Voltage Reduction in Medium Voltage Distribution Systems Using Constant Power Factor Control of PV PCS
Abstract
:1. Introduction
2. Measurement of Voltage Reduction Due to Reverse Power Flow
3. Medium and LV Distribution System Model
3.1. MV Distribution System Model
3.2. Low-Voltage Distribution System Model
3.3. Load and PV Output Model
4. Effect of Constant Power Factor Control of PCS on Voltage in an MV Distribution System
4.1. Voltage without LV PCS
4.2. Effect of Constant Power Factor Control of PCS on Voltage at MV Distribution System
4.3. Comparison with Other MV Distribution System
4.4. Effect of Constant Power Factor Control of PCS on Voltage in LV Distribution System
5. Conclusions
- Notably, the constant power factor control of PCS worsens voltage reduction in a MV distribution system. This can be explained by an increase in the reactive power loss in a MV distribution line due to reverse power flow. The decrease in the minimum voltage of the distribution system may affect the management of voltage regulation.
- The constant power factor control of PCS works effectively for mitigating the voltage rise in LV distribution systems and even in an MV distribution system with the characteristic of voltage reduction due to the reverse power flow.
- As described in many studies, it has been confirmed that the constant power factor control mitigates the voltage rise in a distribution system in which the voltage rises with the increase in the reverse power flow.
- Before the constant power factor control is applied to the PCS in the LV distribution system, the DSO should determine whether the voltage reduction due to reverse power flow may occur in the MV distribution line.
Author Contributions
Funding
Conflicts of Interest
References
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Node | Load Capacity [kW] | Node | Load Capacity [kW] |
---|---|---|---|
5 | 130 | 19 | 224 |
6 | 46 | 22 | 95 |
7 | 195 | 23 | 341 |
8 | 47 | 24 | 138 |
9 | 92 | 25 | 1 |
12 | 92 | 27 | 63 |
13 | 113 | 28 | 117 |
14 | 139 | 30 | 56 |
15 | 138 | 31 | 25 |
16 | 144 | 32 | 26 |
17 | 1 | 33 | 70 |
Node | Node | Impedance [Ω] |
---|---|---|
1 | 2 | 0.0152 + j0.0195 |
2 | 3 | 0.0179 + j0.0160 |
2 | 4 | 0.0179 + j0.0160 |
2 | 6 | 0.0285 + j0.0013 |
2 | 7 | 0.0285 + j0.0013 |
3 | 8 | 0.0285 + j0.0013 |
3 | 9 | 0.0285 + j0.0013 |
4 | 5 | 0.0460 + j0.0160 |
4 | 10 | 0.0285 + j0.0013 |
4 | 11 | 0.0285 + j0.0013 |
5 | 12 | 0.0285 + j0.0013 |
5 | 13 | 0.0285 + j0.0013 |
Case | Node w/PV System | Total Capacity of PCS in A LV Distribution System Shown in Figure 6 [kW] | Total Capacity of PCS in Distribution System Shown in Figure 5 [kW] | Power Factor of PCS |
---|---|---|---|---|
A1 | 8, 12 | 4 | 573 | 1.00 |
A2 | 8, 12 | 4 | 573 | 0.95 |
B1 | 6, 8, 10, 12 | 8 | 1 147 | 1.00 |
B2 | 6, 8, 10, 12 | 8 | 1 147 | 0.95 |
C1 | 6, 8, 9, 10, 12, 13 | 12 | 1 720 | 1.00 |
C2 | 6, 8, 9, 10, 12, 13 | 12 | 1 720 | 0.95 |
D1 | 6, 7, 8, 9, 10, 11, 12, 13 | 16 | 2 293 | 1.00 |
D2 | 6, 7, 8, 9, 10, 11, 12, 13 | 16 | 2 293 | 0.95 |
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Iioka, D.; Fujii, T.; Tanaka, T.; Harimoto, T.; Motoyama, J. Voltage Reduction in Medium Voltage Distribution Systems Using Constant Power Factor Control of PV PCS. Energies 2020, 13, 5430. https://doi.org/10.3390/en13205430
Iioka D, Fujii T, Tanaka T, Harimoto T, Motoyama J. Voltage Reduction in Medium Voltage Distribution Systems Using Constant Power Factor Control of PV PCS. Energies. 2020; 13(20):5430. https://doi.org/10.3390/en13205430
Chicago/Turabian StyleIioka, Daisuke, Takahiro Fujii, Toshio Tanaka, Tsuyoshi Harimoto, and Junpei Motoyama. 2020. "Voltage Reduction in Medium Voltage Distribution Systems Using Constant Power Factor Control of PV PCS" Energies 13, no. 20: 5430. https://doi.org/10.3390/en13205430
APA StyleIioka, D., Fujii, T., Tanaka, T., Harimoto, T., & Motoyama, J. (2020). Voltage Reduction in Medium Voltage Distribution Systems Using Constant Power Factor Control of PV PCS. Energies, 13(20), 5430. https://doi.org/10.3390/en13205430