DocumentCode :
3520686
Title :
Model predictive control on wall wetting effect using Markov Chain Monte Carlo
Author :
Zhengmao Ye ; Mohamadian, Habib
Author_Institution :
Coll. of Eng., Southern Univ., Baton Rouge, LA, USA
fYear :
2013
fDate :
24-26 Nov. 2013
Firstpage :
1
Lastpage :
6
Abstract :
Wall wetting is a typical phenomenon in Port Fuel Injection (PFI) engines. The injected fuel is atomized into tiny droplets so as to form a mixture of the vaporized fuel and air. Certain portion of the vaporized fuel or fuel droplet would condense on the wall of the intake manifold and intake value, forming the fuel puddle, which has a significant impact on the air to fuel ratio (A/F ratio) of the cylinder. Detrimental A/F ratio excursion could occur during engine transient operations, giving rise to excessive exhaust emissions and extra fuel consumption, as well as the driveability and catalyst efficiency problems. Hence, some advanced control schemes should be applied. The model predictive control methodology is proposed to compensate for A/F ratio excursion during engine transient operations at throttle tip in or tip out. In light of the fact that additional computational complexity involves in nonlinear intelligent control approaches and big approximation error occurs in simple linear approaches, the relatively simple but powerful nonlinear Markov Chain Monte Carlo (MCMC) is introduced to solve this problem. MCMC is a general approach for obtaining random samples at the stationary probability to substitute arbitrary type of the posterior density. The discrete-time Markov chain is introduced whose state reaches the desired distribution after large numbers of iterations. It is combined with Monte Carlo integration to implement numerical integration. Excellent match between the model prediction data and actual experimental data is observed using the MCMC approach with the low computation cost.
Keywords :
Markov processes; Monte Carlo methods; air pollution; discrete time systems; drops; engine cylinders; exhaust systems; fuel systems; intake systems (machines); integration; intelligent control; mixtures; nonlinear control systems; predictive control; probability; vaporisation; wetting; A/F ratio excursion; MCMC; Monte Carlo integration; PFI engines; air-to-fuel ratio; approximation error; computational complexity; cylinder; discrete-time Markov chain; engine transient operations; exhaust emissions; fuel consumption; fuel droplet; fuel puddle; intake manifold; intake value; mixture; model predictive control methodology; nonlinear Markov Chain Monte Carlo; nonlinear intelligent control approaches; numerical integration; port fuel injection engines; posterior density; stationary probability; throttle tip; vaporized fuel; wall wetting effect; Computational modeling; Engines; Fuels; Markov processes; Monte Carlo methods; Predictive models; Transient analysis; Markov Chain Monte Carlo; Model Predictive Control; Transient Fuel Control; Wall Wetting;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Communications (LATINCOM), 2013 IEEE Latin-America Conference on
Conference_Location :
Santiago
Print_ISBN :
978-1-4799-1146-2
Type :
conf
DOI :
10.1109/LatinCom.2013.6759836
Filename :
6759836
Link To Document :
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