Method for Monitoring Transformer Bushings and a System Therefor
20180113164 · 2018-04-26
Inventors
Cpc classification
G01R31/1245
PHYSICS
G01R27/2688
PHYSICS
International classification
G01R31/12
PHYSICS
G01R27/26
PHYSICS
Abstract
A system for monitoring transformer bushings sensors, wherein first and second bushing sensors are connected to a common first phase of a high voltage source, and the third and fourth bushing sensors are connected to a common second phase of the high voltage source. A first time series is generated from the first and second bushing sensors during a predetermined time interval. A second time series, is generated from the third and fourth bushing sensors during the predetermined time interval. A correlation model for the first and second time series for determining a difference between a measured signal and an estimated signal, and generating a signal indicative of a bushing problem the difference is larger than a threshold.
Claims
1. A method for monitoring transformer bushings, comprising: recording time series comprising information from a first bushing sensor, a second bushing sensor, a third bushing sensor, and a fourth bushing sensor, wherein the first bushing sensor and the second bushing sensor are connected to a common first phase of a high voltage source, and the third bushing sensor and the fourth bushing sensor are connected to a common second phase of the high voltage source; generating a first time series comprising information from the first bushing sensor and the second bushing sensor during a predetermined time interval; generating a second time series, substantially simultaneously with the first time series, comprising information from the third bushing sensor and the fourth bushing sensor during the predetermined time interval; generating a correlation model for the first time series and the second time series; measuring a first signal corresponding to a measurement of the first time series; measuring a second signal corresponding to a measurement of the second time series; determining a difference between the measured first signal or the measured second signal, and an estimated first signal or an estimated second signal being estimated by means of the correlation model and the measured first or second signal; generating a signal indicative of a bushing problem if it is determined that the determined difference is larger than a predetermined threshold value.
2. The method according to claim 1, wherein the step of determining a difference involves determining the difference between the measured first signal and an estimated first signal, or determining the difference between the measured second signal and an estimated second signal, wherein the estimated first signal is estimated by means of the correlation model and a measured second signal, and the estimated second signal is estimated by means of the correlation model and a measured first signal.
3. The method according to claim 1, wherein the step of generating the correlation model involves calculating a relative loss tangent.
4. The method according to claim 3, wherein the relative loss tangent of the first time series is correlated to the relative loss tangent of the second time series.
5. The method according to claim 1, wherein the step of generating the correlation model involves calculating a relative amplitude ratio for each of the first time series and the second time series.
6. The method according to claim 5, wherein the relative amplitude ratio of the first time series is correlated to the relative amplitude of the second time series.
7. The method according to claim 1, wherein the first bushing sensor and the third bushing sensor are connected to a first transformer, the second bushing sensor and the fourth bushing sensor are connected to a second transformer.
8. The method according to claim 7, wherein the first transformer and the second transformer are provided in the same substation.
9. The method according to claim 1, wherein the correlation model is a regression model.
10. The method according to claim 9, wherein the regression model is a linear regression model.
11. A computer readable storage medium storing computer program instructions which, when executed by a processor, cause the processor to perform a method including the steps: recording time series comprising information from a first bushing sensor, a second bushing sensor, a third bushing sensor, and a fourth bushing sensor, wherein the first bushing sensor and the second bushing sensor are connected to a common first phase of a high voltage source, and the third bushing sensor and the fourth bushing sensor are connected to a common second phase of the high voltage source; generating a first time series comprising information from the first bushing sensor and the second bushing sensor during a predetermined time interval; generating a second time series, substantially simultaneously with the first time series, comprising information from the third bushing sensor and the fourth bushing sensor during the predetermined time interval; generating a correlation model for the first time series and the second time series, measuring a first signal corresponding to a measurement of the first time series; measuring a second signal corresponding to a measurement of the second time series; determining a difference between the measured first signal or the measured second signal, and an estimated first signal or an estimated second signal being estimated by means of the correlation model and the measured first or second signal; generating a signal indicative of a bushing problem if it is determined that the determined difference is larger than a predetermined threshold value.
12. A system for monitoring transformer bushings, comprising: a recording system for recording time series comprising information from a first bushing sensor, a second bushing sensor, a third bushing sensor, and a fourth bushing sensor, wherein the first bushing sensor and the second bushing sensor are connected to a common first phase of a high voltage source, and the third bushing sensor and the fourth bushing sensor are connected to a common second phase of the high voltage source; means for generating a first time series comprising information from the first bushing sensor and the second bushing sensor during a predetermined time interval; means for generating a second time series, substantially simultaneously with the first time series, comprising information from the third bushing sensor and the fourth bushing sensor during the predetermined time interval; a correlation device for generating a correlation model for the first time series and the second time series; the recording system further comprises means for measuring a first signal corresponding to a measurement of the first time series; the recording system further comprises means for measuring a second signal corresponding to a measurement of the second time series; means for determining a difference between the measured first signal or the measured second signal, and an estimated first signal or an estimated second signal being estimated by means of the correlation device and the measured first or second signal; means for generating a signal indicative of a bushing problem if it is determined that the determined difference is larger than a predetermined threshold value.
