Validation through Experiment and Simulation of Internal Charging–Discharging Characteristics of Polyimide under High-Energy Electron Radiation
Abstract
:1. Introduction
2. Experiment and Simulation Methods of Internal Charging–Discharging under High-Energy Electron Radiation
2.1. Measurement System of Charge Distribution under High-Energy Electron
2.1.1. Design of Electrode System
2.1.2. Waveform Recovery of Space Charge Distribution
2.2. Measurement System of Electrostatic Discharging under High-Energy Electron Radiation
2.3. Joint Simulation Method of Internal Charging Characteristics under High-Energy Electron Radiation
2.3.1. Electron Injection Process
2.3.2. The 3D Charge Transportation Model
2.3.3. Joint Simulation Method under High-Energy Electron Radiation
3. Evaluation Results of Internal Charging under High-Energy Electron Radiation
3.1. Internal Charging at Different Electron Energies
3.1.1. Space Charge Distribution Based on In-Situ PEA Method
3.1.2. Deposition Charge Distribution Based on Joint Simulation Method
3.1.3. Comparative Analysis of Charging Characteristics under High-Energy Electron Radiation
- In the theoretical calculation, the peak value under the three groups of energies is similar. First, there is a certain deviation in the theoretical empirical equation; in particular, the parameters in Equation (13) have a great influence on the results. On the other hand, in the theoretical calculation, the grounding of the sample on both sides, together with the release of the deposited charge, are not considered. However, theoretical calculation still has a certain reference for the depth of charge deposition.
- In the simulation method, the charge transportation to the ground through bulk conduction is considered with constant charge injection. Therefore, the overall charge amount in the sample will be equal under the same radiation time, and thus the area enclosed by the horizontal axis and charge density curve are almost the same under three energies in the simulation calculation. However, the measurement results of the total charge amount among the three energies show an obvious difference, which may be due to the more intense charge release process caused by the higher electric field near the grounded electrode.
3.2. Internal Charging under Different Radiation Time
4. Evaluation of Internal Discharging under High-Energy Electron Radiation
4.1. Experiment Result of Discharging Evaluation
4.2. Simulation Results of Discharging and Comparative Analysis
- Single electrostatic discharging. According to Section 4.1, the average electrostatic discharge quantity QESD per unit time of PI is 1.0 × 10−6 C. In the experiment, there may be multiple discharges, but the discharge waveform collected by the oscilloscope is regarded as a single discharging;
- Electron backscattering. Under high-energy electric radiation, the backscattered electron yield of PI is generally about 0.1~0.2, so the Qbackscatter by the surface per unit time should not exceed 10% of the total amount of injected charges;
- Intrinsic conductance. Since the intrinsic conductivity of PI is extremely low, the amount of charge released by the intrinsic conductivity is almost negligible;
- High temperature and high-field conductance. Due to the increase in the electric field inside the PI and the influence of the radiant heat, electrostatic discharging effect and the difficulty of heat dissipation in the vacuum environment, the PI may be in a relatively high conductivity during the radiation process. According to Yi’s research [32], considering a condition of 10 kV/mm and 353 K under radiation, the bulk conductivity may conform to the following laws.
- Radiation-induced conductance. Although the release of the deposited charge in the zone near the back electrode is less affected by high-energy electron radiation, the overall charge transportation in the radiation zone is accelerated, leading to an enhanced charge release. According to Equations (9)–(11), the σRIC tends to rise by 2–3 orders of magnitude relative to the intrinsic conductivity.
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Parameter | Value |
---|---|
εr | 3.45 |
T | 293 K |
ρ | 1417 kg/m3 |
kRIC(T) | 3.63 × 10−15 |
Δ(T) | 0.76 |
σ0 | 3.6 × 10−17 S/m |
Penetrating Depth of Peak/mm | Peak Value of Charge Density/C·m−3 | |||||
---|---|---|---|---|---|---|
0.7 MeV | 1.0 MeV | 1.3 MeV | 0.7 MeV | 1.0 MeV | 1.3 MeV | |
Experiment | 0.5 | 1.1 | 1.6 | −1.1 | −1.4 | −2.3 |
Simulation | 0.4 | 1.4 | 2.4 | −2.7 | −2.2 | −1.4 |
Theory | 0.3 | 1.0 | 1.8 | −2.5 | −2.8 | −2.6 |
Penetrating Depth of Peak/mm | Peak Value of Charge Density/C·m−3 | |||||
---|---|---|---|---|---|---|
10 min | 60 min | 120 min | 10 min | 60 min | 120 min | |
Experiment | 1.3 | 1.4 | 1.4 | −1.9 | −2.2 | −2.4 |
Simulation | 1.3 | 1.4 | 1.4 | −0.22 | −1.3 | −2.1 |
Beam Current/μA | Total Discharging Times | Initial Discharging Time/s |
---|---|---|
5 | 139 | 15 |
10 | 288 | 8 |
15 | 387 | 6 |
Charge Transportation Process | Estimated Value/C |
---|---|
Injected charge | +2.39 × 10−7 |
Backscattered charge | −2.39 × 10−8 |
Charge leakage by conduction under high temperature and high electric field | −5.9 × 10−8 |
Charge leakage by radiation-induced conductance | −2.2 × 10−8 |
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Wu, J.; Zhang, B.; Zhi, Y.; He, M.; Shang, P.; Qian, Y. Validation through Experiment and Simulation of Internal Charging–Discharging Characteristics of Polyimide under High-Energy Electron Radiation. Energies 2022, 15, 6603. https://doi.org/10.3390/en15186603
Wu J, Zhang B, Zhi Y, He M, Shang P, Qian Y. Validation through Experiment and Simulation of Internal Charging–Discharging Characteristics of Polyimide under High-Energy Electron Radiation. Energies. 2022; 15(18):6603. https://doi.org/10.3390/en15186603
Chicago/Turabian StyleWu, Jiang, Bo Zhang, Yibo Zhi, Minheng He, Penghui Shang, and Yufeng Qian. 2022. "Validation through Experiment and Simulation of Internal Charging–Discharging Characteristics of Polyimide under High-Energy Electron Radiation" Energies 15, no. 18: 6603. https://doi.org/10.3390/en15186603
APA StyleWu, J., Zhang, B., Zhi, Y., He, M., Shang, P., & Qian, Y. (2022). Validation through Experiment and Simulation of Internal Charging–Discharging Characteristics of Polyimide under High-Energy Electron Radiation. Energies, 15(18), 6603. https://doi.org/10.3390/en15186603