Method for classifying the status of the winding clamping of a power transformer
10641813 ยท 2020-05-05
Assignee
Inventors
Cpc classification
International classification
Abstract
A method for classifying a status of a winding clamping of a power transformer immersed in an oil filled transformer tank, the power transformer including at least one transformer coil with at least one clamped electrical winding arranged on a transformer core, includes the following steps: applying a mechanical force impulse on an impact area of the transformer tank, so that the at least one clamped electrical winding is mechanically excited to vibration and a voltage is induced within the at least one clamped electrical winding; measuring the induced voltage of the at least one clamped electrical winding for a period of time during vibration to generate measurement data; transferring the measurement data from the time domain into the frequency domain and providing a respective dataset comprising the measurement data in the frequency domain; and searching for local maxima within the measurement data in the frequency domain of the dataset.
Claims
1. A method for classifying a status of a winding clamping of a power transformer immersed in an oil filled transformer tank, the power transformer including at least one transformer coil with at least one clamped electrical winding arranged on a transformer core, the method comprising: applying a mechanical force impulse on an impact area of the transformer tank, so that the at least one clamped electrical winding is mechanically excited to vibration and a voltage is induced within the at least one clamped electrical winding therewith; measuring the induced voltage of the at least one clamped electrical winding for a period of time during vibration to generate measurement data; transferring the measurement data from the time domain into the frequency domain and providing a respective dataset comprising the measurement data in the frequency domain; and searching for local maxima within the measurement data in the frequency domain of the dataset, the searching comprising: classifying the status of the winding clamping of the at least one clamped electrical winding as defective if there is no distinct maximum within the local maxima; and classifying the status of the winding clamping of the at least one clamped electrical winding as at least possibly sufficient if there is exactly one distinct maximum within the local maxima.
2. The method according to claim 1, wherein the frequency domain covers a maximum frequency of at least 1.5 kHz.
3. The method according to claim 1, wherein the power transformer comprises several windings, wherein a respective dataset is provided synchronously for at least two of those windings; and wherein the status of the winding clamping of those at least two windings is classified.
4. The method according to claim 3, wherein the power transformer is a 3-phase transformer.
5. The method according to claim 4, wherein the induced voltage within a respective winding is measured in between a respective phase conductor and either a real or virtual neutral point.
6. The method according to claim 3, wherein, in case of at least two datasets with a respective distinct maximum, a cross reference in between the frequencies of the distinct maxima is done when classifying the status of a respective winding clamping.
7. The method according to claim 1, wherein the power transformer comprises a tap changer and the method is repeated sequentially with different tap changer settings.
8. The method according to claim 1, wherein the method is repeated at least two times, and wherein the impact area of the respective mechanical force impulse is subject to vary or not.
9. The method according to claim 8, wherein at least one impact area is located on a side wall of the transformer tank across from the at least one clamped electrical winding to be analyzed.
10. The method according to claim 1, wherein an energy of the mechanical force impulse is in a range of less than 500 J.
11. The method according to claim 1, wherein the mechanical force impulse is applied in a reproducible manner by respective standardized impulse means.
12. The method according to claim 1, wherein a local maximum in the frequency domain is classified as one distinct maximum if it is as least twice as great than respective other maxima.
13. The method according to claim 1, wherein two adjacent local maxima are classified as one local maximum if their frequency differs not more than 30 Hz.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The present invention will be described in even greater detail below based on the exemplary figures. The invention is not limited to the exemplary embodiments. Other features and advantages of various embodiments of the present invention will become apparent by reading the following detailed description with reference to the attached drawings which illustrate the following:
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DETAILED DESCRIPTION
(8) The problem is solved by a method for classifying the status of the winding clamping of a power transformer of the aforementioned kind. This is characterized by the following steps: classifying the status of the winding clamping of the at least one winding as defective in case that there is no distinct maximum within the local maxima, classifying the status of the winding clamping of the at least one winding as at least possibly sufficient in case that there is exactly one distinct maximum within the local maxima.
