Review of Control Techniques in Microinverters
Abstract
:1. Introduction
2. Microinverter
Design Challenges
3. Control Strategies
3.1. Grid Connected
- The paper [30] presents a Flyback PV microinverter with analog and digital controller. The analog control consists of a precision rectifier circuit, a pulse width modulation comparator, and zero-crossing detector. The aim of digital control is to obtain the Maximum Power Point from the Photovoltaic module.
- The paper [31] presents a differential boost microinverter. The control technique consists of a MPPT-loop control, a second loop that synchronizes the grid current to the grid voltage, and a three-loop differential peak current control.
- The paper [32] presents a two stage microinverter with LLC resonant converter. The control technique consists of a MPPT based a fixed-frequency model predictive control and a PI control.
- The paper [33] presents a microinverter based a cascaded boost converter with a full bridge. The control technique consists in two sliding control alternatives (input current mode and pseudo-oscillating mode).
- The paper [34] presents a microinverter based a interleaved flyback with an unfolding H-bridge inverter. The control technique consists in a novel sliding mode control current controller.
- The paper [37] presents a dual-active-bridge (DAB) microinverter. The control strategy consists in simple closed-loop current control (PI controller).
- The paper [38] presents a switched capacitor buck-boost voltage source inverter (SC-BBVSI). The control strategy consists in a PI controller for dc-link voltage regulation and proportional-resonant (PR) controller for injected current regulation.
- The paper [40] presents a two stage microinverter and it consists of boost dc-dc converter with a single-phase full-bridge inverter. The control strategy consists in non-linear control techniques based of the non-linear average model of microinverter.
- The paper [43,44] presents two microinverter topologies. First, a interleaved flyback dc-dc converter with unfolding inverter is presented and then a push–pull dc-dc converter with unfolding inverter. The proposed control strategy consists in a simple PR controller to generate a sinusoidal current reference waveform and PI controller to generate a power reference.
- The paper [45] presents a two-stage microinverter and it consists in a step-up isolation dc-dc converter with half-bridge inverter. The control technique consists in a PI controller in order to reduce the third harmonic. Moreover, it consists in a feedforward control.
- The paper [46] presents a full-bridge inverter for microinverter application. The control technique consists in a sliding mode control of the output current.
- The paper [49] presents a multi-level single phase microinverter and its control strategy consists in a model predictive control to reduce the steady state error of the grid-injected current. Another control technique used in this microinverter is the PI controller with PR controller proposed in [50].
- The paper [51] presents a single stage boost inverter, composed by a two bidirectional boost dc-dc converter. The control strategy consists in a finite control set model predictive control algorithm with predictions of the system variables.
- The paper [52] presents a full-bridge converter cascaded to a boost converter with other full-bridge converter. The control technique consists in a PI controller for dc-link voltage regulation and a PR controller used in the current control loop.
- The paper [53] presents a T-type microinverter in boundary conduction mode. The control technique consists in a hybrid control based on the proposed voltage equalization and adaptive reverse current control method.
- The paper [54] presents a high-gain Z-source boost converter with H-bridge inverter. The control strategy consists of a PI controller to regulate the dc-link voltage and hysteresis current control to regulate the grid current.
- The paper [55] presents a resonant microinverter and its control strategy consists of different PI controllers.
- The paper [56] presents a microinverter based in a modified current source inverter. The control strategy consists in two PI controllers and transformation.
- The paper [57] presents a flyback dc-dc converter with line-frequency inverter. The control strategy consists in a inverse model with a single closed-loop PI controller.
- The paper [58] presents a boost-half-bridge dc-dc converter and full-bridge inverter. The control technique consists in a repetitive current controller based on fourth-order linear phase IIR filter. The repetitive current controller is used to reduce the total harmonic distortion and current regulation. There is a PI controller in the dc-dc stage.
- The paper [59] presents a flyback-based partial power dc-dc converter with a H-bridge inverter. The control strategy consists in a cascaded control loop (PI controllers) for dc-dc stage and a classical single-phase voltage oriented control algorithm for dc-ac stage.
- The paper [60] presents a coupled inductor based cúk dc-dc converter connected to the line frequency current unfolding stage. The control strategy is comprised of different PI controllers.
- The paper [61] presents a LLC dc-dc converter connected to a full-bridge inverter. The control strategy of dc-ac stage consists in a dead-beat scheme. The control strategy of dc-dc stage consists in a simple closed-loop PI control.
3.2. Island Mode
3.3. Reactive Power Compensation
- The paper [67] presents an active clamp flyback converter with a dual-buck inverter. The control consists of a current control (a 2-pole 2-zero compensator) for a dc-dc stage. The control technique in the dc-ac stage consists in a voltage-loop control (PI controller), a current-loop control (3-pole 3-zero compensator and feedback linearization), and a phase-locked loop. The power control is based a transformation.
