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Experimental and Modeling Study of The Mutual Oxidation of N-pentane and NO at Low Temperature in a Jet Stirred Reactor

机译:射流搅拌反应器中低温互氧化互氧化的实验和建模研究

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The mutual oxidation of n-pentane and nitric oxide (NO) at 500-800K has been studied at the fuel lean condition (Φ> = 0.5) in an atmospheric jet stirred reactor (JSR). The concentration of NO in the mixture is varied between 0 to 1070ppm. Key oxidation species, like n-pentane, O_2, CO, CO_2, NO, NO_2, CH_2O, C_2H_4, and CH_3CHO are in-situ quantified by using an electron impact molecular beam mass spectrometer (MBMS), a micro-gas chromatograph (μ-GC), and a dual-modulation faraday rotation spectrometer (DM-FRS) simultaneously. The experimental results show that NO has different sensitization characteristics on n-pentane oxidation in three different temperature windows. NO addition delays the onset temperature of low temperature oxidation of n-pentane between 550-650K, weakens the negative temperature coefficient (NTC) behavior in the NTC region (650-750K), but accelerates the high temperature oxidation to be in the intermediate temperature region (750-800K). Combined with a modified n-pentane mechanism (Bugler et al. 2017) and an newly developed NO_x sub-mechanism (Zhao et al. 2019 In press), a new n-pentane/NO, kinetic model is developed in this paper to predict the experimental results. It shows that the three distinct temperature-dependent characteristics of NO sensitization effects are properly captured using the present model.
机译:在大气喷射搅拌反应器(JSR)中,已经在燃料稀释条件(φ> = 0.5)中研究了500-800K的正戊烷和一氧化氮(NO)的互氧化。混合物中不含的浓度在0至1070ppm之间变化。键氧化物种,如正戊烷,O_2,CO,CO_2,NO,NO_2,CH_2O,C_2H_4和CH_3CHO通过使用电子冲击分子束质谱仪(MBMS),微气相色谱仪(μ -GC)和双调制法拉第旋转光谱仪(DM-FRS)同时。实验结果表明,三种不同温度窗口中N-戊烷氧化不具有不同的敏化特性。延迟延迟延迟低温氧化正戊烷在550-650K之间,削弱NTC区域(650-750K)中的负温度系数(NTC)行为,但加速高温氧化在中间温度地区(750-800K)。结合改进的N-戊烷机制(Bugler等,2017)和新开发的No_X子机制(Zhao等,在印刷机中),新的N-戊烷/否,动力模型是在本文中开发的,以预测实验结果。它表明,使用本模型适当地捕获无敏化效果的三个不同的温度依赖性特征。

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