Autors: Zlateva P., Terziev, A. K., Murzova M., Mileva N., Vassilev, M. P.
Title: Market Research on Waste Biomass Material for Combined Energy Production in Bulgaria: A Path Toward Enhanced Energy Efficiency †
Keywords: biomass cogeneration, energy efficiency, energy production, market potential, Organic Rankine Cycle, statistical analyses, waste raw materials

Abstract: Using waste biomass as a raw material for the combined production of electricity and heat offers corresponding energy, economic, environmental and resource efficiency benefits. The study examines both the performance of a system for combined energy production based on the Organic Rankine Cycle (ORC) utilizing wood biomass and the market interest in its deployment within Bulgaria. Its objective is to propose a technically and economically viable solution for the recovery of waste biomass through the combined production of electricity and heat while simultaneously assessing the readiness of industrial and municipal sectors to adopt such systems. The cogeneration plant incorporates an ORC module enhanced with three additional economizers that capture residual heat from flue gases. Operating on 2 t/h of biomass, the system delivers 1156 kW of electric power and 3660 kW of thermal energy, recovering an additional 2664 kW of heat. The overall energy efficiency reaches 85%, with projected annual revenues exceeding EUR 600,000 and a reduction in carbon dioxide emissions of over 5800 t/yr. These indicators can be achieved through optimal installation and operation. When operating at a reduced load, however, the specific fuel consumption increases and the overall efficiency of the installation decreases. The marketing survey results indicate that 75% of respondents express interest in adopting such technologies, contingent upon the availability of financial incentives. The strongest demand is observed for systems with capacities up to 1000 kW. However, significant barriers remain, including high initial investment costs and uneven access to raw materials. The findings confirm that the developed system offers a technologically robust, environmentally efficient and market-relevant solution, aligned with the goals of energy independence, sustainability and the transition to a low-carbon economy.

References

  1. Liu G. Yang X. Yang X. Liang K. An D. Wu D. Ren X. Typical Damage Prediction and Reliability Analysis of Superheater Tubes in Power Station Boilers Based on Multisource Data Analysis Energies 2022 15 1005 10.3390/en15031005
  2. Shin J.-W. Yoon K.-H. Chai H.-S. Kim J.-C. Reliability-Centered Maintenance Scheduling of Photovoltaic Compo nents According to Failure Effects Energies 2022 15 2529 10.3390/en15072529
  3. Patermann C. Aguilar A. The Origins of the Bioeconomy in the European Union New Biotechnology 2018 40 20 24 10.1016/j.nbt.2017.04.002 28411152
  4. Bell J. Paula L. Dodd T. Németh S. Nanou C. Mega V. Campos P. EU Ambition to Build the World’s Leading Bioeconomy—Uncertain Times Demand Innovative and Sustainable Solutions New Biotechnol. 2018 40 25 30 10.1016/j.nbt.2017.06.010 28676417
  5. Ramcilovic-Suominen S. Pülzl H. Sustainable Development—A ‘Selling Point’ of the Emerging EU Bioeconomy Policy Framework? J. Clean. Prod. 2018 172 4170 4180 10.1016/j.jclepro.2016.12.157
  6. Aydin O. Igliński B. Krukowski K. Siemiński M. Analyzing wind energy potential using efficient global optimization: A case study for the City Gdańsk in Poland Energies 2022 15 3159 10.3390/en15093159
  7. Genbach A.A. Bondartsev D.Y. Genbach N.A. Genbach E.A. Experimental Studies of Natural Material-Based Coatings for Thermal Protection of Metallic Surfaces J. Mater. Sci. Mater. Eng. 2025 20 46 10.1186/s40712-025-00252-5
  8. Intergovernmental Panel on Climate Change (IPCC) Climate Change and Land: An IPCC Special Report on Climate Change, Desertification, Land Degradation, Sustainable Land Management, Food Security, and Greenhouse Gas Fluxes in Terrestrial Ecosystems IPCC Geneva, Switzerland 2019 Available online: https://www.ipcc.ch/srccl/ (accessed on 5 May 2025)
