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Understanding the effect of growth ring orientation on the compressive strength perpendicular to the grain of thermally treated wood

机译:了解生长环取向对垂直于热处理木材颗粒的抗压强度的影响

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Thermal treatment (TMT) impacts the mechanical strength of wood. Investigating the compressive strength (CS) of thermally treated wood with variable growth ring orientation is helpful to better understand the effect of TMT on mechanical performance of wood. Specimens, cut from spruce wood, were classified according to two growth ring orientations, namely 10 degree (f(c)10) and 40 degree (f(c)40), these two situations commonly exist in practice. Six replicates from each type were thermally treated with saturated steam at two different temperatures (180 degrees C and 210 degrees C), respectively. Dimensional changes, chemical composition, and microstructure of the specimens were monitored before and after TMT using FTIR spectroscopy and optical microscopy. Compressive stress of specimens was determined and, simultaneously, strain distribution was recorded using digital image correlation. The results show that TMT caused mass loss and shrinkage in tangential and radial directions. Changes in chemical composition were mainly due to hemicellulose degradation. For both treated and untreated samples, the CS perpendicular to the grain and deformation of f(c)10 samples were higher and smaller than that of f(c)40 samples, respectively. TMT results in brittle wood tissue, which hampered strain transfer along growth rings and changed failure modes of samples. Mechanical strength of f(c)40 samples was sensitive to be impacted by TMT. Prior to TMT, failure modes of f(c)10 and f(c)40 specimens were shear deformation and growth ring buckling, respectively. After TM, failure modes of all specimens changed to shear failure parallel to growth ring boundaries. These structural changes mainly occurred in earlywood. The output of this work contributes to the effective application and scientific evaluation of mechanical performance of TMT wood by considering growth ring orientations.
机译:热处理(TMT)会影响木材的机械强度。调查具有可变生长环取向的热处理木材的压缩强度(CS)有助于更好地了解TMT对木材机械性能的影响。根据两个生长环取向分类,即10度(f(c)10)和40度(f(c)40),分类样品,即在实践中常见的这两种情况。每种类型的六次重复在两个不同的温度(180℃和210℃)下分别在饱和蒸汽中热处理饱和蒸汽。使用FTIR光谱和光学显微镜在TMT之前和之后监测标本的尺寸变化,化学成分和微观结构。使用数字图像相关测定标本的压缩应力,同时记录应变分布。结果表明,TMT引起了切向和径向的质量损失和收缩。化学成分的变化主要是由于半纤维素降解。对于治疗和未经处理的样品,垂直于F(c)10样品的晶粒和变形的Cs分别比F(c)40样品的晶粒和变形的较高且小于F(c)40样品。 TMT导致脆性木组织,其沿着生长环突出的应变转移,并改变了样品的失效模式。 F(c)40样品的机械强度对TMT的影响敏感。在TMT之前,F(c)10和f(c)40样本的失效模式分别是剪切变形和生长环屈曲。在TM之后,所有试样的失效模式变为平行于生长环边界的剪切失效。这些结构的变化主要发生在早始伍德。这项工作的产出有助于通过考虑生长环取向来实现TMT木材的机械性能的有效应用和科学评估。

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  • 来源
    《Wood Science and Technology》 |2021年第5期|1439-1456|共18页
  • 作者单位

    Nanjing Forestry Univ Coinnovat Ctr Efficient Proc & Utilizat Forest Re Longpan Rd 159 Nanjing 210037 Peoples R China|Nanjing Forestry Univ Coll Mat Sci & Engn Longpan Rd 159 Nanjing 210037 Peoples R China|Shandong Xingang Co Ltd Linyi 276000 Shandong Peoples R China;

    Nanjing Forestry Univ Coll Mat Sci & Engn Longpan Rd 159 Nanjing 210037 Peoples R China;

    Nanjing Forestry Univ Coll Mat Sci & Engn Longpan Rd 159 Nanjing 210037 Peoples R China;

    Nanjing Forestry Univ Coinnovat Ctr Efficient Proc & Utilizat Forest Re Longpan Rd 159 Nanjing 210037 Peoples R China|Nanjing Forestry Univ Coll Mat Sci & Engn Longpan Rd 159 Nanjing 210037 Peoples R China;

    Nanjing Forestry Univ Coll Mat Sci & Engn Longpan Rd 159 Nanjing 210037 Peoples R China|Univ Ghent Fac Biosci Engn Dept Environm UGent Woodlab Lab Wood Technol Coupure Links 653 B-9000 Ghent Belgium;

    Univ Ghent Fac Biosci Engn Dept Environm UGent Woodlab Lab Wood Technol Coupure Links 653 B-9000 Ghent Belgium;

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  • 入库时间 2022-08-19 02:28:12

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