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Automotive engine control and hybrid systems: challenges and opportunities

机译:汽车发动机控制和混合动力系统:挑战与机遇

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The design of engine control systems has been traditionally carried out using a mix of heuristic techniques validated by simulation and prototyping using approximate average-value models. However, the ever increasing demands on passengers' comfort, safety, emissions, and fuel consumption imposed by car manufacturers and regulations call for more robust techniques and the use of cycle-accurate models. We argue that these models must be hybrid because of the combination of time-domain and event-based behaviors. We present a hybrid model of the engine in which both continuous and discrete time-domain as well as event-based phenomena are modeled in a separate but integrated manner. Based on this model, we formalize the specification of the overall engine control by defining a number of hybrid control problems. To cope with the difficulties arising in the design of hybrid controllers, a design methodology is proposed. This methodology consists of a relaxation of the hybrid problem by simplifying some of its components to obtain a solvable problem,and then deriving a solution to the original control problem by appropriately modifying the control law so obtained to take into consideration the original specifications and models. The effectiveness of this approach is illustrated on three challenging problems: fast force-transient control, cutoff control, and idle speed control.
机译:传统上,发动机控制系统的设计是使用启发式技术进行的,这些启发式技术已通过模拟和原型设计(使用近似平均值模型)进行了验证。但是,汽车制造商和法规对乘客的舒适度,安全性,排放量和燃料消耗的要求不断提高,这就要求采用更可靠的技术和使用周期精确的模型。我们认为,由于时域行为和基于事件的行为相结合,因此这些模型必须是混合的。我们提出了一种混合模型的引擎,其中连续和离散的时域以及基于事件的现象都以单独但集成的方式建模。基于此模型,我们通过定义许多混合动力控制问题来规范整个发动机控制的规范。为了解决混合控制器设计中出现的困难,提出了一种设计方法。该方法包括简化混合问题,方法是简化混合问题的某些部分以获得可解决的问题,然后通过适当修改控制律以考虑原始规格和模型来推导原始控制问题的解决方案。在三个具有挑战性的问题上说明了这种方法的有效性:快速的力瞬变控制,切断控制和怠速控制。

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