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Sensitivity of Three-Way Catalyst Light-Off Temperature to Air-Fuel Ratio

机译:三效催化剂起燃温度对空燃比的敏感性

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The operating conditions of the automotive three-way catalyst (TWC) are characterized by continuous variation of the air-fuel ratio (λ) that determines the composition of the exhaust supplied to the catalyst. It is well known that the ability of the TWC to simultaneously catalyze reduction of NO~(x)and oxidation of CO and hydrocarbons is sensitive to the air-fuel ratio. In efforts to formulate improved TWCs with greater activity at lower temperatures, the impact of air-fuel ratio on light-off temperature must therefore be considered. This paper reports an investigation of the impact of air-fuel ratio on the temperatures at which representative exhaust species in a simulated exhaust mixture reach 90% conversion (T90) over a family of rhodium-based model catalysts, with focus on the performance of a recently developed catalyst comprising rhodium supported on titania-modified alumina with exceptional light-off performance. Over a range of air-fuel ratios 0.977 < λ < 1.005, the T90 for CO is nearly insensitive to λ; the T90 for NO is constant for λ   200 °C between 0.995 < λ   1.001; and the T90s for representative hydrocarbons ethylene, propylene, and propane decrease by more than 100 °C between 0.977 < λ < 0.995, then increase again by 30 °C (propylene) to 180 °C (propane) between 0.998 < λ < 1.001. These dramatic shifts in T90 over a small range of air-fuel ratio are attributed to facile conversion of CO and olefins by oxidation, facile conversion of propane by steam reforming, and inhibition of propane steam reforming by both oxygen and CO. Balancing these factors leads to optimal conversion of all exhaust components at an air-fuel ratio λ ~ 0.995.
机译:汽车三效催化剂(TWC)的运行条件的特征在于空燃比(λ)的连续变化,该变化决定了提供给催化剂的废气的成分。众所周知,TWC同时催化NO_(x)的还原以及CO和碳氢化合物的氧化的能力对空燃比敏感。为了努力在较低的温度下配制具有更高活性的改良型TWC,必须考虑空燃比对起燃温度的影响。本文报告了对空燃比对温度的影响的研究,该温度对一组铑基模型催化剂上模拟排气混合物中的代表性排气物质达到90%转化率(T90)的影响,重点是最近开发的催化剂,它包含负载在二氧化钛改性的氧化铝上的铑,具有出色的起燃性能。在0.977 <λ<1.005的空燃比范围内,CO的T90对λ几乎不敏感; NO的T90在200°C时在0.995 <λ1.001之间恒定;代表碳氢化合物乙烯,丙烯和丙烷的T90s在0.977 <λ<0.995之间下降超过100°C,然后在0.998 <λ<1.001之间再次上升30°C(丙烯)到180°C(丙烷)。在较小的空燃比范围内,T90的剧烈变化归因于通过氧化实现的CO和烯烃的便捷转化,通过蒸汽重整的丙烷的便捷转化以及氧气和CO的丙烷蒸汽重整的抑制。在空燃比λ〜0.995时所有排气成分的最佳转化率。

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