Method and system for controlling primary frequency regulation contribution rate of thermal power units based on grid frequency changes

Through the feedforward + PID closed-loop control method, combined with multiple modules and switching modules, the problem of grid frequency instability caused by unreasonable primary frequency regulation parameter settings of thermal power units was solved, and accurate matching of grid frequency and safe and stable operation of thermal power units were achieved.

CN119341120BActive Publication Date: 2025-09-23XIAN THERMAL POWER RES INST CO LTD +1
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Patent Information

Application Number
CN202411446764.3
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-10-16
Publication Date
2025-09-23
Estimated Expiration
2044-10-16

AI Technical Summary

Technical Problem

The primary frequency regulation parameters of traditional thermal power units are set unreasonably, resulting in grid frequency oscillation or long-term unstable frequency fluctuations, making it difficult to achieve precise control with existing technologies.

Method used

Adopting the feedforward + PID closed-loop control method, combined with multiple modules and switching modules, the primary frequency regulation contribution rate of the thermal power unit is calculated according to the change of the grid frequency, so as to achieve rapid change of the thermal power unit power to match the grid frequency demand.

Benefits of technology

It achieves precise matching after grid frequency changes, improves the safety, stability and economy of thermal power unit operation, and enhances the stability of grid frequency.

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Patent Text Reader

Abstract

The present invention provides a method and system for controlling the primary frequency regulation contribution rate of a thermal power unit based on grid frequency changes. The system includes a first delay module, a first negation module, and a first and module. When the grid frequency exceeds the dead zone, the first delay module and the first negation module are connected in sequence. The output end of the first negation module and the grid frequency exceeding the dead zone are both connected to the first and module. The output end of the first and module is connected to the frequency regulation action. The method includes: when the grid frequency exceeding the dead zone signal is 1 and is within 60 seconds, a frequency regulation action signal is output; the deviation between the grid frequency and the reference is corrected by the first function module to obtain a theoretical frequency regulation instruction signal; when the frequency regulation action is 1, the power signal and the power instruction signal of the unit are judged to obtain a power change signal and an initial deviation signal; when the frequency regulation action is 1 and the delay is 9 seconds, the initial deviation signal is corrected respectively, and the theoretical frequency regulation instruction signal is judged respectively to obtain a reverse modulation correction signal. The present invention achieves the purpose of precise matching to meet the theoretical requirements of grid frequency changes.
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Description

Technical Field

[0001] The present invention belongs to the field of intelligent control of thermal power plants, and specifically relates to a method and system for accurately controlling the primary frequency regulation contribution rate of thermal power units based on grid frequency changes. Background Art

[0002] With the recent influx of renewable energy sources like wind and photovoltaic power into the power grid, the effective contribution of traditional thermal power units to primary frequency regulation has become increasingly crucial for maintaining grid frequency stability. Regulations require that the ratio of a thermal power unit's actual primary frequency regulation contribution to its theoretical contribution calculated from grid frequency deviation (the effective contribution ratio) be within a certain range, neither too low nor too high. This eliminates grid frequency dead zones, preventing grid frequency oscillations or prolonged fluctuations caused by improper primary frequency regulation parameter settings. Summary of the Invention

[0003] The purpose of the present invention is to provide a method and system for accurately controlling the primary frequency regulation contribution rate of thermal power units based on grid frequency changes. The present invention adopts a feedforward + PID closed-loop control method to achieve rapid changes in the power of thermal power units after grid frequency changes, thereby achieving the purpose of accurate matching to meet the theoretical requirements of grid frequency changes.

[0004] In order to achieve the above object, the present invention adopts the following technical solutions:

[0005] A system for controlling the primary frequency regulation contribution rate of a thermal power unit based on grid frequency changes includes a first delay module, a first negation module, and a first and module;

[0006] The network frequency dead zone is connected to the first delay module and the first non-module in sequence, the output end of the first non-module and the network frequency dead zone are both connected to the first AND module, and the output end of the first AND module is connected to the frequency modulation action.

[0007] A further improvement of the present invention is that it further comprises a first function module, the network frequency and the reference deviation are connected to the first function module, and the output end of the first function module is connected to the theoretical frequency modulation instruction.