  9. Food and Agriculture Organization (FAO) The State of the World’s Forests 2022: Forest Pathways for Green Recovery and Building Inclusive, Resilient, and Sustainable Economies FAO Rome, Italy 2022 Available online: https://www.fao.org/publications/ (accessed on 5 May 2025)
  10. Gallo C. Faccilongo N. La Sala P. Clustering analysis of environmental emissions: A study on Kyoto Protocol’s impact on member countries J. Clean. Prod. 2018 172 3685 3703 10.1016/j.jclepro.2017.07.194
  11. Renovables Verdes Cogeneration: An Efficient System for Energy and Heat Production 2024 Available online: https://bg.renovablesverdes.com (accessed on 6 May 2025)
  12. Chamber of Architects in Bulgaria Cogeneration–The Energy Alternative of the Present Available online: https://kab-sofia.bg (accessed on 7 May 2025)
  13. Micro-Cogeneration: A Compact and Efficient Solution Energy 2010 Available online: https://energia.elmedia.net (accessed on 7 May 2025)
  14. Power Industry Bulgaria Sustainable Solutions for Cogeneration Available online: https://powerindustry-bulgaria.com (accessed on 9 May 2025)
  15. Steam Turbines in Cogeneration Applications Energy Rev. 2017 Available online: https://energy-review.bg (accessed on 10 May 2025)
  16. Opportunities for Cogeneration with Nuclear Energy Energy Rev. 2018 Available online: https://energy-review.bg (accessed on 10 May 2025)
  17. Prosennikova L. Energy Efficiency in New Housing Systems Energy Effic. J. 2024 Available online: https://lubaprosenikova.com (accessed on 10 May 2025)
  18. Publishing House NBU Ecological Biotechnologies and Biomass Energy New Bulgarian University Press Sofia, Bulgaria 2024 Available online: https://publishing-house.nbu.bg (accessed on 11 May 2025)
  19. Natural Sciences NBU Biomass, Biogas, and Bio-Sludge in the Energy Systems of Anthropogenic Ecosystems Nat. Sci. J. 2024 Available online: https://naturalsciences.nbu.bg (accessed on 13 May 2025)
  20. Executive Environmental Agency Forest Resources and Their Contribution to Global Carbon Cycles Environ. Sci. J. 2024 Available online: https://eea.government.bg (accessed on 13 May 2025)
  21. WWF Bulgaria Using Biomass Without Deforestation WWF Rep. 2021 Available online: https://wwf.bg (accessed on 13 May 2025)
  22. WWF Bulgaria Inefficient Use of Biomass and Its Risks to Forests and Climate WWF Rep. 2020 Available online: https://wwf.bg (accessed on 13 May 2025)
  23. MOVE.BG Mission Energy Transition: Expert Solutions for Biomass Available online: https://move.bg (accessed on 13 May 2025)
  24. European Environment Agency Interview: The Role of Biomass in Europe’s Sustainable Future EEA Publ. 2024 Available online: https://eea.europa.eu (accessed on 13 May 2025)
  25. Forest Biomass in Bulgaria—Potential and Strategic Directions J. Mt. Sci. Dev. 2019 Available online: https://jmsd.bg (accessed on 13 May 2025)
  26. Sustainable Biomass Use for Energy J. Mt. Sci. Dev. 2019 Available online: https://jmsd.bg (accessed on 13 May 2025)
  27. Stolarski M.J. Warmiński K. Krzyżaniak M. Energy Value of Yield and Biomass Quality of Poplar Grown in Two Consecutive 4-Year Harvest Rotations in the North-East of Poland Energies 2020 13 1495 10.3390/en13061495
  28. Bulgarian Energy News QuadGen: REC+ Cogeneration System Boosts Efficiency Energy Rev. 2024 Available online: https://xn--e1aabhzcw.bg (accessed on 13 May 2025)
  29. Increasing Industrial Energy Efficiency Through Cogeneration Systems Energy Rev. 2024 Available online: https://energy-review.bg (accessed on 13 May 2025)
  30. Lucian M. Fiori L. Hydrothermal carbonization of waste biomass: Process design, modeling, energy efficiency and cost analysis Energies 2017 10 211 10.3390/en10020211
  31. Fortier J. Truax B. Gagnon D. Lambert F. Natural Drying and Chemical Characteristics of Hybrid Poplar Firewood Produced from Agricultural Bioenergy Buffers in Southern Québec, Canada Forests 2021 12 122 10.3390/f12020122
  32. Sun D. Liu Z. Zhang H. Zhang X. Performance Analysis of a New Cogeneration System with Efficient Utilization of Waste Heat Resources and Energy Conversion Capabilities Energies 2024 17 3347 10.3390/en17133347
