Wang Yi, Luo Tingting, Song Xiaolan, Li Fengsheng
School of Materials Science and Engineering and School of Environment and Safety Engineering, North University of China, Taiyuan 030051, China.
School of Chemical Engineering, Nanjing University of Science and Technology, Nanjing 210094, China.
ACS Omega. 2019 Aug 22;4(10):14261-14271. doi: 10.1021/acsomega.9b01909. eCollection 2019 Sep 3.
In this work, novel three-dimensional nitrocellulose/glycidyl azide polymer/submicron-2,2', 4,4', 6,6'-hexanitro-stilbene (NC/GAP/submicron-HNS) composite fibers were prepared by the electrospinning method. As-prepared NC/GAP/submicron-HNS fibers were continuous and possessed a large specific surface area. The structure of fibers was characterized by energy-dispersive X-ray, X-ray photoelectron spectroscopy, X-ray diffraction, and Fourier transform infrared spectroscopy (IR). The results showed that HNS submicron particles were uniformly loaded on the surface of NC/GAP fibers and incorporated with it. Thermal analyses were performed. Such NC/GAP/submicron-HNS fibers showed a low activation energy of 204 kJ·mol and large rate constant of 1.74 s, indicating high reactivity and fast reaction rate. The result of TG-IR analysis revealed that the main decomposition products of NC/GAP/submicron-HNS were CO, CO, HO, NO, few NO, and fragments such as -CHO- and -CH-, which were low-signature gases. An evaluation on the energy performance disclosed that the standard specific impulse ( ) of NC/GAP/submicron-HNS fibers was 2032 N·s·kg, which was higher than 2014 N·s·kg of NC/GAP. This meant the addition of HNS submicron particles to the NC/GAP fiber was favorable to the improvement of energy performance. Additionally, introduction of submicron-HNS made the energetic fibers becoming very insensitive to impact action. It was expected that as-prepared NC/GAP/submicron-HNS membranes were promising materials applied for solid rocket propellant.
在本工作中,通过静电纺丝法制备了新型三维硝化纤维素/缩水甘油叠氮聚合物/亚微米级2,2',4,4',6,6'-六硝基芪(NC/GAP/亚微米级HNS)复合纤维。所制备的NC/GAP/亚微米级HNS纤维连续且具有较大的比表面积。采用能量色散X射线、X射线光电子能谱、X射线衍射和傅里叶变换红外光谱(IR)对纤维结构进行了表征。结果表明,HNS亚微米颗粒均匀负载在NC/GAP纤维表面并与之结合。进行了热分析。此类NC/GAP/亚微米级HNS纤维显示出204 kJ·mol的低活化能和1.74 s的大速率常数,表明其具有高反应活性和快速反应速率。TG-IR分析结果表明,NC/GAP/亚微米级HNS的主要分解产物为CO、CO₂、H₂O、NO、少量NO₂以及诸如-CHO-和-CH-等碎片,这些都是低特征气体。对能量性能的评估表明,NC/GAP/亚微米级HNS纤维的标准比冲(Isp)为2032 N·s·kg⁻¹,高于NC/GAP的2014 N·s·kg⁻¹。这意味着向NC/GAP纤维中添加HNS亚微米颗粒有利于能量性能的提高。此外,亚微米级HNS的引入使含能纤维对冲击作用变得非常不敏感。预期所制备的NC/GAP/亚微米级HNS膜是用于固体火箭推进剂的有前途的材料。