Chen Keke, Wen Xiaomu, Li Guoping, Pang Siping, Luo Yunjun
School of Materials Science and Engineering, Beijing Institute of Technology Beijing 100081 China
Key Laboratory for Ministry of Education of High Energy Density Materials Beijing 100081 China.
RSC Adv. 2020 Aug 17;10(50):30150-30161. doi: 10.1039/d0ra02613a. eCollection 2020 Aug 10.
A new type of hydroxyl-terminal block copolymer (HTPE) binder with excellent mechanical properties was prepared using an preparation method. Compared with traditional HTPE binder preparation, this method involves relatively simple operations, which not only reduces costs, but also does not require a complicated synthesis process to prepare the HTPE prepolymer intermediate. Thus, it is expected to replace the binder for HTPE propellants. The mechanical properties, crosslinking density, hydrogen bonding, and thermal performances of the prepared HTPE binders were investigated through tensile testing, low-field nuclear magnetic resonance (LF-NMR), Fourier-transform infrared spectroscopy (FTIR), and differential scanning calorimetry (DSC) analysis. The ultimate tensile strength ( ) of the -prepared HTPE binder was 1.83 MPa, the fracture elongation ( ) was 371.61%, and the strength increased by 80% compared to the HTPE binders. The crosslink density ( ) decreased with an increasing content of PEG and/or TDI. The proportion of H-bonds formed by the imino groups increased with the content of PEG and TDI and reached 81.49% at PEG and TDI contents of 50% and 80%, respectively, indicating a positive correlation between the H-bonds and . Based on the statistical theory of elasticity, the integrity of the curing networks showed that the contents of PEG and TDI affected the integrity of the curing networks. The DSC data of the -prepared HTPE binder showed a lower glass transition temperature. Finally, compared to HTPE propellant, the strength and elongation of the -prepared HTPE propellant increased by 206% and 135%, respectively. This exciting result greatly enhances the feasibility of the HTPE preparation method.
采用一种制备方法制备了一种具有优异力学性能的新型羟基封端共聚物(HTPE)粘结剂。与传统的HTPE粘结剂制备方法相比,该方法操作相对简单,不仅降低了成本,而且制备HTPE预聚物中间体时不需要复杂的合成工艺。因此,有望取代HTPE推进剂的粘结剂。通过拉伸试验、低场核磁共振(LF-NMR)、傅里叶变换红外光谱(FTIR)和差示扫描量热法(DSC)分析,研究了所制备的HTPE粘结剂的力学性能、交联密度、氢键和热性能。所制备的HTPE粘结剂的极限拉伸强度( )为1.83 MPa,断裂伸长率( )为371.61%,与HTPE粘结剂相比强度提高了80%。交联密度( )随着PEG和/或TDI含量的增加而降低。亚氨基形成的氢键比例随着PEG和TDI含量的增加而增加,在PEG和TDI含量分别为50%和80%时达到81.49%,表明氢键与 之间存在正相关。基于弹性统计理论,固化网络的完整性表明PEG和TDI的含量影响固化网络的完整性。所制备的HTPE粘结剂的DSC数据显示出较低的玻璃化转变温度。最后,与HTPE推进剂相比,所制备的HTPE推进剂的强度和伸长率分别提高了206%和135%。这一令人兴奋的结果大大提高了HTPE制备方法的可行性。