  33. Skjærseth J.B. Towards a European Green Deal: The evolution of EU climate and energy policy mixes Int. Environ. Agreem. 2021 21 25 41 10.1007/s10784-021-09529-4
  34. Alao K.T. Gilani S.I. Sopian K. Alao T.O. Oyebamiji D.S. Oladosu T.L. Biomass and Organic Waste Conversion for Sustainable Bioenergy: A Comprehensive Bibliometric Analysis of Current Research Trends and Future Directions Int. J. Renew. Energy Dev. 2024 13 750 782 10.61435/ijred.2024.60149
  35. Stankov P. Mladenov D. Stanchev K. Energy Wood Chains in Bulgaria Sustainable Energy Technologies Hanjalić K. Van de Krol R. Lekić A. Springer Dordrecht, The Netherlands 2008 203 215
  36. Ministry of Energy of the Republic of Bulgaria Integrated Energy and Climate Plan of the Republic of Bulgaria 2021–2030 Ministry of Energy Sofia, Bulgaria 2020 Available online: https://energy.ec.europa.eu/system/files/2020-06/bg_final_necp_main_en_0.pdf (accessed on 15 December 2024)
  37. Tataraki K. Giannini E. Kavvadias K. Maroulis Z. Cogeneration Economics for Greenhouses in Europe Energies 2020 13 3373 10.3390/en13133373
  38. Nikolaev A. Konidari P. Development and Assessment of Renewable Energy Policy Scenarios by 2030 for Bulgaria Renew. Energy 2017 111 792 802 10.1016/j.renene.2017.05.007
  39. CE Delft ORC Power Plants for Thermal Energy Harvesting—Examples of Good Practices in Europe CE Delft Report CE Delft Delft, The Netherlands 2024 Available online: https://cedelft.eu (accessed on 24 June 2025)
  40. European Council Council Directive 2003/96/EC of 27 October 2003 Restructuring the Community Framework for the Taxation of Energy Products and Electricity Off. J. Eur. Union 2003 283 51 70 Available online: https://eur-lex.europa.eu (accessed on 24 June 2025)
  41. European Commission Guidelines on State Aid for Climate, Environmental Protection and Energy 2022 (CEEAG) Off. J. Eur. Union 2022 C 80 1 89 Available online: https://eur-lex.europa.eu/legal-content/EN/TXT/?uri=OJ:C:2022:080:TOC (accessed on 24 June 2025)
  42. Association of Issuing Bodies (AIB) European Energy Certificate System (EECS)—Principles and Rules of Operation. Version 2023 AIB Brussels, Belgium 2023 Available online: https://www.aib-net.org/eecs (accessed on 24 June 2025)
  43. Decision No 23 as of 30.06.2025y of the Energy and Water Regulatory Commission, Preferential Prices for Electricity Produced from Biomass in Bulgarian Available online: https://www.dker.bg/bg/resheniya/resheniya-za-2025-g.html (accessed on 30 June 2024)
  44. Alghamdi M. AI-Kharsan I. Shahab S. Albaker A. Alayi R. Kumar L. El Haj Assad M. Investigation of Energy and Exergy of Geothermal Organic Rankine Cycle Energies 2023 16 2222 10.3390/en16052222
  45. Ciuła J. Kowalski S. Generowicz A. Barbusiński K. Matuszak Z. Gaska K. Analysis of Energy Generation Efficiency and Reliability of a Cogeneration Unit Powered by Biogas Energies 2023 16 2180 10.3390/en16052180
  46. Zailan R. Lim J.S. Manan Z.A. Wan Alwi S.R. Mohammadi-Ivatloo B. Jamaluddin K. Malaysia Scenario of Biomass Supply Chain-Cogeneration System and Optimization Modeling Development: A Review Renew. Sustain. Energy Rev. 2021 148 111289 10.1016/j.rser.2021.111289
  47. Ferreira R. Petrova T. Ferreira A.F. Costa M. Inaydenova I. Atanasova-Vladimirova S. Ranguelov B. Size-Segregated Particulate Matter from Gasification of Bulgarian Agro-Forest Biomass Residue Energies 2021 14 385 10.3390/en14020385
  48. Terziev A.K. Beloev H.I. Iliev I.K. Risk analysis in terms of implementation of large scale cogeneration power plant IOP Conf. Ser. Mater. Sci. Eng. 2021 1031 012081 10.1088/1757-899X/1031/1/012081
  49. Directive 2003/87/EC of the European Parliament and of the Council Off. J. Eur. Union 2004 59 1 74 Available online: https://eur-lex.europa.eu/eli/dir/2004/59/oj/eng (accessed on 20 February 2025)
