Sustainability of Forest-Based Bioenergy—A Case Study of Students Surveyed at a University in Finland
Abstract
:1. Introduction
1.1. Sustainability in Forest Management
1.2. Use of Forest Chips in Finland
1.3. The Aim of the Study
2. Materials and Methods
2.1. Implementing the Survey on Moodle
- How do you see the current woody biomass use for energy in Finland? Is it sustainable?
- Can you justify your previous choice of sustainability?
2.2. Testing the Background Variables
3. Results
3.1. Student Response to the Query
3.2. Students’ Justification
3.3. Students’ Justification of Choices: Yes, Sustainable
3.4. Students Justification of Choices: No, Not Sustainable
3.5. Students Justification of Choices: Don’t Know
4. Discussion
4.1. Student Responses and Justification
4.2. Emphasis of Student Responses to the SFO Concept
4.3. Validity and Reliability of the Study
4.4. Possible Recommendations and Future Research
Author Contributions
Funding
Conflicts of Interest
References
- World Commission on Environment and Development (WCED). Our common future; Oxford University Press: Oxford, UK, 1987; Available online: http://www.un-documents.net/our-common-future.pdf (accessed on 23 June 2020).
- MacDicken, K.; Sola, P.; Hall, J.E.; Sabogal, C.; Tadoum, M.; de Wasseige, C. Global progress toward sustainable forest management. For. Ecol. Manag. 2015, 352, 47–56. [Google Scholar] [CrossRef] [Green Version]
- Heinimann, H.R. Forest operations engineering and management–the ways behind and ahead of a scientific discipline. Croat. J. For. Eng. 2007, 28, 107–121. [Google Scholar]
- Marchi, E.; Chung, W.; Visser, R.; Abbas, D.; Nordfjell, T.; Mederski, P.S.; McEwan, A.; Brink, M.; Laschi, A. Sustainable Forest Operations (SFO): A new paradigm in a changing world and climate. Sci. Total Environ. 2018, 634, 1385–1397. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Total Roundwood Removals and Drain, 2019 (Provisional). Natural Resources Institute Finland. Available online: https://stat.luke.fi/en/total-roundwood-removals-and-drain-2019-provisional_en (accessed on 23 June 2020).
- Lier, M.; Korhonen, K.T.; Packalen, T.; Savula-Seppälä, T.; Tuomainen, T.; Viitanen, J.; Mutanen, A.; Vaahtera, E.; Hyvärinen, J. Suomen metsät 2019: Kestävän metsänhoidon kriteereihin ja indikaattoreihin perustuen. Available online: http://urn.fi/URN:NBN:fi-fe2019091628401 (accessed on 23 June 2020).
- Forest Act. 1093/1996. Ministry of Agriculture and Forestry. Available online: https://www.finlex.fi/fi/laki/smur/1996/19961093 (accessed on 23 June 2020).
- Miina, J.; Hallikainen, V.; Härkönen, K.; Merilä, P.; Packalen, T.; Rautio, P.; Salemaa, M.; Tonteri, T.; Tolvanen, A. Incorporating a model for ground lichens into multi-functional forest planning for boreal forests in Finland. For. Ecol. Manag. 2020, 460. [Google Scholar] [CrossRef]
- Calderón, C. (Ed.) Statistical Report; Bioenergy Europe: Brussels, Belgium, 2019; Available online: https://bioenergyeurope.org/statistical-report.html (accessed on 23 June 2020).
- Ranta, T.; Laihanen, M.; Karhunen, A. Development of the bioenergy as a part of renewable energy in the Nordic Countries: A comparative analysis. In Proceedings of the 6th Central European Biomass Conference, Graz, Austria, 22–24 January 2020. [Google Scholar]
- Wood in Energy Generation 2019. Natural Resources Institute Finland. Available online: https://stat.luke.fi/en/wood-energy-generation-2019-provisional_en (accessed on 23 June 2020).
- IRENA. Bioenergy from Finnish Forests: Sustainable, Efficient, Modern Use of Wood; International Renewable Energy Agency: Abu Dhabi, UAE, 2018; ISBN 978-92-9260-012-9. Available online: https://www.irena.org//media/Files/IRENA/Agency/Publication/2018/Mar/-IRENA_Bioenergy_from_Finnish_forests_2018.pdf (accessed on 23 June 2020).
- Glossary of Climate Change Acronyms and Terms. UNFCCC. Available online: https://unfccc.int/process-and-meetings/the-convention/glossary-of-climate-change-acronyms-and-terms#l (accessed on 23 June 2020).
- Hildén, M.; Soimakallio, S.; Seppälä, J.; Liski, J. Forest Carbon Sinks Must Be Included in Bioeconomy Sustainability Assessments; SYKE Policy Brief; Suomen ympäristökeskus: Helsinki, Finland, 2016; ISBN 978-952-11-4580-3. Available online: http://hdl.handle.net/10138/164797 (accessed on 23 June 2020).
