Forest Management Communities’ Participation in Bioenergy Production Initiatives: A Case Study for Galicia (Spain)
Abstract
:1. Introduction
2. Background
Information on the Galicia Region
3. Data and Methods
- Region: Galicia
- Availability of financial accounts for the years: 2020, 2019, 2018, 2017, 2016, 2015, 2014, 2013, 2012, and 2011.
- Company name or VAT (value-added tax) number: “comunidad de montes”; “comunidade de montes”.
- Activity description using any of these words (in English, Spanish, or Portuguese): “forestry”; “local forests”; “man común”.
- Legal form: co-ownership or other legal form.
- Clasificación de la actividad: NAICS (North American Industry Classification System) 2017 (primary and secondary codes): 221115, wind electric power generation.
- Activity description using any of these words (in English, Spanish or Portuguese): “energy”; “wind”; “electric”.
- Operating income/turnover:
- P/L before tax:
- Total assets:
- Number of employees
- ROA (return on assets):
- ROE (return on equity):
- Debt ratio:
- EBIT margin:
4. Results
5. Discussion and Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Afshan, S.; Ozturk, I.; Yaqoob, T. Facilitating Renewable Energy Transition, Ecological Innovations and Stringent Environmental Policies to Improve Ecological Sustainability: Evidence from MM-QR Method. Renew. Energy 2022, 196, 151–160. [Google Scholar] [CrossRef]
- Sovacool, B.K.; Hess, D.J.; Cantoni, R.; Lee, D.; Claire Brisbois, M.; Jakob Walnum, H.; Freng Dale, R.; Johnsen Rygg, B.; Korsnes, M.; Goswami, A.; et al. Conflicted transitions: Exploring the actors, tactics, and outcomes of social opposition against energy infrastructure. Glob. Environ. Chang. 2022, 73, 102473. [Google Scholar] [CrossRef]
- Durdovic, M. Emergent consequences of narrating futures in energy transitions. Futures 2022, 138, 102930. [Google Scholar] [CrossRef]
- Li, F.G.N. Actors behaving badly: Exploring the modelling of non-optimal behaviour in energy transitions. Energy Strategy Rev. 2017, 15, 57–71. [Google Scholar] [CrossRef] [Green Version]
- Shahbaz, M.; Wang, J.; Dong, K.; Zhao, J. The impact of digital economy on energy transition across the globe: The mediating role of government governance. Renew. Sustain. Energy Rev. 2022, 166, 112620. [Google Scholar] [CrossRef]
- United Nations Decision-/CP.26. Glasgow Climate Pact. Available online: https://unfccc.int/sites/default/files/resource/cop26_auv_2f_cover_decision.pdf (accessed on 12 July 2022).
- World Leaders, Corporations at COP26, Take Major Step to Restore and Protect Forests. Available online: https://news.un.org/en/story/2021/11/1104642 (accessed on 9 July 2022).
- U. N. Sustainable Development. Sustainably Manage Forests, Combat Desertification, Halt and Reverse Land Degradation, Halt Biodiversity Loss. Available online: https://www.un.org/sustainabledevelopment/biodiversity/ (accessed on 6 July 2022).
