Superior Al90Mg10-Based Composite Fuel Grain for a Hybrid Rocket Engine

Zezhong Wang, Xin Lin, Junjie Pan, Jiaxiao Luo, Ruoyan Wang, Zelin Zhang, Xilong Yu
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Abstract

A paraffin-based fuel coupled with a nested helical matrix structure is a low-cost, high-performing alternative for hybrid rocket engine applications. The mechanical and combustion properties of the composite fuel grain can be enhanced by replacing the conventional polymer matrix with a metal skeleton. Three-dimensional printing was used to design an Al90Mg10 skeleton embedded with the paraffin-based fuel. The combustion characteristics of the composite fuel grain, including the ignition behavior, pressure oscillations, regression rate, and combustion efficiency, were comprehensively investigated. The properties of grains with and without a secondary perforated structure were compared. The flame structure and metal burning behavior of the hybrid rocket engine were monitored by endoscopic radioluminescence imaging, and the emission spectral characteristics of the plume were analyzed simultaneously. Good flammability makes the Al90Mg10 helical skeleton a promising candidate for enhancing the combustion performance of a paraffin-based fuel grain. The combustion process with rapid ignition was relatively stable, and no additional pressure oscillation frequency was observed. The metal-based composite fuel grains had a superior regression rate to that of a paraffin-based fuel grain (up to 100% higher using the perforated skeleton). Introducing a secondary structure into the fuel grain promoted the reaction and thereby enhanced the combustion performance.
用于混合火箭发动机的优质铝基 90Mg10 复合燃料晶粒
石蜡基燃料与嵌套螺旋矩阵结构相结合,是混合火箭发动机应用中一种低成本、高性能的替代品。用金属骨架取代传统的聚合物基体,可以增强复合燃料颗粒的机械和燃烧性能。利用三维打印技术设计了嵌入石蜡基燃料的 Al90Mg10 骨架。研究人员全面考察了复合燃料颗粒的燃烧特性,包括点火行为、压力振荡、回归率和燃烧效率。比较了有二次穿孔结构和无二次穿孔结构颗粒的特性。通过内窥镜放射线成像监测了混合火箭发动机的火焰结构和金属燃烧行为,并同时分析了烟羽的发射光谱特征。良好的可燃性使 Al90Mg10 螺旋骨架成为增强石蜡基燃料颗粒燃烧性能的理想候选材料。快速点火的燃烧过程相对稳定,没有观察到额外的压力振荡频率。金属基复合燃料颗粒的回归率优于石蜡基燃料颗粒(使用穿孔骨架可提高 100%)。在燃料颗粒中引入二级结构可促进反应,从而提高燃烧性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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