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A kinetic modeling study of high temperature chemistry of n-pentanol

机译:正戊醇高温化学的动力学建模研究

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With increasing environmental deterioration and energy demand, studies on new alternative fuels have been attracting more attention. N-pentanol is a five carbon, straight-chain alcohol, which can be produced through natural microbial fermentation and/or engineered microorganisms. It has many advantages over lower carbon alcohols, including higher energy density, lower vapor pressure and better fuel compatibility. In this study, a detailed reaction mechanism of n-pentanol, on the basis of a previously proposed n-butanol mechanism, is generated using the open-source software Reaction Mechanism Generator (RMG). High temperature chemistry of the mechanism was validated against recently published laminar flame speeds and ignition delays. Encouraging results between simulations and experiments were observed under most conditions. Simulations were also conducted using a recently developed n-pentanol oxidation mechanism (NUI model) by Heufer et al. For lean mixtures, the two mechanisms show similar results, while the RMG model yields better predictions for rich mixtures and at an elevated pressure. Reaction pathways and sensitivity analysis reveal the key differences between the two mechanisms in terms of intermediates formed and fuel consumption.
机译:随着环境恶化和能源需求的增加,新替代燃料的研究一直在吸引更多的关注。 N-戊醇是五种碳,直链醇,可通过自然微生物发酵和/或工程微生物生产。它在低级碳醇方面具有许多优点,包括更高的能量密度,较低的蒸气压和更好的燃料相容性。在该研究中,使用开源软件反应机构发生器(RMG)产生基于先前提出的正丁醇机制的N-戊醇的详细反应机理。验证了该机制的高温化学,验证了最近公布的层状火焰速度和点火延迟。在大多数条件下观察到模拟和实验之间的令人鼓舞的结果。也使用Heufer等人使用最近开发的正戊醇氧化机制(NUI模型)进行模拟。对于瘦混合物,两种机制显示了类似的结果,而RMG模型会产生更好的富含混合物和升高的压力预测。反应途径和敏感性分析揭示了两种机制之间的关键差异,其中间体形成和燃料消耗。

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