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Estimation of Temperature and Velocity Uniformity of Exhaust Gases in Heavy Commercial Vehicle Exhaust System having SCR After Treatment Technology

机译:估计沉重商业车辆排气系统中废气的温度和速度均匀性及处理技术后SCR

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For meeting upcoming BS IV & BS V emission norms in Heavy Commercial Vehicles, most of the manufacturers are taking SCR after treatment route. Though SCR system is more complex and involves higher cost impact, an optimized SCR system can bring down the payback period to about one year due to improved fuel economy. For development of an SCR after treatment system, selection of a correct SCR catalyst and its position in the system is very important. NO_X conversion efficiency of catalyst depends on exhaust gas temperature at the catalyst and the velocity distribution over the face of the catalyst. Generally catalysts are evaluated for the conversion efficiency in engine test bed. In a drive to have a first-time-right solution, a CFD analysis was carried out considering the low and high flow rate conditions. CFD simulation models and the corresponding results were used as a predictive tool in the exhaust system development process. These simulations helped to evaluate design proposals before finalizing the design. Prototype exhaust system components were developed for the best design proposal considering exhaust gas temperature profile, velocity distribution, pressure drop, and conversion efficiency of coated and extruded catalysts. This approach significantly reduced the prototype development and evaluation time.
机译:对于在重型商用车辆中的即将到来的BS IV和BS V排放规范,大多数制造商正在服用治疗路线后服用SCR。虽然SCR系统更复杂并且涉及更高的成本影响,但由于燃油经济性改善,优化的SCR系统可以将投资回收期降至大约一年。为了在治疗系统后的SCR的开发,选择正确的SCR催化剂及其在系统中的位置非常重要。 NO_X催化剂的转化效率取决于催化剂的废气温度和催化剂面上的速度分布。通常在发动机试验台中进行转换效率评估催化剂。在具有第一右解的驱动器中,考虑低流速条件进行CFD分析。 CFD仿真模型和相应的结果被用作排气系统开发过程中的预测工具。这些模拟有助于在最终确定设计之前评估设计提案。考虑到废气温度曲线,速度分布,压降和涂覆催化剂的转化效率,开发了原型排气系统组件。这种方法显着降低了原型开发和评估时间。

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