Control Algorithms of Shunt Active Power Filter for Harmonics Mitigation: A Review
Abstract
:1. Introduction
2. Control Structure and Working Principle of Shunt Active Power Filter
- (1)
- Harmonic Extraction Algorithm. This control algorithm operates by first taking the distorted load current signal from the harmonic-polluted power system, followed by isolation of harmonic and fundamental current components, and ends with the generation of a reference current signal . The generated reference current signal is used to govern the operation of the SAPF in reducing the harmonic distortion. Since its main purpose is to generate a reference current signal, hence it is also known as reference current generation algorithm.
- (2)
- DC-link Capacitor Voltage Regulation Algorithm. The control algorithm that takes the instantaneous DC-link capacitor voltage and compares it with a desired reference value. The resulting error is used to estimate the suitable magnitude of the instantaneous DC-link charging current . The estimated is the amount of needed to be drawn by the SAPF to regulate its switching losses so as to constantly maintain DC-link capacitor voltage at the desired reference value.
- (3)
- Current Control Algorithm. This is the control algorithm that takes the output of the harmonic extraction and DC-link capacitor voltage regulation algorithms to generate switching pulses for the controlling operation of the inverter so that it functions as a SAPF. It consists of a pulse-width modulator to generate the desired switching pulses and a local current control loop that ensures that the injection current is generated according to the reference current .
- (4)
- Synchronizer Algorithm. This control algorithm (commonly developed based on phase-locked loop (PLL) techniques) takes the source voltage signal and generates a synchronization angle/phase, so that injection current which is injected by the SAPF into the operating power system is correctly synchronized with the source voltage. It should be noted that certain SAPF controllers do not require explicit synchronization algorithms.
- (5)
- Voltage Source Inverter. This is a power converter which is systematically controlled to reproduce the reference current as injection current , at suitable magnitude. It is equipped with a DC-link capacitor (energy storage element) to compensate real power unbalance that occurs during dynamic operation of the SAPF and a filter inductor to minimize the ripples of injection current .
- (6)
- Harmonic-producing Load. This is a nonlinear load which injects a harmonic current into an operating power system via PCC. Switch-mode power supplies, arc furnaces, adjustable speed drive (ASD), and rectifiers are a few examples of practical loads that generate serious amounts of harmonic currents and reactive power in the power system. However, in simulation and laboratory evaluations, an uncontrolled bridge rectifier is most commonly applied, as it causes the worst harmonic current distortions [1,17,19]. Note that, the output of the bridge rectifier is normally connected to three types of loads: (1) series connected resistor and inductor (simply known as inductive load); (2) parallel connected resistor and capacitor (simply known as capacitive load); and (3) a single resistor (simply known as resistive load).
3. SAPF Control Algorithms
3.1. Harmonic Extraction Algorithm
3.1.1. Time-Domain
3.1.2. Frequency-Domain
3.1.3. Learning Techniques
3.1.4. Other Algorithms
3.2. DC-Link Capacitor Voltage Regulation Algorithm
3.2.1. Direct Voltage Error Manipulation Approach
3.2.2. Self-Charging Technique
3.2.3. Other Approaches
3.3. Current Control Algorithm
3.3.1. Direct and Indirect Current Control of SAPF
3.3.2. Pulse-Width Modulation (PWM)
3.3.3. Hysteresis Current Control
3.3.4. Predictive Control
3.4. Synchronizer Algorithm
4. SAPF Operation under Non-Ideal Source Voltage Conditions
5. Operation of SAPFs with Multilevel Inverters as Circuit Topology
- They produce output voltages with negligible harmonic distortion, thereby improving the mitigation performance of SAPFs.
- They significantly reduce voltage stresses across the power semiconductor switches, which allows the usage of lower voltage-rated semiconductor devices, and thus improves the economical features of the SAPF.
- They are not only suitable for low voltage applications, but also can fulfill the higher output voltage requirements which are needed for medium and high voltage applications.
- They are able to work with both fundamental switching frequency and high switching frequency pulse-width modulation (PWM). Note that, operating with lower switching frequency provides lower switching losses and higher efficiency.
5.1. Comparative Study of Multilevel Inverters
5.2. Control Algorithms of Multilevel Inverter-Based SAPF
6. Conclusions
Author Contributions
Conflicts of Interest
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Characteristics | Cascaded H-Bridge [102,103] | Neutral-Point Diode Clamped [100,103,104] | Flying Capacitor [18,104,105] | |||||||
---|---|---|---|---|---|---|---|---|---|---|
Level | 3 | 5 | n | 3 | 5 | n | 3 | 5 | n | |
Number of components | Switches with freewheeling diodes | 12 | 24 | 6 (n − 1) | 12 | 24 | 6 (n − 1) | 12 | 24 | 6 (n − 1) |
DC-link capacitors | 3 | 6 | 3 (n − 1)/2 | 2 | 4 | (n − 1) | 2 | 4 | (n − 1) | |
Clamping diodes | Not applicable | 6 | 36 | 3 (n − 1)(n − 2) | Not applicable | |||||
Clamping capacitors | Not applicable | 3 | 18 | 3 (n − 1)(n − 2)/2 | ||||||
Advantages | Simple structure and control due to its modularity | Robust structure and requires the least amount of DC-link capacitors (less voltage imbalance problems) | Phase redundancy is available to achieve voltage balancing of DC-link capacitors | |||||||
Limitations | Limited applications due to requirement of separate DC sources | Amount of clamping diodes becomes excessively high with the increase in number of level | Bulky size, high development cost, and complex voltage balancing and switching control algorithm |
Switching State | Inverter Switching Status (Phase A) | Terminal Voltage | |||
---|---|---|---|---|---|
N | Off | Off | On | On | /2 |
O | Off | On | On | Off | 0 |
P | On | On | Off | Off | /2 |
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Hoon, Y.; Mohd Radzi, M.A.; Hassan, M.K.; Mailah, N.F. Control Algorithms of Shunt Active Power Filter for Harmonics Mitigation: A Review. Energies 2017, 10, 2038. https://doi.org/10.3390/en10122038
Hoon Y, Mohd Radzi MA, Hassan MK, Mailah NF. Control Algorithms of Shunt Active Power Filter for Harmonics Mitigation: A Review. Energies. 2017; 10(12):2038. https://doi.org/10.3390/en10122038
Chicago/Turabian StyleHoon, Yap, Mohd Amran Mohd Radzi, Mohd Khair Hassan, and Nashiren Farzilah Mailah. 2017. "Control Algorithms of Shunt Active Power Filter for Harmonics Mitigation: A Review" Energies 10, no. 12: 2038. https://doi.org/10.3390/en10122038
APA StyleHoon, Y., Mohd Radzi, M. A., Hassan, M. K., & Mailah, N. F. (2017). Control Algorithms of Shunt Active Power Filter for Harmonics Mitigation: A Review. Energies, 10(12), 2038. https://doi.org/10.3390/en10122038