A COMMUTATION FAILURE PROTECTION METHOD, AND APPARATUS, COMPUTER DEVICE AND STORAGE MEDIUM THEREOF
20220365125 · 2022-11-17
Inventors
Cpc classification
H02H7/1255
ELECTRICITY
G01R31/085
PHYSICS
Y02E60/60
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
H02M1/32
ELECTRICITY
International classification
G01R31/08
PHYSICS
Abstract
The invention discloses a commutation failure protection method, and apparatus, computer device and storage medium thereof. The method comprises: collecting three-phase AC currents on a valve-side of a converter, a DC current on a high-voltage side and a DC current on a neutral terminal; selecting a minimum value of an absolute value of the three-phase AC currents on the valve side as an AC characteristic quantity, and selecting a maximum value of the DC current on the high-voltage side and the DC current on the neutral terminal as a DC characteristic quantity; according to the AC characteristic quantity and the DC characteristic quantity, constructing a minimum characteristic quantity; comparing the minimum characteristic quantity with a first preset threshold, and outputting a commutation judgment result; according to the commutation judgment result, constructing a commutation time interval; comparing the commutation time interval with a second preset threshold and a third preset threshold, and outputting a commutation failure protection judgment result to determine whether a commutation failure occurs. The invention uses minimum current sequence characteristics to track a commutation process of a converter valve, and when a commutation failure occurs, it may make timely, accurate and reliable judgment, thereby ensuring safe operation of valve equipment.
Claims
1. A commutation failure protection method applied to a high-voltage DC transmission system, characterized in that, the method comprises: collecting three-phase AC currents on a valve-side of a converter, a DC current on a high-voltage side and a DC current on a neutral terminal; selecting a minimum value of an absolute value of the three-phase AC currents on the valve-side as an AC characteristic quantity, and selecting a maximum value of the DC current on the high-voltage side and the DC current on the neutral terminal as a DC characteristic quantity; according to the AC characteristic quantity and the DC characteristic quantity, constructing a minimum characteristic quantity; comparing the minimum characteristic quantity with a first preset threshold, and outputting a commutation judgment result; according to the commutation judgment result, constructing a commutation time interval; comparing the commutation time interval with a second preset threshold and a third preset threshold, and outputting a commutation failure protection judgment result to determine whether a commutation failure occurs; wherein the third preset threshold is greater than the second preset threshold.
2. The commutation failure protection method according to claim 1, characterized in that, the step of selecting a minimum value of an absolute value of the three-phase AC currents on the valve-side as an AC characteristic quantity, and selecting a maximum value of the DC current on the high-voltage side and the DC current on the neutral terminal as a DC characteristic quantity, comprises: selecting the minimum value of the absolute value of the three-phase AC currents on the valve-side as the AC characteristic quantity using the following formula:
i.sub.ac min=Min(|i.sub.a|,|i.sub.b|,|i.sub.c|) wherein i.sub.a, i.sub.b, i.sub.c represent the three-phase AC currents on the valve-side, |i.sub.a|, |i.sub.b|, |i.sub.c| represent the absolute values of the three-phase AC currents on the valve-side, and Min(|i.sub.a|,|i.sub.b|,|i.sub.c|) represent the minimum value of the absolute value of the three-phase AC currents on the valve-side; selecting the maximum value of the DC current on the high-voltage side and the DC current on the neutral terminal as the DC characteristic quantity using the following formula:
i.sub.d max=Max(i.sub.dN,i.sub.dH) wherein, i.sub.dH represents the DC current on the high-voltage side, i.sub.dN represents the DC current at the neutral terminal, and Max(i.sub.dN,i.sub.dH) represents the maximum value of the DC current on the high-voltage side and the DC current on the neutral terminal.
