首页> 外文会议>ASME Turbo Expo vol.2; 20050606-09; Reno-Tahoe,NV(US) >DEVELOPMENT OF DETAILED KINETIC MECHANISM TO STUDY LOW TEMPERATURE IGNITION PHENOMENON OF KEROSENE
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DEVELOPMENT OF DETAILED KINETIC MECHANISM TO STUDY LOW TEMPERATURE IGNITION PHENOMENON OF KEROSENE

机译:研究煤油低温点火现象的详细动力学机理的发展

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The objective of this work is to develop a detailed kinetic mechanism for low temperature kerosene oxidation, which is essential to predict premature auto-ignition of liquid fuels in gas turbines and cool flame behavior in hydrocarbon reformers for fuel cells. Kerosene, a fractional distillate of petroleum known by its generic term, is comprised of a wide range of aviation fuel grades such as Jet A, Jet-4, JP-8 etc, with a chemical composition varying from higher order n-alkanes to complex aromatics. Thus, developing a detailed kinetic mechanism to represent actual kerosene is not only cumbersome but also computationally intensive to implement. Therefore, very often a surrogate mixture with known chemical composition is devised to study kerosene oxidation. In this work, a hierarchical structure of the kerosene mechanism with approximately 1400 reactions of 550 species is developed using a surrogate mixture of n-decane, n-propylcyclohexane and n-propylbenzene to represent major components of kerosene, namely n-alkanes, cyclo-alkanes and aromatics, respectively. Since a major portion of the kerosene consists of very reactive n-alkanes rather than the less reactive ring structures, the low temperature oxidation kinetics is predominantly dictated by n-alkanes. Thus, the modeling effort is mainly focused on developing a low temperature mechanism for n-decane. The low-temperature oxidation of the individual fuel of the surrogate mixture, especially n-decane, was fairly well-characterized experimentally in shock-tubes and flow-reactors, and hence, the mechanism is validated against the available experimental measurements. With the objective of achieving a more comprehensive mechanism, the model validation is extended to include target data for wide range of conditions including high pressure and high temperature experimental data available in the literature. The model predictions of the kerosene mechanism were compared to the available experimental data on ignition delay time as well as the reactivity species profiles of different aviation grade fuels obtained in flow reactors. The predictions of the kerosene mechanism agree with the experimental data fairly well especially at low to intermediate temperature regimes. A sensitivity analysis was performed to identify the rate-limiting steps at low, intermediate and high temperatures. It was observed that reactions involving ketohydroperoxides and hydrogen-peroxides are the most important reactions at low and intermediate temperatures, respectively.
机译:这项工作的目的是开发一种详细的低温煤油氧化动力学机制,这对于预测燃气轮机中液体燃料的过早自燃以及燃料电池烃重整器中的冷焰行为至关重要。煤油是石油的馏分油,以其通称而闻名,它由多种航空燃料等级组成,例如Jet A,Jet-4,JP-8等,其化学成分从高阶正构烷烃到复杂芳香剂。因此,开发详细的动力学机制来表示实际的煤油不仅麻烦而且实现起来计算量大。因此,通常设计具有已知化学组成的替代混合物来研究煤油氧化。在这项工作中,使用正癸烷,正丙基环己烷和正丙基苯的替代混合物代表煤油的主要成分,即正构烷烃,环戊烷,开发了大约550种反应的1400次反应的煤油机理的分层结构。烷烃和芳烃。由于煤油的大部分由反应性很强的正构烷烃组成,而不是由反应性较低的环结构组成,因此低温氧化动力学主要由正构烷烃决定。因此,建模工作主要集中在开发正癸烷的低温机理上。在冲击管和流动反应器中,替代混合物(尤其是正癸烷)的单个燃料的低温氧化在实验上已得到很好的表征,因此,该机理已针对现有的实验测量进行了验证。为了获得更全面的机制,模型验证扩展到包括广泛条件下的目标数据,这些条件包括文献中提供的高压和高温实验数据。将煤油机理的模型预测结果与有关点火延迟时间的现有实验数据以及在流动反应堆中获得的不同航空级燃料的反应物种分布进行了比较。煤油机理的预测与实验数据相当吻合,尤其是在中低温度范围内。进行了敏感性分析,以确定在低温,中温和高温下的限速步骤。据观察,涉及酮氢过氧化物和氢过氧化物的反应分别在低温和​​中温下是最重要的反应。

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