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Ignition Evaluation of Monopropellant Blends of HAN and Imidazole-Based Ionic Liquid Fuels

机译:HAN和咪唑基离子液体燃料单推进剂混合物的点火评估

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Potential dual-mode monopropellant/electrospray capable binary mixtures of hydroxyl ammonium nitrate with ionic liquid fuels |Bmim][NO_3] and [Emim][EtSO_4] are synthesized and tested for monopropellant ignition capability in a micro reactor setup. The setup is benchmarked using 30% hydrogen peroxide solution decomposed via silver catalyst. Results show similar trends, but variance in the quantitative data obtained in literature. A parametric study on the geometry of the sample holder that contains the catalyst material in the reactor shows a large variance leading to the conclusion that quantitative data may only be compared to the exact same geometry. Hydrazine decomposition was conducted on unsupported iridium catalyst. The same trends in terms of pressure rise rate during decomposition (~160 mbar/s) are obtained with unsupported catalyst, but at 100°C instead of room temperature for tests conducted on supported catalysts in literature. Two catalyst materials were tested with the novel propellants: rhenium and iridium. For the (Bmim][NO_3]]/HAN propellant, rhenium preheated to 160°C yielded a pressure slope of 26 mbar/s, compared to 14 mbar/s for iridium and 12 mbar/s for no catalyst at the same temperature. [Emim][EtSO_4]/HAN propellant shows slightly less activity at 160°C preheat temperature, yielding a pressure slope of 20 mbar/s, 4 mbar/s, and 2.5 mbar/s for injection onto rhenium, iridium, and the thermal plate, respectively. Final results indicate that desirable ignition performance may potentially be obtained by using a supported rhenium catalyst, since the pressure slopes obtained with the new propellants on unsupported catalyst lie between that of hydrazine on iridium at 50°C and room temperature.
机译:合成了硝酸铵羟基铵与离子液体燃料| Bmim] [NO_3]和[Emim] [EtSO_4]的可能的双模式单推进剂/电喷雾能力二元混合物,并在微型反应器中测试了单推进剂的点火能力。使用通过银催化剂分解的30%过氧化氢溶液对设置进行基准测试。结果显示出相似的趋势,但文献中获得的定量数据存在差异。对反应器中包含催化剂材料的样品架几何形状的参数研究显示出很大的差异,得出的结论是,定量数据只能与完全相同的几何形状进行比较。肼分解是在无载体铱催化剂上进行的。对于非负载型催化剂,在分解过程中的压力升高速率(〜160 mbar / s)方面具有相同的趋势,但是对于文献中对负载型催化剂进行的测试,是在100°C而不是室温下进行的。用新型推进剂测试了两种催化剂材料:rh和铱。对于(Bmim] [NO_3]] / HAN推进剂,预热到160°C的rh产生的压力斜率为26 mbar / s,相比之下,铱在相同温度下为14 mbar / s,无催化剂为12 mbar / s。 [Emim] [EtSO_4] / HAN推进剂在160°C的预热温度下表现出略低的活性,注射到rh,铱和热源上产生的压力斜率分别为20 mbar / s,4 mbar / s和2.5 mbar / s。最终结果表明,使用负载型catalyst催化剂可以潜在地获得理想的点火性能,因为在50℃和室温下,新的推进剂在负载型催化剂上获得的压力斜率介于肼上的肼压力下。

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