Influence of Space Charge on Dielectric Property and Breakdown Strength of Polypropylene Dielectrics under Strong Electric Field
Abstract
:1. Introduction
2. Materials and Methods
2.1. Materials
2.2. Methods
3. Results
3.1. Quantitative Characterization of the Pre-Injected Space Charge
3.2. Effect of Space Charge on Dielectric Properties
3.3. Effect of Space Charge on Breakdown Strength
3.4. Effect of Temperature on Breakdown Strength
4. Conclusions
- (1)
- The injected charges in PP under the negative polarity voltage was significantly larger than that in the positive polarity case. The total charges are 5.8 × 10−11 C and 1.6 × 10−12 C under conditions of −50 kV/mm and +50 kV/mm, respectively. This is because the charges are more easily injected across the interfacial potential barrier to the bulk of the material under the negative polarity voltage;
- (2)
- Space charge in PP affect its dielectric properties, and the effect of negative polarity pre-voltage on the dielectric constant is much greater than that of positive polarity. The dielectric constant of PP under hetero-polar pre-voltage conditions decreases from 2.2 to 1.3, decreasing by approximately 41%. In comparison, it slightly increases under homo-polarity pre-voltage. This is mainly related to the polarity and amount of pre-injected space charges in PP. It is necessary to pay more attention to the effect of space charge accumulation on the dielectric constant of energy storage material in long-term operation;
- (3)
- The breakdown strength of PP has a slight increase after homo-polarity pre-voltage, and the breakdown strength of hetero-polarity decreases by approximately 36% than that of PP without pre-voltage. This is mainly related to the change in the interfacial electric field caused by the space charge near the electrode. In addition, the breakdown strength decreases with the increasing temperature, which is related to the carrier migration and free volume change caused by the temperature. Compared with the room temperature and 90 °C, the free volume increases by 26.8% and the increase in electron free travel is beneficial to the development of electron collision ionization and electron collapse.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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Scale Parameter α (kV/mm) | Shape Parameter β | |
---|---|---|
Without pre-applied | 388 | 70 |
Negative: −50 kV/mm | 249 | 9 |
Positive: +50 kV/mm | 402 | 29 |
Scale Parameter α (kV/mm) | Shape Parameter β | |
---|---|---|
25 °C | 372 | 11 |
50 °C | 362 | 20 |
70 °C | 358 | 17 |
90 °C | 327 | 33 |
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Xing, Z.; Gu, Z.; Zhang, C.; Guo, S.; Cui, H.; Lei, Q.; Li, G. Influence of Space Charge on Dielectric Property and Breakdown Strength of Polypropylene Dielectrics under Strong Electric Field. Energies 2022, 15, 4412. https://doi.org/10.3390/en15124412
Xing Z, Gu Z, Zhang C, Guo S, Cui H, Lei Q, Li G. Influence of Space Charge on Dielectric Property and Breakdown Strength of Polypropylene Dielectrics under Strong Electric Field. Energies. 2022; 15(12):4412. https://doi.org/10.3390/en15124412
Chicago/Turabian StyleXing, Zhaoliang, Zhenlu Gu, Chong Zhang, Shaowei Guo, Huize Cui, Qingquan Lei, and Guochang Li. 2022. "Influence of Space Charge on Dielectric Property and Breakdown Strength of Polypropylene Dielectrics under Strong Electric Field" Energies 15, no. 12: 4412. https://doi.org/10.3390/en15124412
APA StyleXing, Z., Gu, Z., Zhang, C., Guo, S., Cui, H., Lei, Q., & Li, G. (2022). Influence of Space Charge on Dielectric Property and Breakdown Strength of Polypropylene Dielectrics under Strong Electric Field. Energies, 15(12), 4412. https://doi.org/10.3390/en15124412