Research focus/foci

  • Sustainable Materials and Technologies

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