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Aftertreatment catalyst design for the New DaimlerChrysler supercharged 4-cylinder engine with direct gasoline injection

机译:新型Daimlerchrysler增压4缸发动机的后处理催化剂设计,直接汽油喷射

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In order to meet the increasingly more stringent European emission levels (EURO IV), new strategies for the exhaust gas aftertreatment are required. The most promising technique developed in recent years, especially for NO{sub}x conversion in lean exhaust gases, is the so-called NO{sub}x storage catalyst. The NO{sub}x storage technology achieves a high level of NO{sub}x conversion by storing nitrogen oxides reversibly as nitrates during lean operating conditions, while the periodic regeneration of the NO{sub}x storage components takes place under rich, i.e., under reducing conditions. In order to take full advantage of the fuel savings over the entire life-time of the vehicle, the most important task for the car and the catalyst manufacturers is the application and improvement of the thermal aging stability of this catalyst technology. The present paper focuses on the application of a NO{sub}x storage catalyst system on a new supercharged 4-cylinder engine with direct gasoline injection and also on the progress of NO{sub}x storage catalysts' development. On the basis of model gas tests and detailed studies at the engine test bench different NO{sub}x storage catalyst generations are compared. The key criteria to evaluate the different catalyst generations are on one hand the thermal aging stability and on the other hand the NO{sub}x storage capacity as a function of temperature under dynamic engine operating. Both, the model gas tests as well as the tests at the engine bench show that the new NO{sub}x storage technology possesses a notable improved stability with respect to thermal stress and also that the NO{sub}x storage window has been extended in the higher temperature range. Due to an intelligent combination of active components the improvement of the NO{sub}x conversion was achieved without any loss in the overall behavior of the catalyst. The temperature for a complete desulfation of the new catalyst generation is in the range of 600°C which is comparable to commercial NO{sub}x storage catalysts. Under oxidizing conditions as well as during the NO{sub}x regeneration phases the hydrocarbon oxidation activity remains at a high level.
机译:为了满足欧洲越来越严格的欧洲排放水平(EURO IV),需要新的废气后处理的新策略。近年来开发的最有前途的技术,特别是对于贫废气中的NO {Sub} X转换,是所谓的No {Sub} X存储催化剂。的NO {副} x存储技术,通过可逆地存储氮氧化物作为期间的稀空燃比运转条件下,硝酸盐达到NO {子} x转化的较高水平,而NO {副} x储存组分的周期性再生需要下丰富的,即发生,在减少条件下。为了在车辆的整个生命时间采取节省燃料的充分利用,对于汽车最重要的任务和催化剂制造商是应用程序,该催化剂技术的热老化稳定性的提高。本文重点介绍了在具有直接汽油喷射的新增压4缸发动机上的NO {Sub} X储存催化剂系统的应用,以及NO {Sub} X储存催化剂的开发的进展。基于模型气体测试和发动机测试台的详细研究不同,没有比较{Sub} X存储催化剂代。评估不同催化剂代的关键标准是一方面是热老化稳定性,另一方面,在动态发动机运行下的温度下,没有{Sub} X存储容量。两者都是模型气体测试以及发动机板凳上的测试表明,新的no {sub} x存储技术对热应力具有显着的提高稳定性,并且还扩展了no {sub} x存储窗口在较高的温度范围内。由于活性成分的智能组合,实现了NO {Sub} X转化的改进而不在催化剂的整体行为中的任何损失。完全脱硫的新催化剂产生的温度在600℃的范围内,其与商业NO {SUB} X储存催化剂相当。在氧化条件下以及在NO {亚} X再生期间,烃氧化活性保持高水平。

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