Research on Optimal Voltage Control of Distribution Network with the Participation of EVs and PVs
Abstract
:1. Introduction
2. Materials and Methods
2.1. Impact of EV and PV Penetration on the Votage Profiles of Distribution Networks
2.2. Grid Voltage Support Capability of PV Systems
2.2.1. Analysis of PV Generation Profiles
2.2.2. The Volt/VAr Control Scheme of PV Systems
2.3. Energy Management Schemes of EV Charging
2.3.1. Analysis of EV Charging Demands
2.3.2. Modelling of the EV Charging/Discharging Scheme
2.4. A Two-Stage Voltage Regulation Scheme for Distribution Networks with PVs and EVs
2.4.1. Modelling of the Day-Ahead Control Stage
2.4.2. Modelling of the Intraday Control Stage
3. Case Studies
3.1. Basic Information of the Test Cases
3.2. Simulation Results of the Day-Ahead Control Stage
3.3. Simulation Results of the Intraday Control Stage
4. Discussion
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Device Name | Output Type | Mechanism | Response Speed | Number in a Feeder |
---|---|---|---|---|
OLTC transformer | Discrete voltage | Mechanical | Slow | Limited |
SCB | Discrete Var | Mechanical | Slow | Limited |
Voltage regulator | Discrete voltage | Mechanical | Slow | Limited |
Smart EV charger | Continuous Watt and Var | Electronic | Fast | Numerous increasing |
Smart PV inverter | Continuous Watt and Var | Electronic | Fast | Numerous increasing |
Distribution Voltage Regulation Types | Advantages | Disadvantages |
---|---|---|
Local voltage control | no communications required between different voltage support resources | cannot achieve the globally optimized voltage distribution patterns |
Centralized voltage control | can achieve the globally optimized voltage distribution patterns | require dedicated communication systems for the whole grid |
Distributed voltage control | do not require centralized voltage controller; limited communication resources are required | require sophisticated control algorithms |
Multi-time scale voltage control | coordination of all available voltage support resources achieved; limited communication resources are required; can incorporate the other three types of voltage regulation methods | need to define proper coordination schemes at multi-time scales |
EV Transport Type | Charing Period | Initial Battery SoC | Battery Capacity (kWh) | Types of Charging | EV Arrival Time at the Charging Station |
---|---|---|---|---|---|
Private car | 7:00~17:00 18:00~7:00 | N (0.69, 0.12) | 35 | Slow charging (7 kW) | N * (11.3, 3.12) N * (20.9, 1.72) |
Bus | 23:00~5:30 | N (0.5, 0.12) | 100 | Slow charging (7 kW) | U * |
Taxi | 4:00~7:00 16:30~19:00 | N (0.3, 0.12) | 80 | Fast charging (30 kW) | N * (5.6, 1.22) N * (17.1, 1.22) |
Exclusively-used car | 17:00~8:00 | N (0.48, 0.22) | 50 | Slow charging (7 kW) | N * (18.3, 3.92) |
Operation Status of EV Charger | atm,c | btm,d |
---|---|---|
Charging | 1 | 0 |
Discharging | 0 | 1 |
Idle | 0 | 0 |
Optimization Window | EV Availability | EV Control Variables |
---|---|---|
W2 | EV1, EV2 | , , , |
W3 | EV1, EV2, EV3, EV4 | , , |
W4 | EV1, EV3, EV4, EV5 |
EV No. | t2~t3 | t3~t4 | t4~t5 |
---|---|---|---|
1 | |||
2 | / | ||
3 | / | ||
4 | / | ||
5 | / | / |
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Zhou, Y.; Gao, F.; Zhang, Z.; Zhao, S.; Xu, X.; Meng, H.; Gao, H. Research on Optimal Voltage Control of Distribution Network with the Participation of EVs and PVs. Appl. Sci. 2023, 13, 5987. https://doi.org/10.3390/app13105987
Zhou Y, Gao F, Zhang Z, Zhao S, Xu X, Meng H, Gao H. Research on Optimal Voltage Control of Distribution Network with the Participation of EVs and PVs. Applied Sciences. 2023; 13(10):5987. https://doi.org/10.3390/app13105987
Chicago/Turabian StyleZhou, Yu, Fan Gao, Zhen Zhang, Shuangshuang Zhao, Xiao Xu, Haoge Meng, and Hui Gao. 2023. "Research on Optimal Voltage Control of Distribution Network with the Participation of EVs and PVs" Applied Sciences 13, no. 10: 5987. https://doi.org/10.3390/app13105987
APA StyleZhou, Y., Gao, F., Zhang, Z., Zhao, S., Xu, X., Meng, H., & Gao, H. (2023). Research on Optimal Voltage Control of Distribution Network with the Participation of EVs and PVs. Applied Sciences, 13(10), 5987. https://doi.org/10.3390/app13105987