水热处理木纤维在水泥砂浆中的性能评估

Fibers Pub Date : 2024-02-26 DOI:10.3390/fib12030021
P. Kampragkou, V. Kamperidou, Maria Stefanidou
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引用次数: 0

摘要

迄今为止,生物纤维在砂浆增强方面的广泛应用一直受到与其化学成分和吸湿性相关因素的限制。它们的亲水性增加了砂浆混合物的需水量,降低了它们与基体的亲和力,同时还可能出现与湿度有关的纤维降解问题。此外,天然纤维似乎很容易因暴露在水泥砂浆等碱性环境条件下而降解,从而限制了其在建筑行业中的应用。因此,本研究调查了纤维改性的潜力,通过处理永久性地改变纤维的结构和化学成分,从而提高纤维的性能。在这项研究中,黑松和山毛榉的木纤维经过温和的热处理(140 °C 2 小时,在蒸汽环境下),获得了物理和化学特性,并以 1.5% v/v 的比例加入水泥砂浆中,以评估其作为加固材料的性能。通过将砂浆置于不同的人工老化环境(冻融循环或室外曝晒)中,考察了砂浆的可操作性(新鲜状态)以及砂浆在 28、90 和 365 天龄期时的其他物理、吸湿、热和机械特性以及耐候性能。结果表明,经过处理的纤维对砂浆试样的尺寸稳定性、抗弯强度、隔热性能和毛细管吸收能力都有好处,尤其是在老化过程中,黑松纤维的改善作用最大。经水热处理的木纤维似乎有助于在所有老化条件下保持水泥砂浆的完整性,这证明它们可以提供低成本、环保的砂浆增强途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Evaluation of Hydrothermally Treated Wood Fibre Performance in Cement Mortars
Biofibres’ wide application in mortar enhancement has thus far been restricted by factors related to their chemical composition and hygroscopic nature. Their hydrophilic behaviour increases the water demand of mortar mixtures and diminishes their affinity to the matrix, while further moisture-related fibre degradation issues may arise. Additionally, natural fibres seem to be susceptible to degradation caused by exposure to alkaline environmental conditions such as those experienced by cement mortars, restricting their utilisation in the construction industry. Therefore, the current study investigates the potential of fibre modification through treatments that would permanently alter their structure and chemical composition to improve their performance. In this study, wood fibres of black pine and beech species were exposed to mild thermal treatment (140 °C 2 h, under a steam atmosphere), characterised in terms of the physical and chemical properties and incorporated in cement mortars, applying the proportion of 1.5% v/v in the mortar, in order to assess their performance as reinforcement material. The mortars’ workability (at a fresh state) was examined, as well as other physical, hygroscopic, thermal, and mechanical characteristics of the mortars at the ages of 28, 90 and 365 days and weathering performance, by subjecting them to different artificial ageing environments (freeze–thaw cycles or outdoor exposure). The results revealed the beneficial role of the treated fibres in dimensional stability, flexural strength, thermal insulation properties and capillary absorption of the mortar specimens, especially during the ageing process, with the black pine fibres showing the greatest improvement. The hydrothermally treated wood fibres seem to help maintain the integrity of cement mortars under all ageing conditions, proving that they could provide low-cost and eco-friendly mortar enhancement pathways.
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