Figure 1.
PMSG-based VSWT with a rectifier and boost DC-DC regulator, Voltage Source Inverter (VSI), and PMSM load.
Figure 1.
PMSG-based VSWT with a rectifier and boost DC-DC regulator, Voltage Source Inverter (VSI), and PMSM load.
Figure 2.
Possible connection of DSSB regulator.
Figure 2.
Possible connection of DSSB regulator.
Figure 3.
Results of the DSSB MATLAB simulation for : (a) waveforms for the DC voltage and current in the input and output of the DSSB under equilibrium conditions. (b) Steady-state waveforms of DSSB currents and voltages. (c) DC input and output powers with a regulator efficiency of 99%.
Figure 3.
Results of the DSSB MATLAB simulation for : (a) waveforms for the DC voltage and current in the input and output of the DSSB under equilibrium conditions. (b) Steady-state waveforms of DSSB currents and voltages. (c) DC input and output powers with a regulator efficiency of 99%.
Figure 4.
Results of the DSSB MATLAB simulation for : (a,b) Waveforms for the steady-state current and voltage in the DSSB for both the input and output DC voltages and currents. (c) DC active powers of input and output with a 99% regulator efficiency.
Figure 4.
Results of the DSSB MATLAB simulation for : (a,b) Waveforms for the steady-state current and voltage in the DSSB for both the input and output DC voltages and currents. (c) DC active powers of input and output with a 99% regulator efficiency.
Figure 5.
Sketch of a three-phase salient-pole synchronous machine: original system (left), and two-phase replacement (right).
Figure 5.
Sketch of a three-phase salient-pole synchronous machine: original system (left), and two-phase replacement (right).
Figure 6.
dq model of PMSG equivalent circuit in the synchronous reference frame.
Figure 6.
dq model of PMSG equivalent circuit in the synchronous reference frame.
Figure 7.
Simplified schematic diagram of the simulated WECS system with an AC grid.
Figure 7.
Simplified schematic diagram of the simulated WECS system with an AC grid.
Figure 8.
Power ratio (coefficient) versus tip speed.
Figure 8.
Power ratio (coefficient) versus tip speed.
Figure 9.
The turbine’s mechanical driving power in relation to tip speed ratio and power output at different wind speeds.
Figure 9.
The turbine’s mechanical driving power in relation to tip speed ratio and power output at different wind speeds.
Figure 10.
Turbine-generated mechanical power as a function of rotor speed for varying wind speeds.
Figure 10.
Turbine-generated mechanical power as a function of rotor speed for varying wind speeds.
Figure 11.
Schematic diagram of the hysteresis current-mode-regulated DSSB regulator along with the PMSG wind turbine and three-phase diode bridge rectifier.
Figure 11.
Schematic diagram of the hysteresis current-mode-regulated DSSB regulator along with the PMSG wind turbine and three-phase diode bridge rectifier.
Figure 12.
Block diagram of DC link voltage loop control.
Figure 12.
Block diagram of DC link voltage loop control.
Figure 13.
Diagram of the recommended DSSB along with the ramp-hysteresis current-mode control block.
Figure 13.
Diagram of the recommended DSSB along with the ramp-hysteresis current-mode control block.
Figure 14.
The block structure of a const. frequency hysteresis current-mode controller with fixed window limits.
Figure 14.
The block structure of a const. frequency hysteresis current-mode controller with fixed window limits.
Figure 15.
Mean-value block for computing the total average value of capacitor voltages using MATLAB.
Figure 15.
Mean-value block for computing the total average value of capacitor voltages using MATLAB.
Figure 16.
Control scheme to produce reference cycle for MOS1 switch.
Figure 16.
Control scheme to produce reference cycle for MOS1 switch.
Figure 17.
Control scheme to produce reference cycle for MOS2 switch.
Figure 17.
Control scheme to produce reference cycle for MOS2 switch.
Figure 18.
MATLAB/Simulink-built constant frequency of established bandwidth of double-hysteresis current-mode controller framework for MOS1.
Figure 18.
MATLAB/Simulink-built constant frequency of established bandwidth of double-hysteresis current-mode controller framework for MOS1.
Figure 19.
