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Ignition of Hydrogen Peroxide with Gel Hydrocarbon Fuels

机译:凝胶状碳氢燃料点燃过氧化氢

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Experimental counterflow and impinging jet studies and modeling analysis of hypergolic hydrogen peroxide (H_2O_2) and gel hydrocarbon fuel/particle mixtures were conducted to characterize condensed phase reaction rates and ignition delay times. The mixtures consisted of n -dodecane, n -heptane, and kerosene containing fumed silica and sodium borohydride (NaBH_4) particles. Scanning electron microscopy, x-ray photoelectron spectroscopy, and simultaneous thermogravimetric and differential scanning calorimetry analysis of the NaBH_4 particles were performed to characterize particle size, size distribution, geometry, surface composition, and thermal decomposition. Liquid-phase counterflow experiments were used to derive a global rate constant for the condensed phase reaction between H_2O_2 and NaBH_4. Chemical kinetics calculations were performed using the condensed phase global reaction coupled with a detailed gas phase mechanism for hydrocarbon oxidation to phenomenologically study the ignition process. Shorter ignition delays were achieved when fuel flow was established before oxidizer injection. Ignition delay decreased with NaBH_4 addition until a limiting loading was achieved, after which ignition delay remained nearly constant. Elevating the reactant temperature reduced ignition delay, consistent with fuel volatility trends. Modeling results show that the ignition process relies upon the reaction between NaBH_4 and H_2O_2 to gasify and heat an ignition kernel to the H_2O_2/fuel mixture autoignition temperature.
机译:进行了实验性的逆流和撞击射流研究,以及过氧化氢(H_2O_2)和凝胶烃燃料/颗粒混合物的模型分析,以表征冷凝相反应速率和点火延迟时间。混合物由正十二烷,正庚烷和煤油组成,其中包含气相二氧化硅和硼氢化钠(NaBH_4)颗粒。进行了NaBH_4颗粒的扫描电子显微镜,X射线光电子能谱以及同时热重分析和差示扫描量热分析,以表征粒径,尺寸分布,几何形状,表面成分和热分解。液相逆流实验用于导出H_2O_2与NaBH_4之间的冷凝相反应的整体速率常数。使用凝聚相全局反应与详细的气相氧化烃机理相结合的现象学研究点火过程,进行了化学动力学计算。在氧化剂喷射之前建立燃料流时,点火延迟更短。添加NaBH_4可以降低点火延迟,直到达到极限载荷,此后点火延迟几乎保持恒定。升高反应物温度可减少点火延迟,这与燃料挥发性趋势一致。建模结果表明,点火过程依赖于NaBH_4与H_2O_2之间的反应,将点火核气化并加热到H_2O_2 /燃料混合物的自燃温度。

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