材料科学
复合材料
硅酮
硅橡胶
热解
环氧树脂
单体
胶粘剂
极限抗拉强度
热稳定性
聚合物
复合数
热的
天然橡胶
热保护
联苯
弹性体
聚合
硫化
混合材料
炭化
延伸率
碳纤维
制作
保温
碳纳米纤维
图层(电子)
双功能
分层(地质)
原位聚合
工作(物理)
艾氏冲击强度试验
作者
Yang Zhang,Shitian Han,Bojie Fu,Shuai Li,Ziwen Sun,Zhengguang Heng,Shuang Xia,Yang Chen,Liwei Yan,Mei Liang,Huawei Zou
标识
DOI:10.1021/acs.iecr.5c03410
摘要
Flexible thermal protection materials are an important component of thermal protection systems. In order to obtain flexible thermal protection materials with excellent mechanical strength, adhesive strength, and ablation resistance, a novel bifunctional biphenyl-type epoxy (MNE) monomer with two epoxy groups and vinyl groups was synthesized and utilized to construct interconnected C–Si hybrid interpenetrating networks in silicone rubber. Benefiting from the formation of C–Si hybrid IPNs and the incorporation of polar groups and biphenyl units, when the content of MNE was 20% (MNE-20), the tensile strength, elongation at break, and bonding strength of MNE-20 were 2.44 MPa, 179%, and 1.98 MPa, respectively, which were 510% improved, 56% improved, and 519% improved compared to those of the pure PDMS. Meanwhile, the mass ablation rate of MNE-20 decreased to 0.019 g/s, 53.66% improved compared to that of pure PDMS, because pyrolysis gases were released across a broad temperature range and the quality of the pyrolysis carbon layer was significantly improved. This work provided a new strategy to design high-performance ablation-resistant elastomers, and the prepared materials have broad applications in fields such as aerospace sealing materials and high-temperature protective coatings.
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