- The paper [68] presents a two-stage microinverter and it consists of a bidirectional boost/buck dc-dc converter with coupled inductors and a full-bridge inverter. The control strategy consists of a conventional current control (PI controller) for reactive power compensation.
- The paper [69] presents a quasi Z-source (qZS) single-phase microinverter. The control strategy consists in a model predictive control with low-voltage ride-through capability.
3.4. Microinverter with Energy Storage
- The paper [71] presents a high-frequency push–pull topology with galvanic isolation with a voltage source inverter. The control technique consists of MPPT controller, a battery charge algorithm (constant current followed by constant voltage control), a dc-link voltage regulator (PI controller), and a current-loop control based a model predictive control.
- The paper [72] presents a dual-active bridge microinverter topology with integrated energy storage capability. The control strategy comprises a cascaded loop with two PI controllers and a two-loop approach with PI controller and PR controller.
3.5. Multi-Modes or Multiples Functions
- The paper [77] presents a two-stage microinverter and it consists of dc-dc triple active bridge (TAB) converter that integrates back-up battery; and the second stage is a voltage source inverter (VSI) that operates in both grid-connected mode (GCM) and stand-alone mode (SAM). The control algorithm consists in a central control based in a mode transition scheme. Each mode has PI controllers to regulate the current grid, current load, and dc-link voltage; it has a PR controller to regulate the load voltage.
- The paper [78] presents a buck-boost dc-dc converter cascaded interleaved flyback dc-dc converter with a unfolding bridge inverter. The control technique consists in a droop control and a peak current control.
- The paper [79] presents a current-fed push–pull, full-wave rectifier with full-bridge. The microinverter can operate in island mode and grid mode. The control technique comprises of different PI controllers for both modes.
4. Discussion
5. Conclusions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
ACC | Phase Accumulator |
DAB | Dual active bridge |
DMR | Dual Mode Rectifier |
CVT | Constant Voltage Method |
EMI | Electromagnetic Interference |
GCM | Grid Connected Mode |
GM | Gain Margin |
HC | Harmonic Compensator |
LIM | Line-interactive Mode |
PCM | Peak Current Control |
PDM | Pulse Density Modulator |
PM | Phase Margin |
SAM | Standalone Mode |
RC | Repetitive Controller |
THD | Total Harmonic Distortion |
ZVS | Zero Voltage Switching |
Voltage amplitude reference | |
DC-link capacitor | |
Filter capacitor | |
Input capacitor | |
Capacitor | |
Output capacitor | |
Resonant capacitor | |
d | Duty cycle |
Duty cycle in continuous conduction mode | |
Duty cycle in discontinuous conduction mode | |
Diode n, where | |
Diode n of the microinverter | |
Rated duty cycle | |
Hybrid nominal duty ratio | |
Switching signal pattern | |
E | Amplitude of the inverter voltage |
Enable the mode selector | |
Reference of switching frequency | |
Sampling frequency | |
Switching frequency | |
Transfer function | |
Battery current | |
Current of capacitor | |
d Frame current | |
Grid current | |
Amplitude of the grid current reference | |
Inductor current | |
Load current | |
Current of the primary side transformer | |
Current of the secondary side transformer | |
Current amplitude limit reference | |
Photovoltaic panel current | |
Estimated photovoltaic panel current | |
Output current | |
q Frame current | |
k | Sensor gain |
Derivative gain | |
Duty ratio | |
Proportional gain | |
Filter inductor | |
Input inductor | |
Magnetizing inductor | |
Inductor n, where | |
Output inductor n, where | |
Inductor of transformer | |
Resonant inductor | |
m | Amplitude droop coefficient |
Modulator signal | |
Overshoot | |
n | Frequency droop coefficient |
Output power of the inverter | |
Power reference | |
P | Active power |
Photovoltaic panel power | |
Q | Reactive power |
R | Resistor |
Gating voltages for switches | |
Switch n, where | |
Fixed on-time | |
Settling time | |
Switching period | |
Inverter voltage | |
Battery voltage | |
Voltage between the terminals | |
Voltage in the d frame | |
DC-link voltage | |
Voltage of capacitor | |
Grid voltage | |
Voltage in the maximum power point | |
Maximum value of the dc-link voltage | |
Medium value of the dc-link voltage | |