13. The system according to claim 12, wherein the means for determining a difference is configured to determine the difference between the measured first signal and an estimated first signal, or to determine the difference between the measured second signal and an estimated second signal, wherein the estimated first signal is estimated by means of the correlation model and a measured second signal, and the estimated second signal is estimated by means of the correlation model and a measured first signal.
14. The system according to any of claim 12, wherein the first bushing sensor and the third bushing sensor are connected to a first transformer, the second bushing sensor and the fourth bushing sensor are connected to a second transformer.
15. The system according to claim 14, wherein the first transformer and the second transformer are provided in the same substation.
16. The system according to claim 12, wherein the recording system comprises a first recording device connected to the first bushing sensor and the third bushing sensor, and a second recording device connected to the second bushing sensor and to the fourth bushing sensor.
17. The system according to claim 12, wherein the recording system comprises a first recording device connected to the first bushing sensor and to the second bushing sensor, and a second recording device connected to the third bushing sensor and to the fourth bushing sensor.
18. The method according to claim 2, wherein the step of generating the correlation model involves calculating a relative loss tangent.
19. The system according to any of claim 13, wherein the first bushing sensor and the third bushing sensor are connected to a first transformer, the second bushing sensor and the fourth bushing sensor are connected to a second transformer.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0035] In the following detailed description embodiments of the invention will be described with reference made to the accompanying drawings.
[0036] In
[0037] In
1=0+1(eq1)
[0038] where 0 is the phase angle of the first phase and 1 is the loss tangent of the first transformer bushing. A corresponding reasoning can be performed for the second phase, which yields:
2=0+2(eq2)
[0039] where 0 is the phase angle of the first phase and 1 is the loss tangent for the first transformer bushing.
[0040] By calculating the tangent of the difference between 1 and 2 a value for the differential loss tangent can be calculated as follows:
tan(12)=tan(0+102)=tan(12)tan(1)tan(2) tan (eq3)
[0041] This equation (eq3) gives an expression for the relative loss tangent tan for a combination of two transformer bushing sensors.
[0042] Another useful parameter to calculate is the relative amplitude ratio of the voltage Vo1 and Vo2:
RA=|Vo1/Vo2|(eq4)
[0043] The voltage ratio RA is proportional to the capacitances of the first and the second bushing.
[0044] Now with reference made to
[0045] The relative loss tangent for the first phase A tan (A) can be calculated using the phase for the bushing sensor arranged in the first transformer bushing 303 and for the bushing sensor arranged in the fourth transformer bushing 306 and equation (eq3).
[0046] The corresponding relative amplitude ratio RA(A) can also be calculated for the first phase A using equation (eq4).
[0047] Furthermore, the relative loss tangent for the second phase B tan (B) can be calculated using the phase for the bushing sensor arranged in the second transformer bushing 304 and for the bushing sensor arranged in the fifth transformer bushing 307.
[0048] A corresponding relative amplitude ratio RA(B) can also be calculated for the second phase B.
[0049] For the third phase C a corresponding loss tangent tan (C) and relative amplitude ratio RA(C) can be calculated.
[0050] If the calculated loss tangents and relative amplitudes are recorded in corresponding time series a correlation model between the different phases A, B and C can be determined.
[0051] For example, when tan (A) is correlated to tan (B), then if the transformer bushings are identical the correlation model will be a straight line through zero with a slope of one.
[0052] The difference between a measured tan and an estimated tan (by means of the correlation model) indicates the distance to the estimated value from the correlation model. If the difference is larger than a predetermined threshold value a transformer bushing problem might exist and a suitable warning signal may be generated.
[0053] By determining the correlation model between the phases i.e. correlation( tan (A), tan (B)), correlation( tan (A), tan (C)), and correlation( tan (B), tan (C)) for the relative loss tangent the failing pair of transformer bushing is easily identified.
[0054] Furthermore, the correlation model for the relative amplitudes can also be determined, i.e. correlation(RA(A), RA(B)), correlation(RA(B), RA(C)), and correlation(RA(A), RA(C)).
[0055] In
[0056] 401: Record a first time series comprising information from a first bushing sensor and a second bushing sensor, each connected to a common first phase of an electrical source.
[0057] 402: Record a second time series, substantially simultaneously with the first time series, comprising information from a third bushing sensor and a fourth bushing sensor each connected to a common second phase of the electrical source, different from the first phase.
[0058] 403: Generating a correlation model for the first time series and the second time series.
