Development of Reclosing Method in a Distribution System with Distributed Generation and Battery Energy Storage System
Abstract
:1. Introduction
- (1)
- This paper proposes a new reclosing scheme in a distribution system with both DG and a BESS.
- (2)
- Several considerations on reclosing issues in the distribution system with DG and a BESS are discussed.
- (3)
- A new system configuration and fault clearance judgement method for the proposed reclosing scheme are reported. The reclosing process of two CBs in the distribution line is determined considering the fault current contribution due to the reclosing failure. To support the new contributions of the proposed method, the differences between the proposed reclosing method and the reclosing in the transmission line are discussed.
- (4)
- The proposed reclosing scheme is verified by simulating the various fault conditions using an electromagnetic transients program (EMTP) and its superiority is verified by comparing it to the conventional reclosing.
- (5)
- The advantages of the proposed method are that the steady-state power is supplied to the load from the DG and BESS before the reclosing. Therefore, the load does not experience outage and the reliability of the power supply can be improved.
2. Effect of the DG and BESS on the Reclosing of the Distribution System
- (1)
- Even if CB2 is opened, the fault current can be continuously injected from BESS 1 on fault 1, as shown in Figure 3. Therefore, after the fault occurs, a normal current can be supplied to the healthy phase of Load 1 but not to its faulty phase.
- (2)
- When reclosing is attempted, the reclosing of CB2 should also be attempted. The synchronism verification of the existence of both sources must be considered and the reclosing order of CB1 and CB2 should be established at this time.
- (3)
- Following the opening of CB2, DG and BESS 2 will supply power to Load 2. Therefore, power quality problems such as frequency, voltage, and power factor problems will occur due to the islanding operation.
3. Reclosing Method of a Distribution System Considering the DG and BESS
3.1. System Configuration for the Proposed Reclosing Method
3.2. Flowchart of the Proposed Reclosing Method
- (1)
- Regarding the reclosing of a transmission line, the reclosing at the leading station close to the main power is first performed, and then the reclosing at the following station is carried out. However, in the proposed method, the reclosing of the CB close to the DG and the BESS and not at the main source is first performed to prevent the injection of the high fault current to the fault point when the reclosing fails.
- (2)
- Concerning the reclosing of a transmission line, whether the fault is removed is determined by judging whether the magnitude of the fault current is larger than the normal current after the reclosing. However, in the case of the proposed method, whether the fault is removed is determined by judging whether the current injected from the DG and BESS side is smaller than the predetermined value (β).
- (3)
- Pertaining to the reclosing of a transmission line, there is no load on the Bus. However, in the case of the proposed method, it is possible to increase the reliability of the power supply by not separating the DG and BESS because there is a Load. To achieve this, the DG has the reactive power control function to maintain the bus voltage within the normal range.
- (4)
- In the case of the reclosing of a transmission line, only the operations of the CBs at both ends are controlled. However, in the proposed method, if the voltage and frequency are not maintained within the normal range after the CBs are opened, the operations of the CBs connected with the DG and the BESS as well as the operations of the CBs at both ends are controlled.
4. Simulation and Discussion
4.1. System Model and Simulation Conditions
4.2. Simulation Results and Discussion
- (1)
- Fault occurrence
- (2)
- Opening of CB1 and CB3
- (3)
- First reclosing of CB3
- (4)
- (First reclosing of CB1
- (5)
- Second reclosing of CB3
- (6)
- Second reclosing of CB1
- (7)
- First reclosing of CB1 at conventional reclosing
- (8)
- Second reclosing of CB1 at conventional reclosing
4.2.1. Case 1
4.2.2. Case 2
4.2.3. Case 3
4.2.4. Case 4
4.2.5. Case 5
4.2.6. Simulation Results of Protective Relay 2
5. Conclusions
Funding
Conflicts of Interest
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Case | Fault Occurrence [s] | Fault Clearance Time [s] | DG Capacity [kW] |
---|---|---|---|
Case 1 | 1.2 | 1.4 | 1000 |
Case 2 | 1.2 | 1.4 | 1700 |
Case 3 | 1.2 | 1.4 | 4500 |
Case 4 | 1.2 | 2 | 1000 |
Case 5 | 1.2 | - | 4500 |
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Seo, H.-C. Development of Reclosing Method in a Distribution System with Distributed Generation and Battery Energy Storage System. Energies 2018, 11, 1407. https://doi.org/10.3390/en11061407
Seo H-C. Development of Reclosing Method in a Distribution System with Distributed Generation and Battery Energy Storage System. Energies. 2018; 11(6):1407. https://doi.org/10.3390/en11061407
Chicago/Turabian StyleSeo, Hun-Chul. 2018. "Development of Reclosing Method in a Distribution System with Distributed Generation and Battery Energy Storage System" Energies 11, no. 6: 1407. https://doi.org/10.3390/en11061407
APA StyleSeo, H. -C. (2018). Development of Reclosing Method in a Distribution System with Distributed Generation and Battery Energy Storage System. Energies, 11(6), 1407. https://doi.org/10.3390/en11061407