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Model-Based Control of Torque and Nitrogen Oxide Emissions in a Euro VI 3.0L Diesel Engine through Model-in-the-Loop

机译:欧元VI 3.0L柴油发动机型扭矩和氮氧化物排放的基于模型控制

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A model-based technique for the control of BMEP (Brake Mean Effective Pressure) and NOx (Nitrogen Oxide) emissions has been developed and then assessed on a FPT F1C Euro VI diesel engine for light-duty applications. The model-based technique requires the adoption of a predictive combustion model to simulate the heat release rate and BMEP, on the basis of the injection pattern, from which NOx emissions can be calculated. The heat release model is based on the accumulated fuel mass approach which needs as inputs the start of injection of the different pulses and the injected fuel mass quantities. The in-cylinder pressure is then simulated using a single-zone approach. The model-based controller defines the optimal values of SOI_(main) and q_(f,inj) that allow the desired targets of BMEP and NOx to be reached cycle-by-cycle. The controller has been developed and assessed by means of Model-in-the-Loop (MiL), by coupling a fast running engine model developed in GT-Power environment with the combustion controller developed in Simulink environment. Several load ramps for different engine speeds were simulated in MiL to verify the functionality of the controller. The activity was carried out within a research project in collaboration with FPT Industrial. It was shown that the developed algorithm has a good potential in controlling NOx emissions and BMEP and features real-time capability. Therefore, it is suitable for the subsequent implementation on the engine through rapid prototyping.
机译:已经开发了一种用于控制BMEP(制动平均有效压力)和NOx(氮氧化物)排放的模型技术,然后在FPT F1C Euro VI柴油发动机上进行评估,用于轻型应用。基于模型的技术需要采用预测燃烧模型,以基于注射模式来模拟热释放速率和BMEP,从中可以计算NOx排放。热释放模型基于累积的燃料质量方法,其需要输入不同脉冲的注射的开始和注入的燃料质量。然后使用单区域方法模拟缸内压力。基于模型的控制器定义了SOI_(MAIN)和Q_(F,RENG)的最佳值,允许逐个循环达到循环的BMEP和NOx的所需目标。通过耦合在GT-Power环境中开发的快速运行发动机模型,通过载入型号(MIL)开发和评估了控制器,通过在Simulink环境中开发的燃烧控制器。在MIL中模拟了用于不同发动机速度的几个负载斜坡以验证控制器的功能。该活动是与FPT工业合作的研究项目进行。结果表明,发达的算法在控制NOx排放和BMEP中具有良好的潜力,并具有实时能力。因此,它适用于随后通过快速原型设计对发动机的实现。

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