The five modes of heat generation in a Li-ion cell under discharge

被引:31
作者
Srinivasan, Rengaswamy [1 ]
Baisden, A. Carson [1 ]
Carkhuff, Bliss G. [1 ]
Butler, Michael H. [1 ]
机构
[1] Johns Hopkins Univ, Appl Phys Lab, Laurel, MD 20723 USA
关键词
Li-ion cell; In situ tracking of thermal runaway; Noninvasive sensors; Resistive heating; Entropy-generated heating; THERMAL-BEHAVIOR; ENTROPY CHANGES; LITHIUM; BATTERIES; TEMPERATURE; CATHODES; ANODES;
D O I
10.1016/j.jpowsour.2014.03.062
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
A lithium-ion cell under discharge generates thermal energy (Q) through five different internal parameters or modes: the electrolyte resistance (R-s), anode resistance (R-a), cathode resistance (R-c), and entropy changes in the cathode (Delta S-c), and the anode (Delta S-a). This work demonstrates a set of tools to measure/quantify the heat generated by each parameter separately during discharge. These five sources are not dependent upon each other; they are dependent on the state of charge and the environmental temperature (T-env). The Q generated by each mode varies with degree of discharge and T-env. R-s generates most of the Q in the -10 degrees C to 40 degrees C range; R-c becomes significant at T-env <20 degrees C. Constant current discharge does not cause a monotonic increase in anode and cathode temperatures (T-a and T-c), due to the direction of change in Delta S-c and Delta S-a. Negative change in Delta S-a for the carbon anode cools it, causing the T-a to level off and even decrease with increased discharge. Delta S-c for lithium manganese oxide cathode is positive at some SoC and negative at others, preventing a monotonic increase in T-c. Measuring the five Qs separately opens the opportunity to study thermal-runaway from the perspective of the anode, cathode and electrolyte. (C) 2014 Elsevier B.V. All rights reserved.
引用
收藏
页码:93 / 103
页数:11
相关论文
共 23 条
[1]   Safety mechanisms in lithium-ion batteries [J].
Balakrishnan, PG ;
Ramesh, R ;
Kumar, TP .
JOURNAL OF POWER SOURCES, 2006, 155 (02) :401-414
[2]  
EDDAHECH A, 2013, P ISIE 2013 IEEE INT
[3]   Thermal characterization of a high-power lithium-ion battery: Potentiometric and calorimetric measurement of entropy changes [J].
Eddahech, Akram ;
Briat, Olivier ;
Vinassa, Jean-Michel .
ENERGY, 2013, 61 :432-439
[4]  
KIESEL P, 2013, ADV EN TECHN C SAN D
[5]   A three-dimensional thermal abuse model for lithium-ion cells [J].
Kim, Gi-Heon ;
Pesaran, Ahmad ;
Spotnitz, Robert .
JOURNAL OF POWER SOURCES, 2007, 170 (02) :476-489
[6]  
Linden D, 2002, HDB BATTERIES, P141
[7]  
REVNIER Y, 2003, J POWER SOURCES, V119, P850
[8]   Evolution of lithiation thermodynamics with the graphitization of carbons [J].
Reynier, Y. ;
Yazami, R. ;
Fultz, B. ;
Barsukov, I. .
JOURNAL OF POWER SOURCES, 2007, 165 (02) :552-558
[9]   Heat generation behavior during charging and discharging of lithium-ion batteries after long-time storage [J].
Saito, Yoshiyasu ;
Shikano, Masahiro ;
Kobayashi, Hironori .
JOURNAL OF POWER SOURCES, 2013, 244 :294-299
[10]  
SINGH J, 2013, BEST MAGAZINE SPR, V40, P45