[0059] 404: Measuring a first signal corresponding to a measurement of the first time series.
[0060] 405: Measuring a second signal corresponding to a measurement of the second time series.
[0061] 406: Determining a difference between the measured first signal, or the measured second signal, and an estimated first signal, or an estimated second signal, being estimated by means of the correlation model and the measured first or second signal.
[0062] The step 406 may in one embodiment comprise determining a difference between the measured first signal and an estimated first signal, or determining a difference between the measured second signal and an estimated second signal. The estimated first signal is estimated by means of the correlation model and a measured second signal. The estimated second signal is estimated by means of the correlation model and a measured first signal. 407: Generating a signal indicative of a bushing problem if it is determined that the determined difference is larger than a predetermined threshold value.
[0063] The predetermined threshold value may be a number of standard deviations calculated for a normal spread of the information from a bushing sensor.
[0064] The generated signal may for example be a visual signal, an audio signal or a digital signal.
[0065] In order to further elucidate the beneficial features of the invention a series of experiment will be disclosed.
[0066] In this series of experiment a first three phase transformer T1 is connected to phase 1, 2 and 3 of a high voltage source through respective transformer bushings. The first transformer T1 is provided in a substation together with a second three phase transformer T2. The second transformer T2 is connected to the same phases 1, 2 and 3 as the first transformer through respective transformer bushings. Each of the transformer bushings in the first and second transformer is provided with bushing sensors connected to corresponding recording devices, such that tan and RA are easily calculated by means of the recorded voltages and phases through the bushing sensors and equation (eq3) and (eq4).
[0067] The result of a first experiment is illustrated in
[0068] In
[0069] A corresponding pair of plots illustrating the correlation between phase 3 and phase 2 are illustrated in
[0070] And finally in
[0071] The correlation between the phases illustrated in
[0072]
[0073] In
[0074] In one embodiment the correlation model of the relative amplitude and the relative loss tangent between phases is generated by means of a regression model. The regression model may be a linear regression model but other types of regression models are of course possible. It is also be to use other techniques such as cluster identification, pattern recognition, and neural networks.
[0075] In
[0076] The monitoring system 801 further comprises means 818A for generating a first time series comprising information from the bushing sensor 807 and the bushing sensor 815 for the first phase A, during the predetermined time interval.
[0077] The monitoring system 801 further comprises means 818B for generating a second time series comprising information from the bushing sensor 808 and the bushing sensor 816 for the second phase B, during the predetermined time interval.
[0078] The monitoring system 801 further comprises means 818C for generating a third time series comprising information from the bushing sensor 809 and the bushing sensor 817 for the third phase C, during the predetermined time interval.
[0079] The monitoring system 801 further comprises a correlation device 819 for generating correlation models between the first time series, the second time series, and the third time series.
[0080] The recording system 810 further comprises means for measuring a first signal corresponding to a measurement of the first time series;
[0081] The recording system 810 further comprises means for measuring a second signal corresponding to a measurement of the second time series;
[0082] The recording system 810 further comprises means for measuring a third signal corresponding to a measurement of the third time series;
[0083] The monitoring system 801 further comprises means for determining a difference 820 between the measured first signal or the measured second signal, and an estimated first signal or an estimated second signal being estimated by means of the correlation device and the measured first or second signal;
[0084] The monitoring system 801 further comprises means for generating a signal 821 indicative of a bushing problem if it is determined that the determined difference is larger than a predetermined threshold value.
[0085] The means for determining a difference 820 is in one embodiment configured to determine the difference between the measured first signal and an estimated first signal, or to determine the difference between the measured second signal and an estimated second signal. The estimated first signal is estimated by means of the correlation model and a measured second signal, and the estimated second signal is estimated by means of the correlation model and a measured first signal.
[0086] The correlation model may be a regression model fitted to historical time series for the transformer bushings. The regression model may in some embodiments be a linear regression model. But of course other models might be used such as pattern recognition, cluster analysis, neural networks etc.
[0087] In other embodiments may the recording system 801 comprise a first recording device connected to a bushing sensor 807 and to the bushing sensor 815. The recording system 801 further comprises a second recording device connected to the bushing sensor 808 and to the bushing sensor 816.
[0088] In another embodiment of the recording system 801 the recording system may comprise a first recording device connected to the bushing sensor 807 and to the bushing sensor 808, and a second recording device being connected to the bushing sensor 815 and to the bushing sensor 816.
[0089] In another embodiment of the system the recording device 810 may be connected to a computer 903 having a processor 901 with memory 902, wherein the memory comprises instructions for the processor, when executed by the processor, cause the processor to perform a method as set out hereinabove.
[0090] The above mentioned and described embodiments are only given as examples and should not be limiting. Other solutions, uses, objectives, and functions within the scope of the accompanying patent claims may be possible.