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Next-Cycle Optimal Fuel Control for Cycle-to-Cycle Variability Reduction in EGR-Diluted Combustion

机译:EGR稀释燃烧中循环到循环变异降低的下周期最佳燃料控制

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Dilute combustion using exhaust gas recirculation (EGR) is a cost-effective method for increasing engine efficiency. At high EGR levels, however, its efficiency benefits diminish as cycle-to-cycle variability (CCV) intensifies. In this simulation study, cycle-to-cycle fuel control was used to reduce CCV by injecting additional fuel in operating conditions with sporadic misfires and partial burns. An optimal control policy was proposed that utilizes 1) a physics-based model that tracks in-cylinder gas composition and 2) a one-step-ahead prediction of the combustion efficiency based on a kernel density estimator. The optimal solution, however, presents a tradeoff between the reduction in combustion CCV and the increase in fuel injection quantity required to stabilize the charge. Such a tradeoff can be adjusted by a single parameter embedded in the cost function. Simulation results indicated that combustion CCV can be reduced by as much as 65% by using at most 1% additional fuel. Although the control design presented here does not include fuel trim to maintain $A$ = 1 for three-way catalyst compatibility, it is envisioned that this approach would be implemented alongside such an external controller, and the theoretical contribution presented here provides a first insight into the feasibility of CCV control using fuel injection.
机译:使用废气再循环(EGR)的稀释燃烧是一种成本有效的方法,用于提高发动机效率。然而,在高EGR水平下,其效率益处将减少为循环到循环变异性(CCV)。在该模拟研究中,通过在具有散发的失火和部分烧伤的操作条件下注入额外的燃料来减少CCV来减少CCV。提出了一种利用1)基于物理的模型的最佳控制策略,其轨道气体组成和2)基于核密度估计器的燃烧效率的一步预测。然而,最佳解决方案呈现了燃烧CCV的减少与稳定电荷所需的燃料喷射量的增加之间的权衡。这种权衡可以通过嵌入成本函数中的单个参数来调整。仿真结果表明,通过使用最多1%的额外燃料,燃烧CCV可以减少多达65%。虽然这里提供的控制设计不包括维护的燃料饰边 $ a $ = 1对于三元催化剂兼容性,设想该方法将与这样的外部控制器一起实现,并且这里呈现的理论贡献提供了利用燃料喷射的CCV控制可行性的第一洞察力。

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