DocumentCode :
1343558
Title :
A Hybrid Battery Model Capable of Capturing Dynamic Circuit Characteristics and Nonlinear Capacity Effects
Author :
Kim, Taesic ; Qiao, AndWei
Author_Institution :
Dept. of Electr. Eng., Univ. of Nebraska-Lincoln, Lincoln, NE, USA
Volume :
26
Issue :
4
fYear :
2011
Firstpage :
1172
Lastpage :
1180
Abstract :
A high-fidelity battery model capable of accurately predicting battery performance is required for proper design and operation of battery-powered systems. However, the existing battery models have at least one of the following drawbacks: 1) requiring intensive computation due to high complexity; 2) not applicable for electrical circuit design and simulation; and 3) not capable of accurately capturing the state of charge (SOC) and predicting runtime of the battery due to neglecting the nonlinear capacity effects. This paper proposes a novel hybrid battery model, which takes the advantages of an electrical circuit battery model to accurately predicting the dynamic circuit characteristics of the battery and an analytical battery model to capturing the nonlinear capacity effects for the accurate SOC tracking and runtime prediction of the battery. The proposed battery model is validated by the simulation and experimental studies for the single-cell and multicell polymer lithium-ion batteries, as well as for a lead-acid battery. The proposed model is applicable to other types and sizes of electrochemical battery cells. The proposed battery model is computational effective for simulation, design, and real-time management of battery-powered systems.
Keywords :
lead acid batteries; lithium; Li; SOC tracking; analytical battery model; battery-powered systems; dynamic circuit characteristics; electrical circuit battery model; electrical circuit design; electrochemical battery cells; high-fidelity battery model; hybrid battery model; lead-acid battery; multicell polymer lithium-ion battery; nonlinear capacity effects; state of charge; Analytical models; Batteries; Computational modeling; Discharges; Integrated circuit modeling; Mathematical model; System-on-a-chip; Battery model; electrical circuit characteristics; nonlinear capacity effects; rate capacity effect; recovery effect; state of charge (SOC);
fLanguage :
English
Journal_Title :
Energy Conversion, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-8969
Type :
jour
DOI :
10.1109/TEC.2011.2167014
Filename :
6036164
Link To Document :
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