通过热机械纤维的高碘酸氧化提高中密度纤维板的耐水性

IF 2.5 3区 农林科学 Q1 FORESTRY
Jaime García-Garrido, Daniel Martinez-Filgueira, Aitor Barrio, Arantxa Eceiza, Ainara Saralegi, Álvaro Tejado-Etayo
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引用次数: 0

摘要

中密度纤维板(MDF)是全球制造业中必不可少的材料,因其多功能性和成本效益而受到重视。增强其耐水性对于扩大其应用范围至关重要,特别是在潮湿和室外环境中。本研究探讨了通过高碘酸盐氧化对组成木纤维(在这种情况下,热机械纸浆或TMP)进行化学改性来增强中密度纤维板的耐水性。用偏碘酸钠处理会形成双醛纤维(DA-TMP),然后用酚醛树脂喷涂,按照工业程序,通过适当的热压转化为中密度纤维板。进行了物理、机械和生物性能的综合评估,并对氧化纤维和非氧化纤维制成的板进行了防火性能的比较研究。结果表明,高碘酸盐氧化使纤维的吸水率降低了54%,厚度膨胀率降低了56%,这表明纤维的化学和形态发生了显著变化。尽管机械性能略有下降,但基于DA-TMP的MDF的整体性能证实了这是一种有前途的方法,可以在容易受潮的环境中实现卓越的耐用性,包括室外建筑。重要的是,这种材料的生物抗性不受纤维氧化的影响,确保了对生物攻击的持续保护和长期耐用性。此外,防火性能测试表明,基于DA-TMP的MDF表现出减少峰值热量释放和烟雾产生,进一步提高了它们对火灾敏感应用的适用性。因此,这项研究有助于扩大木基材料在各个工业部门的使用和耐久性,为传统的防潮处理提供可持续和有效的替代方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Enhancing water resistance of medium density fibreboards via periodate oxidation of thermomechanical fibres

Medium density fibreboard (MDF) is an essential material in global manufacturing, valued for its versatility and cost-effectiveness. Enhancing its water resistance is critical for broadening its applications, especially in humid and outdoor environments. This study investigates the enhancement of MDF water resistance through the chemical modification of the constituent wood fibres (in this case, thermo-mechanical pulp or TMP) through periodate oxidation. The treatment with sodium metaperiodate results in the formation of dialdehyde fibres (DA-TMP) which are then spray-coated with a phenol-formaldehyde resin, following the industrial procedures, and converted into a MDF through proper hot pressing. Comprehensive evaluation of the physical, mechanical, and biological properties is conducted, along with the study of fire behaviour comparing boards made from both oxidized and non-oxidized fibres. The results reveal that periodate oxidation reduces water absorption by 54% and thickness swelling by 56%, indicating significant changes in the fibres’ chemistry and morphology. Despite a slight decrease in mechanical properties, the overall performance of DA-TMP based MDF confirms this as a promising method for achieving superior durability in moisture-prone environments, including outdoor constructions. Importantly, the biological resistance of the material remains unaffected by the oxidation of the fibres, ensuring continued protection against biological attack and long-term durability. Additionally, fire performance tests show that DA-TMP based MDF exhibit reduced peak heat release and smoke production, further enhancing their suitability for fire-sensitive applications. Consequently, this research contributes to expand the use and durability of wood-based materials across various industrial sectors, offering a sustainable and effective alternative to traditional moisture resistance treatments.

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来源期刊
European Journal of Wood and Wood Products
European Journal of Wood and Wood Products 工程技术-材料科学:纸与木材
CiteScore
5.40
自引率
3.80%
发文量
124
审稿时长
6.0 months
期刊介绍: European Journal of Wood and Wood Products reports on original research and new developments in the field of wood and wood products and their biological, chemical, physical as well as mechanical and technological properties, processes and uses. Subjects range from roundwood to wood based products, composite materials and structural applications, with related jointing techniques. Moreover, it deals with wood as a chemical raw material, source of energy as well as with inter-disciplinary aspects of environmental assessment and international markets. European Journal of Wood and Wood Products aims at promoting international scientific communication and transfer of new technologies from research into practice.
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