Wood-water interactions of thermally modified, acetylated and melamine formaldehyde resin impregnated beech wood

Author:

Čermák Petr1,Baar Jan1,Dömény Jakub1,Výbohová Eva2,Rousek Radim1,Pařil Petr1,Oberle Anna1,Čabalová Iveta2,Hess Dominik1,Vodák Michal1,Brabec Martin1

Affiliation:

1. Department of Wood Science and Technology , Faculty of Forestry and Wood Technology, Mendel University in Brno , Zemědělská 3, 613 00 Brno , Czech Republic

2. Department of Chemistry and Chemical Technology , Faculty of Wood Sciences and Technology, Technical University in Zvolen , T.G. Masaryka 24, 96001 Zvolen , Slovakia

Abstract

Abstract The wood-water interactions of modified beech wood (Fagus sylvatica L.) were studied. Specimens were thermally modified at 180 (TM1), 200 (TM2) and 220 °C (TM3), acetylated (Acet), and melamine formaldehyde (MF) resin (Mel) modified. Afterwards, the water vapour characteristics, i.e. water vapour sorption isotherms, equilibrium moisture content (EMC), dimensional stability of specimens conditioned at 30, 65 and 90% RH and liquid water characteristics, i.e. water absorption, maximum moisture content (MC), leachability and swelling kinetics, were determined and the results compared with reference (Ref) specimens. From the results, it is evident that the scale of wood-water interactions was highly dependent on the thermal modification temperature and type of chemical modification. The water vapour isotherms of thermally modified wood decreased, whereas more severe treatment exhibited more distinct reduction. The EMC values of the Mel and TM1 specimens decreased only at high RH, whereas the most significant decrease, within the whole range of observation, was found in the Acet group. The maximum MC reduction was achieved by acetylation. As a consequence of swelling reduction, dimensional stability expressed as anti-swelling efficiency (ASE) was considerably improved. A relatively high initial linear-phase swelling rate was found for the Ref specimens, whereas modified wood exhibited comparatively slow and gradual swelling.

Funder

Czech Science Foundation

Publisher

Walter de Gruyter GmbH

Subject

Biomaterials

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