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JP-10 combustion studied with shock tube experiments and modeled with automatic reaction mechanism generation

机译:Jp-10燃烧用激波管实验研究并用自动反应机制生成建模

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摘要

This work presents shock tube experiments and kinetic modeling efforts on the pyrolysis and combustion of JP-10. The experiments were performed at 6–8 atm using 2000 ppm of JP-10 over a temperature range of 1000–1600 K for pyrolysis and oxidation equivalence ratios from 0.14 to 1.0. This work distinguishes itself from previous studies as GC/MS was used to identify and quantify the products within the shocked samples, enabling the tracking of product yield dependence on equivalence ratio as well as identifying several new intermediates that form during JP-10’s decomposition. A detailed, comprehensive model of JP-10’s combustion and pyrolysis kinetics was constructed with the help of RMG, an open-source reaction mechanism generation software package. The resulting model, which includes 691 species reacting in 15,518 reactions, was extensively validated against the shock tube experimental dataset as well as newly published flow tube pyrolysis data from Ghent. Most of the important rate coefficients were computed using quantum chemistry. The model succeeds in identifying all major pyrolysis and combustion products and captures key trends in the product distribution. Simulated ignition delays agree within a factor of 4 with most experimental ignition delay data gathered from literature. The presented experimental work and modeling efforts yield new insights on JP-10’s complex decomposition and oxidation chemistry and identify key pathways towards aromatics formation.
机译:这项工作介绍了对JP-10的热解和燃烧进行的冲击管实验和动力学建模。实验是在6-8个大气压下,在1000-1600 K的温度范围内,使用2000 ppm的JP-10进行的,热解和氧化当量比为0.14至1.0。这项工作与以往的研究不同,GC / MS被用于鉴定和量化受冲击样品中的产物,从而能够跟踪产物产量对当量比的依赖性,并鉴定在JP-10分解过程中形成的几种新中间体。借助开源反应机制生成软件包RMG,构建了JP-10燃烧和热解动力学的详细,全面模型。生成的模型包含691种物质,共进行15518次反应,并通过冲击管实验数据集以及来自根特的最新发布的流管热解数据进行了广泛验证。大多数重要的速率系数是使用量子化学计算的。该模型成功地识别了所有主要的热解和燃烧产物,并捕获了产物分布中的关键趋势。模拟点火延迟与文献中收集的大多数实验点火延迟数据相差约4倍。提出的实验工作和建模工作为JP-10的复杂分解和氧化化学提供了新见解,并确定了形成芳烃的关键途径。

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