Error Analysis of Narrowband Power-Line Communication in the Off-Grid Electrical System
Abstract
:1. Introduction
1.1. Current Research
1.2. Motivation of Research
2. Research Objectives
- Demonstration of the influence of the appliance or combination of appliances on the investigated communication parameters;
- Finding a means to improve the resilience of the PLC communication itself in the off-grid system environment;
- Implementation of communication between the appliances themselves so that they interact with each other regarding the electricity consumption (future work of the authors team).
3. Description of the Measurement Platform
Description of Experiment
4. Results of the Research
5. Discussion
6. Conclusions
- Without a connected appliance, the FER value was 0. The communication was therefore error-free. It can be stated that the interference of the hybrid converter without load does not affect the communication;
- The applied linear fluorescent lamp 1 has a major effect on the PLC communication, the FER value reached the level of 75.39%. While using linear fluorescent lamp 2 caused the FER value of 0. It can be stated that the selection of low-quality linear fluorescent lamps can cause potential communication problems;
- An older vacuum cleaner 1 has better FER values than a newer vacuum cleaner 2. This is due to the different electronic design of the vacuum cleaner;
- The microwave affects PLC communication. This is due to the cyclic switching of the inductive load;
- The combination of LEDL and linear fluorescent lamp 1 has a positive effect on PLC communication. From the experiment, it can be stated that some combinations of appliances have a positive effect on the durability of the PLC;
- Combinations of some appliances, on the other hand, have a negative effect on PLC communication. In the experiment, these combinations of linear fluorescent lamp 1 + vacuum cleaner 1, linear fluorescent lamp 1 + microwave oven were tested, and the worst combination appeared to be that of linear fluorescent lamp 1 + kettle;
- ROBO modulation has a major impact on improving the FER parameter and thus on the PLC communication. The difference is especially noticeable for the appliance combinations where the FER value is high;
- PLC communication with the Notch filter leads to an FER value of 0 for all appliance combinations. The correct setting of the notch filter leads to a robust communication solution with narrowband power-Line communication in the off-grid electrical system.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Parameters | Type, Value |
---|---|
Modulation schemes | Coherent or differential |
Modulation types | Robust BPSK, BPSK, QPSK, or 8PSK |
1st subcarrier | 35.9 kHz |
Last subcarrier | 90.6 kHz |
Subcarrier spacing | 1.562 kHz |
Number of subcarriers | 36 |
Sub-bands | 6 |
Error encoding decoding | Viterbi, Reed Solomon, convolution, or CRC16 |
Appliance | Load (VA) | Power Factor (-) | Appliance Type | EMC Filter | ||||
---|---|---|---|---|---|---|---|---|
Avg | Min | Max | Avg | Min | Max | |||
Linear fluorescent lamp 1 | 67.1 | 63.4 | 70.3 | 0.992 | 0.991 | 0.993 | Load with electrical choke | Yes |