(9) The idea according of the invention does not assume a peak in the frequency domain at a predetermined frequency, moreover, the invention assumes that the induced voltage of a winding with a sufficient winding clamping features only one significant distinct maximum in the frequency domain, whereas the frequency of the distinct maximum is of secondary relevance. On the other side the invention assumes, that an induced voltage with no distinct maximum respectively with several local maxima, wherefrom no one is significantly more distinct than the others, is a clear indicator, that a winding clamping is not sufficient.
(10) Background for this assumption is, that the winding clamping of a winding or winding section is typically not defect in a homogenous manner along its whole extension, moreover it has been found that in case of a not sufficient winding clamping there are local areas with a defect which differ from other areas with no defect respectively with a different degree of a defect. Thus there are different areas within a not sufficient winding with a respective different status of winding clamping which cause different resonance frequencies.
(11) According to the invention it is foreseen to bring the windings of the power transformer to mechanical vibration by applying a mechanical force impulse on an impact area of the outer surface of the transformer tank, in the easiest case by use of a hammer or the like. Thus all windings of the power transformer will vibrate in a comparable manner, for example for a time span of several 1 s until the vibration has been damped. This enables the synchronous analyzing of several windings of the power transformer in parallel, so that also cross relations in between the three primary and secondary windings of a three phase power transformer can be analyzed for example.
(12) The induced voltage in the frequency domain typically features a relevant frequency spectrum of 2 kHz and above with one or more local maxima. Each maximum is not developed in a sharp manner at exactly one frequency, moreover a maximum can be seen as the peak of Gauss-like distribution around a respective frequency, wherein the width of the peak at half the height of the peak might amount for example 30 Hz. A local maximum which clearly surmounts the other local maximaif existentis seen as distinct maximum.
(13) The induced voltages are in typically in the range of very few Volts and below. The measurement of those voltages might be done by use of an automatic measurement circuit with a certain sampling frequency, for example within the range of 5 kHz and above. It has to be ensured that the frequency spectrum of relevance, which might have a maximum frequency of for example 2 kHz, is sampled in an adequate manner, so to say at least with a sampling frequency which is twice as high as the highest frequency of relevance. The transfer from the time domain into the frequency domain can be done for example by use of the method of PSD (Power Spectral Density), FFT (Fast Fourier Transformation) or DFT (Discrete Fourier Transformation).
(14) Thus according to invention the status of the winding clamping of the at least one winding is classified as defective in case that there is no distinct maximum within the local maxima. In this case it can be assumed that there are two or more relevant resonance frequencies indicating that there are at least two areas within the winding with a different status of winding clamping.
(15) Consequently the status of the winding clamping of the at least one winding is classified as at least possibly sufficient in case that there is exactly one distinct maximum within the local maxima. The existence of exact one distinct maximum in one frequency domain is a required but not necessarily a sufficient criterion that also status of the winding clamping is sufficient.
(16) According to another embodiment of the invention the frequency domain covers a maximum frequency of at least 1.5 kHz, preferably at least 2 kHz. It has been found, that by far the most relevant local maxima of measured voltages in the frequency domain are located within this frequency range. Preferably the sampling frequency for measuring the course of the signal of the induced voltage should be at least 10 kHz to ensure a sufficient high data quality within the frequency domain.
(17) According to a further embodiment of the invention the power transformer comprises several windings, wherein a respective dataset is provided synchronously for at least two of those windings and wherein the status of the winding clamping of those at least two windings is classified. This means that during one period of vibration the induced voltage within two or more windings is analyzed synchronously. Thus cross relation analyses in between the frequency spectra of different measured voltages is facilitated therewith since there is an independency on the strength of the applied mechanical force impulse. Thus the strength of the mechanical force impulse has not necessarily to be the same in case that a measurement is repeated.
