The Implementation and Evaluation of Virtualized Protection Intelligent Electronic Devices into a Virtual Substation
Abstract
:1. Introduction
1.1. Background
1.2. Motivation
1.3. Objective
2. Materials and Methods
2.1. Virtualization Framework and Containerization
2.2. Abstraction of IED Communication and Functional Layer
2.2.1. Communication Layer: Implementation of Substation Process Bus Communication
2.2.2. Reproduced Protective Functions
- Instantaneous Overcurrent (PIOC, ANSI/IEEE Code 50)
- Within the domain of power system protection, instantaneous overcurrent relay, denoted by the ANSI/IEEE standard code 50, serves as a critical fundamental protection mechanism [16]. The principle of PIOC entails the immediate activation of the breaker trip once the current surpasses a preset pickup level. So, this type of protection is the most elementary form of overcurrent protection and is independent of the duration of the current excess. The PIOC delivers a nearly instantaneous response to current surges and transient spikes. The actuation time of the relay and the latency of the communication path are crucial elements, making it an ideal subject for investigations of virtualized IEDs. In our tests, the threshold value for triggering the PIOC (pickup current) is 200% of the base current. The load current is around 5.2 A.
- Time Overcurrent (PTOC, ANSI/IEEE Code 51)
2.2.3. Function Layer: Implementation of Reproduced Protective Functions
2.3. Evaluation Methodology and Scenario
3. Results
3.1. Resulting Short-Circuit Currents
3.2. Comparison of Tripping Times
4. Discussion
4.1. Interpretation of Results
4.2. Advantages of Containerization
4.3. Limitations and Future Work
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
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Protection Function | PIOC | PTOC |
---|---|---|
vIED container | 1.50 ms | 95.95 ms |
ABB RED 670 | 1.29 ms | 97.95 ms |
Absolute Error | 0.21 ms | 2 ms |
Relative Error | 16.28% | 2.04% |
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Rösch, D.; Schäfer, K.; Nicolai, S. The Implementation and Evaluation of Virtualized Protection Intelligent Electronic Devices into a Virtual Substation. Electricity 2024, 5, 385-396. https://doi.org/10.3390/electricity5020020
Rösch D, Schäfer K, Nicolai S. The Implementation and Evaluation of Virtualized Protection Intelligent Electronic Devices into a Virtual Substation. Electricity. 2024; 5(2):385-396. https://doi.org/10.3390/electricity5020020
Chicago/Turabian StyleRösch, Dennis, Kevin Schäfer, and Steffen Nicolai. 2024. "The Implementation and Evaluation of Virtualized Protection Intelligent Electronic Devices into a Virtual Substation" Electricity 5, no. 2: 385-396. https://doi.org/10.3390/electricity5020020
APA StyleRösch, D., Schäfer, K., & Nicolai, S. (2024). The Implementation and Evaluation of Virtualized Protection Intelligent Electronic Devices into a Virtual Substation. Electricity, 5(2), 385-396. https://doi.org/10.3390/electricity5020020