[0008] A further improvement of the present invention is that it further includes a dynamic averaging module, a first switching module, a second switching module, a third switching module, a first comparator module and a second comparator module;

[0009] The unit power is respectively connected to the dynamic averaging module, the N-end of the second switching module, the dynamic averaging module, and the first comparator module. The dynamic averaging module is connected to the N-end of the first switching module, the output end of the first switching module is connected to the Y-end of a switching module, and the frequency modulation action is connected to the trigger end of the first switching module; the output end of the first switching module is connected to the Y-end of the second switching module, and the frequency modulation action is connected to the trigger end of the second switching module; the output end of the second switching module is connected to the first comparator module, and the output end of the first comparator module is connected to the power change; the power instruction is connected to the N-end of the third switching module, the output end of the third switching module is connected to the Y-end of the third switching module, the frequency modulation action is connected to the trigger end of the frequency modulation action, the output end of the third switching module and the output end of the second switching module are both connected to the second comparator module, and the output end of the second comparator module is connected to the initial deviation.

[0010] A further improvement of the present invention is that it further includes a second function module, a third function module, a first greater than module, a first less than module, a second delay module, a fourth switching module, a fifth switching module, a sixth switching module and a first constant 0 module;

[0011] The first constant 0 module is respectively connected to the N-end of the fourth switching module and the N-end of the sixth switching module, the initial deviation is respectively connected to the second function module and the third function module, the theoretical frequency modulation instruction is connected to the first greater than module, the output end of the first greater than module is connected to the trigger end of the fourth switching module, and the output end of the second function module is connected to the Y-end of the fourth switching module; the output end of the fourth switching module is connected to the N-end of the fifth switching module, the output end of the third function module is connected to the Y-end of the fifth switching module, the theoretical frequency modulation instruction is connected to the trigger end of the first less than module and the fifth switching module in sequence; the output end of the fifth switching module is connected to the Y-end of the sixth switching module, and the frequency modulation action is connected to the trigger end of the second delay module and the sixth switching module in sequence; the output end of the sixth switching module is connected to the anti-modulation correction.

[0012] A further improvement of the present invention is that it further includes a second constant 0 module, a third constant 0 module, a seventh switching module, a first adding module, an eighth switching module, a first dividing module, a first constant 1 module, a ninth switching module, a tenth switching module, a second adding module, an eleventh switching module and a third delay module;

[0013] The second constant 0 module is connected to the N-terminal of the seventh switching module and the N-terminal of the eighth switching module respectively, the power change amount is connected to the Y-terminal of the seventh switching module, and the frequency modulation action is connected to the trigger terminal of the third delay module and the seventh switching module in sequence; the output terminal of the eighth switching module and the output terminal of the seventh switching module are both connected to the first adding module, and the output terminal of the first adding module is connected to the Y-terminal of the eighth switching module; the output terminal of the third delay module is connected to the trigger terminal of the tenth switching module and the trigger terminal of the ninth switching module respectively, the third constant 0 module is connected to the N-terminal of the tenth switching module and the N-terminal of the eleventh switching module respectively, and the theoretical frequency modulation instruction is connected to the Y-terminal of the tenth switching module; the output terminal of the tenth switching module and the output terminal of the eleventh switching module are both connected to the second adding module, and the output terminal of the second adding module is connected to the Y-terminal of the eleventh switching module; the output terminal of the eleventh switching module is connected to the Y-terminal of the ninth switching module, and the first constant 1 module is connected to the trigger terminal of the ninth switching module; the output terminal of the eighth switching module and the output terminal of the ninth switching module are both connected to the first dividing module, and the output terminal of the first dividing module is connected to the quality.

[0014] A further improvement of the present invention is that it further includes a fourth constant 0 module, a fourth function module, a fifth function module, a first PID module, a second PID module, a twelfth switching module, a thirteenth switching module, a fourteenth switching module, a second greater than module, a second less than module and a fourth delay module

[0015] The fourth constant 0 module is respectively connected to the N-end of the twelfth switching module and the N-end of the fourteenth switching module, the quality is sequentially connected to the fourth function module, the first PID module, and the Y-end of the twelfth switching module, and the theoretical frequency modulation instruction is sequentially connected to the second greater than module and the trigger end of the twelfth switching module; the twelfth switching module is connected to the N-end of the thirteenth switching module, the quality is sequentially connected to the fifth function module, the second PID module, and the Y-end of the thirteenth switching module; the thirteenth switching module is connected to the Y-end of the fourteenth switching module, and the frequency modulation action is sequentially connected to the fourth delay module and the trigger end of the fourteenth switching module; the output end of the fourteenth switching module is connected to the quality correction.

