Affiliation:
1. Department of Wood Biology and Wood Products , Georg August University Goettingen , Büsgenweg 4 , 37077 Göttingen , Germany
2. Thünen-Institut , Leuschnerstr. 91 d , 21031 Hamburg , Germany
Abstract
Abstract
Treating wood with water-soluble resins is a well-known and effective method to improve the durability of wood. However, there has been no systematic work to date related to the influence of average molecular size of phenol-formaldehyde (PF) resin on the decay resistance of wood, especially of hardwoods. Therefore, the goal of this study was to investigate the effect of average molecular size of PF resin treatment on the resistance of beech wood against brown- and white-rot fungi. Four different average molecular weights (M
w) of resol type resin oligomers (297, 421, 655 and 854 g/mol) were examined. Different weight percent gains (WPGs) in European beech (Fagus sylvatica) wood blocks (15 × 20 × 50 mm3) were attained through vacuum impregnation using various concentrations of aqueous-PF solutions. Afterwards treated wood blocks passed the leaching and were exposed to brown-rot fungi (Gloeophyllum trabeum; Coniophora puteana) and white-rot fungi (Trametes versicolor) for 16 weeks. No effect of oligomer size on the resistance against G. trabeum decay of wood blocks was observed, resulting in resin loadings of 7–8%. The required WPG for resistance to brown-rot decay by C. puteana increased slightly with increasing oligomer molecular size: 6, 7, 10 and 11% for wood treated with 297, 421, 655 and 854 g/mol, respectively. The extent of white-rot fungal decay resistance of treated wood was affected by the molecular size of oligomers. Resin loadings of 8% and of 17% against T. versicolor were required to attain similar durability levels for beech wood treated with M
w = 297 and 854 g/mol, respectively.
Funder
Pollmeier Massivholz GmbH & Co. KG
Reference52 articles.
1. Altgen, M., Kyyrö, S., Paajanen, O., and Rautkari, L. (2020). Resistance of thermally modified and pressurized hot water extracted Scots pine sapwood against decay by the brown-rot fungus Rhodonia placenta. Eur. J. Wood Prod. 78: 161–171, https://doi.org/10.1007/s00107-019-01482-z.
2. Arantes, V., Jellison, J., and Goodell, B. (2012). Peculiarities of brown-rot fungi and biochemical Fenton reaction with regard to their potential as a model for bioprocessing biomass. Appl. Microbiol. Biotechnol. 94: 323–338, https://doi.org/10.1007/s00253-012-3954-y.
3. Biziks, V., Bicke, S., and Militz, H. (2019). Penetration of phenol-formaldehyde (PF) resin into wood studied by light microscopy. Wood Sci. Technol. 53: 165–176, https://doi.org/10.1007/s00226-018-1058-2.
4. Bowyer, J.L., Shmulsky, R., and Haygreen, J.G. (2007). Forest products and wood science: an introduction, 5th ed. New Jersey, United States: Blackwell Publishing.
5. Cowling, E.B. (1961). Comparative biochemistry of the decay of sweetgum sapwood by white-rot and brown-rot fungi. Technical Bulleting No. 1258. Washington. D.C: U.S. Department of Agriculture, p. 79.
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