DC-Link Voltage Control of a Grid-Connected Solar Photovoltaic System for Fault Ride-Through Capability Enhancement
Abstract
:1. Introduction
2. Grid-Connected Solar Photovoltaic (SPV) System
Direct Current–Direct Current (DC–DC) Boost Converter Model
3. Impact of a Fault on the Grid-Connected SPV System
Low Voltage Ride-Through (LVRT) Capability of the SPV System
4. Proposed LVRT Enhancement Strategies
4.1. DC-Link (DCL) Voltage Control Scheme
4.2. Reactive Power Injection Scheme
Algorithm 1: Proposed LVRT method based on reactive power injection. |
1: Measuring Vg_rms value in per unit (pu); |
2: Nominal Vg_rms = = 1.01; |
3: If (Vg_rms < 0.9) |
4: P = = P* && Q = = Q*; % P* and Q* are the post-fault active and reactive powers |
5: else if (0.5 < Vg_rms < 0.9) |
6: P = = P* && Q = Q_LVRT; % P is the pre-fault active power and Q_LVRT is the Q at LVRT |
7: else if (Vg_rms < 0.5) |
8: P = = 0 && Q = = Q max; % Q max is the maximum reactive power injection into the grid |
9: else |
detecting Vg-rms value in per unit (pu); |
10: return to step 3 |
5. Simulation Result Analysis and Discussion
5.1. Simulation Details
5.2. Simulation Results
LVRT Enhancement by the Proposed Control Scheme under a Symmetrical Fault (3LG)
5.3. LVRT Enhancement by the Proposed Control Scheme under an Asymmetrical Fault
5.3.1. Single-Line to Ground Fault (1LG)
5.3.2. Two-Line to Ground Fault (2LG)
5.4. Quantification of Results
5.5. Stability Analysis
6. Comparison of the Conventional and Proposed LVRT Strategies
6.1. Limitations of the Proposed Control Scheme
- ▪
- The proposed control strategy is not appropriate for the single-phase two-stage PV system, since single-phase PV systems are commonly connected to low-voltage feeders, which are mainly resistive (i.e., with a high R/X ratio). Therefore, injecting reactive power into the grid under fault conditions may not contribute significantly to grid voltage recovery. Nevertheless, the main objective of the proposed control approach is to reduce the active power injection to the grid, and at the same time inject reactive power for voltage recovery during fault conditions.
- ▪
- Avoiding operation of the SPV generation system at MPPT during fault conditions reduces the efficiency of the system. However, this would help in reducing the size of the capacitor connected to the DC-link. In addition, the network faults are for very shorter periods of time, which will not affect the system performance much.
- ▪
- The control requires an additional stage of computation, which may increase the cost a little, but the main advantage is avoiding DC link over-voltage, which eventually saves the capacitor from being damaged.
7. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
Nomenclature
Pspv | Photovoltaic Array Power (W) | Pgf | Grid Power -Fault Condition (pu) |
∆T | Fault Period (s) | IN | Nominal Current (pu) |
PDC-link | DC-Link Power (W) | VDCL | DC-Link Voltage (v) |
CDC | DC-Link Capacitor (F) | Kp | Proportional Gain |
Pg | Grid Power (pu) | VDCL_f | DC-Link Voltage-Fault Condition (v) |
Iq | Reactive Current(pu) | Ki | Integral Gain |
Vgrms | Grid Voltage RMS value (pu) | Kaw | Anti-Windup Gain |
Igrms | Grid Current in RMS value (pu) | Q | Reactive Power (kVAR) |
Igrms | Grid Current in RMS value (pu) | P | Active Power (kW) |
Iq0 | Initial Reactive Current (pu) | S | Apparent Power (w) |
Ig | Grid Current (pu) | Qmax | Maximum Reactive Power (pu) |
CDC | DC-Link Capacitor (F) | Ts | Sample Time (s) |
D | Duty Cycle | d2 | Duty Cycle for the Proposed Control |
Vd_ref | d-Axis Reference Voltage (pu) | dmin | Lower Limit for the Duty Cycle |
Vq_ref | q-Axis Reference Voltage (pu) | dmax | Maximum Limit for the Duty Cycle |
Id_ref | d-Axis Reference Current (pu) | dunsta | Unsaturated Limit for the Duty Cycle |
Iq_ref | q-Axis Reference Current (pu) | dsat | Saturated Limit for the Duty Cyle |
∆Vdc | DC-Link Voltage Deviation (v) | SGspeed | Synchronous Generator Speed (pu) |
∆Ppv | PV-Power Deviation (w) | SGangle | Synchronus Generator Rotor Angle (deg) |
Ppv-rated | Rated PV Power (w) | ωSGrated | Rated Synchronous Generator Speed (pu) |
Id | d-Axis Current (pu) | δSG_rated | Rated Synchronous Rotor Angle |
Smax | Maximum Apparent Power (w) |
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Index Parameters (%) | Values of Indices | |||||
---|---|---|---|---|---|---|
3-LG | 1-LG | 2-LG | ||||
Control Type | MPPT Control | Proposed Control | MPPT Control | Proposed Control | MPPT Control | Proposed Control |
5.4 | 3.7 | 3.2 | 1.9 | 6.2 | 3.5 | |
PVpower | 4.3 | 2.8 | 3.1 | 2.2 | 5.1 | 4.2 |
Index Parameters (%) | Value of Indices | |
---|---|---|
MPPT Control | Proposed Control | |
SGangle | 1.8050 | 0.9722 |
0.0500 | 0.0300 |
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Mohamed, S.R.; Jeyanthy, P.A.; Devaraj, D.; Shwehdi, M.H.; Aldalbahi, A. DC-Link Voltage Control of a Grid-Connected Solar Photovoltaic System for Fault Ride-Through Capability Enhancement. Appl. Sci. 2019, 9, 952. https://doi.org/10.3390/app9050952
Mohamed SR, Jeyanthy PA, Devaraj D, Shwehdi MH, Aldalbahi A. DC-Link Voltage Control of a Grid-Connected Solar Photovoltaic System for Fault Ride-Through Capability Enhancement. Applied Sciences. 2019; 9(5):952. https://doi.org/10.3390/app9050952
Chicago/Turabian StyleMohamed, S. Raja, P. Aruna Jeyanthy, D. Devaraj, M. H. Shwehdi, and Adel Aldalbahi. 2019. "DC-Link Voltage Control of a Grid-Connected Solar Photovoltaic System for Fault Ride-Through Capability Enhancement" Applied Sciences 9, no. 5: 952. https://doi.org/10.3390/app9050952
APA StyleMohamed, S. R., Jeyanthy, P. A., Devaraj, D., Shwehdi, M. H., & Aldalbahi, A. (2019). DC-Link Voltage Control of a Grid-Connected Solar Photovoltaic System for Fault Ride-Through Capability Enhancement. Applied Sciences, 9(5), 952. https://doi.org/10.3390/app9050952