Biomass Harvesting from Salvage Clearcuts on Young Eucalypt Stands and Post-Wildfire Pine Thinnings with Fixteri FX15a Feller-Bundler in Spain
Abstract
:1. Introduction
2. Materials and Methods
2.1. Study Area
- One of the Galician forests was a E. globulus young plantation severely affected by Gonipterus platensis, a eucalypt defoliator weevil. The trees were clearcut in order to change the eucalypt species to E. nitens, a priori less vulnerable to this pest.
- The second Galician eucalypt plantation had been damaged by a wildfire 18 months before the salvage clearcut. The stand had already been partially harvested for pulpwood. This meant that the remaining trees, which had to be felled to favor the new sprout growth, were small or located in steep slopes.
- The Catalonian forest had been affected by a wildfire twenty years ago. It was a mixture of Mediterranean hardwoods dominated by cork oak (Quercus suber) with maritime pine (Pinus pinaster) post-wildfire regeneration from burned former plantations located in the less steep zones. Sparse residual eucalypt individuals from old plantations, severely damaged or dead, were present as well. The dense pine stands were severely affected by Matsucoccus sp., the maritime pine bast scale. The treatment was the clearcut of the eucalypts and the most affected pines, reducing the pine stand density and favoring cork oak as the main species, in addition to preventing new wildfires and easing the firefighting works in case they occur.
2.2. Forest Inventory
2.3. Time Study
- Machine movements were followed through a Garmin Etrex GPS to control the daily work areas (allowing the association of the productivity those days with the dasometric parameters measured in the correspondent plots to each zone). The machine movements and production were controlled during 23 days in the Galician forests and 14 days in the Catalonian one.
- Automatic production and time recording was performed with the software WNexus-2®, which uploaded to the cloud the weight of each bundle and the exact time of the measurement. During a few days, this procedure produced some mistakes in Galicia, so the daily production was recorded directly by the machine driver from the onboard computer. In any case, as the machine automatically recorded the number of cuts per day, this gave an estimation of the number of felled trees—and of the average unit weight—as they were plantations, so no trees were clumped together.
- The detailed time study was performed for 18.4 h in the Galician plantations (11.9 h in the pest-affected stand and 6.5 h in the burned plantation) and 12 h in Catalonia, using the time–frequency sampling or discontinuous method [25]. The feller-bundler was considered as three different work units working simultaneously:
- •
- Felling unit (telescopic boom + felling head).
- •
- Feeding unit (feeding tray and rolls + guillotine).
- •
- Bundling unit (bundling function, weighing the bundles and releasing them).
2.4. Productivity Equations
2.5. Cost Estimation
- Hourly cost of Fixteri FX15a feller-bundler: 120 €·EWH−1.
- Hourly cost of Valmet 840.3 6 × 6 forwarder: 55 €·EWH−1 (of the Dingo 8 × 8 Forwarder: 50 €·EWH−1).
- Average forwarding productivity in Galicia, estimated by a productivity equation for coppices [25]: 5.19 odt·EWH−1. Forwarding productivity in Catalonia, estimated by the same equation: 5.24 odt·EWH−1.
- Fixed and indirect costs (% of direct harvesting costs): 10%.
- Bundle short-distance (<50 km) transportation cost: 10.9 €·odt−1.
- Industrial profit of the supplying company: 12.5% of total costs.
- Chipping cost of bundles at the plant—fixed electrical chipper—4.3 €·odt−1.
- Chips price at 30% moisture (humid basis): 68.6 €·odt−1.
3. Results
- In the Catalonian study, the utilization coefficients were 89% of productive time over work effective time and 75% of productive time over scheduled machine time.
- The feeding unit acted as a bottleneck for the work of the felling boom. The waiting times of the felling head while feeding the bundling unit ranged from 15 to 34%, greater in the stand affected by the wildfire.
- Bundling was much more complicated in the stand affected by the forest fire, particularly because the handling and bundling of the dry material was made difficult by the length of time since the wildfire occurrence. The activity time of the bundling unit was 51 and 49% of the worktime in the Galician 1 and Catalonian stands, respectively, while it reached 70% of the worktime in the Galician 2 burned stand.
- The productive time per bundle was significantly greater in the forest affected by the wildfire (4.7 min·bundle−1, in front of 3.1 min·bundle−1 in the Gonipterus-affected stand and 3.6 in the post-wildfire Catalonian treatment).
