Environment-Friendly and Efficient Gaseous Insulator as a Potential Alternative to SF6
Abstract
:1. Introduction
2. Laboratory Test Setup and Assembly of Test Electrodes
3. Power Frequency Breakdown Voltage Experiments
3.1. Experimental Procedure
3.2. Gas Mixture Procedure
3.3. Calculation of Accurate Gas Mixture Pressure
3.4. Mixture Ratio Analysis
3.5. Dielectric Strength Analysis
3.6. Gap Difference Analysis
3.7. Statistical Analysis of R152a
4. HVDC Analysis
5. Global Warming Potential (GWP) Analysis
6. R152a/CO2 Liquefaction Temperature Analysis
7. Conclusions
- (1)
- The insulation strength of gas mixture R152a/CO2 (80%/20%) can reach more than 96% of SF6. This enabled us to present the optimal ratio achieved by replacing SF6 as the insulation performance of R152a/CO2 (80%/20%) is close to SF6.
- (2)
- The AC breakdown voltages of R152a/CO2 increase linearly by increasing the gap length. The proposed gas mixture demonstrates good dielectric properties by increasing the content of R152a with comparatively low-temperature applications.
- (3)
- Furthermore, these formulated mixtures are cost-effective and reduce the amount of GWP 98% as compared to pure SF6.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Gases | Problems and Drawbacks |
---|---|
Carbon dioxide, Nitrogen and Dry air | Momentous expansion in pressure. Momentous expansion in size of equipment. Low breakdown voltage [18]. |
Trifluoro iodomethane mixtures (CF3I/CO2 or N2) | Boiling point large than that of CF3I (−22.5 °C) at 0.1 MPa. Classified as a perilous, mutagenic, and venomous for facsimile (Type-3) [19]. |
Mixtures of per-fluorinated ketones (C5F10O, C6F12O/Technical air or CO2) | Superior smallest operating temperature than SF6 [20]. Far above the ground boiling temperature (24 °C) at (0.1 MPa) because of higher molecular mass. |
HFO 1234ze | Carbon grime dump on electrodes owing to high spark voltage. Superior operating temperature than SF6 while unpolluted (constrained at −15 °C). |
C4F7N/CO2 | Having high boiling point (−4.7 °C at 0.1 MPa) [14] |
Worldwide SF6 Insulated GIS | Expected Mass of Each Component | Total SF6 Used in All GIS | Annually Leakage of SF6 from all GIS | Cumulative 25 Years Leakage of SF6 from All GIS |
---|---|---|---|---|
20,000 | 500 kg | 10,000,000 kg | 9881 Kg | 392,944 Kg |
Reference | Gas | Dielectric Strength (DS) | Global Warming Potential | Atmosphere Lifetime | Boiling Point | Cost/kg |
---|---|---|---|---|---|---|
[11] | SF6 | 1 | 22,800 | 3200 | −63 °C | 25–30 $ |
[22] | N2 | 0.40 | 0 | −195.8 °C | 0.25 times of SF6 | |
[23] | CO2 | 0.37 | 1 | −78.5 °C | 0.35 times of SF6 | |
[23] | C2F6 | 0.80 | 12,200 | 10,000 | −78.1 °C | 2.5 times of SF6 |
[23] | C3F8 | 0.90 | 8830 | 2600 | −36.7 °C | 2 times of SF6 |
[23] | CF3I | 1.21 | 5 | 0.05 | −22.5 °C | 10 times of SF6 |
[23] | C4F10 | 1.2–1.3 | 8700 | 3200 | −5.99 °C | 9 times of SF6 |
Properties | SF6 | R152a |
---|---|---|
GWP | 22,800 | 140 |
Density | 6.17 kg/m3 | 2.7 kg/cm3 |
Molecular mass | 146.06 g/mol | 66.1 g/mol |
Atmospheric life | 3200 | 1.5 |
Boiling point | −64 °C | −25 °C |
Appearance | Colorless | Colorless |
Electronegativity | 2.5 | 2.42 |
Price/kg | $28 to $30 | $12 |
Specifications | Standards |
---|---|
Voltage (AC) | 100 kilovolts |
Pressure (p) | 0 to 6 bars |
Diameter of sphere electrodes | 50 mm |
Vertical height | 800 mm |
Configuration of Electrodes | Sphere–Sphere |
---|---|
Length of spark gap | 6 mm–18 mm |
AC voltage | 0–100 kV (AC) |
DC voltage | 0–140 kV (DC) |
Material of electrode | Aluminum Ni plated steel |
Measurement No. | R152a Ratio (%) | CO2 Ratio (%) |
---|---|---|
1 | 90 | 10 |
2 | 80 | 20 |
3 | 70 | 30 |
4 | 60 | 40 |
5 | 50 | 50 |
Base Gas R152a Mixed Gas CO2 | |||||
---|---|---|---|---|---|
RBG 1 | 50% | 60% | 70% | 80% | 90% |
SD | 11.2 | 12.3 | 10.21 | 14.2 | 12.9 |
Μ | 46.1 | 51.6 | 59.7 | 57.3 | 55.3 |
cv | 0.23 | 6 | 0.27 | 0.28 | 0.19 |
Max kV | 60 | 69.8 | 73 | 76.1 | 71.6 |
Min kV | 26 | 4 | 49.8 | 43 | 35.6 |
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Kharal, H.S.; Kamran, M.; Ullah, R.; Saleem, M.Z.; Alvi, M.J. Environment-Friendly and Efficient Gaseous Insulator as a Potential Alternative to SF6. Processes 2019, 7, 740. https://doi.org/10.3390/pr7100740
Kharal HS, Kamran M, Ullah R, Saleem MZ, Alvi MJ. Environment-Friendly and Efficient Gaseous Insulator as a Potential Alternative to SF6. Processes. 2019; 7(10):740. https://doi.org/10.3390/pr7100740
Chicago/Turabian StyleKharal, Hafiz Shafqat, Muhammad Kamran, Rahmat Ullah, Muhammad Zaheer Saleem, and Muhammad Junaid Alvi. 2019. "Environment-Friendly and Efficient Gaseous Insulator as a Potential Alternative to SF6" Processes 7, no. 10: 740. https://doi.org/10.3390/pr7100740
APA StyleKharal, H. S., Kamran, M., Ullah, R., Saleem, M. Z., & Alvi, M. J. (2019). Environment-Friendly and Efficient Gaseous Insulator as a Potential Alternative to SF6. Processes, 7(10), 740. https://doi.org/10.3390/pr7100740