Battery Storage Integration in Voltage Unbalance and Overvoltage Mitigation Control Strategies and Its Impact on the Power Quality
Abstract
:1. Introduction
2. Control Strategies Description
2.1. Active Power Drooping
2.2. Controller for the Battery Energy Storage System
2.3. Positive-Sequence Control Strategy
2.4. Three-Phase Damping Control Strategy
3. Simulation Results
3.1. Model Description
3.1.1. Grid Data
3.1.2. DRES, BESS and Load Data
3.1.3. Short Description of the Simulink Model
3.1.4. Integration of BESS into DRES
3.2. Simulation Results
3.2.1. BESS Controller Operating Principle
3.2.2. Performance Assessment of the Different Cases and Sub-Cases
4. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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LINE | R (/km) | X (/km) | C (nF/km) | R (/km) | X (/km) | Length (km) |
---|---|---|---|---|---|---|
LV-2 | 0.456 | 0.088 | 250 | 4 | 0.0877 | 0.057 |
2-3 | 0.468 | 0.085 | 250 | 4 | 0.0851 | 0.094 |
3-4 | 0.48 | 0.08 | 250 | 4 | 0.08 | 0.025 |
4-5 | 0.462 | 0.083 | 250 | 4 | 0.0833 | 0.132 |
5-6 | 0.924 | 0.076 | 200 | 4 | 0.0758 | 0.066 |
DRES | Rated Active | Case 0 | Case 1 | Case 2 |
---|---|---|---|---|
Power | Capacity/Output Power | Capacity/Output Power | Capacity/Output Power | |
Node 2 DRES | 20 kW (Y) | 0 kWh/ 0 kW | 7 kWh/3.3 kW (0.35) * | 14 kWh/5 kW (0.70) * |
Node 4 DRES | 20 kW (Y) | 0 kWh/ 0 kW | 7 kWh/3.3 kW (0.35) * | 14 kWh/5 kW (0.70) * |
Node 5 DRES | 5 kW/bn | - | - | - |
Node 6 DRES | 20 kW(Y) | 0 kWh/ 0 kW | 7 kWh/3.3 kW (0.35) * | 14 kWh/5 kW (0.70) * |
Load | Rated Active Power | Rated Reactive Power |
---|---|---|
Node 3 Load 1 (Y) | 4.5/2.7/2.7 kW | 2.17/1.3/1.3 kvar |
Node 4 Load 2 (Y) | 3.6/3.6/3.6 kW | 1.74/1.74/1.74 kvar |
Node 6 Load 3 (Y) | 5.4/3.6/3.6 kW | 2.61/1.74/1.74 kvar |
p.u. | p.u. | p.u. | p.u. | p.u. | |
---|---|---|---|---|---|
Case 0 (APD) | C0S1 | C0S2 | C0S3 | C0S4 | C0S5 |
Case 1—7 kWh | C1S1 | C1S2 | C1S3 | C1S4 | C1S5 |
Case 2—14 kWh | C2S1 | C2S2 | C2S3 | C2S4 | C2S5 |
Parameter | p.u. | p.u. | p.u. | p.u. | p.u. |
---|---|---|---|---|---|
[A] | 32 | 38 | 42 | 45 | 47 |
P [kW] | 20 | 23.6 | 26.1 | 28 | 29.2 |
Inverter type | SMA Tripower | SMA Tripower | SMA Tripower | SMA Tripower | SMA Tripower |
Sunny | Sunny | Sunny | Sunny | Sunny | |
20000TL-30 | 25000TL-30 | 30000TL-US-10 | 30000TL-US-10 | 30000TL-US-10 | |
Inverter [kVA] | 20 | 25 | 30 | 30 | 30 |
Inverter cost [Euro] | 2769.00 [49] | 2799.00 [49] | 3593.60 [50] | 3593.60 [50] | 3593.60 [50] |
TeslaWall 1.0 price [Euro] | 4522.3 [51] | 4522.3 [51] | 4522.3 [51] | 4522.3 [51] | 4522.3 [51] |
TeslaWall 2.0 price [Euro] | 7740 [52] | 7740 [52] | 7740 [52] | 7740 [52] | 7740 [52] |
Total | 7291.3 * | 7321.3 * | 8115.9 * | 8115.9 * | 8115.9 * |
10,509 ** | 10,549 ** | 11,333.6 ** | 11,333.6 ** | 11,333.6 ** |
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Bozalakov, D.; Mnati, M.J.; Laveyne, J.; Desmet, J.; Vandevelde, L. Battery Storage Integration in Voltage Unbalance and Overvoltage Mitigation Control Strategies and Its Impact on the Power Quality. Energies 2019, 12, 1501. https://doi.org/10.3390/en12081501
Bozalakov D, Mnati MJ, Laveyne J, Desmet J, Vandevelde L. Battery Storage Integration in Voltage Unbalance and Overvoltage Mitigation Control Strategies and Its Impact on the Power Quality. Energies. 2019; 12(8):1501. https://doi.org/10.3390/en12081501
Chicago/Turabian StyleBozalakov, Dimitar, Mohannad J. Mnati, Joannes Laveyne, Jan Desmet, and Lieven Vandevelde. 2019. "Battery Storage Integration in Voltage Unbalance and Overvoltage Mitigation Control Strategies and Its Impact on the Power Quality" Energies 12, no. 8: 1501. https://doi.org/10.3390/en12081501
APA StyleBozalakov, D., Mnati, M. J., Laveyne, J., Desmet, J., & Vandevelde, L. (2019). Battery Storage Integration in Voltage Unbalance and Overvoltage Mitigation Control Strategies and Its Impact on the Power Quality. Energies, 12(8), 1501. https://doi.org/10.3390/en12081501