[0016] A further improvement of the present invention is that it also includes a third adding module; the theoretical frequency modulation instruction, the anti-modulation correction and the quality correction are all connected to the third adding module, and the output end of the third adding module corrects the frequency modulation instruction.

[0017] A method for controlling the primary frequency regulation contribution rate of a thermal power generation unit based on a grid frequency change, the method being based on the aforementioned system for controlling the primary frequency regulation contribution rate of a thermal power generation unit based on a grid frequency change, comprising:

[0018] When the network frequency dead zone signal is 1 and meets the requirements within 60 seconds, the frequency modulation action signal is output;

[0019] The deviation between the grid frequency and the reference is corrected by the first function module to obtain the theoretical frequency modulation command signal;

[0020] When the frequency modulation action is 1, the unit power signal and the power command signal are judged by the dynamic averaging module, the first switching module, the second switching module, the third switching module, the first comparator module, and the second comparator module respectively to obtain the power change signal and the initial deviation signal;

[0021] When the frequency modulation action is 1 and the delay is 9 seconds, the initial deviation signal is corrected by the second function module and the third function module respectively, and the theoretical frequency modulation instruction signal is judged by the first greater than module and the first less than module respectively, and finally after the judgment of the fourth switching module, the fifth switching module and the sixth switching module, the anti-modulation correction signal is obtained.

[0022] A further improvement of the present invention is that when the frequency modulation action is 1 and the delay is 0.5 seconds, the power change passes through the seventh switching module, the first adding module, and the eighth switching module respectively, and the theoretical frequency modulation instruction passes through the tenth switching module, the second adding module, the eleventh switching module, and the ninth switching module respectively. The calculated power variable output by the eighth switching module and the calculated theoretical frequency modulation instruction output by the ninth switching module are divided by the first division module to finally obtain the quality.

[0023] A further improvement of the present invention is that when the frequency modulation action is 1 and the delay is 9 seconds, and the theoretical frequency modulation instruction satisfies the function setting of greater than 0.5 in the second greater than module; the quality signal passes through the second greater than module, the first PID module, and the twelfth switching module in sequence, and the quality signal passes through the fifth function module, the second PID module, and the thirteenth switching module in sequence; finally, after calculation by the fourteenth switching module, the quality correction is obtained;

[0024] The theoretical frequency modulation command signal, the anti-modulation correction signal, and the quality correction signal are all added together by the third adding module to obtain the corrected frequency modulation command.

[0025] Compared with the prior art, the present invention has at least the following beneficial technical effects:

[0026] The present invention provides a method and system for accurately controlling the primary frequency regulation contribution rate of thermal power units based on grid frequency changes. The method adopts a feedforward + PID closed-loop control method to achieve rapid power changes of thermal power units after grid frequency changes, thereby achieving the purpose of accurate matching to meet the theoretical requirements of grid frequency changes.

[0027] The present invention provides a method and system for precisely controlling the primary frequency regulation contribution rate of a thermal power unit based on grid frequency fluctuations. After the grid frequency changes outside the dead zone, the method locks the current actual power output and calculates the actual integrated power based on the deviation between the actual power output and the locked current actual power output. The unit's primary frequency regulation contribution rate is then calculated in real time based on the ratio of the theoretical integrated power rate calculated from the grid frequency fluctuation. The unit's primary frequency regulation load command is dynamically adjusted based on a preset contribution rate range, thereby ensuring that the unit's actual power integrated power meets the effective contribution rate range required by the grid.

[0028] In summary, the method and system described in the present invention for accurately controlling the primary frequency regulation contribution rate of a thermal power unit based on grid frequency changes take into account the safety, stability, and efficiency of the unit under different operating conditions, and play an important role in improving the operating reliability and economy of the entire unit. BRIEF DESCRIPTION OF THE DRAWINGS

[0029] Figures 1 to 7 They are the control principle diagrams of the system for accurately controlling the primary frequency regulation contribution rate of thermal power units based on grid frequency changes.