- Oldekop, J.A.; Sims, K.R.E.; Karna, B.K.; Whittingham, M.J.; Agrawal, A. Reductions in deforestation and poverty from decentralized forest management in Nepal. Nat. Sustain. 2019, 2, 421–428. [Google Scholar] [CrossRef] [Green Version]
- Lawrence, D.; Vandecar, K. Effects of tropical deforestation on climate and agriculture. Nat. Clim. Chang. 2015, 5, 27–36. [Google Scholar] [CrossRef]
- Klooster, D.; Masera, O. Community forest management in Mexico: Carbon mitigation and biodiversity conservation through rural development. Glob. Environ. Chang. 2000, 10, 259–272. [Google Scholar] [CrossRef]
- Samii, C.; Lisiecki, M.; Kulkarni, P.; Paler, L.; Chavis, L. Effects of decentralized forest management (DFM) on deforestation and poverty in low- and middle-income countries: A systematic review. Campbell Syst. Rev. 2014, 10, 1–88. [Google Scholar] [CrossRef]
- Zulu, L.C. The forbidden fuel: Charcoal, urban woodfuel demand and supply dynamics, community forest management and woodfuel policy in Malawi. Energy Policy 2010, 38, 3717–3730. [Google Scholar] [CrossRef]
- Irfan, M.; Elavarasan, R.M.; Ahmad, M.; Mohsin, M.; Dagar, V.; Hao, Y. Prioritizing and overcoming biomass energy barriers: Application of AHP and G-TOPSIS approaches. Technol. Forecast. Soc. Chang. 2022, 177, 121524. [Google Scholar] [CrossRef]
- Majeed, M.T.; Luni, T.; Tahir, T. Growing green through biomass energy consumption: The role of natural resource and globalization in a world economy. Environ. Sci. Pollut. Res. 2022, 29, 33657–33673. [Google Scholar] [CrossRef] [PubMed]
- Vavrek, R.; Chovancová, J. Energy Performance of the European Union Countries in Terms of Reaching the European Energy Union Objectives. Energies 2020, 13, 5317. [Google Scholar] [CrossRef]
- Wilson, J.D. A securitisation approach to international energy politics. Energy Res. Soc. Sci. 2019, 49, 114–125. [Google Scholar] [CrossRef]
- European Parliament La Política Energética: Principios Generales|Fichas Temáticas Sobre la Unión Europea|Parlamento Europeo. Available online: https://www.europarl.europa.eu/factsheets/es/sheet/68/la-politica-energetica-principios-generales (accessed on 11 July 2022).
- European Commission. Joint Research Centre. In The Use of Woody Biomass for Energy Production in the EU; Publications Office: Luxembourg, 2021. [Google Scholar]
- Brandão, P.C.; de Souza, A.L.; Rousset, P.; Simas, F.N.B.; de Mendonça, B.A.F. Forest biomass as a viable pathway for sustainable energy supply in isolated villages of Amazonia. Environ. Dev. 2021, 37, 100609. [Google Scholar] [CrossRef]
- Präger, F.; Paczkowski, S.; Sailer, G.; Derkyi, N.S.A.; Pelz, S. Biomass sources for a sustainable energy supply in Ghana—A case study for Sunyani. Renew. Sustain. Energy Rev. 2019, 107, 413–424. [Google Scholar] [CrossRef]
- Suntana, A.S.; Vogt, K.A.; Turnblom, E.C.; Upadhye, R. Bio-methanol potential in Indonesia: Forest biomass as a source of bio-energy that reduces carbon emissions. Appl. Energy 2009, 86, S215–S221. [Google Scholar] [CrossRef]
- Lehtinen, U.; Juntunen, J.; Juga, J. Evaluating the feasibility of bio-energy based heat and power production in rural community. Biomass Bioenergy 2020, 139, 105578. [Google Scholar] [CrossRef]
- Gabisa, E.W.; Gheewala, S.H. Potential of bio-energy production in Ethiopia based on available biomass residues. Biomass Bioenergy 2018, 111, 77–87. [Google Scholar] [CrossRef]
- Qu, M.; Ahponen, P.; Tahvanainen, L.; Pelkonen, P. Chinese academic experts’ assessment for forest bio-energy development in China. Energy Policy 2010, 38, 6767–6775. [Google Scholar] [CrossRef]
- Mateos, E.; Ormaetxea, L. Sustainable Renewable Energy by Means of Using Residual Forest Biomass. Energies 2018, 12, 13. [Google Scholar] [CrossRef] [Green Version]