- The fire-affected eucalypt plantation also presented other constraints, such as the heterogeneity and the existence of inaccessible or already harvested areas. These facts were reflected in non-productive time that doubled those of the other stands—4% in front of 2%. The delay in harvesting the plantation after the wildfire caused 14% of the biomass weight to be left uncollected.
4. Discussion
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- GOSSGE (Grupo Operativo Goníptero). Dossier del Proyecto de Innovación del Grupo Operativo Supra-Autonómico de Sanidad Sobre Gonipterus en Eucalipto—GOSSGE. 2018. Available online: https://www.profoas.com/pdf/proyectos/Gossge-Dossier.pdf (accessed on 7 August 2023). (In Spanish).
- Díaz-Fierros, F. Incendios Forestales en Galicia y Portugal: Una perspectiva histórica. Territorium 2019, 26, 97–114. (In Spanish) [Google Scholar] [CrossRef]
- Bergström, D.; Di Fulvio, F.; Nuutinen, Y. Effects of harvested tree size and density of undergrowth on the operational efficiency of a bundle-harvester system in early fuelwood thinnings. In Proceedings of the 48th FORMEC Symposium, Linz, Austria, 4–8 October 2015; BOKU: Viena, Austria, 2015; pp. 165–168, 530p. Available online: https://www.formec.org/images/proceedings/2015/formec_proceedings_2015_web.pdf (accessed on 7 August 2023).
- Jylhä, P.; Laitila, J. Energy wood and pulpwood harvesting from young stands using a prototype whole-tree bundler. Silva Fenn. 2007, 41, 763–779. [Google Scholar] [CrossRef]
- Kärhä, K.; Laitila, J.; Jylhä, P.; Nuutinen, Y.; Keskinen, S. Kokopuun Paalaus -Tuotantoketjun Tuottavuus ja Kustannukset [Productivity and Costs of the Whole-Tree Bundling Supply Chain]. Metsäteho Report 211. 2009. Available online: https://metsateho.fi/wp-content/uploads/2015/02/Raportti_211_Kokopuun_paalaus_tuotantoketjun_tuottavuus_ja_kustannukset_kk.pdf (accessed on 7 August 2023). (In Finnish).
- Nuutinen, Y.; Kärhä, K.; Laitila, J.; Jylhä, P.; Keskinen, S. Productivity of whole tree bundler in energy wood and pulpwood harvesting from early thinnings. Scand. J. For. Res. 2011, 26, 329–338. [Google Scholar] [CrossRef]
- Björheden, R.; Nuutinen, Y. Study of Fixteri FX-15a small-tree bundling unit. In Swedish Forest Research Institute, Report 819; SKOGFORSK: Uppsala, Sweden, 2014; 20p, Available online: https://www.skogforsk.se/contentassets/0a0730ab434249839de7a2125f046d8e/studie-av-fixteri-fx15a-klentradsbuntare-hela.pdf (accessed on 7 August 2023)(In Swedish with English Summary).
- Kärhä, K.; Jylhä, P.; Laitila, J. Integrated procurement of pulpwood and energy wood from early thinnings using whole-tree bundling. Biomass Bioenergy 2011, 35, 3389–3396. [Google Scholar] [CrossRef]
- Bergström, D.; Di Fulvio, F. Comparison of the cost and energy efficiencies of present and future biomass supply systems for young dense forests. Scand. J. For. Res. 2014, 29, 793–812. [Google Scholar] [CrossRef]
- Ala-Varvi, T.; Ovaskainen, H. Kokopuun paalauksen kilpailukyky [Competitiveness of whole-tree bundling]. In Metsäteho Report 225; University of Helsinki: Helsinki, Finland, 2013; 77p, Available online: https://metsateho.fi/wp-content/uploads/2015/02/Raportti_225_Kokopuun_paalauksen_kilpailukyky_ta-v_ho.pdf (accessed on 7 August 2023)(In Finnish, with English Summary); ISSN 1796-2374.