[0030] Figure 8 This is a rendering of an embodiment of the present invention. DETAILED DESCRIPTION

[0031] Hereinafter, only certain exemplary embodiments are briefly described. As will be appreciated by those skilled in the art, the described embodiments may be modified in various ways without departing from the spirit or scope of the present invention. Therefore, the drawings and description are to be considered as illustrative in nature and not restrictive.

[0032] It will be understood that when used in this specification and the appended claims, the terms “comprises” and “comprising” indicate the presence of described features, integers, steps, operations, elements and / or components, but do not preclude the presence or addition of one or more other features, integers, steps, operations, elements, components and / or groups thereof.

[0033] It should also be understood that the terms used in the present specification are only for the purpose of describing particular embodiments and are not intended to limit the present invention. As used in the present specification and the appended claims, the singular forms "a", "an", and "the" are intended to include the plural forms unless the context clearly indicates otherwise.

[0034] It should be further understood that the term "and / or" used in the present description and the appended claims refers to and includes any and all possible combinations of one or more of the associated listed items.

[0035] The accompanying drawings illustrate various schematic diagrams of structures according to embodiments disclosed herein. These figures are not drawn to scale; for clarity, some details are exaggerated and some details may be omitted. The shapes of the various regions and layers shown in the figures, as well as their relative sizes and positional relationships, are merely exemplary and may deviate in practice due to manufacturing tolerances or technical limitations. Those skilled in the art may design regions / layers with different shapes, sizes, and relative positions as needed.

[0036] The embodiments of the present invention are described in detail below with reference to the accompanying drawings.

[0037] Example 1

[0038] A control strategy is designed to accurately control the primary frequency regulation contribution rate of thermal power units based on grid frequency changes. The feedforward + PID closed-loop control method is adopted to achieve rapid changes in the power of thermal power units after grid frequency changes, thereby achieving the purpose of accurately matching the theoretical requirements of grid frequency changes.

[0039] Figures 1 to 7 They are respectively the control principle diagrams for accurately controlling the primary frequency regulation contribution rate of thermal power units based on the changes in grid frequency.

[0040] It specifically includes: network frequency dead zone 001, network frequency and reference deviation 002, unit power 003, frequency modulation action 004, power instruction 005, initial deviation 006, theoretical frequency modulation instruction 007, power change 008, quality 009, reverse modulation correction 010, quality correction 011, corrected frequency modulation instruction 012, first delay module 013, first negation module 014, first and module 015, first function module 016, dynamic average module 017, first switching module 018, second switching module 019, third switching module 020, first comparator module 021, second comparator module 022, second function module 023, third function module 024, first greater than module 025, first less than module 026, second delay module 027, fourth switching module 028, fifth switching module Block 029, sixth switching module 030, first constant 0 module 031, second constant 0 module 032, third constant 0 module 033, fourth constant 0 module 034, seventh switching module 035, first adding module 036, eighth switching module 037, first dividing module 038, first constant 1 module 039, ninth switching module 040, tenth switching module 041, second adding module 042, eleventh switching module 043, third delay module 044, fourth function module 045, fifth function module 046, first PID module 047, second PID module 048, twelfth switching module 049, thirteenth switching module 050, fourteenth switching module 051, second greater than module 052, second less than module 053, fourth delay module 054, third adding module 055.

[0041] Figures 1 to 4 The control strategy logic diagram includes:

[0042] The network frequency dead zone 001 is connected to the first delay module 013 and the first non-module 014 in sequence. The output end of the first non-module 014 and the network frequency dead zone 001 are both connected to the first AND module 015. The output end of the first AND module 015 is connected to the frequency modulation action 004.

[0043] The grid frequency and reference deviation 002 are connected to the first function module 016 , and the output end of the first function module 016 is connected to the theoretical frequency modulation instruction 007 .

[0044] The unit power 003 is respectively connected to the dynamic average module 017, the N end of the second switching module 019, the dynamic average module 017, and the first comparator module 021. The dynamic average module 017 is connected to the N end of the first switching module 018. The output end of the first switching module 018 is connected to the Y end of the first switching module 018. The frequency modulation action 004 is connected to the trigger end of the first switching module 018; the output end of the first switching module 018 is connected to the Y end of the second switching module 019, and the frequency modulation action 004 is connected to the trigger end of the second switching module 019; the second switching The output end of module 019 is connected to the first comparator module 021, and the output end of the first comparator module 021 is connected to the power change 008; the power instruction 005 is connected to the N end of the third switching module 020, and the output end of the third switching module 020 is connected to the Y end of the third switching module 020. The frequency modulation action 004 is connected to the trigger end of the frequency modulation action 004. The output end of the third switching module 020 and the output end of the second switching module 019 are both connected to the second comparator module 022, and the output end of the second comparator module 022 is connected to the initial deviation 006.

