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Modeling of three-way catalytic converter performance with exhaust mixtures from dithering natural gas-fueled engines

机译:用抖动天然气燃料发动机的排气混合物进行三元催化转化器性能的建模

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摘要

The behavior of a three-way catalytic converter (TWC) to treat the exhaust from a natural-gas fueled engine in fuel dithering conditions was evaluated by numerical simulation. A validated comprehensive and thermodynamically consistent surface reaction mechanism was utilized to model the natural gas engine exhaust conversion in the TWC at dithering conditions. The mechanism was implemented in a tank-in-series model to study the TWC behavior while air to fuel ratio was cyclically varied (dithering conditions). The simulation results were evaluated by comparison with data collected from a TWC operated at dithering conditions. The microkinetic reaction model predicted the post catalyst total hydrocarbon (THC), NO and CO concentrations well when 5 reaction steps out of 115 elementary steps were modified. Both simulations and experiments showed that TWC window widened in the dithering conditions, particularly dithering yielded improved NO conversion as compared to steady state operation at higher air to fuel ratios. Simulations showed that this was due to a higher number of surface vacancies with dithering that improved NO adsorption and surface reaction. Both dithering parameter including amplitude and frequency was modeled and the results indicated there is an optimal dithering amplitude to achieve lower exhaust emission, larger dithering amplitude decreased the THC conversion because the air fuel ratio shifted to the fuel rich side. Simulations indicated that the dithering frequency did not noticeably impact the exhaust conversion simply because the transition time is relative short.
机译:通过数值模拟评估三元催化转化器(TWC)从燃料抖动条件下处理废气的排气的行为。经过验证的综合和热力学一致的表面反应机理用于在抖动条件下模拟TWC中的天然气发动机排气转换。该机制在罐中模型中实施,以研究TWC行为,而燃料比率循环变化(抖动条件)。通过与在抖动条件下的TWC中收集的数据进行比较来评估模拟结果。微酮反应模型预测后催化剂总烃(THC),NO和CO浓度良好,当改变了115个基本步骤的5个反应步骤时。两者的模拟和实验表明,与较高空气的稳态操作相比,在抖动条件下扩大到抖动条件下,特别是抖动的TWC窗口不会改善转换。模拟表明,这是由于腹水抖动的较高的表面空位,可改善无吸附和表面反应。包括幅度和频率包括幅度和频率的抖动参数,结果表明存在最佳的抖动幅度以实现较低的排气,较大的抖动幅度降低了THC转换,因为空燃比移至富燃料侧。模拟表明,由于转变时间相对短,抖动频率并不明显地影响排气转换。

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