Title :
Second-Order Sliding Mode Strategy for Air–Fuel Ratio Control of Lean-Burn SI Engines
Author :
Ebrahimi, B. ; Tafreshi, Reza ; Mohammadpour, Javad ; Franchek, Matthew ; Grigoriadis, Karolos ; Masudi, Houshang
Author_Institution :
Mech. Eng. Program, Texas A&M Univ., Doha, Qatar
Abstract :
Higher fuel economy and lower exhaust emissions for spark-ignition engines depend significantly on precise air-fuel ratio (AFR) control. However, the presence of large time-varying delay due to the additional modules integrated with the catalyst in the lean-burn engines is the primary limiting factor in the control of AFR. In this paper, the engine dynamics are rendered into a nonminimum phase system using Padé approximation. A novel systematic approach is presented to design a parameter-varying dynamic sliding manifold to compensate for the instability of the internal dynamics while achieving desired output tracking performance. A second-order sliding mode strategy is developed to control the AFR to remove the effects of time-varying delay, canister purge disturbance, and measurement noise. The chattering-free response of the proposed controller is compared with conventional dynamic sliding mode control. The results of applying the proposed method to the experimental data demonstrate improved closed-loop system responses for various operating conditions.
Keywords :
approximation theory; closed loop systems; compensation; delays; exhaust systems; fuel economy; internal combustion engines; manifolds; spark plugs; stability; time-varying systems; variable structure systems; AFR control; Pade approximation; air-fuel ratio control; canister purge disturbance; chattering-free response; closed-loop system responses; dynamic sliding mode control; engine dynamics; exhaust emissions; fuel economy; internal dynamics instability compensation; lean-burn SI engines; nonminimum phase system; parameter-varying dynamic sliding manifold; second-order sliding mode strategy; spark-ignition engines; time-varying delay; Approximation methods; Delay effects; Delays; Engines; Fuels; Manifolds; Switches; Air--fuel ratio (AFR) control; Air??fuel ratio (AFR) control; dynamic sliding manifold; lean-burn engine; nonminimum phase system; second-order sliding mode; time-varying delay; time-varying delay.;
Journal_Title :
Control Systems Technology, IEEE Transactions on
DOI :
10.1109/TCST.2013.2281437