[0045] The first constant 0 module 031 is respectively connected to the N end of the fourth switching module 028 and the N end of the sixth switching module 030, the initial deviation 006 is respectively connected to the second function module 023 and the third function module 024, the theoretical frequency modulation instruction 007 is connected to the first greater than module 025, the output end of the first greater than module 025 is connected to the trigger end of the fourth switching module 028, the output end of the second function module 023 is connected to the Y end of the fourth switching module 028; the output end of the fourth switching module 028 is connected to the N end of the fifth switching module 029, the output end of the third function module 024 is connected to the Y end of the fifth switching module 029, the theoretical frequency modulation instruction 007 is connected to the trigger ends of the first less than module 026 and the fifth switching module 029 in sequence; the output end of the fifth switching module 029 is connected to the Y end of the sixth switching module 030, the frequency modulation action 004 is sequentially connected to the trigger ends of the second delay module 027 and the sixth switching module 030; the output end of the sixth switching module 030 is connected to the anti-modulation correction 010.

[0046] Figures 5 to 7 The control strategy logic diagram includes:

[0047] The second constant 0 module 032 is connected to the N end of the seventh switching module 035 and the N end of the eighth switching module 037 respectively, the power change amount 008 is connected to the Y end of the seventh switching module 035, and the frequency modulation action 004 is connected to the third delay module 044 and the trigger end of the seventh switching module 035 in sequence; the output end of the eighth switching module 037 and the output end of the seventh switching module 035 are both connected to the first adding module 036, and the output end of the first adding module 036 is connected to the Y end of the eighth switching module 037; the output end of the third delay module 044 is connected to the trigger end of the tenth switching module 041 and the trigger end of the ninth switching module 040 respectively, and the third constant 0 module 033 is connected to the trigger end of the tenth switching module 041, the N end of the eleventh switching module 043, and the theoretical frequency modulation instruction 007 are connected to the Y end of the tenth switching module 041; the output end of the tenth switching module 041 and the output end of the eleventh switching module 043 are both connected to the second adding module 042, and the output end of the second adding module 042 is connected to the Y end of the eleventh switching module 043; the output end of the eleventh switching module 043 is connected to the Y end of the ninth switching module 040, and the first constant 1 module 039 is connected to the trigger end of the ninth switching module 040; the output end of the eighth switching module 037 and the output end of the ninth switching module 040 are both connected to the first dividing module 038, and the output end of the first dividing module 038 is connected to the quality 009.

[0048] The fourth constant 0 module 034 is respectively connected to the N end of the twelfth switching module 049 and the N end of the fourteenth switching module 051, the quality 009 is sequentially connected to the fourth function module 045, the first PID module 047, and the Y end of the twelfth switching module 049, and the theoretical frequency modulation instruction 007 is sequentially connected to the second greater than module 052 and the trigger end of the twelfth switching module 049; the twelfth switching module 049 is connected to the N end of the thirteenth switching module 050, the quality 009 is sequentially connected to the fifth function module 046, the second PID module 048, and the Y end of the thirteenth switching module 050; the thirteenth switching module 050 is connected to the Y end of the fourteenth switching module 051, the frequency modulation action 004 is sequentially connected to the fourth delay module 054 and the trigger end of the fourteenth switching module 051; the output end of the fourteenth switching module 051 is connected to the quality correction 011.

[0049] The theoretical frequency modulation instruction 007 , the anti-modulation correction 010 , and the quality correction 011 are all connected to the third adding module 055 , and the output end of the third adding module 055 is the corrected frequency modulation instruction 012 .

