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Thermally modified birch wood interaction with liquids

机译:热改性的桦木木材与液体相互作用

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摘要

Large research work is currently being performed concerning different elaborated new wood protection methods. However, combining industrially well-approbated processes is also considered potentially quite promising and such approach is being actively studied. The objective of the present study was to investigate peculiarities of interaction between liquids and thermally modified (TM) birch wood (Betulaspp.). This knowledge is essential for proper TM wood post-treatments involving its impregnation as well as for evaluation of potential wood moisture dynamics in outdoor applications. Changes caused by TM (150-170 degrees C) in a closed system under elevated pressure in wood wettability, permeability, liquid absorption capacity, and drying characteristics were evaluated. The results concerning absorption capacity, which is mainly related to wood anatomical features and is density-dependent, indicated reduced absorption capacity of TM wood compared with unmodified birch of similar density. Permeability, which characterises the ease with which liquid is transported through a wood porous system, was evaluated by capillary absorption tests through the samples' tangential and radial surfaces. TM made birch wood less permeable through both surfaces as well as less anisotropic regarding transverse absorption rates. Moreover, TM also caused a decrease in drying rates for birch wood impregnated with water. Reduction in permeability influences the impregnation process of boards and no full saturation was detected for TM boards when applying an impregnation schedule providing complete saturation for unmodified boards. On the other hand, less water was absorbed by TM boards exposed to rain on outdoor weathering racks.
机译:目前正在进行大型研究工作,涉及不同阐述的新型木材保护方法。然而,在工业良好认可的过程结合也被认为是可能非常有希望的,并且正在积极研究这种方法。本研究的目的是研究液体与热改性(TM)桦木(Betulaspp)之间相互作用的特性。这种知识对于涉及其浸渍的适当TM木材处理,以及评估户外应用中的潜在木材水分动力学的潜在治疗方法是必不可少的。通过在木质润湿性,渗透率,液体吸收能力和干燥特性的高压下闭合系统中TM(150-170℃)引起的变化,渗透性,液体吸收能力和干燥特性。关于吸收能力的结果主要与木材解剖特征有关,并且依赖于密度,表明与类似密度的未改性薄荷相比,TM木材的吸收能力降低。通过毛细管吸收测试通过样品的切向和径向表面来评估渗透性,其表征渗透性,其表征液体通过木多孔系统输送的容易性。 TM通过两个表面和横向吸收率的极少的各向异性制成桦木木材。此外,TM还导致浸渍水的桦木木材的干燥速率降低。渗透率的降低影响了电路板的浸渍过程,并且在施加浸渍时间表时,对于为未修饰的板提供完全饱和的TM板,没有检测到TM板的完全饱和。另一方面,在室外风化架上暴露在雨中暴露在雨中吸收了较少的水。

著录项

  • 来源
    《Holz als Roh- und Werkstoff》 |2020年第5期|849-857|共9页
  • 作者单位

    Latvian State Inst Wood Chem Lab Wood Biodegradat & Protect LV-1006 Riga Latvia;

    Latvian State Inst Wood Chem Lab Wood Biodegradat & Protect LV-1006 Riga Latvia;

    Latvian State Inst Wood Chem Lab Wood Biodegradat & Protect LV-1006 Riga Latvia;

    Latvian State Inst Wood Chem Lab Wood Biodegradat & Protect LV-1006 Riga Latvia|Riga Tech Univ Fac Mat Sci & Appl Chem LV-1048 Riga Latvia;

    Latvian State Inst Wood Chem Lab Wood Biodegradat & Protect LV-1006 Riga Latvia;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
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