The Impact of Grid Distortion on the Power Conversion Harmonics of AC/DC Converters in the Supraharmonic Range
Abstract
:1. Introduction
- An experimental setup based on a dSPACE MicroLabBox will be built to study the SH emissions of PFC boost converters as a common example for AC/DC converters.
- Exposing the AC/DC converter to SH with non-integer multiple and documenting the observations.
- Investigating the effect of the DBR of the low voltage AC/DC converters on the harmonics and SHs transfer between the two sides of the DBR.
- Determining the origin of the added emissions in the frequency spectra of the PFC boost current under SH with non-integer multiple in the background distortion.
2. Interference between the SH Components in the Grid and the AC/DC Converters
2.1. DBR Effect on the Harmonics Reflections on Both Sides
2.2. Interference Problem
- The secondary emission current at flows from the AC side of the DC side of the DBR. Consequently, this current is dissolved into an infinite number of components at the DC side as a result of the DBR effect, which appears as a sideband of SH around . The components of that current can be calculated by Equation (4).
- The primary emissions of the AC/DC converter, depicted in black in Figure 4, appear in three parts as [33]:
- ○
- LF distortion.
- ○
- Baseband harmonics at the switching frequency and its integer multiples.
- ○
- Sideband harmonics around the baseband frequencies.
- The frequency differences between the chosen SHs at and the nearest baseband are and , respectively. These differences are shown in green in Figure 4.
- In the LF range, additional emissions appear at and due to the interference between the baseband primary SH and the secondary emission. The additional emissions are drawn in green in Figure 4. Then, these additional emissions flow towards the DBR.
- The additional emissions at and are affected by the DBR function while they cross the DBR to the AC side. They appear as bands of harmonics based on Equation (4). The reflections of added emissions in the AC side of the DBR are as shown in Figure 5.
3. Simulation and Experimental Verification
3.1. System Implementation for Simulation and Experimental Studies
3.2. Simulation Study
3.2.1. Case Study 1: Grid Voltage Distorted with a SH Component at 5029 Hz
3.2.2. Case Study 2: Grid Voltage Distorted with a SH Component at 5038.6 Hz
3.3. Experimental Study
3.3.1. Case Study 1: Grid Voltage Distorted with a SH Component at 5029 Hz
3.3.2. Case Study 2: Grid Voltage Distorted with a SH Component at 5038.6 Hz
4. Conclusions and Future Work
- ○
- Developing a mathematical modeling approach to calculate the additional emissions resulting from the interference between the background voltage distortions in the SH range and the primary emissions of AC/DC converters. However, developing this mathematical model still faces many challenges [30], such as the grid impedance model in SH range still being simulation-based. However, obtaining a mathematical modeling approach in SH range for the grid is essential to predict the amplitudes and phases of this additional emissions which is still missing in literature [30].
- ○
- This study will include the experimental interference in high-power AC/DC converters by taking into account the effect of the equivalent series resistance on the primary emissions of such converters.
- ○
- Studying the effect of the continuous, critical and discontinuous modes on the primary emissions of AC/DC converter as is still missing in the literature [33]. This could help side by side with the grid modeling approach in predicting the effect of the aforementioned modes on the interference.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Abbreviations
DBR | diode bridge rectifier |
EMI | electromagnetic interference |
EV | electric vehicles |
GCI | grid connected inverters |
LED | light emitting diode |
LV | low voltage |
PE | power electronics |
PFC | Power Factor Correction |
RC | ripple control |
SH | supraharmonic |
VFD | variable frequency drives |
Variables
Grid frequency | |
The frequency of the SH current generated from the background distortion | |
The amplitude of the SH current generated from the background distortion | |
Instantaneous SH current generated from the background distortion | |
The instantaneous reflection of in the DC side of the DBR | |
Diode bridge rectifier |
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Parameter | Value |
---|---|
Grid Voltage (Root mean square) | |
Boosting inductance | |
Boosting capacitor | |
Output resistor | |
Switching frequency | |
Output voltage |
SH Component Frequency Added to the Grid (Hz) | Main SH Emission Frequency (Hz) | ig(fSH) Components (Hz) | Δf (Hz) | |
---|---|---|---|---|
Case Study 1 | 5029 | 5000 | 4979 | 21 |
5079 | 79 | |||
Case Study 2 | 5038.6 | 5000 | 4988.6 | 11.4 |
5088.6 | 88.6 |
Origin Harmonic Frequency in the DC Side (Hz) | Relationship Based on Equation (4) | Added Emissions Frequencies in the AC Side (Hz) | |
---|---|---|---|
Case Study 1 | 79 | 29 | |
21 | 71 | ||
Case Study 2 | 88.6 | 38.6 | |
11.4 | 61.4 |
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Osheba, M.S.; Aboutaleb, A.M.; Desmet, J.; Knockaert, J. The Impact of Grid Distortion on the Power Conversion Harmonics of AC/DC Converters in the Supraharmonic Range. Electronics 2024, 13, 2244. https://doi.org/10.3390/electronics13122244
Osheba MS, Aboutaleb AM, Desmet J, Knockaert J. The Impact of Grid Distortion on the Power Conversion Harmonics of AC/DC Converters in the Supraharmonic Range. Electronics. 2024; 13(12):2244. https://doi.org/10.3390/electronics13122244
Chicago/Turabian StyleOsheba, Marwa S., Abdellatif M. Aboutaleb, Jan Desmet, and Jos Knockaert. 2024. "The Impact of Grid Distortion on the Power Conversion Harmonics of AC/DC Converters in the Supraharmonic Range" Electronics 13, no. 12: 2244. https://doi.org/10.3390/electronics13122244
APA StyleOsheba, M. S., Aboutaleb, A. M., Desmet, J., & Knockaert, J. (2024). The Impact of Grid Distortion on the Power Conversion Harmonics of AC/DC Converters in the Supraharmonic Range. Electronics, 13(12), 2244. https://doi.org/10.3390/electronics13122244