[0050] Example 2

[0051] The present invention provides a method for controlling the primary frequency regulation contribution rate of a thermal power unit based on grid frequency changes, comprising:

[0052] Figures 1 to 4 The control modes are as follows:

[0053] 1) When the network frequency passes the dead zone 001 signal and is 1 within 60 seconds, the frequency modulation action 004 signal is output;

[0054] 2) The deviation 002 between the network frequency and the reference frequency is corrected by the first function module 016 to obtain the theoretical frequency modulation instruction 007 signal;

[0055] 3) When the frequency modulation action 004 is 1, the unit power 003 signal and the power instruction 005 signal are respectively judged by the dynamic averaging module 017, the first switching module 018, the second switching module 019, the third switching module 020, the first comparator module 021, and the second comparator module 022 to obtain the power change 008 signal and the initial deviation 006 signal;

[0056] 4) When the frequency modulation action 004 is 1 and the delay is 9 seconds, the initial deviation 006 signal is corrected by the second function module 023 and the third function module 024 respectively, and the theoretical frequency modulation instruction 007 signal is judged by the first greater than module 025 and the first less than module 026 respectively. Finally, after the judgment by the fourth switching module 028, the fifth switching module 029 and the sixth switching module 030, the anti-modulation correction 010 signal is obtained.

[0057] Figures 5 to 7 The control modes are as follows:

[0058] 1) When the frequency modulation action 004 is 1 and the delay is 0.5 seconds, the power change 008 passes through the seventh switching module 035, the first adding module 036, and the eighth switching module 037 respectively. The theoretical frequency modulation instruction 007 passes through the tenth switching module 041, the second adding module 042, the eleventh switching module 043, and the ninth switching module 040 respectively. The calculated power variable output by the eighth switching module 037 and the calculated theoretical frequency modulation instruction output by the ninth switching module 040 are divided by the first dividing module 038 to finally obtain the quality 009.

[0059] 2) When the frequency modulation action 004 is 1 and the delay is 9 seconds, and the theoretical frequency modulation instruction 007 satisfies the function setting of being greater than 0.5 in the second greater than module 052; then the quality 009 signal passes through the second greater than module 052, the first PID module 047, and the twelfth switching module 049 in sequence. At the same time, the quality 009 signal passes through the fifth function module 046, the second PID module 048, and the thirteenth switching module 050 in sequence; finally, after calculation by the fourteenth switching module 051, the quality correction 011 is obtained.

[0060] 3) The theoretical frequency modulation instruction 007 signal, the anti-modulation correction signal 010, and the quality correction signal 011 are all added together by the third adding module 055 to obtain the corrected frequency modulation instruction 012.

[0061] Example 3

[0062] After the implementation and application of the technology of the present invention, the primary frequency regulation curve is shown in the figure below, where 1 is the load instruction 1; 2 is the generator power; 3 is the frequency regulation instruction; 4 is the real-time frequency regulation response quality; 5 is the primary frequency regulation action, and the unit power continuously changes to meet the precise matching purpose of the theoretical requirements of the grid frequency change, thereby realizing precise control of the primary frequency regulation.

[0063] The above shows and describes the basic principles and main features of the present invention and the advantages of the present invention. It is obvious to those skilled in the art that the present invention is not limited to the details of the above exemplary embodiments, and that the present invention can be implemented in other specific forms without departing from the spirit or essential characteristics of the present invention. Therefore, from all points of view, the embodiments should be regarded as illustrative and non-restrictive. The scope of the present invention is defined by the appended claims rather than the above description, and it is intended that all changes that fall within the meaning and range of equivalents of the claims are included in the present invention. Any reference signs in the claims should not be construed as limiting the claim to which they relate.

[0064] In addition, it should be understood that although this specification describes the embodiments, not every embodiment contains only one independent technical solution. This description is for clarity only. Those skilled in the art should consider the specification as a whole. The technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art. The above content is only for the purpose of illustrating the technical concept of the present invention and cannot be used to limit the scope of protection of the present invention. Any changes made based on the technical solution in accordance with the technical concept proposed by the present invention fall within the scope of protection of the claims of the present invention.

