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Simulation of environmental impact scores within the life cycle of mixed wood chips from alternative short rotation coppice systems in Flanders (Belgium)

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  • Rugani, Benedetto
  • Golkowska, Katarzyna
  • Vázquez-Rowe, Ian
  • Koster, Daniel
  • Benetto, Enrico
  • Verdonckt, Pieter

Abstract

The expansion of Short Rotation Coppice (SRC) practices is mainly driven by the viability of SRC wood as an alternative to other renewable and non-renewable fuels in energy production, but also to the capacity of increasing biodiversity and the supply of ecosystem services locally. To delve into these environmental synergies and possible trade-offs, the Life Cycle Assessment method was applied to seven SRC experimental sites recently implemented in Flanders (Belgium). These have differing land use objectives and, thus, present different species proportions and plantation density. For instance, most sites are either planted with willow and poplar clones, or with a mix of the two with local tree species in order to activate temporary unused industrial lands or enhance the local ecosystem functionality. A regular 3 to 7-year rotation was simulated up to year 2033 using CO2FIX given that trees were yet to be harvested at the time of the assessment. Yields were first estimated over time: SRC systems composed by mixed species presented the highest productivity and also the best environmental performance profiles. Overall, the highest environmental impacts were due to consumption of diesel during the cyclic harvests, but also to fertilization activities. Uncertainty distribution ranges were determined for the most critical parameters and a Monte Carlo analysis was performed to obtain average impact scores with variability ranges. While replacing hardwood with wood from SRC chips was not found to be advantageous because of e.g. larger metal, fossil and ozone depletion potentials, benefits were observed for land use reduction and climate change mitigation. Due to frequent rotations, the beneficial trends for the latter seem sufficient to compensate the negative effects of the other impacts on human health and ecosystems quality.

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  • Rugani, Benedetto & Golkowska, Katarzyna & Vázquez-Rowe, Ian & Koster, Daniel & Benetto, Enrico & Verdonckt, Pieter, 2015. "Simulation of environmental impact scores within the life cycle of mixed wood chips from alternative short rotation coppice systems in Flanders (Belgium)," Applied Energy, Elsevier, vol. 156(C), pages 449-464.
  • Handle: RePEc:eee:appene:v:156:y:2015:i:c:p:449-464
    DOI: 10.1016/j.apenergy.2015.07.032
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    1. Ericsson, Niclas & Nordberg, Åke & Sundberg, Cecilia & Ahlgren, Serina & Hansson, Per-Anders, 2014. "Climate impact and energy efficiency from electricity generation through anaerobic digestion or direct combustion of short rotation coppice willow," Applied Energy, Elsevier, vol. 132(C), pages 86-98.
    2. Ilse Laureysens & Jan Bogaert & Ronny Blust & Reinhart Ceulemans, 2004. "Biomass production of 17 poplar clones in a short-rotation coppice culture on a waste disposal site and its relation to soil characteristics," ULB Institutional Repository 2013/170932, ULB -- Universite Libre de Bruxelles.
    3. Mola-Yudego, Blas & Pelkonen, Paavo, 2008. "The effects of policy incentives in the adoption of willow short rotation coppice for bioenergy in Sweden," Energy Policy, Elsevier, vol. 36(8), pages 3052-3058, August.
    4. Rosso, Laura & Facciotto, Gianni & Bergante, Sara & Vietto, Lorenzo & Nervo, Giuseppe, 2013. "Selection and testing of Populus alba and Salix spp. as bioenergy feedstock: Preliminary results," Applied Energy, Elsevier, vol. 102(C), pages 87-92.
    5. Upham, Paul & Speakman, Dorian, 2007. "Stakeholder opinion on constrained 2030 bioenergy scenarios for North West England," Energy Policy, Elsevier, vol. 35(11), pages 5549-5561, November.
    6. Werther Guidi & Frederic Pitre & Michel Labrecque, 2013. "Short-Rotation Coppice of Willows for the Production of Biomass in Eastern Canada," Chapters, in: Miodrag Darko Matovic (ed.), Biomass Now - Sustainable Growth and Use, IntechOpen.
    7. Njakou Djomo, S. & Ac, A. & Zenone, T. & De Groote, T. & Bergante, S. & Facciotto, G. & Sixto, H. & Ciria Ciria, P. & Weger, J. & Ceulemans, R., 2015. "Energy performances of intensive and extensive short rotation cropping systems for woody biomass production in the EU," Renewable and Sustainable Energy Reviews, Elsevier, vol. 41(C), pages 845-854.
    8. Njakou Djomo, S. & El Kasmioui, O. & De Groote, T. & Broeckx, L.S. & Verlinden, M.S. & Berhongaray, G. & Fichot, R. & Zona, D. & Dillen, S.Y. & King, J.S. & Janssens, I.A. & Ceulemans, R., 2013. "Energy and climate benefits of bioelectricity from low-input short rotation woody crops on agricultural land over a two-year rotation," Applied Energy, Elsevier, vol. 111(C), pages 862-870.
    9. Ilse Laureysens & Reinhart Ceulemans & Jan Bogaert & Ronny Blust, 2004. "Erratum: Biomass production of 17 poplar clones in a short-rotation coppice culture on a waste disposal site and its relation to soil characteristics (Forest Ecology and Management (2004) 187 (295-309," ULB Institutional Repository 2013/202075, ULB -- Universite Libre de Bruxelles.
    10. González-García, Sara & Iribarren, Diego & Susmozas, Ana & Dufour, Javier & Murphy, Richard J., 2012. "Life cycle assessment of two alternative bioenergy systems involving Salix spp. biomass: Bioethanol production and power generation," Applied Energy, Elsevier, vol. 95(C), pages 111-122.
    11. Faaij, Andre P.C., 2006. "Bio-energy in Europe: changing technology choices," Energy Policy, Elsevier, vol. 34(3), pages 322-342, February.
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    2. Ralf Pecenka & Hannes Lenz & Simeon Olatayo Jekayinfa & Thomas Hoffmann, 2020. "Influence of Tree Species, Harvesting Method and Storage on Energy Demand and Wood Chip Quality When Chipping Poplar, Willow and Black Locust," Agriculture, MDPI, vol. 10(4), pages 1-15, April.
    3. Gasparatos, Alexandros & Doll, Christopher N.H. & Esteban, Miguel & Ahmed, Abubakari & Olang, Tabitha A., 2017. "Renewable energy and biodiversity: Implications for transitioning to a Green Economy," Renewable and Sustainable Energy Reviews, Elsevier, vol. 70(C), pages 161-184.

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