MATLAB/Simulink-built constant frequency of fixed bandwidth of double-hysteresis current-mode controller framework for MOS2.
Figure 19.
MATLAB/Simulink-built constant frequency of fixed bandwidth of double-hysteresis current-mode controller framework for MOS2.
Figure 20.
Results of MATLAB simulation of DSSB-based hysteresis controller with constant source current (40 A) and step changes in wind speed (12 m/s, 16 m/s, 20 m/s): (a) DSSB output/input voltages and currents. (b) DSSB output/input powers with efficiency and PMSG output active and reactive powers (Pgen & Qgen). (c) Torques and rotor speed. Target frequency = 10 kHz.
Figure 20.
Results of MATLAB simulation of DSSB-based hysteresis controller with constant source current (40 A) and step changes in wind speed (12 m/s, 16 m/s, 20 m/s): (a) DSSB output/input voltages and currents. (b) DSSB output/input powers with efficiency and PMSG output active and reactive powers (Pgen & Qgen). (c) Torques and rotor speed. Target frequency = 10 kHz.
Figure 21.
Results of MATLAB simulation of DSSB-based hysteresis controller with constant source current (40 A) and variable wind speed (12 m/s, 16 m/s, 20 m/s): (a) dq-axis phase voltages (Vds, Vqs) and dq-axis phase current (Ids, Iqs) of PMSG. (b) PMSG stator currents (Ias, Ibs, Ics) and PMSG dq-axis line voltages (VdL, VqL). (c) Snapshot of PMSG stator currents (Ias, Ibs, Ics) and PMSG dq-axis line voltages (VdL, VqL) at a wind speed of 12 m/s. Target switching frequency = 10 kHz.
Figure 21.
Results of MATLAB simulation of DSSB-based hysteresis controller with constant source current (40 A) and variable wind speed (12 m/s, 16 m/s, 20 m/s): (a) dq-axis phase voltages (Vds, Vqs) and dq-axis phase current (Ids, Iqs) of PMSG. (b) PMSG stator currents (Ias, Ibs, Ics) and PMSG dq-axis line voltages (VdL, VqL). (c) Snapshot of PMSG stator currents (Ias, Ibs, Ics) and PMSG dq-axis line voltages (VdL, VqL) at a wind speed of 12 m/s. Target switching frequency = 10 kHz.
Figure 22.
Front-loading inverter in grid-connected mode with DSSB, a diode rectifier, and a DC voltage source, E.
Figure 22.
Front-loading inverter in grid-connected mode with DSSB, a diode rectifier, and a DC voltage source, E.
Figure 23.
A per-phase T-model of a two-port cable connected between the grid and the VSI.
Figure 23.
A per-phase T-model of a two-port cable connected between the grid and the VSI.
Figure 24.
Performance of the grid-side inverter that is connected to the grid through LCL Kalman filters, and is subjected to a stepwise variation in the constant DC source of between 1200 and 2400 volts. The PMSG, DSSB regulator, and wind turbine are removed. (a) The phase voltage, Vf = Vb, across the LCL filter with the grid, and the line voltage, VfL, across two phases of the LCL filters with the grid, in addition to the phase current flowing through these filters. (b) the line voltage (VgL) between two grid phases, as well as the grid phase currents and voltages (Vgabc and Igabc), with the VSI DC supply voltage (Vdc).
Figure 24.
Performance of the grid-side inverter that is connected to the grid through LCL Kalman filters, and is subjected to a stepwise variation in the constant DC source of between 1200 and 2400 volts. The PMSG, DSSB regulator, and wind turbine are removed. (a) The phase voltage, Vf = Vb, across the LCL filter with the grid, and the line voltage, VfL, across two phases of the LCL filters with the grid, in addition to the phase current flowing through these filters. (b) the line voltage (VgL) between two grid phases, as well as the grid phase currents and voltages (Vgabc and Igabc), with the VSI DC supply voltage (Vdc).
Figure 25.
Performance and power capacity of the grid with the VSI after the wind turbine, PMSG, and DSSB were removed, along with a stepwise variation in the DC source of between 1200 and 2400 volts: (a) Active and reactive powers on the inverter side (Pf and Qf,), the grid side (Pg, and Qg), and the LCL filter side (Pc and Qc) (b) dq-axes currents and voltages of the grid.
