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Advanced Catalyst Solutions for Hydrocarbon Emissions Control During Rich Operation of Lean NOx Trap Systems

机译:贫NOx捕集阱系统富油运行期间用于碳氢化合物排放控制的高级催化剂解决方案

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The operation of NOx Adsorber catalysts (NAC), also often referred to as Lean NOx Trap catalysts or NOx Storage-reduction catalysts, entails frequent periodic NOx regeneration events. These are accomplished by creating a net reducing, fuel-rich environment in the exhaust. The reduction of hydrocarbon emissions which occur during such fuel-rich events is challenging, due to the oxygen-deficient environment. In order to overcome this limitation, two possibilities exist: (i) oxygen can be stored during lean phase, to be used for hydrocarbon slip oxidation in the subsequent rich phase, or (ii) unreacted hydrocarbons can be trapped during the rich phase and oxidized during the following lean phase. In this work, two groups of catalytic solutions were developed and evaluated for hydrocarbon emission control based on these approaches: an Oxygen Storage Compound (OSC) based catalyst and zeolite-based hydrocarbon trap catalyst.The experimental evaluation of these two approaches included several stages. The initial concept demonstration was focused on comparing powder samples against a reference oxidation catalyst, using a simplified laboratory screening protocol. Following that, a series of monolith-coated samples with various levels of precious metal loading were studied in-depth using a set of cyclic and steady-state bench-reactor performance tests. These tests were targeted at characterizing the hydrocarbon slip reduction performance, as well as understanding the details of their behavior, in order to guide their potential practical application. Finally, the developed catalyst solutions were tested on engine, including a more detailed study of the precious metal loading level impact on the hydrocarbon slip control.Both the OSC-based and zeolite-based catalyst formulations demonstrated excellent rich hydrocarbon slip control performance. The OSC-based catalysts performed better at higher temperatures, due to increased dynamic availability of stored oxygen; on the other hand, zeolite-based catalysts performance was less dependent on the temperature, due to efficient hydrocarbon trapping. The resulting understanding enabled the development of advanced hydrocarbon slip control system with reduced precious metal loading.
机译:NOx Adsorber催化剂(NAC)(通常也称为贫NOx捕集催化剂)或NOx储存还原催化剂的运行需要频繁的周期性NOx再生事件。这些是通过在废气中形成净减少,富油的环境来实现的。由于缺氧的环境,减少在这种富含燃料的事件期间发生的碳氢化合物排放是具有挑战性的。为了克服此限制,存在两种可能性:(i)氧气可以在稀相中存储,用于随后的浓相中的碳氢化合物滑脱氧化,或(ii)未反应的碳氢化合物可以在浓相中被捕集并被氧化在接下来的瘦肉阶段。在这项工作中,开发了两组催化溶液并基于这些方法进行了碳氢化合物排放控制的评估:基于储氧化合物(OSC)的催化剂和基于沸石的烃捕集催化剂。这两种方法的实验评估包括几个阶段。最初的概念演示着重于使用简化的实验室筛选方案将粉末样品与参考氧化催化剂进行比较。然后,使用一组循环和稳态工作台反应器性能测试,深入研究了一系列具有各种贵金属负载量的整体涂层样品。这些测试旨在表征碳氢化合物的减滑性能,并了解其行为的详细信息,以指导其潜在的实际应用。最后,开发的催化剂溶液在发动机上进行了测试,包括更详细的研究了贵金属负载量对烃滑移控制的影响。基于OSC的和基于沸石的催化剂配方均显示出优异的富烃滑移控制性能。基于OSC的催化剂在较高的温度下表现更好,这是由于所存储的氧气的动态可用性提高;另一方面,由于有效的碳氢化合物捕集,沸石基催化剂的性能对温度的依赖性较小。最终的理解使得能够开发出减少了贵金属负载的高级碳氢化合物滑移控制系统。

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