3. The commutation failure protection method according to claim 2, characterized in that, the step of according to the AC characteristic quantity and the DC characteristic quantity, constructing a minimum characteristic quantity uses the following formula:
4. The commutation failure protection method according to claim 1, characterized in that, the step of comparing the minimum characteristic quantity with a first preset threshold, and outputting a commutation judgment result uses the following formula:
5. The commutation failure protection method according to claim 4, characterized in that, the step of according to the commutation judgment result, constructing a commutation time interval, comprises: using the commutation judgment result to integrate within a set time value to construct the commutation time interval,
6. The commutation failure protection method according to claim 5, characterized in that, a setting of the set time value is as follows:
7. The commutation failure protection method according to claim 1, characterized in that, the step of comparing the commutation time interval with a second preset threshold and a third preset threshold, and outputting a commutation failure protection judgment result to determine whether a commutation failure occurs uses the following formula:
8. A commutation failure protection apparatus applied to a high-voltage DC transmission system, characterized in that, the apparatus comprises: a collecting module used to collect three-phase AC currents on a valve-side of a converter, a DC current on a high-voltage side and a DC current on a neutral terminal; a selecting module used to select a minimum value of an absolute value of the three-phase AC currents on the valve: side as an AC characteristic quantity, and selecting a maximum value of the DC current on the high-voltage side and the DC current on the neutral terminal as a DC characteristic quantity; a first constructing module used to construct a minimum characteristic quantity according to the AC characteristic quantity and the DC characteristic quantity; a first comparing module used to compare the minimum characteristic quantity with a first preset threshold, and outputting a commutation judgment result; a second constructing module used to construct a commutation time interval according to the commutation judgment result; a second comparing module used to compare the commutation time interval with a second preset threshold and a third preset threshold, and outputting a commutation failure protection judgment result to determine whether a commutation failure occurs; wherein the third preset threshold is greater than the second preset threshold.
9. A computer device comprising a processor and a memory for storing an executable program for the processor, characterized in that, when the processor executes the program stored in the memory, a commutation failure protection method is implemented that comprises: collecting three-phase AC currents on a valve-side of a converter, a DC current on a high-voltage side and a DC current on a neutral terminal; selecting a minimum value of an absolute value of the three-phase AC currents on the valve-side as an AC characteristic quantity, and selecting a maximum value of the DC current on the high-voltage side and the DC current on the neutral terminal as a DC characteristic quantity; according to the AC characteristic quantity and the DC characteristic quantity, constructing a minimum characteristic quantity; comparing the minimum characteristic quantity with a first preset threshold, and outputting a commutation judgment result; according to the commutation judgment result, constructing a commutation time interval; comparing the commutation time interval with a second preset threshold and a third preset threshold, and outputting a commutation failure protection judgment result to determine whether a commutation failure occurs; wherein the third preset threshold is greater than the second preset threshold.
10. A storage medium storing a program, characterized in that, when the program is executed by a processor, the commutation failure protection method according to claim 1 is implemented.
11. The commutation failure protection method according to claim 2, characterized in that, the step of comparing the minimum characteristic quantity with a first preset threshold, and outputting a commutation judgment result uses the following formula:
12. The commutation failure protection method according to claim 3, characterized in that, the step of comparing the minimum characteristic quantity with a first preset threshold, and outputting a commutation judgment result uses the following formula:
13. The commutation failure protection method according to claim 2, characterized in that, the step of comparing the commutation time interval with a second preset threshold and a third preset threshold, and outputting a commutation failure protection judgment result to determine whether a commutation failure occurs uses the following formula:
14. The commutation failure protection method according to claim 3, characterized in that, the step of comparing the commutation time interval with a second preset threshold and a third preset threshold, and outputting a commutation failure protection judgment result to determine whether a commutation failure occurs uses the following formula:
15. The computer device according to claim 9, characterized in that, the step of selecting a minimum value of an absolute value of the three-phase AC currents on the valve-side as an AC characteristic quantity, and selecting a maximum value of the DC current on the high-voltage side and the DC current on the neutral terminal as a DC characteristic quantity, comprises: selecting the minimum value of the absolute value of the three-phase AC currents on the valve-side as the AC characteristic quantity using the following formula:
i.sub.ac min=Min(|i.sub.a|,|i.sub.b|,|i.sub.c|) wherein i.sub.a, i.sub.b, i.sub.c represent the three-phase AC currents on the valve-side, |i.sub.a|,|i.sub.b|,|i.sub.c| represent the absolute values of the three-phase AC currents on the valve-side, and min(|i.sub.a|,|i.sub.b|,|i.sub.c|) represent the minimum value of the absolute value of the three-phase AC currents on the valve-side; selecting the maximum value of the DC current on the high-voltage side and the DC current on the neutral terminal as the DC characteristic quantity using the following formula:
i.sub.d max=Max(i.sub.dN,i.sub.dH) wherein, i.sub.dH represents the DC current on the high-voltage side, i.sub.dN represents the DC current at the neutral terminal, and Max(i.sub.dN,i.sub.dH) represents the maximum value of the DC current on the high-voltage side and the DC current on the neutral terminal.
