TY - JOUR
T1 - Environmental and climate change impacts of eighteen biomass-based plants in the alpine region: A comparative analysis
AU - Pieratti, E.
AU - Paletto, A.
AU - Atena, A.
AU - Bernardi, S.
AU - Palm, M.
AU - Patzelt, D.
AU - Manuela, R.
AU - Teston, F.
AU - Voglar, G.
AU - Grebenc, T.
AU - Krajnc, N.
AU - Schnabel, T.
N1 - Cited By :30
Export Date: 14 December 2023
CODEN: JCROE
Correspondence Address: Paletto, A.; Consiglio per la Ricerca in Agricoltura e l'analisi dell'economia Agraria (CREA), Italy; email: [email protected]
Funding details: Dipartimento per la Innovazione nei Sistemi Biologici, Agroalimentari e Forestali, Università degli Studi della Tuscia, DIBAF, P4-0107
Funding details: Ministero dell’Istruzione, dell’Università e della Ricerca, MIUR
Funding details: Javna Agencija za Raziskovalno Dejavnost RS, ARRS
Funding text 1: The present study was carried out within the EU-Strategy for the Alpine Region (EUSALP) funds: Alpine Region Preparatory Action Fund (ARPAF) . The research has been funded also by the “Departments of Excellence-2018” Program (Dipartimenti di Eccellenza) of the Italian Ministry of Education, University and Research , DIBAF-Department of University of Tuscia , Project “Landscape 4.0 – food, wellbeing and environment”. Slovenian partner was partially supported by the Research Programme Forest Biology, Ecology and Technology ( P4-0107 ) of the Slovenian Research Agency . The authors are thankful to anonymous reviewers for valuable comments and suggestions which significantly improved the quality of the paper and to all study participants for their cooperativeness.
Funding text 2: The present study was carried out within the EU-Strategy for the Alpine Region (EUSALP) funds: Alpine Region Preparatory Action Fund (ARPAF). The research has been funded also by the “Departments of Excellence-2018” Program (Dipartimenti di Eccellenza) of the Italian Ministry of Education, University and Research, DIBAF-Department of University of Tuscia, Project “Landscape 4.0 – food, wellbeing and environment”. Slovenian partner was partially supported by the Research Programme Forest Biology, Ecology and Technology (P4-0107) of the Slovenian Research Agency. The authors are thankful to anonymous reviewers for valuable comments and suggestions which significantly improved the quality of the paper and to all study participants for their cooperativeness.
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PY - 2020/1/1
Y1 - 2020/1/1
N2 - 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.
AB - 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.
KW - Alpine region
KW - Climate change mitigation
KW - Environmental impacts
KW - Forest-wood chain
KW - Life cycle assessment
KW - Renewable energy policy
KW - Artificial life
KW - Bioconversion
KW - Biomass
KW - Conversion efficiency
KW - Decision making
KW - Economic and social effects
KW - Environmental impact
KW - Environmental technology
KW - Forestry
KW - Fossil fuels
KW - Gas emissions
KW - Geothermal energy
KW - Greenhouse gases
KW - Life cycle
KW - Sawing
KW - Sawmills
KW - Supply chains
KW - Wind power
KW - Wood products
KW - Alpine regions
KW - Biomass conversion technologies
KW - Energy and climate policies
KW - Global climate change impact
KW - Life Cycle Assessment (LCA)
KW - Renewable energy source
KW - Climate change
UR - https://www.mendeley.com/catalogue/53a4bb06-b3c2-3398-a053-1d350598491f/
U2 - 10.1016/j.jclepro.2019.118449
DO - 10.1016/j.jclepro.2019.118449
M3 - Article
SN - 0959-6526
VL - 242
JO - J. Clean. Prod.
JF - J. Clean. Prod.
ER -