Title :
Adaptive temperature monitoring for battery thermal management
Author :
Arasaratnam, Ienkaran ; Tjong, Jimi ; Ahmed, Rizwan ; El-Sayed, M. ; Habibi, Saeid
Author_Institution :
McMaster Univ., Hamilton, ON, Canada
Abstract :
Battery thermal management is crucial for avoiding disastrous consequences due to short circuits and thermal runaway. The temperature inside a battery (core temperature) is higher than the temperature outside (skin temperature) under high discharge/charge rates. Although the skin temperature is measurable, the core temperature is not. In this paper, a lumped thermal model is considered to estimate the core temperature from skin temperature readings. To take into account uncertainties in thermal model parameters, which are bound to occur as the battery ages, an adaptive closed-loop estimation algorithm called the adaptive Potter filter is derived. Finally, computer simulations are performed to validate the adaptive Potter filter´s ability to track the skin and core temperatures under high charge/discharge current pulses and model mismatches.
Keywords :
adaptive filters; battery management systems; secondary cells; temperature measurement; thermal engineering; adaptive Potter filter; adaptive closed-loop estimation algorithm; adaptive temperature monitoring; battery thermal management; computer simulations; core temperature estimation; high discharge-charge rates; lumped thermal model; short circuits; skin temperature; thermal runaway; Adaptation models; Batteries; Equations; Mathematical model; Skin; Temperature measurement; Thermal management; Adaptive Estimation; Battery Thermal Management; Kalman Filter;
Conference_Titel :
Transportation Electrification Conference and Expo (ITEC), 2013 IEEE
Conference_Location :
Detroit, MI
Print_ISBN :
978-1-4799-0146-3
DOI :
10.1109/ITEC.2013.6574504