16. The computer device according to claim 9, characterized in that, the step of according to the AC characteristic quantity and the DC characteristic quantity, constructing a minimum characteristic quantity uses the following formula:
17. The computer device of claim 9, characterized in that, the step of comparing the minimum characteristic quantity with a first preset threshold, and outputting a commutation judgment result uses the following formula:
18. The computer device of claim 17, characterized in that, the step of according to the commutation judgment result, constructing a commutation time interval, comprises: using the commutation judgment result to integrate within a set time value to construct the commutation time interval,
19. The computer device according to claim 18, characterized in that, a setting of the set time value is as follows:
20. The computer device of claim 9, characterized in that, the step of comparing the commutation time interval with a second preset threshold and a third preset threshold, and outputting a commutation failure protection judgment result to determine whether a commutation failure occurs uses the following formula:
Description
DESCRIPTION OF THE FIGURES
[0046] In order to explain the embodiments of the present invention or the technical solutions in the prior art more clearly, the following will briefly introduce the figures that are used in the description of the embodiments or the current technology. It can be seen that the figures in the following description are for only some embodiments of the present invention. For those of ordinary skilled in the art, without inventive work, other figures may be obtained based on the structure shown in these figures.
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DESCRIPTION
[0056] In order to explain the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the technical solutions in the embodiments of the present invention will be described clearly and completely in conjunction with the accompanying figures in the embodiments of the present invention. Clearly, the described embodiments are parts of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skilled in the art, without inventive work, shall fall within the protection scope of the present invention.
Embodiment 1
[0057] As shown in
[0058] S1. collecting three-phase AC currents on a valve side of a converter, a DC current on a high-voltage side and a DC current on a neutral terminal.
[0059] The converter valve structure of the high-voltage DC power transmission system of this embodiment is shown in
and the time interval of the commutation process is μ.
[0060] S2. selecting a minimum value of an absolute value of the three-phase AC currents on the valve-side as an AC characteristic quantity, and selecting a maximum value of the DC current on the high-voltage side and the DC current on the neutral terminal as a DC characteristic quantity.
[0061] S21. selecting the minimum value of the absolute value of the three-phase AC currents on the valve-side as the AC characteristic quantity i.sub.ac min using the following formula:
i.sub.ac min=Min(|i.sub.a|,|i.sub.b|,|i.sub.c|) (1)
[0062] wherein |i.sub.a|, |i.sub.b|, |i.sub.c| represent the absolute values of the three-phase AC currents on the valve side, and Min(|i.sub.a|,|i.sub.b|,|i.sub.c|) represent the minimum value of the absolute value of the three-phase AC currents on the valve-side.
[0063] S22. selecting the maximum value of the DC current on the high-voltage side and the DC current on the neutral terminal as the DC characteristic quantity i.sub.d max using the following formula:
i.sub.d max=Max(i.sub.dN,i.sub.dH) (2)
[0064] wherein Max(i.sub.dN,i.sub.dH) represents the maximum value of the DC current on the high-voltage side and the DC current on the neutral terminal.
