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通过构建三维网络用生物基酚醛树脂/二苯甲酰甲烷改性的新型疏水性丁基橡胶阻尼复合材料。

Novel hydrophobic butyl rubber damping composites modified with bio-based PF/DBA via the construction of a three-dimensional network.

作者信息

Hu Zhenguo, Chen Zeyu, Meng Fuliang, Zhang Yimiao, Jia Yufei, Fei Hongwei, Li Songjun, Yuan Xinhua

机构信息

School of Materials Science and Engineering, Jiangsu University, Zhenjiang, 212013, Jiangsu, China.

Changzhou Haoda Technology Co., Ltd., Changzhou, 213133, Jiangsu, China.

出版信息

Sci Rep. 2024 Feb 29;14(1):5007. doi: 10.1038/s41598-024-55823-x.

Abstract

It is of interest to develop wide-temperature domain damped hydrophobic materials. In this paper, we designed incorporating bio-based phenolic resin into the IIR matrix and introducing dibenzyl fork acetone (DBA) into the main chain structure with sodium hydroxide activation to construct three-dimensional network. In this paper, we designed incorporating bio-based phenolic resin into the IIR matrix and introducing dibenzyl fork acetone (DBA) into the main chain structure with sodium hydroxide activation to construct three-dimensional network. The added bio-based phenolic resin has reticulated structure blended with butyl rubber, combined with sodium hydride activation-modified IIR. The results show that sodium hydride activated modification of DBA is introduced into the main chain structure of IIR by infrared and H NMR analysis. The material hydrophobic is realized by the introduction of DBA with static water contact angle of 103.5°. The addition of 10phr lignin-based phenolic resin (LPF) is compatible with IIR, and the torque can reach 7.0 N-m. The tensile elongation of the modified butyl rubber composite can reach 2400% with tensile strength up to 11.43 MPa, while the damping factor can reach 0.37 even at 70 °C. The thermal stability of the composites is enhanced with mass retention rate of 28%. The bio-based PF/NaH activation-modified butyl rubber damping material has potential applications in damping hydrophobicity with wide temperature range.

摘要

开发宽温度域阻尼疏水材料具有重要意义。在本文中,我们设计将生物基酚醛树脂引入丁基橡胶(IIR)基体中,并通过氢氧化钠活化将二苄叉丙酮(DBA)引入主链结构以构建三维网络。在本文中,我们设计将生物基酚醛树脂引入IIR基体中,并通过氢氧化钠活化将二苄叉丙酮(DBA)引入主链结构以构建三维网络。添加的生物基酚醛树脂具有与丁基橡胶共混的网状结构,并与氢化钠活化改性的IIR相结合。结果表明,通过红外光谱和氢核磁共振分析,氢化钠活化改性的DBA被引入到IIR的主链结构中。通过引入DBA实现了材料的疏水性,其静态水接触角为103.5°。添加10份木质素基酚醛树脂(LPF)与IIR具有良好的相容性,扭矩可达7.0 N·m。改性丁基橡胶复合材料的拉伸伸长率可达2400%,拉伸强度高达11.43 MPa,而即使在70°C时阻尼因子也能达到0.37。复合材料的热稳定性得到增强,质量保留率为28%。生物基PF/NaH活化改性丁基橡胶阻尼材料在宽温度范围的阻尼疏水性方面具有潜在应用。

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