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首页> 外文期刊>IEEE Transactions on Control Systems Technology >Optimal-Behavior-Based Dynamic Calibration of the Automotive Diesel Engine
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Optimal-Behavior-Based Dynamic Calibration of the Automotive Diesel Engine

机译:基于最优性能的汽车柴油机动态标定

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摘要

This paper presents a novel automotive engine management system (EMS) calibration methodology for rapid dynamometer test-bed data collection and mapping I.C. engine controllers with significant dynamic and transient performance requirements. This paper applies the methodology to an industrial state of the art WAVE-RT model of a 1.5 L Turbo EU6.1 Diesel engine acting as a virtual dynamometer based engine. The approach directly yields a feedforward controller in a nonlinear polynomial structure that can be either directly implemented in the EMS or converted into a dynamic or static lookup table format. The methodology is based on multistage black-box modeling and dynamic system optimization. The process can exploit the power of global constrained numerical optimization codes and use system identification techniques with dynamic design of experiments. The objective of the engine controller optimization is to improve the fuel economy while maintaining specified (legislated) limits on emissions and map smoothness for driveability. The key contribution is a novel approach to obtaining a feedforward dynamic calibration controller from the system identification of the computed optimal behavior. Model structure selection techniques are shown to be usefully employed to further improve the accuracy of the system identification and so enhance the control performance of the dynamic controllers. The results indicate that the dynamic calibration methodology leads to a considerably reduced requirement for testing time and an improvement of between 1.9% and 2.6% in fuel economy over extra urban driving cycle without violating the emission constraints compared with current steady-state model-based calibration methods.
机译:本文提出了一种新型的汽车发动机管理系统(EMS)校准方法,用于快速测功机测试台数据收集和制图I.C.具有重大动态和瞬态性能要求的发动机控制器。本文将这种方法应用于1.5 L Turbo EU6.1柴油发动机的工业级WAVE-RT模型,该模型用作基于虚拟测力计的发动机。该方法直接产生非线性多项式结构中的前馈控制器,该控制器可以直接在EMS中实现,也可以转换为动态或静态查找表格式。该方法基于多级黑箱建模和动态系统优化。该过程可以利用全局约束数值优化代码的功能,并使用具有动态设计实验功能的系统识别技术。发动机控制器优化的目的是提高燃油经济性,同时保持排放的指定(法规)限制和可驾驶性的地图平滑度。关键的贡献是一种从计算出的最佳行为的系统标识中获得前馈动态校准控制器的新颖方法。已显示模型结构选择技术可用于进一步提高系统识别的准确性,从而增强动态控制器的控制性能。结果表明,与当前的基于稳态模型的校准相比,动态校准方法可显着减少测试时间要求,并在不超出排放限制的前提下,在额外的城市驾驶循环中将燃油经济性提高1.9%至2.6%之间。方法。

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