乙烯基硅烷处理苋菜根部纤维素对菠萝纤维-乙烯基酯复合材料承载性能和时效性能的影响

IF 3.1 3区 化学 Q2 POLYMER SCIENCE
Madhu Balasubramanian, N. Nagabhooshanam, G. Balamuruga Mohan Raj, Rajesh Verma, D. Sendil Kumar, B. Tirupati Rao, D. Sravani
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引用次数: 0

摘要

本文研究了菠萝纤维和经硅烷处理的苋菜根纤维素增强乙烯基酯复合材料的性能。通过化学方法提取纤维素,并进行硅烷处理以改善其与乙烯基酯基质的相容性。复合材料采用350cps粘度的乙烯基酯树脂,用40 vol%菠萝纤维垫和不同百分比(0.5、1、2和4 vol%)的硅烷处理纤维素增强。在复合材料中,样品VP3含有2 vol%的硅烷处理纤维素,在所有测试性能中表现出优异的性能。抗拉强度为142 MPa,抗压强度为221 MPa,抗弯强度为242 MPa,加固效果最佳。VP3也表现出最高的疲劳寿命,在30% UTS下有44,000次循环,并且表现出最低的蠕变应变,表明对时间相关变形的优异抵抗。热性能方面,VP3的TG为95%,降解温度为410℃,热稳定性增强。动态力学分析表明,该材料的存储模量为6.1 GPa,损耗因子为0.65,具有最小的能量损耗和优异的力学性能。硅烷处理在改善纤维与基体的粘附性方面发挥了至关重要的作用,从而改善了负载传递,减少了内摩擦,提高了整体性能。SEM分析支持了这些发现,强调了在硅烷处理过的纤维素含量较低的样品中纤维断裂和拉出的存在,而VP3显示出最小的缺陷,证实了硅烷处理的有效性和均匀的填料分散。该研究表明,菠萝纤维和硅烷处理过的纤维素在VP3中的优化组合在机械、热学和粘弹性性能上达到了最佳平衡,使其成为一种有前景的高级复合材料。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Effect of vinyl silane-treated Amaranthus spinosus plant root cellulose on load-bearing and time-dependent properties of pineapple fiber–vinyl ester composite

This study investigates the enhancement of vinyl ester composites reinforced with pineapple fiber and silane-treated cellulose derived from the roots of the Amaranthus spinosus plant. The cellulose was extracted through a chemical process and subjected to a silane treatment to improve its compatibility with the vinyl ester matrix. The composites were fabricated using a 350cps viscosity vinyl ester resin, reinforced with 40 vol% pineapple fiber mats and varying percentages (0.5, 1, 2 and 4 vol%) of silane-treated cellulose. Among the composites, specimen VP3, containing 2 vol% silane-treated cellulose, demonstrated superior performance across all tested properties. It achieved a tensile strength of 142 MPa, a compression strength of 221 MPa and a flexural strength of 242 MPa, indicating optimal reinforcement. VP3 also showed the highest fatigue life, with 44,000 cycles at 30% UTS, and exhibited the lowest creep strain, indicating excellent resistance to time-dependent deformation. Thermally, VP3 exhibited a TG % of 95% and a degradation temperature of 410 °C, reflecting enhanced thermal stability. The dynamic mechanical analysis revealed a storage modulus of 6.1 GPa and a low loss factor of 0.65, indicating minimal energy dissipation and superior mechanical performance. The silane treatment played a crucial role in improving fiber–matrix adhesion, leading to better load transfer, reduced internal friction and enhanced overall properties. SEM analysis supported these findings by highlighting the presence of fiber breakage and pullout in specimens with lower silane-treated cellulose content, while VP3 showed minimal defects, confirming the effectiveness of the silane treatment and uniform filler dispersion. This study concludes that the optimized combination of pineapple fiber and silane-treated cellulose in VP3 offers the best balance of mechanical, thermal and viscoelastic properties, making it a promising material for advanced composite applications.

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来源期刊
Polymer Bulletin
Polymer Bulletin 化学-高分子科学
CiteScore
6.00
自引率
6.20%
发文量
0
审稿时长
5.5 months
期刊介绍: "Polymer Bulletin" is a comprehensive academic journal on polymer science founded in 1988. It was founded under the initiative of the late Mr. Wang Baoren, a famous Chinese chemist and educator. This journal is co-sponsored by the Chinese Chemical Society, the Institute of Chemistry, and the Chinese Academy of Sciences and is supervised by the China Association for Science and Technology. It is a core journal and is publicly distributed at home and abroad. "Polymer Bulletin" is a monthly magazine with multiple columns, including a project application guide, outlook, review, research papers, highlight reviews, polymer education and teaching, information sharing, interviews, polymer science popularization, etc. The journal is included in the CSCD Chinese Science Citation Database. It serves as the source journal for Chinese scientific and technological paper statistics and the source journal of Peking University's "Overview of Chinese Core Journals."
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