Patrick Lieber, Uwe Schaller and Thomas M. Klapötke
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引用次数: 0
Abstract
Glycidyl azide polymer (GAP) diol is an energetic binder with azide-functionalized side chains that offer a high enthalpy of formation. When formulated with ammonium dinitramide (ADN), GAP-based systems exhibit promising energetic and ballistic performance. However, GAP suffers from poor mechanical properties compared to inert binders such as hydroxyl-terminated polybutadiene (HTPB). As a result, plasticization is essential to lower the glass transition temperature of GAP. Energetic plasticizers can enhance both mechanical and energetic performance. In this study, we evaluated the compatibility of a novel nitrofurazanyl ether-based energetic plasticizer, NFPEG3N3, with key formulation components: GAP diol, HMX, Desmodur N100, and ADN. Compatibility was assessed using heat-flow microcalorimetry (HFMC) and thermogravimetry (TG), in accordance with STANAG 4147. NFPEG3N3 was found to be compatible with GAP diol, HMX, and N100. Although the NFPEG3N3–ADN mixture passed the HFMC (remaining below the 1% heat of explosion threshold), it failed TG, indicating potential concerns with long-term thermal stability. Performance calculations showed that replacing 15 wt% of GAP with NFPEG3N3 in a composite propellant increased the volume-specific impulse by 77 N s dm−3. Additionally, formulations incorporating NFPEG3N3 demonstrated a superior oxygen balance and higher volume-specific impulse compared to those using the widely adopted energetic plasticizer Bu-NENA.
缩水甘油酯叠氮聚合物(GAP)二醇是一种具有叠氮官能化侧链的高能结合剂,具有较高的生成焓。当与二硝酰胺铵(ADN)配制时,基于gap的系统表现出良好的能量和弹道性能。然而,与惰性粘合剂如端羟基聚丁二烯(HTPB)相比,GAP的机械性能较差。因此,塑化对于降低GAP的玻璃化转变温度至关重要。高能增塑剂可以提高机械性能和高能性能。在这项研究中,我们评估了一种新型硝基呋喃唑醚型高能增塑剂NFPEG3N3与关键配方成分:GAP二醇、HMX、Desmodur N100和ADN的相容性。采用热流微热量法(HFMC)和热重法(TG)评估相容性,符合STANAG 4147。NFPEG3N3与GAP二醇、HMX和N100均有相容性。尽管NFPEG3N3-ADN混合物通过了HFMC(低于1%爆炸热阈值),但TG未能通过,这表明长期热稳定性存在潜在问题。性能计算表明,用NFPEG3N3代替复合推进剂中15%的GAP,可使体积比冲量增加77 N s dm-3。此外,与使用广泛采用的高能增塑剂Bu-NENA相比,含有NFPEG3N3的配方表现出更好的氧平衡和更高的体积比脉冲。
期刊介绍:
An international, peer-reviewed journal covering all of the chemical sciences, including multidisciplinary and emerging areas. RSC Advances is a gold open access journal allowing researchers free access to research articles, and offering an affordable open access publishing option for authors around the world.