Claims

1. A method for controlling the primary frequency regulation contribution rate of thermal power units based on grid frequency changes, characterized in that: include: When the network frequency passes the dead zone (001) signal and is 1 and is within 60 seconds, the frequency modulation action (004) signal is output; The network frequency and the reference deviation (002) are corrected by the first function module (016) to obtain the theoretical frequency modulation instruction (007) signal; When the frequency modulation action (004) is 1, the unit power (003) signal and the power instruction (005) signal are judged by the dynamic averaging module (017), the first switching module (018), the second switching module (019), the third switching module (020), the first comparator module (021), and the second comparator module (022), and the power change (008) signal and the initial deviation (006) signal are obtained; When the frequency modulation action (004) is 1 and the delay is 9 seconds, the initial deviation (006) signal is corrected by the second function module (023) and the third function module (024), respectively, and the theoretical frequency modulation instruction (007) signal is judged by the first greater than module (025) and the first less than module (026), respectively, and finally, after being judged by the fourth switching module (028), the fifth switching module (029) and the sixth switching module (030), the anti-modulation correction (010) signal is obtained; When the frequency modulation action (004) is 1 and the delay is 0.5 seconds, the power change (008) passes through the seventh switching module (035), the first adding module (036), and the eighth switching module (037), the theoretical frequency modulation instruction (007) passes through the tenth switching module (041), the second adding module (042), the eleventh switching module (043), and the ninth switching module (040), the calculated power change output by the eighth switching module (037) and the calculated frequency modulation instruction output by the ninth switching module (040) are divided by the first dividing module (038), and finally the quality (009) is obtained; When the frequency modulation action (004) is 1 and the delay is 9 seconds, and the theoretical frequency modulation instruction (007) satisfies the function setting of being greater than 0.5 in the second greater than module (052); the quality (009) signal passes through the fourth function module (045), the first PID module (047), and the twelfth switching module (049) in sequence, and the quality (009) signal passes through the fifth function module (046), the second PID module (048), and the thirteenth switching module (050) in sequence; finally, after calculation by the fourteenth switching module (051), the quality correction (011) is obtained; The theoretical frequency modulation instruction (007) signal, the anti-modulation correction (010) signal, and the quality correction (011) signal are all added together by the third adding module (055), and finally the corrected frequency modulation instruction (012) is obtained.

2. A system for controlling the primary frequency regulation contribution rate of thermal power units based on grid frequency changes, characterized in that: The system is based on the method for controlling the primary frequency regulation contribution rate of thermal power generation units based on grid frequency changes as described in claim 1, and the system comprises a first delay module (013), a first negation module (014) and a first and module (015); The network frequency dead zone (001) is connected to the first delay module (013) and the first non-module (014) in sequence, the output end of the first non-module (014) and the network frequency dead zone (001) are both connected to the first AND module (015), and the output end of the first AND module (015) is connected to the frequency modulation action (004).

3. The system for controlling the primary frequency regulation contribution rate of thermal power generation units based on grid frequency changes according to claim 2 is characterized in that: It also includes a first function module (016), the network frequency and the reference deviation (002) are connected to the first function module (016), and the output end of the first function module (016) is connected to the theoretical frequency modulation instruction (007).

4. The system for controlling the primary frequency regulation contribution rate of thermal power generation units based on grid frequency changes according to claim 3 is characterized in that: It also includes a dynamic averaging module (017), a first switching module (018), a second switching module (019), a third switching module (020), a first comparator module (021), and a second comparator module (022); The unit power (003) is respectively connected to the dynamic averaging module (017), the N end of the second switching module (019) and the first comparator module (021); the dynamic averaging module (017) is connected to the N end of the first switching module (018); the output end of the first switching module (018) is connected to the Y end of the first switching module (018); the frequency modulation action (004) is connected to the trigger end of the first switching module (018); the output end of the first switching module (018) is connected to the Y end of the second switching module (019); the frequency modulation action (004) is connected to the trigger end of the second switching module (019); the second switching module (019) The output end of the first comparator module (021) is connected to the power change amount (008); the power instruction (005) is connected to the N end of the third switching module (020); the output end of the third switching module (020) is connected to the Y end of the third switching module (020); the frequency modulation action (004) is connected to the trigger end of the third switching module (020); the output end of the third switching module (020) and the output end of the second switching module (019) are both connected to the second comparator module (022); and the output end of the second comparator module (022) is connected to the initial deviation (006).

