Figure 1.
Radar chart from: (a) an ideal sinusoidal signal, (b) an altered signal. The ideal shape is highlighted in red for clarity.
Figure 1.
Radar chart from: (a) an ideal sinusoidal signal, (b) an altered signal. The ideal shape is highlighted in red for clarity.
Figure 2.
Comparison of different radar chart scaling approaches under (a) a notch event; (b) 40 dB Gaussian noise.
Figure 2.
Comparison of different radar chart scaling approaches under (a) a notch event; (b) 40 dB Gaussian noise.
Figure 3.
Boxplot’s example of indicators based on a normal distribution. However, in real power quality analysis, maximum values of approximately ±1 will occur in especially unfavorable cases but not uniformly across all indicators.
Figure 3.
Boxplot’s example of indicators based on a normal distribution. However, in real power quality analysis, maximum values of approximately ±1 will occur in especially unfavorable cases but not uniformly across all indicators.
Figure 4.
Decision tree scheme method for power quality event classification.
Figure 4.
Decision tree scheme method for power quality event classification.
Figure 5.
Process chart of the methodology followed for the development of radar charts.
Figure 5.
Process chart of the methodology followed for the development of radar charts.
Figure 6.
(a) Ficker signal; (b) state II behavior pattern for flickers. Blue line designates the current shape, the red line shows the ideal shape, and the green square marks illustrate maximum and minimum values.
Figure 6.
(a) Ficker signal; (b) state II behavior pattern for flickers. Blue line designates the current shape, the red line shows the ideal shape, and the green square marks illustrate maximum and minimum values.
Figure 7.
(a) Harmonics signal; (b) state III behavior pattern for harmonics. Blue line designates the current shape, the red line shows the ideal shape, and the green square marks illustrate maximum and minimum values.
Figure 7.
(a) Harmonics signal; (b) state III behavior pattern for harmonics. Blue line designates the current shape, the red line shows the ideal shape, and the green square marks illustrate maximum and minimum values.
Figure 8.
(a) Impulsive transient signal; (b) state II behavior pattern for impulsive transients. Blue line designates the current shape, the red line shows the ideal shape, and the green square marks illustrate maximum and minimum values.
Figure 8.
(a) Impulsive transient signal; (b) state II behavior pattern for impulsive transients. Blue line designates the current shape, the red line shows the ideal shape, and the green square marks illustrate maximum and minimum values.
Figure 9.
(a) Notch signal; (b) state III behavior pattern for notches. Blue line designates the current shape, the red line shows the ideal shape, and the green square marks illustrate maximum and minimum values.
Figure 9.
(a) Notch signal; (b) state III behavior pattern for notches. Blue line designates the current shape, the red line shows the ideal shape, and the green square marks illustrate maximum and minimum values.
Figure 10.
(a) Oscillatory transient signal; (b) state II behavior pattern for oscillatory transients. Blue line designates the current shape, the red line shows the ideal shape, and the green square marks illustrate maximum and minimum values.
Figure 10.
(a) Oscillatory transient signal; (b) state II behavior pattern for oscillatory transients. Blue line designates the current shape, the red line shows the ideal shape, and the green square marks illustrate maximum and minimum values.
Figure 11.
(a) Spike signal; (b) state III behavior pattern for spikes. Blue line designates the current shape, the red line shows the ideal shape, and the green square marks illustrate maximum and minimum values.
Figure 11.
(a) Spike signal; (b) state III behavior pattern for spikes. Blue line designates the current shape, the red line shows the ideal shape, and the green square marks illustrate maximum and minimum values.
Figure 12.
(a) Interruption signal; (b) state II behavior pattern for interruptions; (c) state III behavior pattern for interruptions. Blue line designates the current shape, the red line shows the ideal shape, and the green square marks illustrate maximum and minimum values.
Figure 12.
(a) Interruption signal; (b) state II behavior pattern for interruptions; (c) state III behavior pattern for interruptions. Blue line designates the current shape, the red line shows the ideal shape, and the green square marks illustrate maximum and minimum values.
Figure 13.
