Asymmetrical Fault Correction for the Sensitive Loads Using a Current Regulated Voltage Source Inverter
Abstract
:1. Introduction
2. Causes, Effects and Existing Solutions of Asymmetrical Faults
3. Proposed Asymmetrical Fault Correction Technique
- It should provide protection to sensitive loads during all types of asymmetrical faults occurring, whether near or far from the fault point/location.
- The control scheme should be based on a current regulation algorithm to avoid performance issues while dealing with a large number of nonlinear loads for industrial use.
- The proposed topology should be economical, with an instant response to ensure high power regulating and conditioning capabilities and to make it feasible for all sensitive load applications.
3.1. Operating Principle
3.2. Current Regulating Algorithm
3.3. Advantages of the Proposed Technique over Existing Solutions
4. Experimental Results
5. Conclusions
Acknowledgments
Author Contributions
Conflicts of Interest
References
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Type of Event | Spike Suppressor | Voltage Regulator | Transformerless Dynamic Series Compensator (DySC) | UPS Systems | Proposed System |
---|---|---|---|---|---|
Spikes and Surges | Solves | Solves | Solves | Solves | Solves |
Sag to 80% | No | Solves | Solves | Solves | Solves |
Sag from 50%–80% | No | No | Solves | Solves | Solves |
Interruption 0–0.15 s | No | No | Solves | Solves | Solves |
Interruption 0.15–500 s | No | No | No | Solves | No |
Outage > 500 s | No | No | No | No | No |
Attributes | On-Line UPS System | Proposed System |
---|---|---|
Primary Powering Path | Inverter | Grid |
Efficiency | Lower | High |
Power Regulating and Compensation Capabilities | Yes | Yes |
Cost, Size and Weight | Higher | Lower |
System Starting Time | Zero | Negligible |
Parameter | Value |
---|---|
Utility/Grid | 220 V, 50 Hz |
DC Bus Voltage | 365 V |
Switching Frequency (fs) | 10 kHz |
Load Resistance | 160 Ω |
Load Inductance | 21.5 mH |
Filter Inductance (Lf) | 0.265 mH |
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Bukhari, S.S.H.; Atiq, S.; Lipo, T.A.; Kwon, B.-i. Asymmetrical Fault Correction for the Sensitive Loads Using a Current Regulated Voltage Source Inverter. Energies 2016, 9, 196. https://doi.org/10.3390/en9030196
Bukhari SSH, Atiq S, Lipo TA, Kwon B-i. Asymmetrical Fault Correction for the Sensitive Loads Using a Current Regulated Voltage Source Inverter. Energies. 2016; 9(3):196. https://doi.org/10.3390/en9030196
Chicago/Turabian StyleBukhari, Syed Sabir Hussain, Shahid Atiq, Thomas A. Lipo, and Byung-il Kwon. 2016. "Asymmetrical Fault Correction for the Sensitive Loads Using a Current Regulated Voltage Source Inverter" Energies 9, no. 3: 196. https://doi.org/10.3390/en9030196
APA StyleBukhari, S. S. H., Atiq, S., Lipo, T. A., & Kwon, B. -i. (2016). Asymmetrical Fault Correction for the Sensitive Loads Using a Current Regulated Voltage Source Inverter. Energies, 9(3), 196. https://doi.org/10.3390/en9030196