- Mateos, E.; Garrido, F.; Ormaetxea, L. Assessment of Biomass Energy Potential and Forest Carbon Stocks in Biscay (Spain). Forests 2016, 7, 75. [Google Scholar] [CrossRef] [Green Version]
- Puy, N.; Tabara, D.; Bartrolimolins, J.; Bartrolialmera, J.; Rieradevall, J. Integrated Assessment of forest bioenergy systems in Mediterranean basin areas: The case of Catalonia and the use of participatory IA-focus groups. Renew. Sustain. Energy Rev. 2008, 12, 1451–1464. [Google Scholar] [CrossRef]
- Regos, A.; Aquilué, N.; López, I.; Codina, M.; Retana, J.; Brotons, L. Synergies Between Forest Biomass Extraction for Bioenergy and Fire Suppression in Mediterranean Ecosystems: Insights from a Storyline-and-Simulation Approach. Ecosystems 2016, 19, 786–802. [Google Scholar] [CrossRef]
- Madrigal, J.; Fernández-Migueláñez, I.; Hernando, C.; Guijarro, M.; Vega-Nieva, D.J.; Tolosana, E. Does forest biomass harvesting for energy reduce fire hazard in the Mediterranean basin? A case study in the Caroig Massif (Eastern Spain). Eur. J. For. Res. 2017, 136, 13–26. [Google Scholar] [CrossRef]
- Lorenzo-Sáez, E.; Oliver-Villanueva, J.-V.; Lerma-Arce, V.; Yagüe-Hurtado, C.; Lemus-Zúñiga, L.G. Potential Analysis of Mediterranean Forestry for Offsetting GHG Emissions at Regional Level: Evidence from Valencia, Spain. Sustainability 2021, 13, 4168. [Google Scholar] [CrossRef]
- Miguez, J.; Lopezgonzalez, L.; Sala, J.; Porteiro, J.; Granada, E.; Moran, J.; Juarez, M. Review of compliance with EU-2010 targets on renewable energy in Galicia (Spain). Renew. Sustain. Energy Rev. 2006, 10, 225–247. [Google Scholar] [CrossRef]
- Soliño, M.; Prada, A.; Vázquez, M.X. Green electricity externalities: Forest biomass in an Atlantic European Region. Biomass Bioenergy 2009, 33, 407–414. [Google Scholar] [CrossRef]
- Soliño, M.; Vázquez, M.X.; Prada, A. Social demand for electricity from forest biomass in Spain: Does payment periodicity affect the willingness to pay? Energy Policy 2009, 37, 531–540. [Google Scholar] [CrossRef]
- Soliño, M.; Farizo, B.A.; Campos, P. The influence of home-site factors on residents’ willingness to pay: An application for power generation from scrubland in Galicia, Spain. Energy Policy 2009, 37, 4055–4065. [Google Scholar] [CrossRef]
- Vanegas Cantarero, M.M. Of renewable energy, energy democracy, and sustainable development: A roadmap to accelerate the energy transition in developing countries. Energy Res. Soc. Sci. 2020, 70, 101716. [Google Scholar] [CrossRef]
- Instituto Galego de Estadística Análise da Cadea Forestal-Madeira. Available online: https://www.ige.gal/Shiny/Analise_Cadea_Forestal_Madeira/ (accessed on 11 July 2022).
- Red Eléctrica de Español. Informe del Sistema Eléctrico Español 2020; Red Eléctrica de España: Madrid, Spain, 2021. [Google Scholar]
- Copena, D.; Pérez-Neira, D.; Simón, X. Local Economic Impact of Wind Energy Development: Analysis of the Regulatory Framework, Taxation, and Income for Galician Municipalities. Sustainability 2019, 11, 2403. [Google Scholar] [CrossRef] [Green Version]
- Simón, X.; Copena, D.; Montero, M. Strong wind development with no community participation. The case of Galicia (1995–2009). Energy Policy 2019, 133, 110930. [Google Scholar] [CrossRef]
- Copena, D.; Simón, X. Wind farms and payments to landowners: Opportunities for rural development for the case of Galicia. Renew. Sustain. Energy Rev. 2018, 95, 38–47. [Google Scholar] [CrossRef]
- Comunidad Autónoma de Galicia. Ley 13/1989, de 10 de Octubre, de Montes Vecinales En Mano Común. BOE-A-1990-3358. 1990, pp. 3996–3999. Available online: https://noticias.juridicas.com/base_datos/CCAA/ga-l13-1989.html (accessed on 15 July 2022).
- Xunta de Galicia Montes Vecinales en Man Común. Available online: https://ovmediorural.xunta.gal/es/consultas-publicas/montes-vecinales-en-man-comun (accessed on 11 July 2022).
