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Measurements of Dielectric Properties of Condensed Phase Aluminized Composite Propellants

机译:凝聚相铝化复合推进剂介电性能的测量

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Advanced propellant combustion control technologies are required for progression of the solid propulsion field. Previous work has shown using propellants doped with alkali earth metals (e.g. sodium nitrate, NaNO_3), composite propellant flames can be made to have strong coupling with microwaves irradiation, and it has been demonstrated that using such a doping technique with sub-critical microwave excitation, the atmospheric burning rate of a composite solid propellant can be enhanced by 67%. Still, little literature exist on composite propellant condensed phase dielectric properties. In this study, the microwave properties of two aluminized ammonium perchlorate composite propellants being studied as candidates for microwave seeded plasma enhancement of propellant flames are considered. The dielectric properties of propellants are measured in the S-band between 2.3 and 2.65 GHz with an Anritsu Shockline vector network analyzer using the cavity perturbation technique. Using measured bulk propellant properties, finite difference models are developed to predict the field distribution within both a RF-modulated propellant strand combustion cavity and RF heating of the propellant utilizing COMSOL 5.1 Multiphysics to simulate conditions of propellants strand in a TE_(10n) mode cavity for an experiment in a continuous microwave cavity.
机译:推进固体推进场需要先进的推进剂燃烧控制技术。先前的工作表明,使用掺杂有碱土金属(例如硝酸钠,NaNO_3)的推进剂,可以使复合推进剂火焰与微波辐射形成强耦合,并且已经证明,使用这种掺杂技术和亚临界微波激发,复合固体推进剂的大气燃烧率可以提高67%。但是,关于复合推进剂凝聚相介电性能的文献很少。在这项研究中,考虑了两种铝化高氯酸铵复合推进剂的微波性能,这些推进剂被用作微波植入等离子体增强推进剂火焰的候选材料。推进剂的介电性能是使用Anritsu Shockline矢量网络分析仪使用腔体扰动技术在2.3至2.65 GHz的S波段内测量的。利用测得的整体推进剂特性,利用COMSOL 5.1多物理场模拟TE_(10n)模式空腔中的推进剂束条件,建立了有限差分模型,以预测RF调节的推进剂束燃烧腔和推进剂的RF加热中的场分布。用于连续微波腔中的实验。

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