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The role of price incentives in enhancing carbon sequestration in the forestry sector of Hungary

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  • Szajkó, Gabriella
  • Rácz, Viktor József
  • Kis, András

Abstract

This paper investigates the carbon sequestration potential of forests in Hungary through the introduction of a carbon price incentive, assuming an integrative national climate policy. We have developed a bio-economic mathematical optimisation model to represent the area and species distribution of Hungarian forests and we are optimising harvesting cycles without and with carbon payments. We assess the cost and volume of potentially available carbon removal by forests in the context of the national climate policy. To align our results with other climate policy instruments, we integrate the estimated carbon removal potential of the forests with the marginal carbon abatement cost curve of the energy sector in Hungary. We find that enhanced forest carbon sequestration can be more cost-effective than most other climate policy instruments. We find that forests could intervene at the lower end of the combined cost curve and shift it significantly to the right, resulting in much lower marginal and total costs of achieving the net zero target for Hungary.

Suggested Citation

  • Szajkó, Gabriella & Rácz, Viktor József & Kis, András, 2024. "The role of price incentives in enhancing carbon sequestration in the forestry sector of Hungary," Forest Policy and Economics, Elsevier, vol. 158(C).
  • Handle: RePEc:eee:forpol:v:158:y:2024:i:c:s1389934123001922
    DOI: 10.1016/j.forpol.2023.103097
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    1. Gregory S. Amacher & Markku Ollikainen & Erkki A. Koskela, 2009. "Economics of Forest Resources," MIT Press Books, The MIT Press, edition 1, volume 1, number 0262012480, December.
    2. Manley, Bruce, 2023. "Impact of carbon price on the relative profitability of production forestry and permanent forestry for New Zealand plantations," Forest Policy and Economics, Elsevier, vol. 156(C).
    3. Wernick, Iddo K. & Kauppi, Pekka E., 2022. "Storing carbon or growing forests?," Land Use Policy, Elsevier, vol. 121(C).
    4. Pan, Wenqi & Kim, Man-Keun & Ning, Zhuo & Yang, Hongqiang, 2020. "Carbon leakage in energy/forest sectors and climate policy implications using meta-analysis," Forest Policy and Economics, Elsevier, vol. 115(C).
    5. Päivinen, Risto & Kallio, A. Maarit I. & Solberg, Birger & Käär, Liisa, 2022. "EU Forest reference levels: The compatible harvest volumes compiled and assessed in terms of forest sector market development," Forest Policy and Economics, Elsevier, vol. 140(C).
    6. Swan, Lukas G. & Ugursal, V. Ismet, 2009. "Modeling of end-use energy consumption in the residential sector: A review of modeling techniques," Renewable and Sustainable Energy Reviews, Elsevier, vol. 13(8), pages 1819-1835, October.
    7. Kallio, A. Maarit I. & Solberg, Birger & Käär, Liisa & Päivinen, Risto, 2018. "Economic impacts of setting reference levels for the forest carbon sinks in the EU on the European forest sector," Forest Policy and Economics, Elsevier, vol. 92(C), pages 193-201.
    8. Guo, Jinggang & Gong, Peichen & Brännlund, Runar, 2019. "Impacts of Increasing Bioenergy Production on Timber Harvest and Carbon Emissions," Journal of Forest Economics, now publishers, vol. 34(3-4), pages 311-335, November.
    9. Bowes, Michael D. & Krutilla, John V., 1985. "Multiple use management of public forestlands," Handbook of Natural Resource and Energy Economics, in: A. V. Kneese† & J. L. Sweeney (ed.), Handbook of Natural Resource and Energy Economics, edition 1, volume 2, chapter 12, pages 531-569, Elsevier.
    10. Iversen, Endre Kildal & Lindhjem, Henrik & Jacobsen, Jette Bredahl & Grimsrud, Kristine, 2021. "Moving (back) to greener pastures? Social benefits and costs of climate forest planting in Norway," Land Use Policy, Elsevier, vol. 107(C).
    11. Assmuth, Aino & Tahvonen, Olli, 2018. "Optimal carbon storage in even- and uneven-aged forestry," Forest Policy and Economics, Elsevier, vol. 87(C), pages 93-100.
    12. Ekholm, Tommi, 2020. "Optimal forest rotation under carbon pricing and forest damage risk," Forest Policy and Economics, Elsevier, vol. 115(C).
    13. G. Cornelis van Kooten & Clark S. Binkley & Gregg Delcourt, 1995. "Effect of Carbon Taxes and Subsidies on Optimal Forest Rotation Age and Supply of Carbon Services," American Journal of Agricultural Economics, Agricultural and Applied Economics Association, vol. 77(2), pages 365-374.
    14. West, Thales A.P. & Wilson, Chris & Vrachioli, Maria & Grogan, Kelly A., 2019. "Carbon payments for extended rotations in forest plantations: Conflicting insights from a theoretical model," Ecological Economics, Elsevier, vol. 163(C), pages 70-76.
    15. Hoogstra-Klein, M.A. & Brukas, V. & Wallin, I., 2017. "Multiple-use forestry as a boundary object: From a shared ideal to multiple realities," Land Use Policy, Elsevier, vol. 69(C), pages 247-258.
    16. Guo, Jinggang & Gong, Peichen, 2017. "The potential and cost of increasing forest carbon sequestration in Sweden," Journal of Forest Economics, Elsevier, vol. 29(PB), pages 78-86.
    17. Fleiter, Tobias & Worrell, Ernst & Eichhammer, Wolfgang, 2011. "Barriers to energy efficiency in industrial bottom-up energy demand models--A review," Renewable and Sustainable Energy Reviews, Elsevier, vol. 15(6), pages 3099-3111, August.
    18. Liu, Wan-Yu & Chiang, Yi-Hua & Lin, Chun-Cheng, 2022. "Adopting renewable energies to meet the carbon reduction target: Is forest carbon sequestration cheaper?," Energy, Elsevier, vol. 246(C).
    19. Münnich Vass, Miriam, 2017. "Renewable energies cannot compete with forest carbon sequestration to cost-efficiently meet the EU carbon target for 2050," Renewable Energy, Elsevier, vol. 107(C), pages 164-180.
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    More about this item

    Keywords

    Climate policy; Bioeconomic modelling; Forestry; Carbon pricing; Sequestration; Hungary;
    All these keywords.

    JEL classification:

    • C61 - Mathematical and Quantitative Methods - - Mathematical Methods; Programming Models; Mathematical and Simulation Modeling - - - Optimization Techniques; Programming Models; Dynamic Analysis
    • Q23 - Agricultural and Natural Resource Economics; Environmental and Ecological Economics - - Renewable Resources and Conservation - - - Forestry
    • Q52 - Agricultural and Natural Resource Economics; Environmental and Ecological Economics - - Environmental Economics - - - Pollution Control Adoption and Costs; Distributional Effects; Employment Effects
    • Q54 - Agricultural and Natural Resource Economics; Environmental and Ecological Economics - - Environmental Economics - - - Climate; Natural Disasters and their Management; Global Warming
    • Q57 - Agricultural and Natural Resource Economics; Environmental and Ecological Economics - - Environmental Economics - - - Ecological Economics
    • Q58 - Agricultural and Natural Resource Economics; Environmental and Ecological Economics - - Environmental Economics - - - Environmental Economics: Government Policy

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