Analysis of the structure of Ukraine's biomass energy potential and directions of its use

Authors

DOI:

https://doi.org/10.46299/j.isjea.20260502.10

Keywords:

bioenergy, biomass, biofuel, biogas, bioenergy potential, economic potential

Abstract

The structure, current and prospective directions of using the bioenergy potential of Ukraine are analyzed. The relevance of the issue is associated with the urgent need to reduce dependence on imported fossil fuels through the accelerated development of renewable energy sources. One of such sources is biomass, which already provides about 9% of the total supply of primary energy in the world and more than 11% in the European Union. The most sustainable types of biomass for energy needs in Europe are considered waste, residues, lignocellulosic biomass, which are types not competing with the production of food and feed. The production and use of liquid and gaseous biofuels from these feedstocks leads to the greatest reduction in greenhouse gas emissions. This is particularly important for transport, which is difficult to decarbonize compared to the heat and electricity sectors. According to the performed estimation, the economic potential of biomass in Ukraine is estimated at almost 34 Mtoe/y according to 2021 data (the latest pre-war data). During the war years, the volume of the potential decreased, but not critically, which indicates its resistance to negative external factors. Thus, it can be expected to gradually recover to the 2021 level. In addition, the potential has a high level of sustainability, since a conservative approach is used in its assessment, taking into account various aspects of sustainability. The largest components of the bioenergy potential in Ukraine are agricultural residues as solid biomass (10.8 Mtoe/y based on 2021 data) and biogas from intermediate/cover crops (7.9 Mtoe/y). Ukraine has some experience in growing intermediate/cover crops, but the direction of their use as feedstock for biogas is new. A promising segment of bioenergy development is also the production of biogas/biomethane from primary agricultural residues, but in this case, they require preliminary processing as lignocellulosic feedstock. Further research may comprise identifying and developing methods of pre-treatment of lignocellulosic biomass that are most effective for the conditions of Ukraine from a technical and economic point of view. In addition, it is necessary to work towards ensuring technical and economic conditions for the launch of production of advanced biofuels for transport, including sustainable aviation biofuels and biofuels for maritime transport. In this case, it is also often a question of using lignocellulosic biomass as a feedstock for obtaining second-generation biofuels.

References

Global Bioenergy Statistics Report. WBA, 2025 [Online]. Available at: https://www.worldbioenergy.org/uploads/251118%20GBSR.pdf

Implementation of bioenergy in the European Union – 2024 update. IEA Bioenergy, 2024 [Online]. Available at: https://www.ieabioenergy.com/wp-content/uploads/2025/01/CountryReport2024_EU27_final_v2.pdf

Directive (EU) 2018/2001 of the European Parliament and of the Council of 11 December 2018 on the promotion of the use of energy from renewable sources (recast) [Online]. Available at: https://eur-lex.europa.eu/legal-content/EN/TXT/?uri=CELEX%3A02018L2001-20240716

How bioenergy contributes to a sustainable future. IEA Bioenergy, 2023 [Online]. Available at: https://www.ieabioenergyreview.org/

Global biomass potential towards 2035. WBA fact sheet, 2016 [Online]. Available at: https://www.worldbioenergy.org/uploads/Factsheet_Biomass%20potential.pdf

Hamelin L., Borzęcka M., Kozak M., Pudełko R. (2019). A spatial approach to bioeconomy: Quantifying the residual biomass potential in the EU-27. Renewable and Sustainable Energy Reviews, 100, 127-142. https://doi.org/10.1016/j.rser.2018.10.017

Kircher M. (2025). EU Bioenergy – Status and Potential. Energies, 18(18): 4857. https://doi.org/10.3390/en18184857

The European Green Deal (EGD). Knowledge brief (2024) [Online]. Available at: https://eeb.org/wp-content/uploads/2025/05/The-European-Green-Deal-Knowledge-Brief.pdf

Dyjakon A. (2018). Harvesting and Baling of Pruned Biomass in Apple Orchards for Energy Production. Energies, 11 (7): 1680. https://doi.org/10.3390/en11071680

Svensson S.-E. et al. (2025). Evaluating intermediate crops for biogas production – Effects of nitrogen fertilization and harvest timing on biomass yield, methane output and economic viability. Biomass and Bioenergy, 192: 107497. 10.1016/j.biombioe.2024.107497

Атлас енергетичного потенціалу відновлюваних джерел енергії України / За ред. Кудрі С.О. Київ-2024 [Електронний ресурс]. – Режим доступу: /https://www.ive.org.ua/wp-content/uploads/atlas_2024_publication.pdf

Geletukha G. et al. Roadmap for bioenergy development in Ukraine until 2050. UABIO Position Paper N 26, 2020 [Online]. Available at: https://uabio.org/wp-content/uploads/2020/11/uabio-position-paper-26-en.pdf

Гелетуха Г.Г., Желєзна Т.А., Кучерук П.П., Драгнєв С.В. (2023). Аналіз перспективних напрямків використання енергетичного потенціалу біомаси України. Теплофізика та теплоенергетика, 45 (2), 77-86. https://doi.org/10.31472/ttpe.2.2023.9

Geletukha G., Zheliezna T. Prospects for the use of agricultural residues for energy production in Ukraine. UABIO Position Paper N 7, 2014 [Online]. Available at: https://uabio.org/wp-content/uploads/2020/04/position-paper-uabio-7-en.pdf

Polipalli K. et al. (2025). A review on value addition of Agricultural Residues by Chemical and Bio-chemical Processes to abate environmental pollution. Green Technologies and Sustainability, 3 (4): 100241. https://doi.org/10.1016/j.grets.2025.100241

Zheliezna T., Bashtovyi A., Geletukha G. Analysis of additional sources of wood fuel in Ukraine. UABIO Position Paper N 15, 2016 [Online]. Available at: https://uabio.org/wp-content/uploads/2016/04/position-paper-uabio-15-en.pdf

Kulišić B., Radić T., Njavro M. (2020). Agro-Pruning for Energy as a Link between Rural Development and Clean Energy Policies. Sustainability, 12 (10): 4240. https://doi.org/10.3390/su12104240

Geletukha G. et al. Advanced biomethane production from intermediate and cover crops. UABIO Analytical Note N 1, 2025 [Online]. Available at: https://uabio.org/wp-content/uploads/2025/05/Analytical-Note-1-2025-EN.pdf

Geletukha G. et al. Advanced biomethane production from lignocellulose materials. UABIO Analytical Note N 2, 2025 [Online]. Available at: https://uabio.org/wp-content/uploads/2025/07/Analit_Zapiska2_2025_EN.pdf

Geletukha G. et al. Feasibility study and carbon footprint assessment of biomethane production from intermediate crops in Ukraine. Ecological Engineering & Environmental Technology, 26 (11), 237-247. https://doi.org/10.12912/27197050/212663

Zheliezna T., Drahniev S. (2022). Comparative analysis of biofuels and other alternative fuels for introduction in aviation and waterborne transport of Ukraine. Journal of Science. Lyon, 37, 37-42. https://doi.org/10.5281/zenodo.7409774

Published

2026-04-01

How to Cite

Zheliezna, T. (2026). Analysis of the structure of Ukraine’s biomass energy potential and directions of its use. International Science Journal of Engineering & Agriculture, 5(2), 103–112. https://doi.org/10.46299/j.isjea.20260502.10