不同纳米纤维素基悬浮液包覆表面的表征

IF 1 4区 工程技术 Q4 ENGINEERING, MECHANICAL International Journal of Surface Science and Engineering Pub Date : 2023-01-01 DOI:10.1504/ijsurfse.2023.130169
Ekrem Durmaz, Saim Ates
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引用次数: 1

摘要

在本研究中,胶合板表面涂覆了不同的纳米纤维素基悬浮液。此外,我们还分析了硼酸(BA)、聚乙烯醇(PVA)和三聚氰胺甲醛(MF)对某些涂料悬浮液表面性能的影响。结果表明,涂覆纳米纤维素悬浮液的胶合板表面光泽度随纳米纤维素类型、基质类型和涂覆层数的不同而变化。确定涂层胶合板表面具有低、中光泽度。对覆膜胶合板样品的表面硬度值进行分析,发现随着覆膜层数的增加和不同基体的加入,覆膜后的木材表面硬度值达到最高水平(7H)。此外,在纳米纤维素基悬浮液中添加不同浓度的BA、PVA和MF,通过降低表面疏水性,降低了涂覆这些溶液的木材表面的水接触角(WCA)。
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Characterisation of surfaces coated with different nanocellulose-based suspensions
In this study, plywood surfaces were coated with different nanocellulose-based suspensions. Moreover, we analysed the effect of boric acid (BA), polyvinyl alcohol (PVA) and melamine formaldehyde (MF) on surface properties for some coating suspensions. According to the results, gloss values of plywood surfaces coated with nanocellulose-based suspensions changed depending on nanocellulose type, matrix type and number of coating layers. It was determined that coated plywood surfaces had low and medium gloss properties. When surface hardness values of coated plywood samples were analysed, it was observed that increasing the number of coating layers and addition of different kind of matrixes increased surface hardness values of the coated wooden surfaces up to the highest level (7H). Furthermore, it was determined that addition of BA, PVA and MF with various concentrations to nanocellulose-based suspensions declined water contact angles (WCA) of wooden surfaces coated with these solutions by reducing surface hydrophobicity.
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来源期刊
CiteScore
1.60
自引率
25.00%
发文量
21
审稿时长
>12 weeks
期刊介绍: IJSurfSE publishes refereed quality papers in the broad field of surface science and engineering including tribology, but with a special emphasis on the research and development in friction, wear, coatings and surface modification processes such as surface treatment, cladding, machining, polishing and grinding, across multiple scales from nanoscopic to macroscopic dimensions. High-integrity and high-performance surfaces of components have become a central research area in the professional community whose aim is to develop highly reliable ultra-precision devices.
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