DocumentCode
3477893
Title
Analysis of degradation mechanism of lithium iron phosphate battery
Author
Kaneko, Genki ; Inoue, Shingo ; Taniguchi, Kazuhiro ; Hirota, Tetsuo ; Kamiya, Yushi ; Daisho, Yasuhiro ; Inami, Shoichi
Author_Institution
Waseda Univ., Tokyo, Japan
fYear
2013
fDate
17-20 Nov. 2013
Firstpage
1
Lastpage
7
Abstract
The degradation mechanisms of lithium iron phosphate battery have been analyzed with 150 day calendar capacity loss tests and 3,000 cycle capacity loss tests to identify the operation method to maximize the battery life for electric vehicles. Both test results indicated that capacity loss increased under higher temperature and SOC conditions. And also, large increase of internal resistance on the high temperature and high SOC conditions was confirmed by AC impedance tests. The real cycle capacity loss characteristic was derived by subtracting the capacity decrease due to calendar capacity loss during the cycle test from the overall capacity loss characteristic obtained from the cycle test. As a result, it is found that the real capacity loss contains not only structural disorders of electrode but also degradation factors due to the chemical reactions. Characteristics of degradation were quantified with equations based on the chemical kinetics. With this degradation prediction, an operation method was proposed that is compatible with the long life of batteries and the safety driving of a vehicle. As a result, with optimizing the SOC range used in the operation as follows: 30-10% in the warm seasons, 45-25% in the cold seasons, it was found that batteries can last 4 times longer than it used with high SOC range in every season.
Keywords
battery testers; chemical reactions; electric vehicles; high-temperature techniques; product life cycle management; reaction kinetics; secondary cells; AC impedance tests; battery life; capacity loss tests; chemical kinetics; chemical reactions; cycle capacity loss characteristic; degradation mechanism; electric vehicles; high SOC conditions; high temperature conditions; internal resistance; lithium iron phosphate battery; Batteries; Calendars; Degradation; Discharges (electric); Equations; Mathematical model; System-on-chip; BEV (battery electric vehicle); battery calendar life; lithium battery;
fLanguage
English
Publisher
ieee
Conference_Titel
Electric Vehicle Symposium and Exhibition (EVS27), 2013 World
Conference_Location
Barcelona
Type
conf
DOI
10.1109/EVS.2013.6914847
Filename
6914847
Link To Document