An Improvement of Holistic Control Tuning for Reducing Energy Consumption in Seamless Transitions for a BESS Grid-Connected Converter
Abstract
:1. Introduction
2. Modeling of the DC/AC Converter and LCL Filter
- , , are the delta-connected output voltages of the power converter.
- , , are the delta-connected capacitor voltages.
- , , are the currents through inductors .
- , , are the delta-connected capacitor currents.
- , , are the currents through inductors .
- , , are the delta-connected grid voltages.
- 1.
- The three-phase system is balanced.
- 2.
- A line-to-line modeling is considered.
- 3.
- The complete analysis is based on the average mathematical model.
- 4.
- The link capacitor voltage is not considered as a state variable. Additionally, the voltage is always bigger than the peak of line-to-line voltage.
- 5.
- The grid-connected converter works as an inverter if the currents , , and are in phase with the input voltages , , and , respectively. In this case, the active power flows from to the grid and the capacitor is not discharged because of the action of the DC/DC converter and the battery bank.
- 6.
- The grid-connected converter works as a rectifier if the input currents , , and are shifted 180° with respect to the input voltage , , and , respectively. In this case, the active power flows from the grid to the , and the capacitor is not overcharged because the DC/DC converter is charging the battery bank.
- 7.
- The analysis is performed considering the phase AB. Taking advantage of assumption (1), the rest of the control signals are obtained by shifting their phases by 120° and 240°, respectively.
3. Butterworth LCL Filter Design
- 1.
- Switching frequency = 12,060 Hz; .
- 2.
- Amplitude and frequency modulation indexes and , respectively.
- 3.
- First relevant harmonic amplitude .
- 4.
- For the three-phase full-bridge converter, the double-edge naturally sampled PWM is taken for this work, and given this, the first carrier harmonic group has the more significant harmonic at being [34].
- 5.
- According to IEEE-1159, THD voltage at the connection point should be lower than 3%; to extensively fulfill this requirement, an attenuation for the first relevant harmonic was proposed of .
- 6.
- Rated load value for rated power. It is important to notice that the approach considers a resistive load; it means active power transference. Of course, the BESS operates under different modes and operating conditions, and the filter should be able to allow the transfer of the required power in both directions.
4. Improvement of the Holistic Control Tuning
- is the state vector.
- r is the reference of the controlled output.
- , , and are the state, input, and output matrices, respectively.
- is the error between the voltage reference and measured voltage.
- is the control law which modifies the inverter output.
- is the gain vector.
- is the gain of the integral action.
5. Energy Consumption When Changes Occur
- is the energy required by the improved holistic controller presented in this paper.
- is the energy required for the holistic controller given in [27].
- is the power at steady state due to the voltage and current reference, respectively.
- is the power delivered by the holistic control.
- is the power delivered by the improved holistic control.
- is the time at the event occurrence (Column 1, Table 5).
- is the settling time where the error is .
- is the settling time where the error is .
6. Simulation and Experimental Results of the Improved Holistic Control
6.1. Simulation Results
6.2. Experimental Results
- Three power inverters KIT8020CRD8FF1217P-1, SiC mosfet assembly.
- The inductors were built using air core.
- A 400 V, polypropylene capacitor.
- The controller is executed in the dSPACE platform CP1103.
7. Discussion
- Energy efficiency improvement during mode transitions and load transients.
- A test protocol that involves all the mode transitions and load transients on the fly for the experimental validation of the control scheme.
- A seamless transition capability is validated according to IEEE 1547-2018, which guarantees operation in the continuous region limited by the standard.
- One relevant result is the fact that the same polynomial tuning and filter design operates correctly when the converter is used as a rectifier without tuning changes.
8. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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Filter Order | Polynomial |
---|---|
1. | |
2. | |
3. | |
4. |
Operation | State | Input | Output | Eigenvalues |
---|---|---|---|---|
Mode | Matrix | Matrix | Matrix | (rad/s) |
Islanded mode (ism) | ||||
Grid-connected mode | ||||
inverter (gci) | ||||
Grid-connected mode | ||||
rectifier (gcr) |
Operation | Closed-Loop | Eigenvalues |
---|---|---|
Mode | Matrix | (rad/s) |
Islanded mode | ||
Grid-connected | ||
mode (inverter) | ||
Grid-connected | ||
mode (rectifier) |
Holistic Approach [27] | Improved Holistic Approach |
---|---|
and | and |
As it can be seen, the dominant pole is overdamped; therefore, its step response is slow and energy wasting as Figure 7 shows. | As it can be seen, the dominant poles are underdamped; therefore, its step response is faster, and the energy transferred is improved than in [27]. |
Time (s) | Type of Event | Change Value According to the Event | Holistic Energy (J) | Improved Holistic Energy (J) | Energy Efficiency (%) |
---|---|---|---|---|---|
0.1 | Voltage step ISM | to | 22.58 m | 19.87 m | 12.00 |
0.2 | Load transient ISM | to | 16.71 m | 12.14 m | 27.34 |
0.3 | Mode change ISM-GCI | to | 1.38 | 0.42 | 69.21 |
0.4 | Current step GCI | to | 4.80 | 1.48 | 69.16 |
0.5 | Load transient GCI | to | 29.08 | 11.13 | 61.72 |
0.6 | Mode change GCI-GCR | to | 24.22 | 2.40 | 90.09 |
Parameter | Value |
---|---|
Grid voltage (AC: L-L, RMS) | 120V |
Rated power | |
Power factor | Near to unity |
300V | |
THD of current | < |
THD of voltage | < |
Switching frequency | 12,060 Hz |
Delta-LCL filter: | |
Tuning gains | |
Time (s) | Mode | = 617 W | BRK | BRK | BRK |
---|---|---|---|---|---|
0–0.1 | Grid-connected mode inverter | Closed | Closed | Open | |
0.1–0.3 | Grid-connected mode inverter | Closed | Closed | Open | |
0.3–0.5 | Islanded mode | Open | Closed | Open | |
0.5–0.7 | Islanded mode | Open | Closed | Closed | |
0.7–1.0 | Islanded mode | Open | Closed | Open | |
1.0–1.2 | Grid-connected mode inverter | Closed | Closed | Open | |
1.2–1.6 | Grid-connected mode rectifier | Closed | Closed | Open | |
1.6–1.7 | Grid-connected mode rectifier | Closed | Open | Open |
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Arellanes, A.; Nuñez, C.; Visairo, N.; Valdez-Fernandez, A.A. An Improvement of Holistic Control Tuning for Reducing Energy Consumption in Seamless Transitions for a BESS Grid-Connected Converter. Energies 2022, 15, 7964. https://doi.org/10.3390/en15217964
Arellanes A, Nuñez C, Visairo N, Valdez-Fernandez AA. An Improvement of Holistic Control Tuning for Reducing Energy Consumption in Seamless Transitions for a BESS Grid-Connected Converter. Energies. 2022; 15(21):7964. https://doi.org/10.3390/en15217964
Chicago/Turabian StyleArellanes, Alberto, Ciro Nuñez, Nancy Visairo, and Andres A. Valdez-Fernandez. 2022. "An Improvement of Holistic Control Tuning for Reducing Energy Consumption in Seamless Transitions for a BESS Grid-Connected Converter" Energies 15, no. 21: 7964. https://doi.org/10.3390/en15217964
APA StyleArellanes, A., Nuñez, C., Visairo, N., & Valdez-Fernandez, A. A. (2022). An Improvement of Holistic Control Tuning for Reducing Energy Consumption in Seamless Transitions for a BESS Grid-Connected Converter. Energies, 15(21), 7964. https://doi.org/10.3390/en15217964