(a) Sag signal; (b) state II behavior pattern for sags; (c) state III behavior pattern for sags. Blue line designates the current shape, the red line shows the ideal shape, and the green square marks illustrate maximum and minimum values.
Figure 13.
(a) Sag signal; (b) state II behavior pattern for sags; (c) state III behavior pattern for sags. Blue line designates the current shape, the red line shows the ideal shape, and the green square marks illustrate maximum and minimum values.
Figure 14.
(a) Sag + harmonics signal; (b) state II behavior pattern for sag + harmonics; (c) state III-a behavior pattern for sag + harmonics; (d) state III-b behavior pattern for sag + harmonics. Blue line designates the current shape, the red line shows the ideal shape, and the green square marks illustrate maximum and minimum values.
Figure 14.
(a) Sag + harmonics signal; (b) state II behavior pattern for sag + harmonics; (c) state III-a behavior pattern for sag + harmonics; (d) state III-b behavior pattern for sag + harmonics. Blue line designates the current shape, the red line shows the ideal shape, and the green square marks illustrate maximum and minimum values.
Figure 15.
(a) Swell signal; (b) state II behavior pattern for swells; (c) state III behavior pattern for swells. Blue line designates the current shape, the red line shows the ideal shape, and the green square marks illustrate maximum and minimum values.
Figure 15.
(a) Swell signal; (b) state II behavior pattern for swells; (c) state III behavior pattern for swells. Blue line designates the current shape, the red line shows the ideal shape, and the green square marks illustrate maximum and minimum values.
Figure 16.
(a) Swell + harmonics signal; (b) state II behavior pattern for swell + harmonics; (c) state III-a behavior pattern for swell + harmonics; (d) state III-b behavior pattern for swell + harmonics. Blue line designates the current shape, the red line shows the ideal shape, and the green square marks illustrate maximum and minimum values.
Figure 16.
(a) Swell + harmonics signal; (b) state II behavior pattern for swell + harmonics; (c) state III-a behavior pattern for swell + harmonics; (d) state III-b behavior pattern for swell + harmonics. Blue line designates the current shape, the red line shows the ideal shape, and the green square marks illustrate maximum and minimum values.
Figure 17.
Radar charts of a synthetic 50 Hz signal with harmonics and a sag. Blue line designates the current shape, and the red line shows the ideal shape.
Figure 17.
Radar charts of a synthetic 50 Hz signal with harmonics and a sag. Blue line designates the current shape, and the red line shows the ideal shape.
Figure 18.
Radar charts of a synthetic 50 Hz signal with harmonics and a swell. Blue line designates the current shape, and the red line shows the ideal shape.
Figure 18.
Radar charts of a synthetic 50 Hz signal with harmonics and a swell. Blue line designates the current shape, and the red line shows the ideal shape.
Figure 19.
Boxplots of: (a) S-SAH signal; (b) S-SWH signal. State II values are circled.
Figure 19.
Boxplots of: (a) S-SAH signal; (b) S-SWH signal. State II values are circled.
Figure 20.
Radar charts of a real 50 Hz signal with a sag. Blue line designates the current shape, and the red line shows the ideal shape.
Figure 20.
Radar charts of a real 50 Hz signal with a sag. Blue line designates the current shape, and the red line shows the ideal shape.
Figure 21.
Radar charts of a real 50 Hz signal with an impulsive transient. Blue line designates the current shape, and the red line shows the ideal shape.
Figure 21.
Radar charts of a real 50 Hz signal with an impulsive transient. Blue line designates the current shape, and the red line shows the ideal shape.
Figure 22.
Boxplots of (a) R-SAG signal; (b) R-IMP signal. State II values are circled. State III SOS values are also highlighted.
Figure 22.
Boxplots of (a) R-SAG signal; (b) R-IMP signal. State II values are circled. State III SOS values are also highlighted.
Table 1.
Axles’ limits.
Axis | Upper Limit | Lower Limit |
---|
Sk | 0.31 | −0.31 |
K | 1.80 | 1.20 |
FOS | 0.17 | −0.17 |
SOS | 10.63 | 0 |
CF | 2.51 | 0.32 |
SNR | 160 | 0 |
THD | 22 | 0 |
Table 2.