- Proyecto Silvaplus Objetivos y Socios. Available online: http://silvaplus.com/es/ (accessed on 12 July 2022).
- Silvaplus Promoción del uso Sostenible de Biomasa Forestal para Fines Energéticos en el Norte de Portugal y sur de Galicia. Available online: http://silvaplus.com/fotos/editor2/Produtos/silvaplus_es.pdf (accessed on 10 July 2022).
- SABI. Análisis de Balances de Empresas 2020; SABI: Madrid, Spain, 2020. [Google Scholar]
- Fernández-González, R.; Pérez-Pérez, M.I.; Pérez-Vas, R. Real options for a small company in a context of market concentration: A case study of investment in a turbot farming plant in Spain. Mar. Policy 2021, 134, 104828. [Google Scholar] [CrossRef]
- Fernández-González, R.; Pérez-Pérez, M.; Hervés-Estévez, J.; Garza-Gil, M.D. Socio-economic impact of COVID-19 on the fishing sector: A case study of a region highly dependent on fishing in Spain. Ocean Coast. Manag. 2022, 221, 106131. [Google Scholar] [CrossRef]
- Xunta de Galicia. Anuario de Estadística Forestal de Galicia 2019; Xunta de Galicia, Consellería do Medio Rural: Santiago de Compostela, Spain, 2020; p. 120. [Google Scholar]
- Xunta de Galicia Sistema de Indicadores da Administración Dixital. Available online: https://indicadores-forestal.xunta.gal/portal-bi-internet/dashboard/Dashboard.action (accessed on 13 July 2022).
- Silvaplus Parcelas de Ensayo y Demostración Para la Producción de Biomasa. Available online: http://silvaplus.com/fotos/editor2/Produtos/parcelas_silvaplus_web_es.pdf (accessed on 9 July 2022).
- Ministerio de Agricultura Pesca y Alimentación Estadísticas agrarias: Economía. Available online: https://www.mapa.gob.es/es/estadistica/temas/estadisticas-agrarias/economia/default.aspx (accessed on 7 August 2022).
- La Voz de Galicia Parálisis en la Venta de Madera a Portugal. Available online: https://www.lavozdegalicia.es/noticia/ferrol/ferrol/2017/06/29/paralisis-venta-madera-portugal/0003_201706F29C1995.htm (accessed on 7 August 2022).
- Mansila, P.; Pérez-Otero, R.; Salinero, C. Lucha Biológica Contra Plagas Forestales en Galicia; MOL (Sociedad de Ciencias de Galicia): Pontevedra, Spain, 2020. [Google Scholar]
- Sequeira, T.N.; Santos, M.S.; Magalhães, M. Climate change and economic growth: A heterogeneous panel data approach. Environ. Sci. Pollut. Res. 2018, 25, 22725–22735. [Google Scholar] [CrossRef]
- Katircioğlu, S.T.; Taşpinar, N. Testing the moderating role of financial development in an environmental Kuznets curve: Empirical evidence from Turkey. Renew. Sustain. Energy Rev. 2017, 68, 572–586. [Google Scholar] [CrossRef]
- Imamoglu, H. The role of financial sector in energy demand and climate changes: Evidence from the developed and developing countries. Environ. Sci. Pollut. Res. 2019, 26, 22794–22811. [Google Scholar] [CrossRef]
- Tan, X.; Zhu, K.; Meng, X.; Gu, B.; Wang, Y.; Meng, F.; Liu, G.; Tu, T.; Li, H. Research on the status and priority needs of developing countries to address climate change. J. Clean. Prod. 2021, 289, 125669. [Google Scholar] [CrossRef]
