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Scots pine (Pinus sylvestris L.) sapwood modification by vinyl acetate-epoxidized plant oil copolymer

机译:醋酸乙烯酯-环氧植物油共聚物改性樟子松(Pinus sylvestris L.)边材

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摘要

A new bio-based formulation consisting of plant oil and vinyl acetate was developed for wood modification aiming at improving some of the material’s properties. In–situ epoxidation of linseed oil (LO) and soybean oil (SO) was carried out at different times with purpose of preparing epoxidized oils with various epoxy content. For comparison, commercially available epoxidized linseed oil (ELO®) and epoxidized soybean oil (ESO®) were also included in the study. The epoxidized oils were subsequently reacted with vinyl acetate (VAc) to investigate the effect of epoxidation degree on the copolymerization reaction between epoxidized oils and VAc. Results showed that a copolymer can be formed between VAc and epoxidized LO with high epoxy content, while no reaction occurred between VAc and SO or its epoxidized derivatives. As the most reactive monomer among studied oils, the epoxidized LO with highest epoxy content (i.e. ELO®) was selected for further investigation to determine the optimal conditions for its copolymerization reaction with VAc. The effect of feed ratio, reaction temperature, reaction time and catalyst amount on the efficiency of the copolymerization reaction was evaluated by measuring the yields of formed copolymer under different conditions. DSC and NMR were used to confirm the formation of copolymer and reveal the chemical structure of the obtained copolymer.ududThe optimized formulation was further impregnated into wood and subsequently cured, and the progress of curing process monitored using ATR–FTIR spectroscopy. It was found that an increase of curing temperature or duration resulted in improved wood dimensional stability, while weight percentage gain (WPG) was not significantly affected. In addition, insignificant correlation between WPG and anti–swelling efficiency (ASE) was found for the VAc–ELO® treated wood. From energy saving and economical point of view, 168 h of curing duration at 90°C is sufficient to achieve a satisfying dimensional stability. Moreover, the VAc–ELO® treated wood showed great leaching resistance to water. By using light– and scanning electron microscopy, it was found that the copolymer formed inside wood was mainly located in rays, resin canals and occasionally in the cell lumina. Like most wood treatments, the mechanical properties of VAc–ELO® treated wood samples were slightly decreased compared to untreated wood, especially MOR, compression parallel to the grain (∥) and hardness perpendicular to the grain (⊥). The difference between control and treated samples gradually increase as a result of increasing WPG. Durability tests showed that 8% WPG was enough to ensure decay resistance against the tested fungi (improved up to durability class 2), and thus can be used to protect wood used in above ground applications.
机译:一种新的基于生物的配方,由植物油和乙酸乙烯酯组成,用于木材改性,旨在改善某些材料的性能。亚麻籽油(LO)和大豆油(SO)的原位环氧化是在不同时间进行的,目的是制备具有各种环氧含量的环氧化油。为了进行比较,研究中还包括市售的环氧化亚麻籽油(ELO®)和环氧化大豆油(ESO®)。随后将环氧化油与乙酸乙烯酯(VAc)反应,以研究环氧化度对环氧化油与VAc之间共聚反应的影响。结果表明,可以在VAc与环氧化的LO之间形成高环氧含量的共聚物,而在VAc与SO或其环氧化衍生物之间不发生反应。作为研究的油中最具反应性的单体,选择了环氧含量最高的环氧化LO(即ELO®)进行进一步研究,以确定其与VAc共聚反应的最佳条件。通过在不同条件下测量形成的共聚物的收率来评价进料比,反应温度,反应时间和催化剂量对共聚反应效率的影响。用DSC和NMR确认共聚物的形成并揭示所得共聚物的化学结构。 ud ud将优化的配方进一步浸渍到木材中,然后进行固化,并使用ATR-FTIR光谱监测固化过程。发现固化温度或持续时间的增加导致木材尺寸稳定性的改善,而重量百分比增加(WPG)并未受到显着影响。此外,对于经VAc–ELO®处理的木材,发现WPG与抗溶胀效率(ASE)之间无显着相关性。从节能和经济的角度来看,在90°C下固化时间168小时足以获得令人满意的尺寸稳定性。此外,经过VAc–ELO®处理的木材对水的沥滤性也很高。通过光学显微镜和扫描电子显微镜,发现在木材内部形成的共聚物主要位于射线,树脂通道中,偶尔位于细胞腔中。像大多数木材处理一样,与未经处理的木材相比,经VAc–ELO®处理的木材样品的机械性能略有下降,尤其是MOR,平行于纹理的压缩(∥)和垂直于纹理的硬度(⊥)。随着WPG的增加,对照样品和处理样品之间的差异逐渐增加。耐久性测试表明,8%的WPG足以确保对被测真菌的耐腐性(提高至2级耐久性),因此可用于保护地上应用的木材。

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    Cai Shengzhen;

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  • 年度 2016
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