Flicker’s maximum and minimum.
Table 2.
Flicker’s maximum and minimum.
Indicator | Max | Min |
---|
Sk | 0.0145 | −0.0143 |
K | 1.6374 | 1.5203 |
FOS | 0.0302 | −0.0291 |
SOS | 0.4329 | 0.3244 |
CF | 1.6804 | 1.4256 |
SNR | 80 | 30 |
THD | 8 | 8 |
Table 3.
Harmonics’ maximum and minimum.
Table 3.
Harmonics’ maximum and minimum.
Indicator | Max | Min |
---|
Sk | 2.2 × 10−15 | −3.7 × 10−15 |
K | 1.4294 | 1.2057 |
FOS | 1.5 × 10−15 | −2.2 × 10−15 |
SOS | 0.2952 | 0.1987 |
CF | 1.4653 | 1.2414 |
SNR | 80 | 30 |
THD | 22 | 8 |
Table 4.
Impulsive transient’s maximum and minimum.
Table 4.
Impulsive transient’s maximum and minimum.
Indicator | Max | Min |
---|
Sk | 0.0691 | −0.0674 |
K | 1.5889 | 1.4741 |
FOS | 0.0302 | −0.0309 |
SOS | 0.3126 | 0.2282 |
CF | 1.4918 | 1.4142 |
SNR | 80 | 30 |
THD | 8 | 8 |
Table 5.
Notch’s maximum and minimum.
Table 5.
Notch’s maximum and minimum.
Indicator | Max | Min |
---|
Sk | 0.0761 | −0.0314 |
K | 1.5685 | 1.4903 |
FOS | 0.03494 | −0.01491 |
SOS | 0.3145 | 0.2708 |
CF | 1.4505 | 1.4114 |
SNR | 80 | 30 |
THD | 8 | 8 |
Table 6.
Oscillatory transient’s maximum and minimum.
Table 6.
Oscillatory transient’s maximum and minimum.
Indicator | Max | Min |
---|
Sk | 0.2210 | −0.3050 |
K | 1.8030 | 1.4503 |
FOS | 0.1710 | −0.1710 |
SOS | 1.8865 | 0.3095 |
CF | 2.3093 | 1.3908 |
SNR | 80 | 30 |
THD | 8 | 8 |
Table 7.
Spike’s maximum and minimum.
Table 7.
Spike’s maximum and minimum.
Indicator | Max | Min |
---|
Sk | 0.1122 | −0.0523 |
K | 1.6676 | 1.4404 |
FOS | 0.1329 | −0.0274 |
SOS | 0.5521 | 0.3126 |
CF | 1.9422 | 1.3874 |
SNR | 80 | 30 |
THD | 8 | 8 |
Table 8.
Interruption’s maximum and minimum.
Table 8.
Interruption’s maximum and minimum.
Indicator | Max St. II | Min St. II | Max St. III | Min St. III |
---|
Sk | 0.31 | −0.31 | 2.8 × 10−14 | −1.9 × 10−14 |
K | 1.80 | 1.47 | 1.5 | 1.5 |
FOS | 0.14 | −0.14 | 4.3 × 10−21 | −8.0 × 10−21 |
SOS | 0.32 | 0 | 0 | 0 |
CF | 2.51 | 1.41 | 1.41 | 1.41 |
SNR | 80 | 30 | 80 | 30 |
THD | 8 | 8 | 8 | 8 |
Table 9.
Sag’s maximum and minimum.
Table 9.
Sag’s maximum and minimum.
Indicator | Max St. II | Min St. II | Max St. III | Min St. III |
---|
Sk | 0.31 | −0.31 | 9.8 × 10−16 | −2.4 × 10−15 |
K | 1.80 | 1.44 | 1.5 | 1.5 |
FOS | 0.12 | −0.12 | 2.4 × 10−16 | −5.7 × 10−16 |
SOS | 0.31 | 0 | 0.17 | 0 |
CF | 2.51 | 1.38 | 1.41 | 1.41 |
SNR | 80 | 30 | 80 | 30 |
THD | 8 | 8 | 8 | 8 |
Table 10.