5. The system for controlling the primary frequency regulation contribution rate of thermal power generation units based on grid frequency changes according to claim 4 is characterized in that: It also includes a second function module (023), a third function module (024), a first greater than module (025), a first less than module (026), a second delay module (027), a fourth switching module (028), a fifth switching module (029), a sixth switching module (030) and a first constant 0 module (031); The first constant 0 module (031) is connected to the N end of the fourth switching module (028) and the N end of the sixth switching module (030), respectively; the initial deviation (006) is connected to the second function module (023) and the third function module (024), respectively; the theoretical frequency modulation instruction (007) is connected to the first greater than module (025); the output end of the first greater than module (025) is connected to the trigger end of the fourth switching module (028); the output end of the second function module (023) is connected to the Y end of the fourth switching module (028); the output end of the fourth switching module (028) is connected To the N end of the fifth switching module (029), the output end of the third function module (024) is connected to the Y end of the fifth switching module (029), the theoretical frequency modulation instruction (007) is connected in sequence to the first less than module (026) and the trigger end of the fifth switching module (029); the output end of the fifth switching module (029) is connected to the Y end of the sixth switching module (030), the frequency modulation action (004) is connected in sequence to the second delay module (027) and the trigger end of the sixth switching module (030); the output end of the sixth switching module (030) is connected to the anti-modulation correction (010).

6. The system for controlling the primary frequency regulation contribution rate of thermal power generation units based on grid frequency changes according to claim 5, characterized in that: It also includes a second constant 0 module (032), a third constant 0 module (033), a seventh switching module (035), a first adding module (036), an eighth switching module (037), a first dividing module (038), a first constant 1 module (039), a ninth switching module (040), a tenth switching module (041), a second adding module (042), an eleventh switching module (043) and a third delay module (044); The second constant 0 module (032) is connected to the N end of the seventh switching module (035) and the N end of the eighth switching module (037), respectively; the power change amount (008) is connected to the Y end of the seventh switching module (035); the frequency modulation action (004) is connected to the third delay module (044) and the trigger end of the seventh switching module (035) in sequence; the output end of the eighth switching module (037) and the output end of the seventh switching module (035) are both connected to the first adding module (036), and the output end of the first adding module (036) is connected to the Y end of the eighth switching module (037); the output end of the third delay module (044) is connected to the trigger end of the tenth switching module (041) and the trigger end of the ninth switching module (040), respectively; the third constant 0 module (033) is connected to the trigger end of the tenth switching module (041) and the trigger end of the ninth switching module (040), respectively. (041) and the N end of the eleventh switching module (043), the theoretical frequency modulation instruction (007) is connected to the Y end of the tenth switching module (041); the output end of the tenth switching module (041) and the output end of the eleventh switching module (043) are both connected to the second adding module (042), and the output end of the second adding module (042) is connected to the Y end of the eleventh switching module (043); the output end of the eleventh switching module (043) is connected to the Y end of the ninth switching module (040), and the first constant 1 module (039) is connected to the N end of the ninth switching module (040); the output end of the eighth switching module (037) and the output end of the ninth switching module (040) are both connected to the first dividing module (038), and the output end of the first dividing module (038) is connected to the quality (009).

7. The system for controlling the primary frequency regulation contribution rate of thermal power generation units based on grid frequency changes according to claim 6, characterized in that: It also includes a fourth constant 0 module (034), a fourth function module (045), a fifth function module (046), a first PID module (047), a second PID module (048), a twelfth switching module (049), a thirteenth switching module (050), a fourteenth switching module (051), a second greater than module (052), a second less than module (053) and a fourth delay module (054). The fourth constant 0 module (034) is connected to the N end of the twelfth switching module (049) and the N end of the fourteenth switching module (051) respectively, the quality (009) is connected to the fourth function module (045), the first PID module (047), and the Y end of the twelfth switching module (049) in sequence, the theoretical frequency modulation instruction (007) is connected to the second greater than module (052) and the trigger end of the twelfth switching module (049) in sequence; the output end of the twelfth switching module (049) is connected to the N end of the thirteenth switching module (050), the quality (009) is connected to the fifth function module (046), the second PID module (048), and the Y end of the thirteenth switching module (050) in sequence; the output end of the thirteenth switching module (050) is connected to the Y end of the fourteenth switching module (051), the frequency modulation action (004) is connected to the fourth delay module (054) and the trigger end of the fourteenth switching module (051) in sequence; the output end of the fourteenth switching module (051) is connected to the quality correction (011).

8. The system for controlling the primary frequency regulation contribution rate of thermal power generation units based on grid frequency changes according to claim 7, characterized in that: The invention also includes a third adding module (055); the theoretical frequency modulation instruction (007), the anti-modulation correction (010) and the quality correction (011) are all connected to the third adding module (055); the output end of the third adding module (055) is the corrected frequency modulation instruction (012).

Citation Information

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