Research on Quantitative Diagnosis of Dendrites Based on Titration Gas Chromatography Technology
Abstract
:1. Introduction
2. Experiment
2.1. Dendrite Detection Based on Heating DC Resistance
2.2. Dendrite Detection Based on Reference Electrode
2.3. Dendrite Detection Based on TGC Technology
2.3.1. Battery Preparation for Measurement
2.3.2. Titration Gas Chromatography Test
- (1)
- Disassembling the battery in a glove box in an argon atmosphere to obtain the negative electrode piece;
- (2)
- Placing the negative electrode piece in a conical flask in the glove box, and then transferring it to a fume hood;
- (3)
- Using a syringe to inject 5 mL of water into the conical flask to make the lithium plating completely reactive;
- (4)
- Using a syringe for gas chromatography (GC) to extract 5 mL of reactive gas, and injecting the extracted gas into the GC system;
- (5)
- Measuring the concentration of hydrogen via the GC to calculate the amount of lithium plating. All processes minimize potential risks during sample transfer, thereby obtaining reliable results.
2.4. Dendrite Detection Based on NMR Technology
3. Results
3.1. Experimental Results of Heating DC Resistance
3.2. Experimental Results of Reference Electrode
3.3. Experimental Results of TGC
3.3.1. TGC Calibration Results
3.3.2. Testing of Lithium Plating in Battery Samples
3.3.3. Fresh Cell Background Noise Analysis
3.3.4. Battery Sample Calibration Results
3.4. Experimental Results of NMR
3.5. Discussion
4. Conclusions and Outlook
4.1. Conclusions
4.2. Outlook
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Parameters | Values/Types |
---|---|
Battery type | Lix(NiCoMn)1/3O2/graphite |
Rated capacity (Ah) | 24 |
Operating voltage (V) | 2.5~4.2 |
Charging operating temperature (°C) | −25~55 |
Discharging operating temperature (°C) | −30~55 |
Parameters | Specifications |
---|---|
Size (mm) | 620 × 102 × 22.9 |
Rated capacity (Ah) | 190.6 |
Working voltage (V) | 2.0~3.8 |
Operation temperature (°C) | −30~60 |
Weight (Kg) | 3.2 |
Types | Product Classification | Normal Capacity (Ah) | Charge/Discharge Cut-Off Voltage |
---|---|---|---|
Cell | Pouch cell | 1 Ah | 4.2/3.0 |
Cell | Capacity Change before Heating (Ah) | Capacity Change after Heating (Ah) | Capacity Retention Rate % |
---|---|---|---|
1 | 24.62 | 24.59 | 99.87 |
2 | 24.30 | 24.28 | 99.91 |
3 | 22.30 | 20.76 | 93.00 |
4 | 20.74 | 18.40 | 90.01 |
Sample | Lithium Metal Content/g | Converted Residual Capacity/mAh |
---|---|---|
1 | 0.014 | 54 |
2 | 0.011 | 42 |
3 | 0.013 | 50 |
Mean value | 0.0127 | 49 |
Sample | Initial Capacity/Ah | Capacity Decay/Ah | Based on Capacity Decay/g | TGC/g | Error/% | Remove Noise/g | Error/% |
---|---|---|---|---|---|---|---|
A | 1.097 | 0.687 | 0.178 | 0.179 | 0.6 | 0.167 | 6.2 |
B | 1.110 | 0.720 | 0.186 | 0.204 | 9.7 | 0.191 | 2.7 |
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Yang, K.; Cai, H.; Li, S.; Wang, Y.; Zhang, X.; Wu, Z.; Lai, Y.; Bezha, M.; Bezha, K.; Nagaoka, N.; et al. Research on Quantitative Diagnosis of Dendrites Based on Titration Gas Chromatography Technology. Energies 2024, 17, 2409. https://doi.org/10.3390/en17102409
Yang K, Cai H, Li S, Wang Y, Zhang X, Wu Z, Lai Y, Bezha M, Bezha K, Nagaoka N, et al. Research on Quantitative Diagnosis of Dendrites Based on Titration Gas Chromatography Technology. Energies. 2024; 17(10):2409. https://doi.org/10.3390/en17102409
Chicago/Turabian StyleYang, Kai, Hongchang Cai, Suran Li, Yu Wang, Xue Zhang, Zhenxuan Wu, Yilin Lai, Minella Bezha, Klara Bezha, Naoto Nagaoka, and et al. 2024. "Research on Quantitative Diagnosis of Dendrites Based on Titration Gas Chromatography Technology" Energies 17, no. 10: 2409. https://doi.org/10.3390/en17102409