- Laitila, G.; Kärhä, K.; Jylha, P. Time consumption model and parameters for Off- and On-road transportation of whole-tree bundles. Balt. For. 2013, 15, 105–114. [Google Scholar]
- Fernández-Lacruz, R.; Bergstrom, D. Developing biomass supply systems for forested marginal land in Sweeden. In Proceedings of the 48th FORMEC Symposium, Linz, Austria, 4–8 October 2015; BOKU: Viena, Austria, 2015; pp. 189–196. Available online: https://www.formec.org/images/proceedings/2015/formec_proceedings_2015_web.pdf (accessed on 7 August 2023).
- Nuutinen, Y.; Petty, A.; Bergström, D.; Rytkönen, M.; Di Fulvio, F.; Tiihonen, I.; Lauren, A.; Dahlin, B. Quality and productivity in comminution of small-diameter tree bundles. Int. J. For. Eng. 2016, 27, 179–187. [Google Scholar] [CrossRef]
- Catry, F.X.; Moreira, F.; Cardillo, E.; Pausas, J.G. Post-Fire Management of Cork Oak Forests. In Post-Fire Management and Restoration of Southern European Forests, Managing Forest Ecosystems; Moreira, F., Arianoutsou, M., Corona, P., De las Heras, J., Eds.; COST Action FP0701 and Springer Science+Business Media: Amsterdam, The Netherlands, 2012; pp. 199–222. Available online: https://scholar.google.es/scholar_url?url=https://digital.csic.es/bitstream/10261/43374/3/JGPausas16.pdf&hl=es&sa=X&ei=garQZJ2sCLSby9YP_ZWmyA0&scisig=AFWwaebGUG42J3NEDmb_QNhFPR4d&oi=scholarr (accessed on 7 August 2023).
- Mundet, R.; Baiges, T.; Beltrán, M.; Torrell, A. Climate change measures and recommendations for cork oak forests. Life+Suber Project. Ed. In Consorci Forestal de Catalunya (CFC), Centre de la Propietat Forestal (CPF); Centre Tecnologic Forestal de Catalunya (CTFC); Amorim Florestal, SA: Barcelona, Spain, 2018; 130p, Available online: https://lifesuber.eu/wp-content/uploads/2018/10/Guia_LIFESUBER_ang.pdf (accessed on 7 August 2023).
- González, J.R.; Pukkala, T. Characterization of forest fires in Catalonia (north-east Spain). Eur. J. For. Res. 2016, 126, 421–429. [Google Scholar] [CrossRef]
- Torras, O.; Saura, S. Effects of silvicultural treatments on forest biodiversity indicators in the Mediterranean. For. Ecol. Manag. 2008, 255, 3322–3330. [Google Scholar] [CrossRef]
- Francos, M.; Úbeda, X.; Torta, J.; Panareda, J.M.; Cerdà, A. The role of forest fire severity on vegetation recovery after 18 years. Implications for forest management of Quercus suber L. in Iberian Peninsula. Glob. Planet. Chang. 2016, 145, 11–16. [Google Scholar] [CrossRef]
- Rodríguez-Carreras, R.; Úbeda, X.; Francos, M.; Marco, C. After the Wildfires: The Processes of Social Learning of Forest Owners’ Associations in Central Catalonia, Spain. Sustainability 2020, 12, 6042. [Google Scholar] [CrossRef]
- Brañas, J.; González-Río, F.; Rodríguez Soalleiro, R.; Merino, A. Biomasa maderable y no maderable en plantaciones de eucalipto. Estimación y cuantificación. CIS Madera 2000, 4, 72–75. Available online: https://www.researchgate.net/publication/290803458_Biomasa_maderable_y_no_maderable_en_plantaciones_de_eucalipto_Cuantificacion_y_estimacion#fullTextFileContent (accessed on 7 August 2023). (In Spanish).