Sag + harmonics’ maximum and minimum.
Table 10.
Sag + harmonics’ maximum and minimum.
Indicator | Max St. II | Min St. II | Max St. III-a | Min St. III-a | Max St. III-b | Min St. III-b |
---|
Sk | 0.31 | −0.31 | 2.1 × 10−15 | −3.5 × 10−15 | 1.6 × 10−15 | −5.7 × 10−15 |
K | 1.80 | 1.20 | 1.42 | 1.21 | 1.41 | 1.21 |
FOS | 0.10 | −0.12 | 1.23 | −1.98 | 5.3 × 10−16 | −1.0 × 10−15 |
SOS | 0.29 | 0 | 0.29 | 0.20 | 0.20 | 0 |
CF | 2.51 | 1.23 | 1.45 | 1.25 | 1.44 | 1.25 |
SNR | 80 | 30 | 80 | 30 | 80 | 30 |
THD | 22 | 8 | 22 | 8 | 22 | 8 |
Table 11.
Swell’s maximum and minimum.
Table 11.
Swell’s maximum and minimum.
Indicator | Max St. II | Min St. II | Max St. III | Min St. III |
---|
Sk | 0.31 | −0.31 | 1.1 × 10−15 | −2.0 × 10−15 |
K | 1.80 | 1.44 | 1.5 | 1.5 |
FOS | 0.17 | −0.17 | 7.5 × 10−15 | −1.7 × 10−14 |
SOS | 10.63 | 0.31 | 10.62 | 0.56 |
CF | 2.07 | 1.38 | 1.41 | 1.41 |
SNR | 80 | 30 | 80 | 30 |
THD | 8 | 8 | 8 | 8 |
Table 12.
Swell + harmonics’ maximum and minimum.
Table 12.
Swell + harmonics’ maximum and minimum.
Indicator | Max St. II | Min St. II | Max St. III-a | Min St. III-a | Max St. III-b | Min St. III-b |
---|
Sk | 0.31 | −0.31 | 1.8 × 10−15 | −3.7 × 10−15 | 1.7 × 10−15 | −3.6 × 10−15 |
K | 1.67 | 1.20 | 1.41 | 1.21 | 1.41 | 1.21 |
FOS | 0.17 | −0.17 | 1.1 × 10−15 | −2.0 × 10−15 | 1.6 × 10−14 | −4.9 × 10−14 |
SOS | 12.81 | 0.20 | 0.29 | 0.20 | 14.61 | 0.30 |
CF | 2.10 | 1.24 | 1.45 | 1.24 | 1.45 | 1.24 |
SNR | 80 | 30 | 80 | 30 | 80 | 30 |
THD | 22 | 8 | 22 | 8 | 22 | 8 |
Table 13.
Tolerance bands for normal signal behavior in boxplots.
Table 13.
Tolerance bands for normal signal behavior in boxplots.
Indicator | Lower Limit | Upper Limit |
---|
Skewness | −0.0244 | 0.0266 |
Kurtosis | 1.4771 | 1.5306 |
Fifth-order statistic | −0.0144 | 0.0161 |
Sixth-order statistic | 0.2854 | 0.3403 |
Crest factor | 1.4027 | 1.5193 |
SNR | 80 | 160 |
THD | 0 | 8 |
Table 14.
Percentage of event satisfactorily detected by the proposed tool.
Table 14.
Percentage of event satisfactorily detected by the proposed tool.
Database | PQ Event | System Radar + Decision Tree Detection (%) | Boxplot Detection (%) |
---|
Synthetic Power Quality Disturbances | Flicker | 100 | 99 |
Harmonics | 100 | 100 |
Impulsive transient | 99 | 46 |
Interruption | 91 | 90 |
Notch | 90 | 27 |
Oscillatory transient | 90 | 58 |
Sag | 97 | 92 |
Spike | 98 | 68 |
Swell | 91 | 90 |
Sag + harmonics | 98 | 97 |
Swell + harmonics | 100 | 100 |
Real-life Power Quality Events | Sag | 96.15 | 76.92 |
Impulsive transient | 83.33 | 23.81 |