Multi-Rate and Parallel Electromagnetic Transient Simulation Considering Nonlinear Characteristics of a Power System
Abstract
:1. Introduction
2. MATE-Based Parallel Algorithm Considering Nonlinear Characteristics of a Power System
2.1. Fundamentals
2.2. Physical Significance of the Parallel Algorithm
3. Multi-Rate Simulation in Parallel Algorithm
3.1. Concept of Non-Synchronized and Synchronized Time
3.2. Calculation Method at Non-Synchronized and Synchronized Time
3.2.1. Non-Synchronized Time
3.2.2. Synchronized Time
4. Simulation Process
4.1. Optimization of Simulation Process
4.2. Simulation Process
- (1)
- For the AC subnet, calculate and based on the calculation results of t0, which is shown in Equations (10) and (11), and interpolate to obtain their interpolation Thevenin voltage, which is shown in Equation (12).
- (2)
- For the DC subnet, let k = 1.
- (3)
- For the DC subnet, calculate based on the calculation results of .
- (4)
- Send , , and to the master side, calculate the link currents according to Equation (9) and send them back to the DC net.
- (5)
- During procedure (4), is calculated at the same time.
- (6)
- VB is calculated according to the second line of Equation (18), and is updated.
- (7)
- Let k = k + 1, and judge whether k < λ.
- (8)
- If k < λ, return to procedure (3). If not, go to procedure (9).
- (9)
- For the DC subnet, calculate based on the calculation results of the whole .
- (10)
- During procedures (4) to (9), and are calculated at the same time, and , could be obtained.
- (11)
- Send , and to master side, calculate link currents according to Equation (9) and send them back to the AC and DC nets.
- (12)
- During procedure (11), is calculated at the same time.
- (13)
- VA, VB, and VC are calculated according to Equation (18).
5. Simulation Results
5.1. Accuracy Analysis of Algorithm
5.2. Analysis of Algorithm Efficiency
5.2.1. Influence of Subnet Partition on Efficiency
5.2.2. Influence of Subnet Scale on Efficiency
5.2.3. Efficiency Comparison between the Proposed Method and Multilevel MATE
5.3. Influence of Algorithm Parameters
5.3.1. Number of Lagrange Interpolation Points
5.3.2. Network Modeling Method
6. Conclusions
- (1)
- The proposed method uses different simulation steps for subnets with different time constants. Compared with PSCAD, this method basically obtains exactly the same simulation result.
- (2)
- Under the same network partitioning conditions, the proposed method could achieve higher simulation efficiency compared with traditional serial, single-rate MATE parallel and multi-rate parallel methods, based on latency simulation methods.
- (3)
- The proposed method guarantees the admittance matrix is constant in the simulation process and avoids the repeated admittance inversion process. The efficiency of this method is slightly affected by the size of the network.
Acknowledgments
Author Contributions
Conflicts of Interest
References
- Zhang, B.; Zhao, D.; Jin, Z.; Wu, Y. Multivalued Coefficient Prestorage and Block Parallel Method for Real-Time Simulation of Microgrid on FRTDS. Energies 2017, 10, 1248. [Google Scholar] [CrossRef]
- Song, S.; Kim, J.; Lee, J.; Jang, G. AC Transmission Emulation Control Strategies for the BTB VSC HVDC System in the Metropolitan Area of Seoul. Energies 2017, 10, 1143. [Google Scholar] [CrossRef]
- Qiu, W.; Huang, Y.; Zhang, X.; Xu, Z.; He, J. Test on electromagnetic transient in an operating UHVDC converter station. In Proceedings of the Advanced Research and Technology in Industry Applications, Ottawa, ON, Canada, 29–30 September 2014; pp. 1423–1425. [Google Scholar]
- Shao, S.J.; Agelidis, V.G. Review of DC System Technologies for Large Scale Integration of Wind Energy Systems with Electricity Grids. Energies 2010, 3, 1303–1319. [Google Scholar] [CrossRef]
- Kron, G. Tensorial Analysis of Integrated Transmission Systems; Part III. The “Primitive” Division. Trans. Am. Inst. Electr. Eng. Part III Power Appar. Syst. 1952, 71, 814–822. [Google Scholar]
- Martí, J.R.; Linares, L.R.; Hollman, J.A.; Moreira, F.A. OVNI: Integrated software/hardware solution for real-time simulation of large power systems. In Proceedings of the 14th Power Systerm Computation Confercence, Sevilla, Spain, 24–28 June 2002. [Google Scholar]
- Armstrong, M.; Marti, J.; Linares, L.; Kundur, P. Multilevel MATE for efficient simultaneous solution of control systems and nonlinearities in the OVNI simulator. IEEE Trans. Power Syst. 2006, 21, 1250–1259. [Google Scholar] [CrossRef]