  50. Ordinance No. RD-02-20-3 of 9 November 2022 on Technical Requirements for the Energy Performance of Buildings. Effective from 18 Nov. 2022. Issued by the Minister of Regional Development and Public Works State Gaz. 2022 92 Available online: https://lex.bg/bg/laws/ldoc/2137228156 (accessed on 10 March 2025)
  51. Epa U.S. Catalog of CHP Technologies The US Environmental Protection Agency Washington, DC, USA 2015
  52. Luo L. Cristofari C. Levrey S. Cogeneration: Another Way to Increase Energy Efficiency of Hybrid Renewable Energy Hydrogen Chain—A Review of Systems Operating in Cogeneration and of the Energy Efficiency Assessment through Exergy Analysis J. Energy Storage 2023 66 107433 10.1016/j.est.2023.107433
  53. Gonidaki D. Bellos E. A Detailed Review of Organic Rankine Cycles Driven by Combined Heat Sources Energies 2025 18 526 10.3390/en18030526
  54. Wang Z. Huang W. Wang H. Gao J. Zhang R. Xu G. Wang Z. Research on the Improvement of Carbon Neutrality by Utilizing Agricultural Waste: Based on a Life Cycle Assessment of Biomass Briquette Fuel Heating System J. Clean. Prod. 2024 434 140365 10.1016/j.jclepro.2023.140365
  55. Ren J. Qian Z. Wang X. Huang W. Wang B. Investigation of a Biomass-Driven Cogeneration System Integrated with an Externally Fired Gas Turbine, Organic Rankine Cycle, and Absorption Refrigeration Cycle: Thermodynamic and Exergoeconomic Analyses and Optimization Sustainability 2024 16 4495 10.3390/su16114495
  56. Çakir U. Çomakli K. Yüksel F. The Role of Cogeneration Systems in Sustainability of Energy Energy Convers. Manag. 2012 63 196 202 10.1016/j.enconman.2012.01.041
  57. Jiménez-García J.C. Ruiz A. Pacheco-Reyes A. Rivera W. A Comprehensive Review of Organic Rankine Cycles Processes 2023 11 1982 10.3390/pr11071982
  58. Karthikeyan P.K. Bandulasena H.C.H. Radu T. A Comparative Analysis of Pre-Treatment Technologies for Enhanced Biogas Production from Anaerobic Digestion of Lignocellulosic Waste Ind. Crops Prod. 2024 215 118591 10.1016/j.indcrop.2024.118591
  59. Bouznit M. Pablo-Romero M.d.P. Sánchez-Braza A. Measures to Promote Renewable Energy for Electricity Generation in Algeria Sustainability 2020 12 1468 10.3390/su12041468
  60. Ding H. Li J. Heydarian D. Energy, exergy, exergoeconomic, and environmental analysis of a new biomass-driven cogeneration system Sustain. Energy Technol. Assess. 2021 45 101044 10.1016/j.seta.2021.101044
  61. Ngan S.L. How B.S. Teng S.Y. Leong W.D. Loy A.C.M. Yatim P. Promentilla M.A.B. Lam H.L. A hybrid approach to prioritize risk mitigation strategies for biomass polygeneration systems Renew. Sustain. Energy Rev. 2020 121 109679 10.1016/j.rser.2019.109679
  62. Lamidi R.O. Jiang L. Wang Y. Pathare P.B. Aguilar M.C. Wang R. Eshoul N.M. Roskilly A.P. Techno-Economic Analysis of a Cogeneration System for Post-Harvest Loss Reduction: A Case Study in Sub-Saharan Rural Community Energies 2019 12 872 10.3390/en12050872
  63. Hughes E. Biomass cofiring: Economics, policy and opportunities Biomass Bioenergy 2000 19 457 465 10.1016/S0961-9534(00)00057-X
  64. Nunes L.J.R. Causer T.P. Ciolkosz D. Biomass for energy: A review on supply chain management models Renew. Sustain. Energy Rev. 2020 120 109658 10.1016/j.rser.2019.109658
  65. Lim C.H. Ngan S.L. Ng W.P.Q. How B.S. Lam H.L. Biomass supply chain management and challenges Value-Chain of Biofuels Yusup S. Rashidi N.A. Elsevier Amsterdam, The Netherlands 2022 429 444
  66. Ding B. Li Z. Li Z. Xue Y. Chang X. Su J. Sun H. Cooperative Operation for Multiagent Energy Systems Integrated with Wind, Hydrogen, and Buildings: An Asymmetric Nash Bargaining Approach IEEE Trans. Ind. Inform. 2025 in press 10.1109/TII.2025.3563589
  67. Terziev A. Beloev H. Iliev K. Risk analysis in terms of implementation of large scale cogeneration power plant Proceedings of the International Conference on Technics, Technologies and Education 2020, ICTTE 2020, IOP Conference Series: Materials Science and Engineering Yambol, Bulgaria 4–6 November 2020

Issue

Energies, vol. 18, 2025, Albania, https://doi.org/10.3390/en18154153

Вид: статия в списание, публикация в издание с импакт фактор, публикация в реферирано издание, индексирана в Scopus и Web of Science