DocumentCode :
3572806
Title :
Dynamic modeling of SOFC based on support vector regression machine and improved particle swarm optimization
Author :
Haibo Huo ; Yi Ji ; Xinghong Kuang ; Yuqing Liu ; Yanxiang Wu
Author_Institution :
Dept. of Electr. Eng., Shanghai Ocean Univ., Shanghai, China
fYear :
2014
Firstpage :
1853
Lastpage :
1858
Abstract :
For predicting the electrochemical and heat transfer dynamics synchronously, a dynamic identification model of the solid oxide fuel cell (SOFC) is reported. In this study, support vector regression machine (SVRM) is proposed to model the nonlinear dynamic characteristics of the SOFC. In addition, a kind of improved particle swarm optimization (IPSO) is preferably chosen for the parameter optimization of the SVRM model. The applicability of the proposed SVRM with IPSO (IPSO-SVRM) model in modeling the voltage and the temperature transient responses to the hydrogen input flow rate change of the SOFC is illustrated by the simulation. Furthermore, the comparisons between the IPSO-SVRM model and the SVRM model are provided which show a substantially better performance for the IPSO-SVRM model. The results also show that IPSO algorithm outperforms the crossover validation method in terms of parameters choice of the SVRM model.
Keywords :
heat transfer; particle swarm optimisation; power engineering computing; regression analysis; solid oxide fuel cells; support vector machines; IPSO; SOFC; SVRM; dynamic modeling; electrochemical; heat transfer dynamics; improved particle swarm optimization; parameter optimization; solid oxide fuel cell; support vector regression machine; Fuel cells; Hydrogen; Mathematical model; Predictive models; Solid modeling; Solids; Vehicle dynamics; Dynamic modeling; Particle swarm optimization; Solid oxide fuel cell; Support vector regression machine;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Intelligent Control and Automation (WCICA), 2014 11th World Congress on
Type :
conf
DOI :
10.1109/WCICA.2014.7053002
Filename :
7053002
Link To Document :
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