- Qu, M.; Ahonen, P.; Tahvanainen, L.; Gritten, D.; Mola-Yudego, B.; Pelkonen, P. Chinese university students’ knowledge and attitudes regarding forest bio-energy. Renew. Sustain. Energy Rev. 2011, 15, 3649–3657. [Google Scholar] [CrossRef]
- Halder, P. Perceptions of energy production from forest biomass among school students in Finland: Directions for the future bioenergy policies. Renew. Energy 2014, 68, 372–377. [Google Scholar] [CrossRef]
- Halder, P.; Prokop, P.; Chang, C.-Y.; Usak, M.; Pietarinen, J.; Havu-Nuutinen, S.; Pelkonen, P.; Cakir, M. International Survey on Bioenergy Knowledge, Perceptions, and Attitudes Among Young Citizens. Bioenergy Res. 2012, 5, 247–261. [Google Scholar] [CrossRef]
- van Dael, M.; Lizin, S.; Swinnen, G.; van Passel, S. Young people’s acceptance of bioenergy and the influence of attitude strength on information provision. Renew. Energy 2017, 107, 417–430. [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]
- Rahman, A.; Khanam, T.; Pelkonen, P. People’s knowledge, perceptions, and attitudes towards stump harvesting for bioenergy production in Finland. Renew. Sustain. Energy Rev. 2017, 70, 107–116. [Google Scholar] [CrossRef]
- Stupak, I.; Joudrey, J.; Smith, T.; Pelkmans, L.; Chum, H.; Cowie, A.; Englund, O.; Goh, C.S.; Junginger, M. A global survey of stakeholder views and experiences for systems needed to effectively and efficiently govern sustainability of bioenergy. WIREs Energy Environ. 2016, 5, 89–118. [Google Scholar] [CrossRef]
- Buchholz, T.; Luzadis, V.A.; Volk, T.A. Sustainability criteria for bioenergy systems: Results from an expert survey. J. Clean. Prod. 2009, 17, S86–S98. [Google Scholar] [CrossRef]
- van Dam, J.; Junginger, M. Striving to further harmonization of sustainability criteria for bioenergy in Europe: Recommendations from a stakeholder questionnaire. Energy Policy 2011, 39, 4051–4066. [Google Scholar] [CrossRef]
- Report from the Commission to the Council and the European Parliament on Sustainability Requirements for the Use of Solid and Gaseous Biomass Sources in Electricity, Heating and Cooling. COM(2010)11 final. Available online: https://eur-lex.europa.eu/LexUriServ/LexUriServ.do?uri=COM:2010:0011:FIN:EN:PDF (accessed on 23 June 2020).
- Eker, M.; Spinelli, R.; Gürlevik, N. Recovering energy biomass from sustainable forestry using local labor resources. J. Clean. Prod. 2017, 157, 57–64. [Google Scholar] [CrossRef]
- Valente, C.; Spinelli, R.; Hillring, B.G. LCA of environmental and socio-economic impacts related to wood energy production in alpine conditions: Valle di Fiemme (Italy). J. Clean. Prod. 2011, 19, 1931–1938. [Google Scholar] [CrossRef]
- McKay, H. Environmental, economic, social and political drivers for increasing use of woodfuel as a renewable resource in Britain. Biomass Bioenergy 2006, 30, 308–315. [Google Scholar] [CrossRef]
- Forest Resources. Natural Resources Institute Finland. Available online: https://stat.luke.fi/en/forest-resources (accessed on 23 June 2020).
- NFI Computing Service. Natural Resources Institute Finland. Available online: https://vmilapa.luke.fi/#/?locale=fi-FI (accessed on 23 June 2020).
- Official Statistics of Finland (OSF): Greenhouse Gases. Available online: http://www.stat.fi/til/khki/index_en.html (accessed on 23 June 2020).
Group | 2018 | 2019 | Total |
---|---|---|---|
Full-time students | 43 | 59 | 102 |
Distance learners | 77 | 94 | 171 |
Total | 120 | 153 | 273 |
df | X2-Value | p-Value | |
---|---|---|---|
sex | 1 | 0.001 | 0.973 |
nationality | 1 | 0.047 | 0.829 |
BSc/MSc | 1 | 0.614 | 0.433 |
studies | 4 | 14.268 | 0.006 |
df | X2-Value | p-Value | |
---|---|---|---|
sex | 1 | 6.182 | 0.013 |
nationality | 1 | 0.080 | 0.777 |
studies | 3 | 19.94 | 0.0002 |
Sustainable | Not Sustainable |
---|---|
Felling balance | Biodiversity |
Certification | Overcapacity |
Waste fraction | C debt |
Directive (RED II) | Cascading |
© 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
Share and Cite
Ranta, T.; Karhunen, A.; Laihanen, M. Sustainability of Forest-Based Bioenergy—A Case Study of Students Surveyed at a University in Finland. Sustainability 2020, 12, 5667. https://doi.org/10.3390/su12145667
Ranta T, Karhunen A, Laihanen M. Sustainability of Forest-Based Bioenergy—A Case Study of Students Surveyed at a University in Finland. Sustainability. 2020; 12(14):5667. https://doi.org/10.3390/su12145667
Chicago/Turabian StyleRanta, Tapio, Antti Karhunen, and Mika Laihanen. 2020. "Sustainability of Forest-Based Bioenergy—A Case Study of Students Surveyed at a University in Finland" Sustainability 12, no. 14: 5667. https://doi.org/10.3390/su12145667
APA StyleRanta, T., Karhunen, A., & Laihanen, M. (2020). Sustainability of Forest-Based Bioenergy—A Case Study of Students Surveyed at a University in Finland. Sustainability, 12(14), 5667. https://doi.org/10.3390/su12145667