Schedule for Reducing the Use of Peat and the Possibilities of Replacing It with Forest Chips in Energy Production in Finland
- 1 School of Energy Systems, Lappeenranta-Lahti University of Technology (LUT), Lappeenranta, Finland
- 2 School of Energy Systems, Lappeenranta-Lahti University of Technology (LUT), Lappeenranta, Finland
- 3 School of Energy Systems, Lappeenranta-Lahti University of Technology (LUT), Lappeenranta, Finland
Abstract
Between 2018 and 2020, an average of 15 TWh of energy peat was consumed in Finland. Energy peat is used in 260 boilers in Finland, which produce district heat and heat and steam for industry, as well as electricity as cogeneration (CHP) in connection with district heating and industrial heat production. Peat accounts for 3% - 5% of the energy sources used in Finland, but its importance has been greater in terms of security of supply. With current use in accordance with the 2018 - 2020 average, the emissions from peat are almost 6 Mt CO 2 per year in Finland, which is 15% of emissions from the energy sector. In this study, the technical limitations related to peat burning, eco nomic limitations related to the availability of biomass, and socio-economic limitations related to the regional economy are reviewed. By 2040, the tech nical minimum use of peat will fall to 2 TWh. The techno-economical potential may be even lower, but due to socio-economic objectives, peat production will not be completely ceased. The reduction in the minimum share assumes that old peat boilers are replaced with new biomass boilers or are alternatively replaced by other forms of heat production. Based on the biomass reserves, the current use of peat can be completely replaced by forest chips, but regional challenges may occur along the coast and in southern Finland. It is unlikely that the current demand for all peat will be fully replaced by biomass when part of CHP production is replaced by heat production alone and combustion with waste heat sources.
- Schipfer, F., et al. (2022) Status of and Expectations for Flexible Bioenergy to Support Resource Efficiency and to Accelerate the Energy Transition. Renewable and Sustainable Energy Reviews, 158, Article ID: 112094. https://doi.org/10.1016/j.rser.2022.112094
- Joelsson, J.M. and Gustavsson, L. (2010) Reduction of CO2 Emission and Oil Dependency with Biomass-Based Polygeneration. Biomass and Bioenergy, 34, 967-984. https://doi.org/10.1016/j.biombioe.2010.02.005
- Johansson, V., Lehtveer, M. and Göransson, L. (2019) Biomass in the Electricity System: A Complement to Variable Renewables or a Source of Negative Emissions? Energy, 168, 532-541. https://doi.org/10.1016/j.energy.2018.11.112
- Jåstad, E.O., Bolkesjø, T.F., Trømborg, E. and Rørstad, P.K. (2020) The Role of Woody Biomass for Reduction of Fossil GHG Emissions in the Future North European Energy Sector. Applied Energy, 274, Article ID: 115360. https://doi.org/10.1016/j.apenergy.2020.115360
- Keller, V., et al. (2018) Coal-to-Biomass Retrofit in Alberta—Value of Forest Residue Bioenergy in the Electricity System. Renewable Energy, 125, 373-383. https://doi.org/10.1016/j.renene.2018.02.128
- Banja, M., Sikkema, R, Jégard, M., Motola, V. and Dallemand, J.-F. (2019) Biomass for Energy in the EU—The Support Framework. Energy Policy, 131, 215-228. https://doi.org/10.1016/j.enpol.2019.04.038
- Lindroos, T.J., Mäki, E., Koponen, K., Hannula, I., Kiviluoma, J. and Raitila, J. (2021) Replacing Fossil Fuels with Bioenergy in District Heating—Comparison of Technology Options. Energy, 231, Article ID: 120799. https://doi.org/10.1016/j.energy.2021.120799
- Väisänen, S., Silvan, N., Ihalainen, A. and Soukka, R. (2013) Peat Production in High-Emission Level Peatlands—A Key to Reducing Climatic Impacts? Energy & Environment, 24, 757-778. https://doi.org/10.1260/0958-305X.24.5.757
- Soimakallio, S., et al. (2020) Turpeen Rooli ja sen Käytöstä Luopumisen Vaikutukset Suomessa. Sitra. https://media.sitra.fi/2020/06/31150012/turpeen-rooli-ja-sen-kaytosta-luopumisen-vaikutukset-suomessa-tekninen-raportti.pdf
- Greenhouse Gases. Official Statistics of Finland. http://www.stat.fi/til/khki/2020/khki_2020_2021-05-21_tie_001_en.html
- Korhonen, T., Hirvonen, P., Rämet, J. and Karjalainen, S. (2021) Turvetyöryhmän Loppuraportti. http://urn.fi/URN:ISBN:978-952-327-856-1
- World Energy Council (2013) Strategic Insight. https://www.worldenergy.org/assets/images/imported/2013/10/WER_2013_6_Peat.pdf