Figure 25.
Performance and power capacity of the grid with the VSI after the wind turbine, PMSG, and DSSB were removed, along with a stepwise variation in the DC source of between 1200 and 2400 volts: (a) Active and reactive powers on the inverter side (Pf and Qf,), the grid side (Pg, and Qg), and the LCL filter side (Pc and Qc) (b) dq-axes currents and voltages of the grid.
Figure 26.
Waveforms of WECS variables as responses to the step change in the wind speed profile (10 m/s and 20 m/s): (a) complete waveform: load’s phase currents (Iga, Igb, Igc), phase voltages (Vag, Vbg, Vcg), line voltage (VgL), and active and reactive powers (Pg and Qg); (b) a condensed waveform of the line and phase voltages of VSI together with the wind speed and load phase current; (c) load dq-axis currents and dq-axis voltages.
Figure 26.
Waveforms of WECS variables as responses to the step change in the wind speed profile (10 m/s and 20 m/s): (a) complete waveform: load’s phase currents (Iga, Igb, Igc), phase voltages (Vag, Vbg, Vcg), line voltage (VgL), and active and reactive powers (Pg and Qg); (b) a condensed waveform of the line and phase voltages of VSI together with the wind speed and load phase current; (c) load dq-axis currents and dq-axis voltages.
Figure 27.
Simulation of WECS variables: (a) Active and reactive power of all main WECS system components (AC load, PMSG, DSSB, VSI). (b) DSSB output/input currents and voltages as the wind speed changes from 10 m/s to 20 m/s. (c) DSSB output and input powers, Ps and Po, and efficiency with PMSG’s active and reactive powers.
Figure 27.
Simulation of WECS variables: (a) Active and reactive power of all main WECS system components (AC load, PMSG, DSSB, VSI). (b) DSSB output/input currents and voltages as the wind speed changes from 10 m/s to 20 m/s. (c) DSSB output and input powers, Ps and Po, and efficiency with PMSG’s active and reactive powers.
Figure 28.
The WECS wind power system’s performance in the event of a zero-wind-speed fault: (a) PMSG currents and voltages; (b) DSSB currents and voltages; (c) load-side currents and voltages with wind speed; (d) a snapshot of the load-side currents and voltages with wind speed around the fault point.
Figure 28.
The WECS wind power system’s performance in the event of a zero-wind-speed fault: (a) PMSG currents and voltages; (b) DSSB currents and voltages; (c) load-side currents and voltages with wind speed; (d) a snapshot of the load-side currents and voltages with wind speed around the fault point.
Figure 29.
Responses of WECS variables (currents, line and phase voltages) to the step change in the wind speed profile from 10 m/s to 20 m/s: (a) waveforms of grid’s phase currents (Iga, Igb, Igc), phase voltages (Vag, Vbg, Vcg), line voltage (VgL), and active and reactive powers (Pg and Qg); (b) a snapshot-waveform of VSI phase and line voltages (Vf, VfL) and grid’s phase current (Ig); (c) dq-axis phase currents and voltages of the grid.
Figure 29.
Responses of WECS variables (currents, line and phase voltages) to the step change in the wind speed profile from 10 m/s to 20 m/s: (a) waveforms of grid’s phase currents (Iga, Igb, Igc), phase voltages (Vag, Vbg, Vcg), line voltage (VgL), and active and reactive powers (Pg and Qg); (b) a snapshot-waveform of VSI phase and line voltages (Vf, VfL) and grid’s phase current (Ig); (c) dq-axis phase currents and voltages of the grid.
Figure 30.
Simulation of WECS variables: (a) DSSB output/input currents and voltages as the wind speed changes from 10 m/s to 20 m/s. (b) DSSB output and input powers, Ps and Po, and efficiency with PMSG’s active and reactive powers. (c) Active and reactive power of all main WECS system components (grid, PMSG, DSSB, VSI).
Figure 30.
Simulation of WECS variables: (a) DSSB output/input currents and voltages as the wind speed changes from 10 m/s to 20 m/s. (b) DSSB output and input powers, Ps and Po, and efficiency with PMSG’s active and reactive powers. (c) Active and reactive power of all main WECS system components (grid, PMSG, DSSB, VSI).
