Title :
A universal state-of-charge algorithm for batteries
Author :
Xiao, Bingjun ; Shi, Yiyu ; He, Lei
Author_Institution :
Electr. Eng. Dept., Univ. of California, Los Angeles, Los Angeles, CA, USA
Abstract :
State-of-charge (SOC) measures energy left in a battery, and it is critical for modeling and managing batteries. Developing efficient yet accurate SOC algorithms remains a challenging task. Most existing work uses regression based on a time-variant circuit model, which may be hard to converge and often does not apply to different types of batteries. Knowing open-circuit voltage (OCV) leads to SOC due to the well known mapping between OCV and SOC. In this paper, we propose an efficient yet accurate OCV algorithm that applies to all types of batteries. Using linear system analysis but without a circuit model, we calculate OCV based on the sampled terminal voltage and discharge current of the battery. Experiments show that our algorithm is numerically stable, robust to history dependent error, and obtains SOC with less than 4% error compared to a detailed battery simulation for a variety of batteries. Our OCV algorithm is also efficient, and can be used as a real-time electro-analytical tool revealing what is going on inside the battery.
Keywords :
battery management systems; battery management; battery simulation; discharge current; open-circuit voltage (OCV); real-time electro-analytical tool; terminal voltage; time-variant circuit model; universal state-of-charge algorithm; Algorithm design and analysis; Battery charge measurement; Battery management systems; Circuits; Energy management; Energy storage; Estimation error; History; Robustness; Voltage; Battery; Circuit Analysis; State of Charge;
Conference_Titel :
Design Automation Conference (DAC), 2010 47th ACM/IEEE
Conference_Location :
Anaheim, CA
Print_ISBN :
978-1-4244-6677-1