Photodegradation of thermally modified wood

被引:98
|
作者
Srinivas, Kavyashree [1 ]
Pandey, Krishna K. [1 ]
机构
[1] Inst Wood Sci & Technol, Bangalore 560003, Karnataka, India
关键词
Heat treatment; Rubberwood; Photodegradation; Lignin; FTIR; UV resistance; HEAT-TREATMENT; DIMENSIONAL STABILITY; MECHANICAL-PROPERTIES; MODIFIED TIMBER; COLOR; PERFORMANCE; DURABILITY; RESONANCE; SURFACES; IR;
D O I
10.1016/j.jphotobiol.2012.09.013
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Natural wood, being biological material, undergoes rapid degradation by ultraviolet (UV) radiations and other environmental factors under outdoor exposure. In order to protect wood from such degradation, the chemical structure of wood is altered by chemical modification or heat treatment. In the present study, heat treated specimens of rubberwood (Hevea brasiliensis) were exposed to xenon light source in a weather-o-meter for different periods up to 300 h. Photostability of modified and unmodified wood was evaluated in terms of colour and chemical changes. Light coloured untreated wood became dark upon UV irradiation whereas, dark colour of heat treated wood lightened on UV exposure. CIE lightness parameter (L*) decreased for untreated wood whereas its value increased for heat treated wood upon irradiation. Other colour coordinates a* and b* increased with exposure duration for both untreated and heat treated wood. The overall colour change (Delta E*) increased for both untreated and heat treated wood. The Fourier Transform Infrared (FTIR) spectroscopic studies revealed severe lignin degradation of heat treated wood due to UV light exposure. Colour changes and FTIR measurements indicate that thermal modification of wood was ineffective in restricting light induced colour changes and photodegradation of wood polymers. (C) 2012 Elsevier B.V. All rights reserved.
引用
收藏
页码:140 / 145
页数:6
相关论文
共 50 条
  • [21] Quality control methods for thermally modified wood
    Willems, Wim
    Lykidis, Charalampos
    Altgen, Michael
    Clauder, Lothar
    HOLZFORSCHUNG, 2015, 69 (07) : 875 - 884
  • [22] Magnetic resonance studies of thermally modified wood
    Sivonen, H
    Maunu, SL
    Sundholm, F
    Jämsä, S
    Viitaniemi, P
    HOLZFORSCHUNG, 2002, 56 (06) : 648 - 654
  • [23] Thermally modified birch wood interaction with liquids
    Dace Cirule
    Anrijs Verovkins
    Ingeborga Andersone
    Edgars Kuka
    Bruno Andersons
    European Journal of Wood and Wood Products, 2020, 78 : 849 - 857
  • [24] THERMOGRAVIMETRIC ANALYSIS OF COMMERCIAL THERMALLY MODIFIED WOOD
    Grzeskowiak, Wojciech L.
    Bartkowiak, Monika
    DREWNO, 2015, 58 (194): : 23 - 36
  • [25] Electrical resistance characteristics of thermally modified wood
    Joran van Blokland
    Stergios Adamopoulos
    European Journal of Wood and Wood Products, 2022, 80 : 749 - 752
  • [26] Fire Resistance of Thermally Modified Spruce Wood
    Cekovska, Hana
    Gaff, Milan
    Osvald, Anton
    Kacik, Frantisek
    Kubs, Jiri
    Kaplan, Lukas
    BIORESOURCES, 2017, 12 (01): : 947 - 959
  • [27] Characterisation of thermally modified wood: molecular reasons for wood performance improvement
    Tjeerdsma, BF
    Boonstra, M
    Pizzi, A
    Tekely, P
    Militz, H
    HOLZ ALS ROH-UND WERKSTOFF, 1998, 56 (03) : 149 - 153
  • [28] Wood plastic composites made with thermally modified birch wood residues
    Kuka, E.
    Cirule, D.
    Kajaks, J.
    Andersone, I.
    Andersons, B.
    INTERNATIONAL WOOD PRODUCTS JOURNAL, 2016, 7 (04) : 225 - 230
  • [29] CHARACTERIZATION OF THERMALLY MODIFIED WOOD AT DIFFERENT INDUSTRIAL CONDITIONS
    Herrera, Rene
    Krystofiak, Tomasz
    Labidi, Jalel
    Llano-Ponte, Rodrigo
    DREWNO, 2016, 59 (197): : 151 - 164
  • [30] Enhancing Thermally Modified Wood Stability against Discoloration
    Cirule, Dace
    Sansonetti, Errj
    Andersone, Ingeborga
    Kuka, Edgars
    Andersons, Bruno
    COATINGS, 2021, 11 (01) : 1 - 13