(18) According to another embodiment of the invention the power transformer is a 3-phase transformer. This is a common embodiment of a power transformer since electrical energy supply networks are typically 3-phased. Thus for a three phase transformer synchronous measurement of for example the induced voltages of the windings of the three phases and synchronous providing of respective datasets can easily be done.
(19) According to a further embodiment of the invention and in case of at least two available datasets with a respective distinct maximum a cross reference in between the frequencies of the distinct maxima is done when classifying the status of a respective winding clamping. This could be in case of a three phase transformer for example synchronously generated datasets for the induced voltage of the primary and/or secondary winding in the frequency domain. If for example all datasets of one or more measurements comprise a distinct maximum at a similar frequency, it can be assumed, that the winding clamping of the transformer are in sufficient condition. It is also possible to identify and eliminate erroneous measurement by such a cross reference respectively by repeating the measurement.
(20) According to another embodiment of the invention the respective winding clamping are classified as sufficient in case that the frequencies of the respective distinct maxima do not differ more than 30 Hz each to each other. It has been found, that there might be slight deviations of the frequencies of distinct maxima in case that the measurements are repeated or in case that several measurements are done synchronously for different windings of the same transformer. According to the invention, it can be assumed for example, that in case of repeating a measurement several times and having respective distinct frequency maxima within a bandwidth of not more than 30 Hz the respective winding clamping is in sufficient condition.
(21) According to another aspect of the invention and in case of a 3-phase transformer an induced voltage within a respective winding is measured in between a respective phase conductor and either a real or virtual neutral point. Thus it is possible to per-form the measurement phase wise without having a negative influence of linked phase voltages.
(22) According to another embodiment of the invention the power transformer comprises a tap changer and the method is repeated sequentially with different tap changer settings. Dependent on the respective tap changer setting additional winding segments are connected electrically in series with a respective main winding of the transformer. Each winding segment as such might be subject to an individual fault. By repeating respective measurements several times at several tap changer settings it is possible to identify a respective defect of a winding and assign it to a certain winding segment which is switched by the tap changer.
(23) According to another embodiment of the invention the steps of the method are repeated at least two times, wherein the impact area of the respective mechanical force impulse is subject to vary or not. By increasing the number of measurements done it is easier to detect and eliminate erroneous measurements. The reliability of a status classifying of a winding clamping is improved therewith.
(24) According to another embodiment of the invention at least one impact area is located on a side wall of the transformer tank across at least one clamped winding to be analyzed. The mechanical force impulse is propagating in a preferred manner to the clamped winding in this case.
(25) According to a further embodiment of the invention the energy of the mechanical force impulse amounts in the range of less than 500 J. It has been found, that on one side the vibrations of the windings are sufficient high for generating a respective induced voltage and on the other side a damage on the surface of the transformer tank is avoided in an advantageous way therewith.
(26) According to another embodiment of the invention the mechanical force impulse is applied in a reproducible manner by respective standardized impulse means. Such a means could be for example a moveable weight, which is accelerated by a spring over a given distance. Thus the mechanical force impulse generated therewith in case that the weight hits on the surface of the transformer tank is always the same.
(27) According to another embodiment of the invention a local maximum in the frequency domain is classified as one distinct maximum in case that it is as least twice as high than the respective other maxima within the frequency domain of the same dataset.
(28) According to a further embodiment of the invention two adjacent local maxima are classified as one local maximum in case that their frequency differs not more than 30 Hz. For example if there is a peak of a maximum at 150 Hz and another peak at 180 Hz it can be assumed, that there is a common peak at 165 Hz. Thus it is avoided, that small deviations within the frequencies lead to a wrong classification of the status of the winding clamping. This proceeding can be repeated, so if there are two already merged maximum peaks which differ not more than 30 Hz each from each other those maximum peaks can be merged once again. Dependent on the size of the transformer and other frame conditions the limit might also amount 50 Hz instead of 30 Hz.
