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Skeletal mechanism generation with CSP and validation for premixed n-heptane flames

机译:使用CSP生成骨骼机制并验证预混正庚烷火焰

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An automated procedure has been previously developed to generate simplified skeletal reaction mechanisms for the combustion of n-heptane/air mixtures at equivalence ratios between 0.5 and 2.0 and different pressures. The algorithm is based on a Computational Singular Perturbation (CSP)-generated database of importance indices computed from homogeneous n-heptane/air ignition solutions. In this paper, we examine the accuracy of these simplified mechanisms when they are used for modeling laminar n-heptane/air premixed flames. The objective is to evaluate the accuracy of the simplified models when transport processes lead to local mixture compositions that are not necessarily part of the comprehensive homogeneous ignition databases. The detailed mechanism was developed by Curran et al. and involves 560 species and 2538 reactions. The smallest skeletal mechanism considered consists of 66 species and 326 reactions. We show that these skeletal mechanisms yield good agreement with the detailed model for premixed n-heptane flames, over a wide range of equivalence ratios and pressures, for global flame properties. They also exhibit good accuracy in predicting certain elements of internal flame structure, especially the profiles of temperature and major chemical species. On the other hand, we find larger errors in the concentrations of many minor/radical species, particularly in the region where low-temperature chemistry plays a significant role. We also observe that the low-temperature chemistry of n-heptane can play an important role at very lean or very rich mixtures, reaching these limits first at high pressure. This has implications to numerical simulations of non-premixed flames where these lean and rich regions occur naturally.
机译:先前已经开发出一种自动程序来生成简化的骨架反应机理,以使正庚烷/空气混合物在0.5至2.0的当量比和不同压力下燃烧。该算法基于由奇异正庚烷/空气点火溶液计算出的重要性指数由计算奇异摄动(CSP)生成的数据库。在本文中,我们检查了将这些简化的机制用于层流正庚烷/空气预混火焰建模时的准确性。目的是评估运输过程导致局部混合物成分(不一定是全面的均质点火数据库的一部分)时简化模型的准确性。详细的机制由Curran等人开发。涉及560种和2538个反应。所考虑的最小骨架机制包括66种和326个反应。我们表明,这些骨架机理与预混正庚烷火焰的详细模型在全局当量比和压力范围内具有很好的一致性。它们在预测内部火焰结构的某些元素(尤其是温度和主要化学物质的分布)方面也显示出良好的准确性。另一方面,我们发现许多次要/自由基类型的浓度存在较大的误差,尤其是在低温化学起重要作用的区域。我们还观察到正庚烷的低温化学作用在非常稀薄或非常丰富的混合物中可以发挥重要作用,在高压下首先达到这些极限。这对非预混火焰的数值模拟具有影响,在这些非预混火焰中,稀薄区域和富燃区域是自然发生的。

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