Optimization of Supercapacitor Assisted Surge Absorber (SCASA) Technique: A New Approach to Improve Surge Endurance Using Air-Gapped Ferrite Cores
Abstract
:1. Introduction
2. Supercapacitors for Surge Absorption
3. SCASA Technique
3.1. Implementation of the Coupled-Inductor
3.2. Problems with the Present Design
4. Development of Models for an Air-Gapped Toroid
4.1. Importance of an Air-Gap in Ferrite-Iron
4.2. Effective Relative Permeability of an Air-Gapped Core
4.3. Reduction of Self-Inductance in the Presence of an Air-Gap
4.4. Magnetic Energy Stored in an Air-Gap
5. Equivalent Circuit of SCASA Non-Ideal Transformer and Its Operation
Operational Modes of the Transformer Core
6. Measurements of Non-Ideal Characteristics of SCASA Transformer Core
7. Comparison of Performance: Powdered-Iron Core vs. Air-Gapped Ferrite Cores
7.1. Improvements to the Load Voltage
7.2. Evaluation of Surge Endurance
8. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
AC | Alternating Current |
RMS | Root Mean Square |
SC | Supercapacitor |
SCASA | Supercapacitor assisted Surge Absorber |
SPD | Surge Protector Device |
SMART TViQ | Commercial Implementation of SCASA Technique |
NLD | Non Linear Device |
BBD | Bidirectional Break-over Diode |
MOV | Metal Oxide Varistor |
EC | Electrolytic Capacitor |
EDLC | Electric Double Layer Capacitor |
Var1 and Var2 | Varistor 1 and Varistor 2 |
ITRS | International Technology Roadmap for Semiconductors |
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Inductance | Measurement | Model | Percentage |
---|---|---|---|
(μH) | Prediction (μH) | Variation | |
2.12 | 2.2 | ∼4% | |
1.6 | 1.6 | 0% | |
46.1 | 47.8 | ∼4% | |
34.6 | 34.98 | ∼1% | |
M | 9.88 | 9.9 | ∼0.2% |
Magnetic Core Type | Magnitude of Negative Surge Passing to the Load (V) | Amount of Negative Surge Reduced (V) | Reduction Percentage |
---|---|---|---|
Powdered-iron (0077071A7) | −860 | 0 | 0% |
Ferrite (ZW43615TC) | −40 | 820 | ∼95% |
Single-gapped Ferrite | −20 | 840 | ∼98% |
Double-gapped Ferrite | −20 | 840 | ∼98% |
Magnetic Core Type | Observations When Subjected to 200 Consecutive Surges | Clamping Voltage after 200 Surges | Impact of Negative Surge (Load-End) |
---|---|---|---|
Powdered-iron (0077071A7) | MOVs withstood surge energy (Clamping achieved) | ∼950 V | Observed (−900 V) |
Ferrite (ZW43615TC) | Failed (Failure of Var1) | Failed | Failed |
Single-gapped Ferrite | MOVs survived (Improved clamping) | ∼800 V | ∼95% reduction (−20 V to −40 V) |
Double-gapped Ferrite | MOVs survived (Improved clamping) | ∼770 V | ∼95% reduction (−20 V to −40 V) |
Magnetic Core Type | Clamping Voltage of Var2 (V) | Reduction of Clamping Voltage (V) | Reduction Percentage |
---|---|---|---|
Powdered-iron (0077071A7) | 920 | 0 | 0% |
Ferrite (ZW43615TC) | 768 | 152 | ∼17% |
Single-gapped Ferrite | 800 | 120 | ∼13% |
Double-gapped Ferrite | 776 | 144 | ∼16% |
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Silva Thotabaddadurage, S.U.; Kularatna, N.; Steyn-Ross, D.A. Optimization of Supercapacitor Assisted Surge Absorber (SCASA) Technique: A New Approach to Improve Surge Endurance Using Air-Gapped Ferrite Cores. Energies 2021, 14, 4337. https://doi.org/10.3390/en14144337
Silva Thotabaddadurage SU, Kularatna N, Steyn-Ross DA. Optimization of Supercapacitor Assisted Surge Absorber (SCASA) Technique: A New Approach to Improve Surge Endurance Using Air-Gapped Ferrite Cores. Energies. 2021; 14(14):4337. https://doi.org/10.3390/en14144337
Chicago/Turabian StyleSilva Thotabaddadurage, Sadeeshvara Udayanga, Nihal Kularatna, and D. Alistair Steyn-Ross. 2021. "Optimization of Supercapacitor Assisted Surge Absorber (SCASA) Technique: A New Approach to Improve Surge Endurance Using Air-Gapped Ferrite Cores" Energies 14, no. 14: 4337. https://doi.org/10.3390/en14144337
APA StyleSilva Thotabaddadurage, S. U., Kularatna, N., & Steyn-Ross, D. A. (2021). Optimization of Supercapacitor Assisted Surge Absorber (SCASA) Technique: A New Approach to Improve Surge Endurance Using Air-Gapped Ferrite Cores. Energies, 14(14), 4337. https://doi.org/10.3390/en14144337