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 $\lambda = 1$ 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.
[1]
Bryan P. Maldonado,et al.
Closed-Loop Control of Combustion Initiation and Combustion Duration
,
2020,
IEEE Transactions on Control Systems Technology.
[2]
Robert M. Wagner,et al.
Analysis of Cyclic Variability of Heat Release for High-EGR GDI Engine Operation with Observations on Implications for Effective Control
,
2013
.
[3]
C. Finney,et al.
Observing and modeling nonlinear dynamics in an internal combustion engine
,
1998
.
[4]
Jagannathan Sarangapani,et al.
A method for predicting performance improvements with effective cycle-to-cycle control of highly dilute spark ignition engine combustion
,
2009
.
[5]
Charles E. Roberts,et al.
Cooled exhaust-gas recirculation for fuel economy and emissions improvement in gasoline engines
,
2011
.
[6]
Bryan P. Maldonado,et al.
Cycle-to-Cycle Feedback for Combustion Control of Spark Advance at the Misfire Limit
,
2017,
Journal of Engineering for Gas Turbines and Power.
[7]
Gurneesh S. Jatana,et al.
Determination of SI Combustion Sensitivity to Fuel Perturbations as a Cyclic Control Input for Highly Dilute Operation
,
2017
.