[0065] The waveforms of the selected AC characteristic quantity i.sub.ac min and DC characteristic quantity i.sub.d max are shown in
[0066] S3. according to the AC characteristic quantity and the DC characteristic quantity, constructing a minimum characteristic quantity.
[0067] Specifically, using a ratio between the AC characteristic quantity and the DC characteristic quantity, the minimum characteristic quantity k.sub.min is constructed as follows:
[0068] The waveform of the constructed minimum characteristic quantity k.sub.min is shown in
and corresponds to the conduction time interval of the converter valve. The sharp wave of the minimum characteristic quantity k.sub.min corresponds to the time interval μ of the commutation process of the converter valve.
[0069] S4. comparing the minimum characteristic quantity with a first preset threshold, and outputting a commutation judgment result using the following formula:
[0070] wherein p.sub.0 represents the commutation judgment result; k.sub.min is compared with the first preset threshold k.sub.set 0 to output the commutation judgment result;
[0071] When k.sub.min≥k.sub.set 0, p.sub.0 outputs high, that is p.sub.0=1, and it means that there is a commutation (commutation is in progress); when k.sub.min<k.sub.set 0, p.sub.0 outputs low, that is p.sub.0=0, and it means that there is no commutation (non-commutation or commutation abnormality).
[0072] S5. according to the commutation judgment result, constructing a commutation time interval.
[0073] Since the minimum characteristic quantity k.sub.min characterizes a commutation process, the period of the minimum characteristic quantity k.sub.min corresponds to the conduction time interval of the converter valve. The non-zero period of the minimum characteristic quantity k.sub.min corresponds to the commutation process interval of the converter valve; considering that the converter valve is under normal operation, the conduction time interval of each converter valve is
and the time interval of the commutation process is μ, so the set time value is set as follows:
[0074] wherein T represents a power frequency cycle, and its value is 20 ms.
[0075] Using the commutation judgment result p.sub.0 to integrate within a set time value t.sub.set to construct the commutation time interval p.sub.t,
[0076] S6. comparing the commutation time interval with a second preset threshold and a third preset threshold, and outputting a commutation failure protection judgment result to determine whether a commutation failure occurs using the following formula:
[0077] wherein, p.sub.1 represents the output commutation failure protection judgment result by comparing the commutation time interval with the second preset threshold k.sub.set 1 and the third preset threshold k.sub.set 2, and the third preset threshold k.sub.set 2 is greater than the second preset threshold k.sub.set 1.
[0078] When k.sub.set 1≤p.sub.t≤k.sub.set 2, p.sub.1 outputs high, that is p.sub.1=1, and it means that the commutation is normal; when p.sub.t<k.sub.set 1 or p.sub.t>k.sub.set 2, p.sub.1 outputs low, that is p.sub.1=0, and it means that the commutation has failed.
[0079] In the above steps S4 and S6, the outputs of p.sub.0 and p.sub.1 are as shown in
[0080] Those skilled in the art can understand that all or parts of the steps in the method for implementing the above-mentioned embodiments may be completed by instructing relevant hardware through a program, and the corresponding program may be stored in a computer-readable storage medium.
[0081] It should be noted that although the method operations of the foregoing embodiments are described in a specific order in the figures, this does not require or imply that these operations must be performed in the specific order, or that all the operations shown must be performed to achieve the desired results. Conversely, the depicted steps can change the order of execution. Additionally or alternatively, some steps may be omitted, multiple steps may be combined into one step for execution, and/or one step may be decomposed into multiple steps for execution.
Embodiment 2
[0082] As shown in
[0083] The collecting module 801 is used to collect three-phase AC currents on a valve-side of a converter, a DC current on a high-voltage side and a DC current on a neutral terminal.
[0084] The selecting module 802 is used to select a minimum value of an absolute value of the three-phase AC currents on the valve-side as an AC characteristic quantity, and selecting a maximum value of the DC current on the high-voltage side and the DC current on the neutral terminal as a DC characteristic quantity.
[0085] The first constructing module 803 is used to construct a minimum characteristic quantity according to the AC characteristic quantity and the DC characteristic quantity.