- Pettorelli, N.; Graham, N.A.J.; Seddon, N.; Maria da Cunha Bustamante, M.; Lowton, M.J.; Sutherland, W.J.; Koldewey, H.J.; Prentice, H.C.; Barlow, J. Time to integrate global climate change and biodiversity science-policy agendas. J. Appl. Ecol. 2021, 58, 2384–2393. [Google Scholar] [CrossRef]
- Wu, S.; Han, H. Energy transition, intensity growth, and policy evolution: Evidence from rural China. Energy Econ. 2022, 105, 105746. [Google Scholar] [CrossRef]
- Fernández-González, R.; Arce, E.; Garza-Gil, D. How political decisions affect the economy of a sector: The example of photovoltaic energy in Spain. Energy Rep. 2021, 7, 2940–2949. [Google Scholar] [CrossRef]
- Miguez, G.C.; Ballesteros, M.A.; Fernández-González, R. La economía política de Elinor Ostrom: Análisis institucional, comunes y gobernanza policéntrica. Rev. Española Cienc. Política 2015, 28, 13–40. [Google Scholar]
- Fernández-González, R.; Suárez-García, A.; Álvarez Feijoo, M.Á.; Arce, E.; Díez-Mediavilla, M. Spanish Photovoltaic Solar Energy: Institutional Change, Financial Effects, and the Business Sector. Sustainability 2020, 12, 1892. [Google Scholar] [CrossRef] [Green Version]
- de Jong, B.H.; Masera, O.; Olguín, M.; Martínez, R. Greenhouse gas mitigation potential of combining forest management and bioenergy substitution: A case study from Central Highlands of Michoacan, Mexico. For. Ecol. Manag. 2007, 242, 398–411. [Google Scholar] [CrossRef]
- Kraxner, F.; Nilsson, S.; Obersteiner, M. Negative emissions from BioEnergy use, carbon capture and sequestration (BECS)—The case of biomass production by sustainable forest management from semi-natural temperate forests. Biomass Bioenergy 2003, 24, 285–296. [Google Scholar] [CrossRef]
- Mayfield, C.A.; Foster, C.D.; Smith, C.T.; Gan, J.; Fox, S. Opportunities, barriers, and strategies for forest bioenergy and bio-based product development in the Southern United States. Biomass Bioenergy 2007, 31, 631–637. [Google Scholar] [CrossRef]
- Ponder, F.; Fleming, R.L.; Berch, S.; Busse, M.D.; Elioff, J.D.; Hazlett, P.W.; Kabzems, R.D.; Marty Kranabetter, J.; Morris, D.M.; Page-Dumroese, D.; et al. Effects of organic matter removal, soil compaction and vegetation control on 10th year biomass and foliar nutrition: LTSP continent-wide comparisons. For. Ecol. Manag. 2012, 278, 35–54. [Google Scholar] [CrossRef]
- Thiffault, E.; Hannam, K.D.; Paré, D.; Titus, B.D.; Hazlett, P.W.; Maynard, D.G.; Brais, S. Effects of forest biomass harvesting on soil productivity in boreal and temperate forests—A review. Environ. Rev. 2011, 19, 278–309. [Google Scholar] [CrossRef]
- Smyth, C.; Kurz, W.A.; Rampley, G.; Lemprière, T.C.; Schwab, O. Climate change mitigation potential of local use of harvest residues for bioenergy in Canada. GCB Bioenergy 2017, 9, 817–832. [Google Scholar] [CrossRef]
- Carvalho-Ribeiro, S.M.; Lovett, A.; O’Riordan, T. Multifunctional forest management in Northern Portugal: Moving from scenarios to governance for sustainable development. Land Use Policy 2010, 27, 1111–1122. [Google Scholar] [CrossRef]
