Analysis of Circuit Parameters of New Graphene Partial Discharge Sensor Electrode Plate Based on Transmission Line Model
Abstract
:1. Introduction
2. Circuit Parameters
2.1. Resistive Properties of Graphene
2.1.1. Quantum Resistance
2.1.2. Contact Resistance
2.1.3. Scattering Resistance
2.2. Inductive Properties of Graphene
2.2.1. Magnetoelectric Inductance
2.2.2. Dynamic Inductance
2.3. Capacitive Properties of Graphene
2.3.1. Electrostatic Capacitance
2.3.2. Quantum Capacitance
2.4. Circuit Parameters of Multilayer Graphene
2.4.1. Mutual Inductance
2.4.2. Mutual Capacitance
2.5. Characteristics of Copper
3. Circuit Parameters of Graphene Copper-Clad Electrode Plates
3.1. Resistance Characteristics
3.2. Inductance Characteristics
3.3. Capacitance Characteristics
4. Analysis of Influencing Factors
4.1. Width
4.2. Thickness and Number of Layers
4.3. Fermi Energy Level
5. Computational Analysis
5.1. Resistance Characteristics
5.2. Inductance Characteristics
5.3. Capacitance Characteristics
6. Prediction Models of Circuit Parameter
6.1. Prediction Model of Resistance
6.2. Prediction Model of Inductance
6.3. Prediction Model of Capacitance
7. Simulation and Experimental Analysis
7.1. Simulation Analysis
7.2. Experimental Analysis
7.2.1. Experiment of Sensor Characteristics
7.2.2. Experiment of Partial Discharge Detection of Switchgear
8. Conclusions
- Resistance gradually decreases with the increasing number of layers. The greater the width and Fermi energy level, the lower the equivalent resistance. The total thickness has less effect on the resistance;
- Inductance gradually increases with the number of layers, but the overall change is small. The greater the width, the lower the total inductance of the electrode plate, but the total thickness is the opposite. The Fermi energy level does not affect the inductance;
- Capacitance gradually decreases with the increase of the number of layers, but the trend is flat. With the increase of the width, the capacitance gradually increases. The thickness has the opposite effect on the capacitance. The Fermi energy level becomes larger, and the equivalent capacitance tends to increase.
- Multiple linear regression models based on the least-square method were established for three circuit parameters, which can further simplify the calculation of circuit parameters and provide a good fit of the data.
- Simulation and experimental results verify that the graphene PD sensor exhibits high gain characteristics compared to the traditional PD sensor.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Material | Resistivity | Carrier Mobility | Electrical Conductivity | Thermal Conductivity | Electron Transfer Capability |
---|---|---|---|---|---|
Graphene | 10−6 Ω/cm | 200,000 cm2V−1S−1 | high | high | good |
Circuit Parameters | w | t | EF | N |
---|---|---|---|---|
Resistance | − | \ | − | − |
Inductance | − | + | \ | + |
Capacitance | + | − | + | − |
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Zhang, H.; Wu, Z. Analysis of Circuit Parameters of New Graphene Partial Discharge Sensor Electrode Plate Based on Transmission Line Model. Energies 2022, 15, 2169. https://doi.org/10.3390/en15062169
Zhang H, Wu Z. Analysis of Circuit Parameters of New Graphene Partial Discharge Sensor Electrode Plate Based on Transmission Line Model. Energies. 2022; 15(6):2169. https://doi.org/10.3390/en15062169
Chicago/Turabian StyleZhang, Huiyuan, and Zhensheng Wu. 2022. "Analysis of Circuit Parameters of New Graphene Partial Discharge Sensor Electrode Plate Based on Transmission Line Model" Energies 15, no. 6: 2169. https://doi.org/10.3390/en15062169
APA StyleZhang, H., & Wu, Z. (2022). Analysis of Circuit Parameters of New Graphene Partial Discharge Sensor Electrode Plate Based on Transmission Line Model. Energies, 15(6), 2169. https://doi.org/10.3390/en15062169