Constrained control of Homogeneous Charge Compression Ignition (HCCI) engines

C. Chiang, Chiang Chen
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引用次数: 14

Abstract

Homogeneous Charge Compression Ignition (HCCI) engines provide a possible solution for affordable, efficient and clean-burning power sources for either stationary power generator or advanced vehicles. In fact, HCCI engines integrate the advantages of both the spark ignition (SI) and compression ignition (CI) engines: (i) high fuel efficiency resulting from high compression ratio and rapid heat release and (ii) low NOx and low particulate matter (PM) emissions due to low cylinder peak temperature. Control of the HCCI engine, however, is difficult since its ignition cannot be directly actuated. The autoignition timing of HCCI combustion is determined by the cylinder charge conditions, rather than the spark timing or the fuel injection timing that are used to initiate combustion in SI and CI engines, respectively. Instead, controlled autoignition requires regulation of the charge properties, especially charge temperature, as demonstrated by many experimental results. Moreover, in order to realize the HCCI technology, several constraints in the system need to be considered. First, the combustion rate or cylinder pressure gradient should be constrained to avoid knocking. Since point-wise in time constraints in the combustion rate is needed constrained control will be necessary for the fuel and rebreathing lift commands. Second, the actuator constrains such as the limit range of the valve lift should also be explicitly take into account. For the purpose of model-based control development, we intend to first develop a HCCI engine model by extending a single cylinder HCCI engine model. The existence of a physics-based engine model, pointwise-in-time constraints and multiple actuators motivate the application of model-based optimization-control approaches such as Model Predictive Control (MPC). The model is used to predict the behavior of the system over a future horizon and an optimization-based methodology ensures optimal performance and satisfaction of constraints.
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均匀装药压缩点火(HCCI)发动机的约束控制
均质电荷压缩点火(HCCI)发动机为固定式发电机或先进车辆提供了一种经济、高效、清洁燃烧的动力源。事实上,HCCI发动机综合了火花点火(SI)和压缩点火(CI)发动机的优点:(1)高压缩比和快速放热带来的高燃油效率;(2)低汽缸峰值温度带来的低氮氧化物和低颗粒物(PM)排放。然而,控制HCCI发动机是困难的,因为它的点火不能直接启动。HCCI燃烧的自燃正时是由气缸充电条件决定的,而不是由SI和CI发动机分别用于启动燃烧的火花正时或燃油喷射正时决定的。相反,控制自燃需要调节电荷性质,特别是电荷温度,正如许多实验结果所证明的那样。此外,为了实现HCCI技术,需要考虑系统中的几个约束条件。首先,应限制燃烧速率或气缸压力梯度,以避免爆震。由于需要对燃烧速率进行逐点的时间约束,因此必须对燃料和再呼吸升力命令进行约束控制。其次,还应明确考虑执行机构的约束,如阀门扬程的极限范围。为了基于模型的控制开发,我们打算首先通过扩展单缸HCCI发动机模型来开发HCCI发动机模型。基于物理的发动机模型、时点约束和多执行器的存在激发了模型预测控制(MPC)等基于模型的优化控制方法的应用。该模型用于预测系统在未来的行为,基于优化的方法确保了最佳性能和约束的满足。
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