- Pagdee, A.; Kim, Y.S.; Daugherty, P.J. What makes community forest management successful: A meta-study from community forests throughout the world. Soc. Nat. Resour. 2006, 19, 33–52. [Google Scholar] [CrossRef]
Province | Region | Date of Establishment | Status | Legal Form | CNAE 2009 Primary Code | Company Size | |
---|---|---|---|---|---|---|---|
Forest management communities (bioenergy project) | Pontevedra (2) | Galicia (2) | 1980 (2) | Active (2) | Co-ownership (2) | 0210 (Silviculture and other forestry activities) (2) | Micro (2) |
Forest management communities (no energy use of their resources) | A Coruña (3) Lugo (20) Ourense (0) Pontevedra (14) | Galicia (37) | 1975 (4) 1977 (1) 1978 (2) 1980 (2) 1981 (1) 1982 (2) 1983 (3) 1985 (4) 1986 (4) 1987 (5) 1989 (1) 1990 (3) 1991 (1) 1997 (1) 1998 (1) 2012 (2) | Active (37) | Co-ownership (29) Other legal form (8) | 0210 (Silviculture and other forestry activities) (11) 0220 (Logging) (15) 0240 (Support services to forestry) (7) 9499 (Activities of other membership organizations (n.e.c.)) (4) | Micro (37) |
Forest Management Communities (Bioenergy Project) | 2011 | 2012 | 2013 | 2014 | 2015 | 2016 | 2017 | 2018 | 2019 | 2020 |
Operating income/turnover (th EUR)—Median | 43 | 22 | 170 | 162 | 165 | 193 | 188 | 97 | 126 | 230 |
P/L before tax (th EUR)—Median | 65 | −452 | 27 | 21 | −15 | 110 | 91 | −10 | 52 | 77 |
Total assets (th EUR)—Median | 9224 | 8588 | 4491 | 4523 | 4411 | 4504 | 4537 | 4483 | 4561 | 8364 |
Number of employees—Sum | 7 | 6 | 6 | 6 | 6 | 4 | 4 | 7 | 3 | 3 |
Forest Management Communities (no energy use of their resources) | ||||||||||
Operating income/turnover (th EUR)—Median | 42 | 35 | 35 | 40 | 68 | 39 | 46 | 36 | 46 | 35 |
P/L before tax (th EUR)—Median | 10 | 12 | 5 | 10 | 23 | 18 | 21 | 6 | 8 | 1 |
Total assets (th EUR)—Median | 133 | 137 | 135 | 195 | 186 | 147 | 157 | 200 | 173 | 146 |
Number of employees—Sum | 106 | 104 | 110 | 125 | 121 | 122 | 130 | 133 | 127 | 87 |
Forest Management Communities (Bioenergy Project) | 2011 | 2012 | 2013 | 2014 | 2015 | 2016 | 2017 | 2018 | 2019 | 2020 |
ROA (%)—Median | 0.7 | −5.26 | 0.99 | 13.17 | 5.85 | 9.39 | 14.38 | 0.45 | 14.15 | 0.91 |
ROE (%)—Median | 0.7 | −5.27 | 1 | 13.2 | 6.45 | 10.54 | 15.02 | 0.5 | 15.4 | 0.91 |
Debt ratio (%)—Median | 0.29 | 0.21 | 0.47 | 0.51 | 4.67 | 6.17 | 2.31 | 4.07 | 4.07 | 0.39 |
EBIT margin (%)—Median | 7.45 | 10.85 | 28.69 | 21.92 | 15.31 | 56.79 | 49.72 | 17.77 | 32.22 | 16.83 |
Forest Management Communities (no energy use of their resources) | ||||||||||
ROA (%)—Median | 7.58 | 6.84 | 2.1 | −0.12 | 6.71 | 0.15 | 11.73 | 2.1 | 9.02 | 0.75 |
ROE (%)—Median | 9.5 | 7.37 | 3.75 | 0.78 | 11.56 | 0.31 | 15.42 | 3.83 | 16.14 | 2.1 |
Debt ratio (%)—Median | 18.03 | 2.73 | 1.84 | 3.88 | 4.27 | 5.33 | 4.31 | 3.52 | 4.6 | 2.66 |
EBIT margin (%)—Median | −7.05 | 88.07 | 3.13 | −5.08 | 23.52 | −14.01 | 22.22 | −21.87 | 6.38 | −36.6 |