Linear fluorescent lamp 2 | 65.5 | 64.9 | 65.9 | 0.969 | 0.967 | 0.970 | Load with electrical choke | Yes |
LEDL (5 pieces) | 78.8 | 79.8 | 80.6 | 0.494 | 0.487 | 0.501 | Switched-mode-power-supply load | Yes |
CFL (5 pieces) | 81.1 | 80.5 | 81.8 | 0.546 | 0.538 | 0.551 | Electronic-ballast load | Yes |
Microwave oven | 692.7 | 42.7 | 1312.3 | 0.806 | 0.232 | 0.95 | Switched resistive load | Yes |
Vacuum cleaner 1 (2015) | 993.0 | 973.5 | 1032.4 | 0.985 | 0.981 | 0.985 | Load with universal electrical motor | Yes |
Vacuum cleaner 2 (2008) | 1183.3 | 1123.5 | 1201.5 | 0.991 | 0.985 | 0.992 | Load with universal electrical motor | Yes |
Kettle | 1053 | 1048 | 1062 | 0.995 | 0.994 | 0.996 | Resistive load | No |
Parameters | 1st (Normal) | 2nd (Robust) | 3rd (Notch Filter) |
---|---|---|---|
Modulation type | BPSK | ROBO | BPSK |
Modulation scheme | Differential | Differential | Differential |
Tone map | 0x3F | 0x3F | 0x3F |
Transmission interval | 100 ms | 100 ms | 100 ms |
Number of frames | 1000 | 1000 | 1000 |
Number of frame characters | 65 | 65 | 65 |
Effective baud rate (peak) | 15,296 kbps | 5181 kbps | 15,296 kbps |
Effective baud rate (real) | 7810 kbps | 4690 kbps | 7810 kbps |
Notch filter | No | No | Yes |
Combination | Appliance | Group (Combo) | FER (%) | LQI Med (dB) | LQI SD (dB) | LQI IQR/LQI SD |
---|---|---|---|---|---|---|
C0 | No appliance (no-load state) | - | 0.00 | 10.75 | 3.78 | 0.595 |
C1 | Linear fluorescent lamp 1 | 1 | 75.39 | 8.75 | 1.15 | 0.870 |
C2 | Linear fluorescent lamp 2 | 3 | 0.00 | 6.75 | 0.89 | 1.124 |
C3 | LEDL | 2 | 0.00 | 4.00 | 5.64 | 1.95 |
C4 | CFL | 2 | 0.00 | 5.25 | 3.40 | 1.103 |
C5 | Vacuum cleaner 1 | 1 | 73.00 | 11.25 | 1.67 | 1.048 |
C6 | Vacuum cleaner 2 | 3 | 0.25 | 14.5 | 0.54 | 1.389 |
C7 | Microwave oven | 1 | 8.88 | 9.25 | 2.23 | 2.018 |
C8 | Kettle | 3 | 0.71 | 12.5 | 0.63 | 1.587 |
C9 | Linear fluorescent lamp 1 + LEDL | 1 + 2 | 7.54 | 5.00 | 2.35 | 0.957 |
C10 | Linear fluorescent lamp 1 + CFL | 1 + 2 | 0.00 | 6.75 | 1.20 | 1.042 |
C11 | Linear fluorescent lamp 1 + vacuum cleaner 1 | 1 + 1 | 87.28 | 13.75 | 1.57 | 1.433 |
C12 | Linear fluorescent lamp 1 + vacuum cleaner 2 | 1 + 3 | 0.00 | 14.51 | 0.74 | 0.676 |
C13 | Linear fluorescent lamp 1 + microwave oven | 1 + 1 | 84.06 | 9.75 | 2.21 | 1.131 |
C14 | Linear fluorescent lamp 1 + kettle | 1 + 3 | 88.52 | 13.5 | 1.78 | 1.404 |
Combination | N of Frames Transmitted | N of Received Frames—OK | N of Corrected Frames | N of Received-Discarded Frames (dB) | FER (%) | |
---|---|---|---|---|---|---|
Bad FCH CRC | Bad Payload | |||||
C0 | 13,977 | 13,977 | 0 | 0 | 0 | 0.00 |
C1 | 19,356 | 4764 | 3 | 955 | 6 | 75.39 |
C2 | 9994 | 9994 | 0 | 0 | 0 | 0.00 |
C3 | 9987 | 9987 | 241 | 0 | 0 | 0.00 |
C4 | 9985 | 9985 | 0 | 0 | 0 | 0.00 |
C5 | 9992 | 2700 | 1 | 317 | 2 | 72.98 |
C6 | 9938 | 9913 | 2 | 0 | 0 | 0.25 |
C7 | 11,993 | 10,927 | 0 | 65 | 1 | 8.89 |
C8 | 9981 | 9910 | 0 | 0 | 0 | 0.71 |
C9 | 21,850 | 20,240 | 118 | 52 | 1 | 7.37 |
C10 | 12,962 | 12,962 | 8 | 0 | 0 | 0.00 |
C11 | 7657 | 973 | 2 | 465 | 5 | 87.29 |
