LAPSE:2019.0905
Published Article
LAPSE:2019.0905
Study on Grid-Connected Strategy of Distribution Network with High Hydropower Penetration Rate in Isolated Operation
Zifan Zhang, Zhidong Wang, Zhifeng Chen, Gan Wang, Na Shen, Changxing Guo
August 5, 2019
As the largest global renewable source, hydropower is a useful supplement to mountainous distribution networks with abundant water resources, and shoulders a large portion of the regulation duty in many power systems. In particular, in the form of decentralized energy sources located to their customers, small hydropower (SHP) improve grid stability by diversifying the electricity system and reducing power loss. The mountainous distribution networks supplied by small hydropower are closed-loop design but open-loop operation, which easily causes the tripping of tie line even further the off-grid operation of small hydropower system. Once the tie line trips, the current countermeasures—such as hydropower shutdown and load shedding—do not fully guarantee the reliability of power supply and the utilization efficiency of hydropower. This paper studies the amplitude-frequency characteristics of SHP off-grid, according to the typical integration of hydropower in South China, a SHP on-grid/off-grid model is established based on the Power Systems Computer Aided Design (PSCAD) platform. It is found that due to the inertia of SHP, the amplitude-frequency characteristics of SHP island system are relatively slow, and the process of non-synchronization with the main grid is gradually expanded. The characteristic of SHP has a certain degree of synchronization with the main grid in the initial island operates stage, which helps to find a novel grid connection method. This paper further proposes the strategy of using fast busbar automatic transfer switch (BATS), which quickly connect the trip-off SHP to the distribution network under the condition of permitting distributed energy grid-connected. The PSCAD simulation results show that proposed strategy has a limited impact on the power grid and prove the effectiveness of the method.
Keywords
grid-connected strategy, island operation, small hydropower
Suggested Citation
Zhang Z, Wang Z, Chen Z, Wang G, Shen N, Guo C. Study on Grid-Connected Strategy of Distribution Network with High Hydropower Penetration Rate in Isolated Operation. (2019). LAPSE:2019.0905
Author Affiliations
Zhang Z: School of Electrical Engineering, Guangzhou College of South China University of Technology, Guangzhou 510800, China
Wang Z: School of Electrical Engineering, Guangzhou College of South China University of Technology, Guangzhou 510800, China; School of Electric Power, South China University of Technology, Guangzhou 510641, China
Chen Z: School of Electrical Engineering, Guangzhou College of South China University of Technology, Guangzhou 510800, China; Shaoguan Power Supply Bureau, Guangdong Power Grid Corporation, Shaoguan 512300, China
Wang G: School of Electrical Engineering, Guangzhou College of South China University of Technology, Guangzhou 510800, China
Shen N: School of Electrical Engineering, Guangzhou College of South China University of Technology, Guangzhou 510800, China
Guo C: School of Electrical Engineering, Guangzhou College of South China University of Technology, Guangzhou 510800, China
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Journal Name
Processes
Volume
7
Issue
6
Article Number
E328
Year
2019
Publication Date
2019-06-01
Published Version
ISSN
2227-9717
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PII: pr7060328, Publication Type: Journal Article
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LAPSE:2019.0905
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doi:10.3390/pr7060328
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Aug 5, 2019
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Calvin Tsay
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