Minimum value of the dc-link voltage | |
Limit voltage reference | |
Output voltage | |
Magnitude of the output phase voltage. | |
Voltage in the point common coupling | |
Photovoltaic panel voltage | |
Voltage in the q frame | |
Disturbance or variation | |
Output angle | |
Offset signal | |
Angle of the grid voltage | |
Frequency of the inverter voltage |
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Cite | GM (dB) | PM | THD (%) | (ms) | MPPT (%) | Advantage | Topology | Controller | |
---|---|---|---|---|---|---|---|---|---|
[12] | - | - | 4.37() | - | - | - | Low frequency Harmonic mitigation. Switching losses reduction. | Full bridge inverter | Hysteresis + PR |
[13] | - | - | 2.87() 3.09() | 20() | - | 99.7 | High reliability Wide operating range. Fast MPPT. | Boost-half-bridge converter + full-bridge inverter | PI controllers + Resonant control |
[15] | 12() inf() | 58°() 74°() | 2.5() | - | - | - | Fast dynamic response. | LLC resonant converter + 3-phase dc-ac converter | PI Controllers |
[18] | inf() | 85.9°() | 3.18() | - | - | 96 | High reliability. Reactive power support. LVRT Capacity. | Non-inverted Cuk connected to an inverter Cuk converter | PI and PR controllers |
[19] | - | - | - | - | - | 98.5 | Ability to estimate current for different inductance values. Elimination of measurement noise. | Flyback converter + VSI | PI control + PCM + State Observer |
[21] | - | - | Off-grid 0.5() On-grid 2.4() | - | - | - | LVRT and anti-island capability. | Flyback converter + VSI | PI controllers + DQ power estimation |
[25] | - | - | 3.8() | - | - | - | High conversion efficiency High reliability | Flyback converter + series resonant voltage doubler | P controller + feedback linearization + Voltage controller |
[26] | - | - | - | - | - | Simple. Elimination of distortion caused by zero crossing. | Coupled-inductor double-boost inverter | PI controllers | |
[27] | - | - | - | 10() | - | Switching losses reduction. | DMR based series resonant dc-dc converter | PI controllers | |
[62] | - | - | 0 | 70() | - | - | ZVS capacity. Switching losses reduction. Decoupling capacitance reduction. | Flyback converter + VSI | PR control + HC |
[29] | inf() | 45°() | 2.4() | - | - | - | Fast dynamic response Harmonic frequencies elimination. Low computational burden. Elimination of disturbances. Hybrid operation(DCM-CCM). | DAB inverter | PI + RC controllers |
[63] | - | 60°() 60°() 60°() | 3.73() | 1000() | - | - | ZCS switching capacity. Wide range of input voltages. | Flyback + active decoupling circuit + full-bridge inverter | PI controllers |
[64] | - | - | - | - | - | - | Reactive power support. High Efficiency | LLC resonant converter + interleaved full-bridge inverter | PI controllers + RC + feedforward loop |
[65] | - | - | - | - | - | - | Distributed control. Active and reactive power control capacity. | Cascaded full-bridge inverter | Distributed control: P + PI + PR controllers |
[66] | - | - | Full load 4.29() Partial load 6.82() | - | - | - | Controllable power factor. High efficiency. Independent MPPT control. | Interleaved flyback converter + 3-phase Current Source Inverter | PI controllers |
[70] | - | - | - | 0.04() | 0.2 A() | - | Two modes of operation Flyback and DAB. Reduction of switching losses. High stability. | DAB + dc-dc converter for the batteries | Dual-mode control |
[73] | - | - | - | - | - | - | Multifunctionality. Parallel multi-mode operation. | Push–pull converter + full-bridge inverter | PI controllers |
[74,75] | - | On-grid 89.6°() 58.6°() 87°() Off-grid 90.2°() 65.2°() 76.2°() 81.2°() | 0.05 s() | - | - | - | Ability to operate off-grid and on-grid. Reconfigurable Control. | Push–pull converter + full-bridge inverter | PI + PR controllers |
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Rojas, D.; Muñoz, J.; Rivera, M.; Rohten, J. Review of Control Techniques in Microinverters. Sensors 2021, 21, 6486. https://doi.org/10.3390/s21196486
Rojas D, Muñoz J, Rivera M, Rohten J. Review of Control Techniques in Microinverters. Sensors. 2021; 21(19):6486. https://doi.org/10.3390/s21196486
Chicago/Turabian StyleRojas, Diego, Javier Muñoz, Marco Rivera, and Jaime Rohten. 2021. "Review of Control Techniques in Microinverters" Sensors 21, no. 19: 6486. https://doi.org/10.3390/s21196486
APA StyleRojas, D., Muñoz, J., Rivera, M., & Rohten, J. (2021). Review of Control Techniques in Microinverters. Sensors, 21(19), 6486. https://doi.org/10.3390/s21196486