- Diéguez-Aranda, U.; Rojo, A.; Castedo-Dorado, F.; Álvarez-González, J.G.; Barrio-Anta, M.; Crecente-Campo, F.; González-González, J.M.; Pérez-Cruzado, C.; Rodríguez-Soalleiro, R.; López-Sánchez, C.A.; et al. Herramientas Selvícolas Para la Gestión Forestal Sostenible en Galicia; Dirección Xeral de Montes, Consellería de Medio Rural, Xunta de Galicia: Santiago de Compostela, Spain, 2009; 259p, Available online: https://mediorural.xunta.gal/sites/default/files/publicacions/2019-10/herramientas_selvicolas.pdf (accessed on 7 August 2023). (In Spanish)
- Montero, G.; Ruiz-Peinado, R.; Muñoz, M. Producción de Biomasa y Fijación de CO2 Por Los Bosques Españoles; Instituto Nacional de Investigación y Tecnología Agraria y Alimentaria (INIA): Madrid, Spain, 2005; 270p, Available online: https://gregoriomontero.files.wordpress.com/2016/09/2005-01-monografc3ada-forestal-13-m-produccic3b3n-de-biomasa-y-fijacic3b3n-de-co2-por-los-bosques-espac3b1oles.pdf (accessed on 7 August 2023). (In Spanish)
- Tavankar, F.; Majnounian, B.; Bonya, A.E. Felling and skidding damage to residual trees following selection cutting in Caspian forests of Iran. J. For. Sci. 2013, 59, 196–203. Available online: https://www.agriculturejournals.cz/pdfs/jfs/2013/05/03.pdf (accessed on 7 August 2023). [CrossRef]
- Mc Mahon, S. Accuracy of two ground survey methods for assessing site disturbance. Int. J. For. Eng 1995, 6, 27–33. [Google Scholar] [CrossRef]
- Magagnotti, N.; Spinelli, R.; Acuña, M.; Bigot, M.; Guerra, S.; Hartsough, B.; Kanzian, C.; Kärhä, K.; Lindroos, O.; Roux, P.; et al. Good Practice Guidelines for Biomass Production Studies; Magagnotti, N., Spinelli, R., Eds.; CNR—IVALSA: Florence, Italy, 2012; 50p, Available online: https://pub.epsilon.slu.se/10656/11/magagnotti_n_spinelli_r_130812.pdf (accessed on 7 August 2023).
- Tolosana, E.; Spinelli, R.; Cacot, E.; Mihelic, M.; Nestorovski, L.; Mederski, P. Factors affecting biomass and wood extraction from coppices in Europe: Productivity models and influence of technological changes. In Proceedings of the IUFRO 125th Anniversary Congress, Friburg, Germany, 18–22 September 2017; Available online: https://www.eurocoppice.uni-freiburg.de/intern/pdf/iufro-congress-freiburg/iufro-congress-freiburg2017-tolosana.pdf (accessed on 7 August 2023).
- Merilainen, T.; TMForest S.L., Madrid, Spain. Fixteri OY Dealer in Spain. Personal communication, 2019. [Google Scholar]
- Callol, O.; LIGNIA Biomassa S.L. El Mas Aliu, Girona, Spain. Forest engineer responsible of forest operations at the Spanish company LIGNIA Biomassa, S.L. Personal communication, 2019. [Google Scholar]
- TRAGSA. Tomo 1. Tarifas 2021. Grupo F. Trabajos Forestales y Medioambientales; Grupo Tragsa y SEPI: Madrid, Spain, 2021; 111p, Available online: http://tarifas.tragsa.es/prestowebisapi.dll?FunctionGo&id=3020930&cod=TRAGSA2021/F&path=Tragsa2021W-Act-sujetas.cfg (accessed on 7 August 2023). (In Spanish)
- Spinelli, R.; Cacot, E.; Mihelic, M.; Nestorovski, L.; Mederski, P.; Tolosana, E. Techniques and productivity of coppice harvesting operations in Europe: A meta-analysis of available data. Ann. For. Sci. 2016, 73, 1125–1139. [Google Scholar] [CrossRef]
- Schweier, J.; Spinelli, R.; Magagnotti, N.; Becker, G. Mechanized coppice harvesting with new smallscale feller-bunchers: Results from harvesting trials with newly manufactured felling heads in Italy. Biomass Bioenergy 2015, 72, 85–94. [Google Scholar] [CrossRef]
- Spinelli, R.; Cuchet, E.; Roux, P. A new feller-buncher for harvesting energy wood: Results from a European test programme. Biomass Bioenergy 2007, 31, 205–210. [Google Scholar] [CrossRef]
- Visser, R.; Spinelli, R. Determining the shape of the productivity function for mechanized felling and felling-processing. J. For. Res. 2012, 17, 397–402. [Google Scholar] [CrossRef]
- Erber, G.; Kühmaier, M. Research Trends in European Forest Fuel Supply Chains: A Review of the Last Ten Years (2007–2017)—Part One: Harvesting and Storage. Croat. J. For. Eng. 2017, 38, 269–278. Available online: https://crojfe.com/site/assets/files/4086/erber.pdf (accessed on 7 August 2023).
