PV Hosting Capacity Dependence on Harmonic Voltage Distortion in Low-Voltage Grids: Model Validation with Experimental Data
Abstract
:1. Introduction
2. Hosting Capacity
2.1. Voltage Rise Due to Harmonic Injection and Its Limits to Define the Local Hosting Capacity
2.2. Sensitivity Analysis of Hosting Capacity
2.2.1. Harmonic Voltage
2.2.2. Set Reactive Power on the Inverters
3. Experimental Data, Validation and Analysis
3.1. Experimental Data and a Brief Analysis
3.2. Calculation Method for Analysis and Planning
- (i)
- A worst-case scenario is defined in two strands as part of an extreme situation. First, we consider that all harmonic voltages are 5% for , which leads to in equation (14). This situation corresponds to the system being at the maximum harmonic limit. Second, we consider the case where the power factor is at the minimum possible, which in this case is zero. This scenario defines an unacceptable region where our system is where our PV unit cannot be integrated into the distribution system.
- (ii)
- A best-case scenario is also defined in two strands, in a similar way to that used for the worst-case scenario. First, we consider all harmonic voltages as negligible for , which leads to . This situation corresponds to the system having a voltage waveform that is 100% sinusoidal. Secondly, we consider the case where the power factor is at the maximum, which in this case is above 90%.
- (iii)
- A third scenario is defined as the real case wherein the power factor range was [0.77; 0.82].
- (iv)
- Finally, the fourth scenario is used to illustrate the behavior of the hosting capacity approach when only the fundamental frequency is considered in (14) and compared with case (iii), which considers all harmonic orders.
4. Conclusions
Acknowledgments
Author Contributions
Conflicts of Interest
References
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Parameter | Default Value |
---|---|
Autotransformer | 45 kVA, 380/230–220/127 V, Z = 1.2% |
Transformer | 150 kVA 13.8 kV–220/127 V, Z = 4% |
PV cable | 18 m, 3F × 6 mm2, Cu |
PV system + Inverters | 15 + 2 Inverters (7.5 kW) |
CEMIG 13.8 kV | Scc = 1000 MVA |
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Oliveira, T.E.C.d.; Carvalho, P.M.S.; Ribeiro, P.F.; Bonatto, B.D. PV Hosting Capacity Dependence on Harmonic Voltage Distortion in Low-Voltage Grids: Model Validation with Experimental Data. Energies 2018, 11, 465. https://doi.org/10.3390/en11020465
Oliveira TECd, Carvalho PMS, Ribeiro PF, Bonatto BD. PV Hosting Capacity Dependence on Harmonic Voltage Distortion in Low-Voltage Grids: Model Validation with Experimental Data. Energies. 2018; 11(2):465. https://doi.org/10.3390/en11020465
Chicago/Turabian StyleOliveira, Tiago E. C. de, Pedro M. S. Carvalho, Paulo F. Ribeiro, and Benedito D. Bonatto. 2018. "PV Hosting Capacity Dependence on Harmonic Voltage Distortion in Low-Voltage Grids: Model Validation with Experimental Data" Energies 11, no. 2: 465. https://doi.org/10.3390/en11020465
APA StyleOliveira, T. E. C. d., Carvalho, P. M. S., Ribeiro, P. F., & Bonatto, B. D. (2018). PV Hosting Capacity Dependence on Harmonic Voltage Distortion in Low-Voltage Grids: Model Validation with Experimental Data. Energies, 11(2), 465. https://doi.org/10.3390/en11020465