[0086] The first comparing module 804 is used to compare the minimum characteristic quantity with a first preset threshold, and outputting a commutation judgment result.
[0087] The second constructing module 805 is used to construct a commutation time interval according to the commutation judgment result.
[0088] The second comparing module 806 is used to compare the commutation time interval with a second preset threshold and a third preset threshold, and outputting a commutation failure protection judgment result to determine whether a commutation failure occurs; wherein the third preset threshold is greater than the second preset threshold.
[0089] The specific implementation of each module in this embodiment can be found in the above Embodiment 1, which will not be repeated here. It should be noted that the system provided in this embodiment only uses the division of the above functional modules for illustration. In practice, the above-mentioned function allocation may be completed by different functional modules according to needs, that is, the internal structure is divided into different function modules to complete all or parts of the functions described above.
Embodiment 3
[0090] This embodiment provides a computer device, which is a computer. As shown in
[0091] collecting three-phase AC currents on a valve side of a converter, a DC current on a high-voltage side and a DC current on a neutral terminal;
[0092] selecting a minimum value of an absolute value of the three-phase AC currents on the valve side as an AC characteristic quantity, and selecting a maximum value of the DC current on the high-voltage side and the DC current on the neutral terminal as a DC characteristic quantity;
[0093] according to the AC characteristic quantity and the DC characteristic quantity, constructing a minimum characteristic quantity;
[0094] comparing the minimum characteristic quantity with a first preset threshold, and outputting a commutation judgment result;
[0095] according to the commutation judgment result, constructing a commutation time interval;
[0096] comparing the commutation time interval with a second preset threshold and a third preset threshold, and outputting a commutation failure protection judgment result to determine whether a commutation failure occurs; wherein the third preset threshold is greater than the second preset threshold.
Embodiment 4
[0097] This embodiment provides a storage medium, which is a computer-readable storage medium that stores a computer program, and when the computer program is executed by a processor, the commutation failure protection method of the above Embodiment 1 is implemented as follows:
[0098] collecting three-phase AC currents on a valve-side of a converter, a DC current on a high-voltage side and a DC current on a neutral terminal;
[0099] selecting a minimum value of an absolute value of the three-phase AC currents on the valve-side as an AC characteristic quantity, and selecting a maximum value of the DC current on the high-voltage side and the DC current on the neutral terminal as a DC characteristic quantity;
[0100] according to the AC characteristic quantity and the DC characteristic quantity, constructing a minimum characteristic quantity;
[0101] comparing the minimum characteristic quantity with a first preset threshold, and outputting a commutation judgment result;
[0102] according to the commutation judgment result, constructing a commutation time interval;
[0103] comparing the commutation time interval with a second preset threshold and a third preset threshold, and outputting a commutation failure protection judgment result to determine whether a commutation failure occurs; wherein the third preset threshold is greater than the second preset threshold.
[0104] The storage medium described in this embodiment may be a magnetic disk, an optical disk, a computer memory, a random access memory (RAM), a USB flash drive, a mobile hard disk, and other media.
[0105] In summary, the present invention collects three-phase AC currents on a valve-side of a converter, a DC current on a high-voltage side and a DC current on a neutral terminal, and selects a minimum value of an absolute value of the three-phase AC currents on the valve-side as an AC characteristic quantity, and selecting a maximum value of the DC current on the high-voltage side and the DC current on the neutral terminal as a DC characteristic quantity to construct a minimum characteristic quantity. By tracking a commutation process through the minimum characteristic quantity, a commutation judgment result is output, reflecting the commutation state of the converter valve in time, and constructing a commutation time interval, and realizing accurate, sensitive and quick commutation failure protection through the commutation time interval.
[0106] The above are only the preferred embodiments of the present invention patent, but the scope of protection of the present invention patent is not limited to this. Anything that does not deviate from the equivalent implementation or changes of the present invention patent using the relative relationship between AC and DC and the timing structure of commutation failure protection, including diagrams, formulas, preset thresholds etc., all belong to the scope of protection of the present invention patent.