(29) Further advantageous embodiments of the invention are mentioned in the dependent claims.
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(31) The windings of the coils 16, 18, 20 comprise electrical winding connections 36, wherefrom two are indicated for one respective winding per coil, wherein a coil typically comprises at least a primary and secondary winding. The respective first connections of a respective winding are connected to a common neutral point 38, wherein the respective connections are electrically connected triangular. Respective induced voltages 40, 42, 44 are measured in between the first and second connections of each coil 16, 18, 20 respectively in between the neutral point 38 and the respective second connections.
(32) The induced voltages 40, 42, 44 are measured by respective measuring means and transferred by a computing unit from the time domain to the frequency domain and stored into respective datasets.
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(38) While the invention has been illustrated and described in detail in the drawings and foregoing description, such illustration and description are to be considered illustrative or exemplary and not restrictive. It will be understood that changes and modifications may be made by those of ordinary skill within the scope of the following claims. In particular, the present invention covers further embodiments with any combination of features from different embodiments described above and below. Additionally, statements made herein characterizing the invention refer to an embodiment of the invention and not necessarily all embodiments.
(39) The terms used in the claims should be construed to have the broadest reasonable interpretation consistent with the foregoing description. For example, the use of the article a or the in introducing an element should not be interpreted as being exclusive of a plurality of elements. Likewise, the recitation of or should be interpreted as being inclusive, such that the recitation of A or B is not exclusive of A and B, unless it is clear from the context or the foregoing description that only one of A and B is intended. Further, the recitation of at least one of A, B and C should be interpreted as one or more of a group of elements consisting of A, B and C, and should not be interpreted as requiring at least one of each of the listed elements A, B and C, regardless of whether A, B and C are related as categories or otherwise. Moreover, the recitation of A, B and/or C or at least one of A, B or C should be interpreted as including any singular entity from the listed elements, e.g., A, any subset from the listed elements, e.g., A and B, or the entire list of elements A, B and C.
LIST OF REFERENCE SIGNS
(40) 10 exemplary power transformer in tank
(41) 12 transformer tank
(42) 14 oil
(43) 16 first coil
(44) 18 second coil
(45) 20 third coil
(46) 22 transformer core
(47) 24 mechanical force impact
(48) 26 impulse means
(49) 28 first impact area
(50) 30 second impact area
(51) 32 third impact area
(52) 34 forth impact area
(53) 36 winding connections
(54) 38 neutral point
(55) 40 first induced voltage
(56) 42 second induced voltage
(57) 44 third induced voltage
(58) 46 supports
(59) 50 exemplary processing of measurement data
(60) 52 induced voltage
(61) 54 measurement data of induced voltage over time
(62) 56 transfer into frequency domain
(63) 58 measurement data of induced voltage in frequency domain
(64) 60 exemplary distinct maxima of measurement data in frequency domain
(65) 62 first measurement data in frequency domain
(66) 64 second measurement data in frequency domain
(67) 66 third measurement data in frequency domain
(68) 68 frequency
(69) 70 amplitude
(70) 72 frequency of distinct maximum
(71) 74 distinct maximum
(72) 80 exemplary maxima of measurement data in frequency domain
(73) 82 fourth measurement data in frequency domain
(74) 84 fifth measurement data in frequency domain
(75) 86 sixth measurement data in frequency domain
(76) 88 frequency of distinct maximum of fourth measurement data
(77) 90 frequency of distinct maximum of fifth measurement data
(78) 92 frequency of highest local maximum of sixth measurement data
(79) 94 frequency
(80) 96 amplitude
(81) 100 arrangement of an exemplary winding clamping
(82) 102 first pressure force
(83) 104 second pressure force
(84) 106 winding with winding wires
(85) 108 electrical insulation means
(86) 110 clamping plates
(87) 112 axis of rotation
(88) 120 course of induced voltages over time