Exploring Cyber-Physical Energy and Power System: Concepts, Applications, Challenges, and Simulation Approaches
Abstract
:1. Introduction
2. CPEPS Framework
2.1. Physical Energy and Power System
2.2. Cyber System
3. Current Applications and Challenges
3.1. Applications
3.1.1. Management and Control Energy and Power
3.1.2. Smart Grid
3.1.3. Smart Vehicles
3.2. Challenges
3.2.1. Cyber-Physical Attack
3.2.2. Data Protection and Data Security
3.2.3. Forecasting
3.2.4. Change Management and Conflict in Integrations
3.2.5. Model-Based Development
4. Simulation Approach of CPEPS
4.1. Re-Implementation Method
4.2. Co-Simulation Method
- -
- New models can be combined with legacy models already in use. Frequently, it is not possible to re-implement the given resources.
- -
- A multidisciplinary problem can be broken down into pieces using specialized simulators. By doing so, models of one sub-model need to be duplicated in the simulator of another sub-problem. The model library and user interface of the specialized simulator are typically better and more tailored to the specific domain.
- -
- The focus of the simulation study can have multiple foci. There is no need to simplify sub-problems, in contrast to a typical simulation. Since each sub-problem operates in a specialized environment, it is possible to model each one in detail.
4.2.1. Non-Real-Time Co-Simulation
4.2.2. Real-Time Co-Simulation
5. Proposed Research Direction
- (1)
- In CPEPS simulation methods, the time synchronization methods play a critical role in the efficiency of simulation, especially non-real-time-co-simulations. Therefore, creating and establishing and effective synchronization strategies will improve the accuracy of the simulation. Currently, physical energy and power, and communication network is analyzed, validated, and simulated in separated tools, so it is necessary to develop and platform capable of integrating features of these software, and satisfy the conditions of real-time simulation. In addition, real-time simulation software lacks specific analysis features such as specialized software for physical and cyber systems, the development of these features should be concerned.
- (2)
- Digital twin is another concept associated with the cyber-physical integration that can creates a high-fidelity virtual model of physical objects in virtual space in order to simulate their behaviors in the real world and provide feedback. In terms of operating status and risk prediction, digital twin can propose an accurate equivalent method for physical entities and become an opportunity for the rapid development of CPEPS simulation methods in the future.
- (3)
- The merged functionality to reduce physical equipment in the power station can be developed in the future. For example, the control devices such as silicon-controlled rectifier (SCR) or DC-AC converters and protection devices such as circuit breaker or protection relays in the power system today are independent and unrelated to each other. These devices’ functionality can be merged on the advancement of ICT, the control center receives data from the physical system, and then makes protection or control decisions. Figure 7 shows the diagram of cyber-physical convergent purpose for protection and control functionalities under ultra-high speed communication.
- (4)
- Data and information transmission processes, from receiving data at the cyber layer to responding the control signals to the physical layers, are now being implemented according to communication protocols standards. However, with the increase of massive data nowadays, there is a need for a method out of standards limitation to speed up data processing between the two layers to improve the robustness of state perception, attack prediction, reliability assessment and CPEPS models.
- (5)
- The cyber-security in communication network is necessary to enhance the anti-hacking capabilities toward the transition of digitalization of energy and power system. The cyber system should have self-healing and self-defense during cyber-attack. This direction should develop in the near future.
6. Conclusions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Power System Simulation Tools | Cyber System Simulation Tools | Co-Simulation Tools |
---|---|---|
1. MATLAB-Simpower systems | 1. OMNET++ | 1. Modelica + FMI |
2. PSCAD/EMTDC | 2. J-SIM (JAVA SIM) | 2. Dymola |
3. PowerWorld Simulator | 3. NS2 | 3. MathModelica |
4. OpenDSS | 4. RINSE | 4. MapleSIM |
5. DIgSILENT PowerFactory | 5. OPNET | 5. Ptolemy II |
6. EMTP-RV | 6. Visual Studio | 6. JModelica |
7. PSS/E | 7. NS3 | 7. Simantics |
8. ETAP | 8. GridSIM | 8. Mosaik |
9. GridLab-D | 9. NeSSi2 | 9. Mathworks |
10. GE PSLF | 10. GridStat | 10. Simscape |
11. MATPOWER | 11. COOJA | 11. EPOCHS |
12. EnergyPlus | 12. DeterLab | 12. Simulink |
13. UWPFLOW | 13. WANE | 13. LabVIEW |
14. TEFTS | 14. UPPAAL | |
15. PST–MATLAB | 15. Stateflow | |
16. InterPSS | 16. TIMES-Pro | |
17. OpenETran | 17. MATLAB-SimEvents | |
18. OpenPMU | 18. GLOMOSIM | |
19. rapid61850 | 19. Cloonix | |
20. Aspen | 20. GNS3 | |
21. PLECS | 21. IMUNES | |
22. Adevs | 22. Shadow | |
23. NEPLAN | ||
24. EUROSTAG | ||
25. Homer | ||
26. PCFLO | ||
27. PSAP |
Simulation Tools | Applications | Advantages | Drawbacks | References |
---|---|---|---|---|
OMNET++ |
|
|
| [29,30,31] |
OPNET |
|
|
| [31,32] |
NS2 |
|
|
| [31,33] |
NS3 |
|
|
| [31,34] |
GLOMOSIM |
|
|
| [31,35] |
MATLAB SimEvent |
|
|
| [36,37] |
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Pham, L.N.H. Exploring Cyber-Physical Energy and Power System: Concepts, Applications, Challenges, and Simulation Approaches. Energies 2023, 16, 42. https://doi.org/10.3390/en16010042
Pham LNH. Exploring Cyber-Physical Energy and Power System: Concepts, Applications, Challenges, and Simulation Approaches. Energies. 2023; 16(1):42. https://doi.org/10.3390/en16010042
Chicago/Turabian StylePham, Le Nam Hai. 2023. "Exploring Cyber-Physical Energy and Power System: Concepts, Applications, Challenges, and Simulation Approaches" Energies 16, no. 1: 42. https://doi.org/10.3390/en16010042
APA StylePham, L. N. H. (2023). Exploring Cyber-Physical Energy and Power System: Concepts, Applications, Challenges, and Simulation Approaches. Energies, 16(1), 42. https://doi.org/10.3390/en16010042