Forest Management Communities (Bioenergy Project) | 2011 | 2012 | 2013 | 2014 | 2015 | 2016 | 2017 | 2018 | 2019 | 2020 | 2011–2020 |
% Var. | % Var. | % Var. | % Var. | % Var. | % Var. | % Var. | % Var. | % Var. | % Var. | % Var | |
Operating income/turnover (th EUR)—Median | 43 | 22 | 170 | 162 | 165 | 193 | 188 | 97 | 126 | 230 | 4.35 |
P/L before tax (th EUR)—Median | 65 | −452 | 27 | 21 | −15 | 110 | 91 | −10 | 52 | 77 | 0.18 |
Total assets (th EUR)—Median | 9224 | 8588 | 4491 | 4523 | 4411 | 4504 | 4537 | 4483 | 4561 | 8364 | −0.09 |
Number of employees—Sum | 7 | 6 | 6 | 6 | 6 | 4 | 4 | 7 | 3 | 3 | −0.57 |
Forest Management Communities (no energy use of their resources) | |||||||||||
Operating income/turnover (th EUR)—Median | 42 | 35 | 35 | 40 | 68 | 39 | 46 | 36 | 46 | 35 | −0.17 |
P/L before tax (th EUR)—Median | 10 | 12 | 5 | 10 | 23 | 18 | 21 | 6 | 8 | 1 | −0.90 |
Total assets (th EUR)—Median | 133 | 137 | 135 | 195 | 186 | 147 | 157 | 200 | 173 | 146 | 0.10 |
Number of employees—Sum | 106 | 104 | 110 | 125 | 121 | 122 | 130 | 133 | 127 | 87 | −0.18 |
Forest Management Communities (Bioenergy Project) | 2011 | 2012 | 2013 | 2014 | 2015 | 2016 | 2017 | 2018 | 2019 | 2020 | 2011–2020 |
% Var. | % Var. | % Var. | % Var. | % Var. | % Var. | % Var. | % Var. | % Var. | % Var. | % Var | |
ROA (%)—Median | 0.27 | −8.51 | −1.19 | 12.30 | −0.56 | 0.61 | 0.53 | −0.97 | 30.44 | −0.94 | 0.30 |
ROE (%)—Median | 0.27 | −8.53 | −1.19 | 12.20 | −0.51 | 0.63 | 0.43 | −0.97 | 29.80 | −0.94 | 0.30 |
Debt ratio (%)—Median | 0.21 | −0.28 | 1.24 | 0.09 | 8.16 | 0.32 | −0.63 | 0.76 | 0.00 | −0.90 | 0.34 |
EBIT margin (%)—Median | −0.10 | 0.46 | 1.64 | −0.24 | −0.30 | 2.71 | −0.12 | −0.64 | 0.81 | −0.48 | 1.26 |
Forest Management Communities (no energy use of their resources) | |||||||||||
ROA (%)—Median | −0.17 | −0.10 | −0.69 | −1.06 | −56.92 | −0.98 | 77.20 | −0.82 | 3.30 | −0.92 | −0.90 |
ROE (%)—Median | 0.04 | −0.22 | −0.49 | −0.79 | 13.82 | −0.97 | 48.74 | −0.75 | 3.21 | −0.87 | −0.78 |
Debt ratio (%)—Median | 1.93 | −0.85 | −0.33 | 1.11 | 0.10 | 0.25 | −0.19 | −0.18 | 0.31 | −0.42 | −0.85 |
EBIT margin (%)—Median | −1.82 | −13.49 | −0.96 | −2.62 | −5.63 | −1.60 | −2.59 | −1.98 | −1.29 | −28.68 | −4.19 |
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Fernández-González, R.; Guillén, F.P.; Manta, O.; Apostu, S.A.; Vasile, V. Forest Management Communities’ Participation in Bioenergy Production Initiatives: A Case Study for Galicia (Spain). Energies 2022, 15, 7428. https://doi.org/10.3390/en15197428
Fernández-González R, Guillén FP, Manta O, Apostu SA, Vasile V. Forest Management Communities’ Participation in Bioenergy Production Initiatives: A Case Study for Galicia (Spain). Energies. 2022; 15(19):7428. https://doi.org/10.3390/en15197428
Chicago/Turabian StyleFernández-González, Raquel, Félix Puime Guillén, Otilia Manta, Simona Andreea Apostu, and Valentina Vasile. 2022. "Forest Management Communities’ Participation in Bioenergy Production Initiatives: A Case Study for Galicia (Spain)" Energies 15, no. 19: 7428. https://doi.org/10.3390/en15197428