- Moreira, F.A.; Marti, J.R. Latency techniques for time-domain power system transients simulation. IEEE Trans. Power Syst. 2005, 20, 246–253. [Google Scholar] [CrossRef]
- Moreira, F.A.; Mart, J.R.; Zanetta, L.C., Jr.; Linares, L.R. Multirate Simulations with Simultaneous-Solution Using Direct Integration Methods in a Partitioned Network Environment. IEEE Trans. Circuits Syst. I Regul. Pap. 2006, 53, 2765–2778. [Google Scholar] [CrossRef]
- Chen, L.; Chen, Y.; Xu, Y.; Ghong, Y. A novel algorithm for parallel electromagnetic transient simulation of power systems with switching events. In Proceedings of the International Conference on Power System Technology, Hangzhou, China, 24–28 October 2010; pp. 1–7. [Google Scholar]
- Chen, L.; Chen, Y.; Mei, S. An implicit synchro-nization approach and its application in parallel computation of electro-magnetic transient. Adv. Technol. Electr. Eng. Energy 2010, 29, 9–12. [Google Scholar]
- Mu, Q.; Li, Y.; Zhou, X.; Zhao, P.; Zhang, X. A Parallel Multi-rate Electromagnetic Transient Simulation Algorithm Based on Network Division Through Transmission Line. Autom. Electr. Power Syst. 2014, 38, 47–52. [Google Scholar]
- Yue, C.; Zhou, X.; Li, R. Study of parallel approaches to power system electromagnetic transient real-time simulation. Proc. CSEE 2004, 24, 1–7. [Google Scholar]
- Tian, F.; Zhou, X. Partition and Parallel Method for Digital Electromagnetic Transient Simulation of AC/DC Power System. Proc. CSEE 2011, 31, 1–7. [Google Scholar]
- Suh, J.; Hwang, S.; Jang, G. Development of a Transmission and Distribution Integrated Monitoring and Analysis System for High Distributed Generation Penetration. Energies 2017, 10, 1282. [Google Scholar] [CrossRef]
- Dommel, H.W.; Meyer, W.S. Computation of electromagnetic transients. Proc. IEEE 1974, 62, 983–993. [Google Scholar] [CrossRef]
- Arrillaga, J.; Watson, N. Power Systems Electromagnetic Transients Simulation; The Institution of Engineering and Technology: Hertfordshire, UK, 2003. [Google Scholar]
Partition Scheme | Number of Subnets | Area Number |
---|---|---|
1 | 3 | {1,2,3,4,5,6,8};{7};{9,10,11,12,13,14} |
2 | 5 | {1,2,3,8};{4,5,6};{7};{9,10,11},{12,13,14} |
3 | 7 | {1,2,8};{3,4};{5,6};{7};{9,10};{11,12};{13,14} |
4 | 13 | {1,8};{2};{3};{4};{5};{6};{7};{8};{9};{10};{11};{12};{13};{14} |
Serial Number | Simulation Method | Simulation Step/μs | |
---|---|---|---|
AC Subnet | DC Subnet | ||
1 | Serial | 10 | |
2 | MATE | 10 | 10 |
3 | Latency | 50 | 10 |
4 | Proposed algorithm | 50 | 10 |
Serial Number | Paralleled Circuit on AC Bus | Simulation Time/s | ||||
---|---|---|---|---|---|---|
Rectifier Side | Inverter Side | Serial | MATE | Latency | Proposed Method | |
1 | 1 | 1 | 6.742 | 4.084 | 2.881 | 1.156 |
2 | 5 | 5 | 10.846 | 5.538 | 3.469 | 1.249 |
3 | 10 | 10 | 16.485 | 7.963 | 4.615 | 1.439 |
4 | 15 | 15 | 23.617 | 10.864 | 7.544 | 1.813 |
5 | 20 | 20 | 35.554 | 15.694 | 12.437 | 2.126 |
Serial Number | 1 | 2 | 3 | 4 | 5 |
---|---|---|---|---|---|
t1 | 2.048 | 2.216 | 2.587 | 2.896 | 3.465 |
t2 | 2.189 | 2.464 | 2.618 | 3.042 | 3.615 |
t2 − t1 | 0.148 | 0.248 | 0.031 | 0.146 | 0.150 |
Interpolation Point | 2 | 3 | 4 | 5 |
Average relative tolerance | 1.24% | 1.08% | 1.96% | 3.19% |
Integral Method | Average Relative Tolerance | Simulation Time |
---|---|---|
Implicit trapezoid | 1.08% | 1.057 s |
Forward Euler | 1.47% | 1.044 s |
Backward Euler | 1.42% | 1.046 s |
Gear (2nd order) | 1.19% | 1.109 s |
Adams-Bathurst (2nd order) | 1.51% | 1.124 s |
Adams-Bathurss (3rd order) | 1.49% | 1.233 s |
© 2018 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
Share and Cite
Han, J.; Miao, S.; Yu, J.; Dong, Y.; Hou, J.; Duan, S.; Li, L. Multi-Rate and Parallel Electromagnetic Transient Simulation Considering Nonlinear Characteristics of a Power System. Energies 2018, 11, 468. https://doi.org/10.3390/en11020468
Han J, Miao S, Yu J, Dong Y, Hou J, Duan S, Li L. Multi-Rate and Parallel Electromagnetic Transient Simulation Considering Nonlinear Characteristics of a Power System. Energies. 2018; 11(2):468. https://doi.org/10.3390/en11020468
Chicago/Turabian StyleHan, Ji, Shihong Miao, Jing Yu, Yifeng Dong, Junxian Hou, Simo Duan, and Lixing Li. 2018. "Multi-Rate and Parallel Electromagnetic Transient Simulation Considering Nonlinear Characteristics of a Power System" Energies 11, no. 2: 468. https://doi.org/10.3390/en11020468
APA StyleHan, J., Miao, S., Yu, J., Dong, Y., Hou, J., Duan, S., & Li, L. (2018). Multi-Rate and Parallel Electromagnetic Transient Simulation Considering Nonlinear Characteristics of a Power System. Energies, 11(2), 468. https://doi.org/10.3390/en11020468