- Chakroun, M.; Bouvet, A.; Ruch, P.; Montagny, X. Performance of two shear heads for harvesting biomass in hardwood stands in France. Biomass Bioenergy 2016, 91, 227–233. [Google Scholar] [CrossRef]
- Ghaffariyan, M.R.; Acuña, M.; Brown, M. Machine productivity evaluation for harvesters and forwarders in thinning operations in Australia. Silva Balc. 2019, 20, 13–25. Available online: https://research.usc.edu.au/view/pdfCoverPage?instCode=61USC_INST&filePid=13127379650002621&download=true (accessed on 7 August 2023).
- Tolosana, E.; Spinelli, R.; Aminti, G.; Laina, R.; López-Vicens, I. Productivity, Efficiency and Environmental Effects of Whole-Tree Harvesting in Spanish Coppice Stands Using a Drive-to-Tree Disc Saw Feller-Buncher. Croat. J. For. Eng. 2018, 39, 163–172. Available online: https://crojfe.com/site/assets/files/4218/tolosana.pdf (accessed on 7 August 2023).
- Nuutinen, Y.; Björheden, R. Productivity and work processes of small-tree bundler Fixteri FX-15a in energy wood harvesting from early pine dominated thinnings. Int. J. For. Eng. 2016, 27, 29–42. [Google Scholar] [CrossRef]
- Tolosana, E.; Laina, R. Productivity and cost factors, silvicultural and environmental performance of the treatment performed with the Feller-Bundler FIXTERI in a post-fire regenerated Mediterranean stand in Riudarenes (Girona, Spain). In Final Report of the Study Funded by Fixteri OY; 2018; Unpublished; 8p. [Google Scholar]
- Bergström, D.; Di Fulvio, F.; Nuutinen, Y. Effect of Forest Structure on Operational Efficiency of a Bundle-Harvester System in Early Thinnings. Croat. J. For. Eng. 2016, 37, 37–49. Available online: https://hrcak.srce.hr/file/226105 (accessed on 7 August 2023).
Site | Treated Surface, ha | Aver DBH, cm | Nr of Extracted Trees·ha−1 | Extracted Weight, odt·ha−1 | Unit Fresh Weight, kg·tree−1 | Biomass Moisture, % Humid Basis | Unit Weight, odkg· tree−1 | Extracted Weight, Fresh Tonnes | Average Productivity, Fresh Tonnes/odt·EWH−1 |
---|---|---|---|---|---|---|---|---|---|
Galician 1, pest affected | 17.50 | 10.7 | 1043 | 18.2 | 36.4 | 52.0 | 17.5 | 664 | 6.90/3.10 |
Galician 2, wildfire affected | 17.75 | 12.4 | 775 | 9.9 | 19.3 | 33.8 | 12.8 | 265 | 3.63/2.40 |
Catalonian, post-wildfire thinning | 6.10 | 9.0 | 4200 (69%) | 45.4 | 18.6 | 45.0 | 10.2 | 477 | 4.49/2.47 |
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2023 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 (https://creativecommons.org/licenses/by/4.0/).
Share and Cite
Tolosana, E.; Laina, R.; González-Prieto, Ó. Biomass Harvesting from Salvage Clearcuts on Young Eucalypt Stands and Post-Wildfire Pine Thinnings with Fixteri FX15a Feller-Bundler in Spain. Forests 2023, 14, 1821. https://doi.org/10.3390/f14091821
Tolosana E, Laina R, González-Prieto Ó. Biomass Harvesting from Salvage Clearcuts on Young Eucalypt Stands and Post-Wildfire Pine Thinnings with Fixteri FX15a Feller-Bundler in Spain. Forests. 2023; 14(9):1821. https://doi.org/10.3390/f14091821
Chicago/Turabian StyleTolosana, Eduardo, Rubén Laina, and Óscar González-Prieto. 2023. "Biomass Harvesting from Salvage Clearcuts on Young Eucalypt Stands and Post-Wildfire Pine Thinnings with Fixteri FX15a Feller-Bundler in Spain" Forests 14, no. 9: 1821. https://doi.org/10.3390/f14091821