Pursuing safer batteries: Thermal abuse of LiFePO4 cells

被引:102
作者
Bugryniec, Peter J. [1 ]
Davidson, Jonathan N. [2 ]
Cumming, Denis J. [1 ]
Brown, Solomon F. [1 ]
机构
[1] Univ Sheffield, Dept Chem & Biol Engn, Sheffield S1 3JD, S Yorkshire, England
[2] Univ Sheffield, Dept Elect & Elect Engn, Sheffield S1 4DE, S Yorkshire, England
基金
英国工程与自然科学研究理事会;
关键词
Thermal runaway; Lithium iron phosphate cells; Accelerated rate calorimetry; Oven abuse test; Li-ion; LITHIUM-ION-BATTERY; ACCELERATING RATE CALORIMETRY; HIGH-POWER; INTERCALATED GRAPHITE; CATHODE MATERIALS; RUNAWAY; ELECTROLYTE; STABILITY; BEHAVIOR; STATE;
D O I
10.1016/j.jpowsour.2019.01.013
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
In this paper, accelerated rate calorimetry (ARC) and oven exposure, are used to investigate thermal runaway (TR) in lithium-ion cells. Previous work shows that lithium iron phosphate (LFP) cells have a lower risk of TR over other Li-ion chemistries. ARC is carried out on cells at various SOC to identify which decomposition reactions are contributing to the TR behaviour of a cell at different SOC. Results show, at SOC of 100% and 110%, the negative and positive electrode reactions are the main contributors to TR, while at lower SOC it is the negative electrode reaction that dominates. Cells at 100% SOC exposed to high temperatures during oven tests show, along with the ARC analysis, that the presence of the cathode and electrolyte reactions leads to an increase In the severity of a TR event for oven temperatures above 200 degrees C. By comparing the heat generated in ARC and oven testing, it is shown that ARC does not fully capture the self-heating and TR safety hazard of a cell, unlike oven testing. This work gives new insight into the nature of the decomposition reactions and also provides an essential data set useful for model validation which is of importance to those studying LFP cells computationally.
引用
收藏
页码:557 / 568
页数:12
相关论文
共 56 条
[1]   Diagnostic examination of thermally abused high-power lithium-ion cells [J].
Abraham, D. P. ;
Roth, E. P. ;
Kostecki, R. ;
McCarthy, K. ;
MacLaren, S. ;
Doughty, D. H. .
JOURNAL OF POWER SOURCES, 2006, 161 (01) :648-657
[2]   The state of understanding of the lithium-ion-battery graphite solid electrolyte interphase (SEI) and its relationship to formation cycling [J].
An, Seong Jin ;
Li, Jianlin ;
Daniel, Claus ;
Mohanty, Debasish ;
Nagpure, Shrikant ;
Wood, David L., III .
CARBON, 2016, 105 :52-76
[3]  
[Anonymous], 2016, GLOB EV OUTL 2016 ON
[4]   On the safety of the Li4Ti5O12/LiMn2O4 lithium-ion battery system [J].
Belharouak, I. ;
Sun, Y.-K. ;
Lu, W. ;
Amine, K. .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2007, 154 (12) :A1083-A1087
[5]   Failure mechanism of Li-ion battery at overcharge conditions [J].
Belov, D. ;
Yang, Mo-Hua .
JOURNAL OF SOLID STATE ELECTROCHEMISTRY, 2008, 12 (7-8) :885-894
[6]   Thermal Characterization of LiFePO4 Cathode in Lithium Ion Cells [J].
Ben Mayza, A. ;
Ramanathan, M. ;
Radhakrishnan, R. ;
Ha, S. ;
Ramani, V. ;
Prakash, J. ;
Zaghib, K. .
NANOSTRUCTURED MATERIALS FOR ENERGY STORAGE AND CONVERSION, 2011, 35 (34) :177-183
[7]   Methodology to determine the heat capacity of lithium-ion cells [J].
Bryden, Thomas S. ;
Dimitrov, Borislav ;
Hilton, George ;
de Leon, Carlos Ponce ;
Bugryniec, Peter ;
Brown, Solomon ;
Cumming, Denis ;
Cruden, Andrew .
JOURNAL OF POWER SOURCES, 2018, 395 :369-378
[8]   Assessment of thermal runaway in commercial lithium iron phosphate cells due to overheating in an oven test [J].
Bugryniec, Peter J. ;
Davidson, Jonathan N. ;
Brown, Solomon F. .
3RD ANNUAL CONFERENCE IN ENERGY STORAGE AND ITS APPLICATIONS (3RD CDT-ESA-AC), 2018, 151 :74-78
[9]   Thermal instability of Olivine-type LiMnPO4 cathodes [J].
Chen, Guoying ;
Richardson, Thomas J. .
JOURNAL OF POWER SOURCES, 2010, 195 (04) :1221-1224
[10]   Effects of thermal hazard on 18650 lithium-ion battery under different states of charge [J].
Chen, Wei-Chun ;
Li, Jian-De ;
Shu, Chi-Min ;
Wang, Yih-Wen .
JOURNAL OF THERMAL ANALYSIS AND CALORIMETRY, 2015, 121 (01) :525-531