Li Wenxiang, Ye Ping, Guo Changping, Zhu Wenkun, Jin Dayong
Xi'an Modern Chemistry Research Institute Xi'an 710065 PR China
Sichuan Co-Innovation Center for New Energetic Materials, Southwest University of Science and Technology (SWUST) Mianyang 621010 PR China
RSC Adv. 2022 May 19;12(24):15329-15336. doi: 10.1039/d2ra01871c. eCollection 2022 May 17.
Solid propellants with high safety, excellent thermal decomposition, and green performance are hot and difficult research areas in aerospace. In this paper, AP@HNS (hexanitrostilbene) composites with core-shell structure were designed and prepared by an ultrasound-assisted method using polyurethane for the interfacial modification of ammonium perchlorate (AP). The results show that the AP@HNS composites have a complete and dense shell structure when the nano-HNS content of the shell layer is 15% or more, the synergistic decomposition effect between HNS and AP can advance the high-temperature decomposition peak of AP by 102.4 °C and increase the apparent heat release 2.55 times to 1388 J g, and HNS improves the energy of AP while reducing environmental pollution. The safety performance test shows that the nano-HNS with 15% mass content can increase the composite characteristic drop height to 32 cm and reduce the frictional susceptibility explosion probability to 77% (the of AP is 27 cm and the frictional susceptibility explosion probability is 95%). The insensitive shell layer HNS significantly improves the safety performance of AP through barrier and buffering effects. This technology is expected to provide new ideas for designing and preparing solid propellants with high energy, low susceptibility, and excellent thermal decomposition performance.
具有高安全性、优异热分解性能和绿色性能的固体推进剂是航空航天领域的研究热点和难点。本文采用超声辅助法,以聚氨酯对高氯酸铵(AP)进行界面改性,设计并制备了具有核壳结构的AP@HNS(六硝基芪)复合材料。结果表明,当壳层纳米HNS含量为15%及以上时,AP@HNS复合材料具有完整致密的壳结构,HNS与AP之间的协同分解效应可使AP的高温分解峰提前102.4℃,表观热释放量增加2.55倍至1388 J/g,且HNS在提高AP能量的同时降低了环境污染。安全性能测试表明,质量含量为15%的纳米HNS可使复合材料的特性落高增至32 cm,摩擦感度爆炸概率降至77%(AP的特性落高为27 cm,摩擦感度爆炸概率为95%)。具有钝感作用的壳层HNS通过阻隔和缓冲作用显著提高了AP的安全性能。该技术有望为设计制备高能、低感度、热分解性能优异的固体推进剂提供新思路。