Figure 31.
In response to a wind speed change from 10 m/s to 20 m/s, three types of PMSG variable waveforms are shown here: (a) PMSG torques and rotor angular speed; (b) PMSG stator phase current (Igen) and line voltage (VsL) with their dq-axis phase currents and voltages; and (c) a shorter-term snapshot of (b).
Figure 31.
In response to a wind speed change from 10 m/s to 20 m/s, three types of PMSG variable waveforms are shown here: (a) PMSG torques and rotor angular speed; (b) PMSG stator phase current (Igen) and line voltage (VsL) with their dq-axis phase currents and voltages; and (c) a shorter-term snapshot of (b).
Table 1.
QDBC simulation parameters.
Table 1.
QDBC simulation parameters.
Parameter | Symbol | Real Value |
---|
Input voltage | Vs | 50 V |
Input choke | L1 | 50 mH |
Shunt choke | L3 | 50 mH |
Output choke | L2 | 50 mH |
Smoothing capacitor | Cs | 1 mF |
Shunt capacitor | Cm | 470 μF |
Shunt capacitor | C1 | 470 μF |
Output capacitor | Co | 1 mF |
Load resistance | R | 10 Ω |
Switching frequency | f | 10 kHz |
Table 2.
Parameters of the grid with LCL Kalman filter circuit between the grid and the inverter.
Table 2.
Parameters of the grid with LCL Kalman filter circuit between the grid and the inverter.
Parameter | Real Value |
---|
DC link voltage | 6000 V–12,000 V |
Grid phase-to-phase voltage | 6000 V |
Grid internal inductance | 16.58 mH |
Grid internal resistance | 0.8929 Ω |
Parameters of the LCL Kalman filter on the inverter side | 1 mH and 0.5 Ω |
Parameters of the LCL Kalman filter on the grid side | 1 mH and 0.5 Ω |
Filter capacitance | 5 mF |
Filter resistance | 0.5 Ω |
Grid frequency | 50 Hz |
Inverter frequency | 10 kHz |
Table 3.
Design specifications of DSSB.
Table 3.
Design specifications of DSSB.
Parameter | Symbol | Real Value |
---|
Input choke | L1 | 100 mH |
Shunt choke | L2 | 10 mH |
Output choke | L3 | 670 μH |
Smoothing capacitor | Cs | 470 μF |
Shunt capacitor | Cm | 470 μF |
Shunt capacitor | C1 | 470 μF |
Output capacitor | Co | 5 mF |
Load resistance | R | 10 Ω |
Switching frequency | f | 10 kHz |
Table 4.
Wind turbine and PMSG parameters.
Table 4.
Wind turbine and PMSG parameters.
Wind Turbine Parameters |
---|
Assessed power | 12.3 kW |
Assessed wind speed | 12 m/s |
Cut-in speed | 4 m/s |
Cut-out speed | 24 m/s |
Air density | 1.225 kg/m3 |
Power factor | 0.85 |
Turbine rotor radius | 1.3 m |
PMSG Parameters |
Assessed power | 1.1 MW |
Assessed voltage | 3.3 KV |
Number of pole pairs | 3 |
Stator resistive element, Rs | 0.0485 Ω |
d-component of synchronous inductance | 0.395 × 103 H |
q-component of synchronous inductance | 0.395 × 103 H |
Rotor flux, λf | 0.1194 Web |
Rotor flux position when theta = 0 | 90° behind phase A axis |
Power factor | 0.85 |
Table 5.
Simulation parameters of AC RL.
Table 5.
Simulation parameters of AC RL.
Parameter | Symbol | Real Value |
---|
Nominal phase-to-phase voltage | VgL | 680 V |
Active power | Pg | 10 kW |
Inductive reactive power | Qg | 100 VAR |
Table 6.
Grid specification parameters.
Table 6.
Grid specification parameters.
Parameter | Real Value |
---|
Phase-to-phase grid voltage | 680 V |
Grid frequency | 50 Hz |
Grid source inductance | 16.58 mH |
Grid source resistance | 0.8929 Ω |
Inverter frequency | 10 kHz |