Title :
Online Parameterization of Lumped Thermal Dynamics in Cylindrical Lithium Ion Batteries for Core Temperature Estimation and Health Monitoring
Author :
Xinfan Lin ; Perez, H.E. ; Siegel, Jason B. ; Stefanopoulou, Anna G. ; Yonghua Li ; Anderson, R. Dyche ; Yi Ding ; Castanier, Matthew P.
Author_Institution :
Dept. of Mech. Eng., Univ. of Michigan, Ann Arbor, MI, USA
Abstract :
Lithium ion batteries should always be prevented from overheating and, hence, thermal monitoring is indispensable. Since only the surface temperature of the battery can be measured, a thermal model is needed to estimate the core temperature of the battery, which can be higher and more critical. In this paper, an online parameter identification scheme is designed for a cylindrical lithium ion battery. An adaptive observer of the core temperature is then designed based on the online parameterization methodology and the surface temperature measurement. A battery thermal model with constant internal resistance is explored first. The identification algorithm and the adaptive observer is validated with experiments on a 2.3Ah 26650 lithium iron phosphate/graphite battery. The methodology is later extended to address temperature-dependent internal resistance with nonuniform forgetting factors. The ability of the methodology to track the long-term variation of the internal resistance is beneficial for battery health monitoring.
Keywords :
condition monitoring; lithium; observers; parameter estimation; secondary cells; temperature measurement; 26650 lithium iron phosphate-graphite; Li; adaptive observer; core temperature estimation; cylindrical lithium ion batteries; health monitoring; lumped thermal dynamics; online parameter identification; online parameterization; online parameterization methodology; overheating; surface temperature measurement; temperature-dependent internal resistance; thermal model; thermal monitoring; Adaptation models; Batteries; Battery charge measurement; Coolants; Heating; Resistance; Temperature measurement; Adaptive estimation; core temperature; lithium ion battery; state of health;
Journal_Title :
Control Systems Technology, IEEE Transactions on
DOI :
10.1109/TCST.2012.2217143