C12 | 9984 | 9984 | 0 | 0 | 0 | 0.00 |
C13 | 8985 | 1434 | 1 | 1535 | 16 | 84.04 |
C14 | 9779 | 1123 | 2 | 376 | 6 | 88.52 |
Combination | Median | SD | Minimum | Maximum | Range | Spectral Flatness | Group | |
---|---|---|---|---|---|---|---|---|
Rx(dB) | Tx(dB) | |||||||
C0 | −2.13 | 0.63 | −3.90 | −1.07 | 2.82 | −0.0068 | −0.0076 | |
C1 | −5.64 | 1.40 | −9.45 | −3.12 | 6.33 | −0.0197 | −0.0081 | 1 |
C2 | −5.89 | 1.49 | −8.34 | −1.05 | 7.29 | −0.0191 | −0.0109 | 3 |
C3 | −3.11 | 0.81 | −5.33 | −1.59 | 3.74 | −0.007 | −0.0077 | 2 |
C4 | −3.15 | 0.96 | −5.49 | −1.21 | 4.28 | −0.0073 | −0.0069 | 2 |
C5 | −4.66 | 2.09 | −8.73 | −0.95 | 7.78 | −0.0367 | −0.0155 | 1 |
C6 | −9.96 | 3.66 | −14.57 | −2.37 | 12.20 | −0.046 | −0.0143 | 3 |
C7 | −6.09 | 1.47 | −8.22 | −2.08 | 6.15 | −0.0212 | −0.0107 | 1 |
C8 | −7.56 | 1.96 | −9.14 | −1.45 | 7.69 | −0.0291 | −0.0091 | 3 |
C9 | −5.44 | 1.22 | −9.31 | −2.91 | 6.40 | −0.0154 | −0.006 | 1 + 2 |
C10 | −6.24 | 1.37 | −10.66 | −3.45 | 7.21 | −0.0146 | −0.006 | 1 + 2 |
C11 | −4.94 | 2.51 | −11.14 | −0.54 | 10.60 | −0.0327 | −0.0184 | 1 + 1 |
C12 | −9.28 | 4.07 | −15.92 | −1.86 | 14.06 | −0.0272 | −0.0092 | 1 + 3 |
C13 | −5.36 | 1.76 | −9.47 | −2.47 | 7.01 | −0.0325 | −0.0113 | 1 + 1 |
C14 | −5.27 | 1.97 | −9.38 | −1.95 | 7.43 | −0.0068 | −0.0076 | 1 + 3 |
Spearman’s correlation | −0.024 | 0.409 | −0.314 | −0.089 | 0.251 | −0.515 | −0.452 |
Combination | Appliance | FERNormal (%) | FERROBO (%) | FERNotch (%) |
---|---|---|---|---|
C0 | No appliance (no-load state) | 0.00 | 0.00 | 0.00 |
C1 | Linear fluorescent lamp 1 | 75.39 | 17.53 | 0.00 |
C2 | Linear fluorescent lamp 2 | 0.00 | 0.00 | 0.00 |
C3 | LEDL | 0.00 | 0.00 | 0.00 |
C4 | CFL | 0.00 | 0.00 | 0.00 |
C5 | Vacuum cleaner 1 | 72.98 | 13.15 | 0.00 |
C6 | Vacuum cleaner 2 | 0.25 | 0.00 | 0.00 |
C7 | Microwave oven | 8.89 | 0.25 | 0.00 |
C8 | Kettle | 0.71 | 0.00 | 0.00 |
C9 | Linear fluorescent lamp 1 + LEDL | 7.37 | 0.81 | 0.00 |
C10 | Linear fluorescent lamp 1 + CFL | 0.00 | 0.00 | 0.00 |
C11 | Linear fluorescent lamp 1 + vacuum cleaner 1 | 87.29 | 7.94 | 0.00 |
C12 | Linear fluorescent lamp 1 + vacuum cleaner 2 | 0.00 | 0.00 | 0.00 |
C13 | Linear fluorescent lamp 1 + microwave oven | 84.04 | 42.03 | 0.00 |
C14 | Linear fluorescent lamp 1 + kettle | 88.52 | 5.19 | 0.00 |
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Blazek, V.; Slanina, Z.; Petruzela, M.; Hrbáč, R.; Vysocký, J.; Prokop, L.; Misak, S.; Walendziuk, W. Error Analysis of Narrowband Power-Line Communication in the Off-Grid Electrical System. Sensors 2022, 22, 2265. https://doi.org/10.3390/s22062265
Blazek V, Slanina Z, Petruzela M, Hrbáč R, Vysocký J, Prokop L, Misak S, Walendziuk W. Error Analysis of Narrowband Power-Line Communication in the Off-Grid Electrical System. Sensors. 2022; 22(6):2265. https://doi.org/10.3390/s22062265
Chicago/Turabian StyleBlazek, Vojtech, Zdenek Slanina, Michal Petruzela, Roman Hrbáč, Jan Vysocký, Lukas Prokop, Stanislav Misak, and Wojciech Walendziuk. 2022. "Error Analysis of Narrowband Power-Line Communication in the Off-Grid Electrical System" Sensors 22, no. 6: 2265. https://doi.org/10.3390/s22062265