Quantitative Analysis of Lithium-Ion Battery Eruption Behavior in Thermal Runaway
Abstract
:1. Introduction
2. Materials and Methods
2.1. Battery Samples
2.2. Experimental Setup
2.3. Experimental Setup Calculation of Flame Area and Velocity
3. Results and Discussion
3.1. Temperature and Force Dynamics during TR
- At the −110 s mark: Fluctuations in expansion force are observed, decreasing from 92 N to 77 N;
- At the −15 s mark: Expansion force initiates a sharp ascent, reaching a peak value of 1980 N at −13.5 s, representing a 12-fold increase within a duration of 2.5 s. Figure A1 shows the rate of change in the expansion force;
- At the −13 s mark: Expansion force peaks and begins a rapid decline, registering at 1395 N, accompanied by a rapid rise in values and a slight increase in mass;
- At the −12 s mark: Voltage begins to decline, coinciding with the first appearance of sparks resembling those depicted in Figure 4a;
- At the −5 s mark: Mass (m) reaches its maximum value of 11.44 kg; within the −13 s to −5 s timeframe, exhibits the highest rate of temperature rise, reaching 93 °C/s;
- At the 0 s mark: Voltage reaches zero;
- At the 1.5 s mark: Intense eruption sparks are observed, as depicted in Figure 4a;
- At the 7 s mark: attains its maximum value of 941.2 °C, as depicted in Figure 3b;
- At the 11 s mark: Mass (m) reaches its minimum value of 10.55 kg;
- At the 100 s mark: reaches its maximum value of 810 °C;
- Subsequently, the temperatures , , and gradually decrease, marking the cessation of thermal runaway.
- 1.
- Internal Chemical Reactions
- 2.
- Heat Release
- 3.
- Material Expansion
- 4.
- Structural Damage
3.2. Characteristics of Eruption Flames
4. Conclusions
- From the onset of heating by the heating plate to −20 s, the rate of change in the expansion force remained below 0.3 N/s. At −110 s, a sudden decrease in the expansion force was observed, with a rate of change falling below −70 N/s. The maximum rate of change in the expansion force reached approximately 6100 N/s.
- The point at which the expansion force reached its maximum value and sharply declined, corresponding to the occurrence of the first jetting of sparks (as depicted in behavior shown in Figure 4a), was at the time point −(11.5 ± 1.5) s, concurrent with a 0.01 V decrease in voltage.
- The most intense jetting of sparks occurred at the time point of 1.4 ± 0.3 s, followed by the time period of 0.02 to 0.05 s, where the explosion flame reached its maximum radius, with an average rate of change exceeding 17 m/s. The distance of the explosion center from the safety valve height varied randomly in each explosion, yet it typically fell within a range of 0.1 to 0.5 m.
- From the onset of the first occurrence of spark jetting to the cessation of the jetting behavior, the phenomena depicted in Figure 4a,b manifested in multiple alternating sequences. The ejected sparks, which represent the combustion of solid particulates, persisted throughout the entire ejection process. Hence, when calculating the flammability limits of battery ejecta, the presence of solid particulates cannot be disregarded. Observations from video footage indicate that explosive phenomena are initiated by the ignition of the ejected sparks, which ignite the combustible gases expelled during the jetting process.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Nomenclature
m | Mass, kg |
Cell side surface center temperature, °C | |
Cell jet zone temperatures near the cell safety valve, °C | |
Heating plate temperature, °C | |
DMC | Dimethyl carbonate, C3H6O3 |
EMC | Methyl ethyl carbonate, C4H8O3 |
EV | Electric vehicle |
SOC | State of charge |
LIB | Lithium-ion battery |
BMS | Battery management system |
BTMS | Battery thermal management system |
EF | Expansion force, N |
CC–CV | Constant current–constant voltage |
SEI | Solid electrolyte interphase |
Appendix A
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Items | Parameter | Remarks |
---|---|---|
Cell mass (g) | 926 ± 15 | / |
Width (mm) × Thickness (mm) × Height (mm) | 148.24 × 26.66 × 102.8 | / |
Rated Capacity (Ah) | 58 | Standard Discharge * |
58 | 1/3C Discharge | |
Rated Voltage (V) | 3.67 | Standard Discharge |
3.73 | 1/3C Discharge | |
Rated Energy (Wh) | 212.86 | Standard Discharge |
216.34 | 1/3C Discharge | |
Mass Energy Density (Wh/kg) | 233 | 1/3C Discharge |
Voltage Range (V) | 2.75~4.35 | 0 °C ≤ T ≤ 55 °C |
2.20~4.35 | −30 °C ≤ T < 0 °C | |
Main components of electrolyte | DMC, EMC | / |
Cathode active material | Li(Ni0.8Co0.1Mn0.1)O2 | / |
Anode active material | Graphite | / |
Cathode current collector | Aluminum foil | / |
Anode current collector | Copper foil | / |
Shell material | Aluminum alloy | / |
Parameters | Value |
---|---|
(N) | 1900~2000 |
Temporal range of explosion (s) | 0.054~0.179 |
Maximum ejection velocity (m/s) | ≥90 |
The mass loss rate (%) | 32.4 ± 2 |
The maximum flame propagation velocity (m/s) | >17 |
The maximum flame area (m2) | 0.79 |
The distance from the explosion center to the safety valve (m) | 0.1~0.5 |
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Xing, Y.; Wei, N.; Li, M. Quantitative Analysis of Lithium-Ion Battery Eruption Behavior in Thermal Runaway. Batteries 2024, 10, 182. https://doi.org/10.3390/batteries10060182
Xing Y, Wei N, Li M. Quantitative Analysis of Lithium-Ion Battery Eruption Behavior in Thermal Runaway. Batteries. 2024; 10(6):182. https://doi.org/10.3390/batteries10060182
Chicago/Turabian StyleXing, Yu, Ningning Wei, and Minghai Li. 2024. "Quantitative Analysis of Lithium-Ion Battery Eruption Behavior in Thermal Runaway" Batteries 10, no. 6: 182. https://doi.org/10.3390/batteries10060182
APA StyleXing, Y., Wei, N., & Li, M. (2024). Quantitative Analysis of Lithium-Ion Battery Eruption Behavior in Thermal Runaway. Batteries, 10(6), 182. https://doi.org/10.3390/batteries10060182