A decoupling control method and device for a doubly-fed wind turbine based on dynamic feedforward compensation
Through the decoupling control method of dynamic feedforward compensation, the power grid information is collected in real time and the adaptive compensation ring is activated, which solves the power coupling problem of the double-feed fan under the weak grid, and improves the frequency voltage stability and control performance of the system.
Patent Information
- Application Number
- CN202411990927.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-31
- Publication Date
- 2025-09-05
- Estimated Expiration
- 2044-12-31
AI Technical Summary
Under weak grid conditions, the phase-locked loop of the double-feed fan leads to insufficient power coupling characteristics, affecting the dynamic performance of the converter control, resulting in unstable frequency voltage, and increasing the risk of system collapse.
The double-feed fan decoupling control method with dynamic feedforward compensation is adopted to collect the grid frequency and grid connection point voltage information in real time, start the active and reactive compensation rings, and adjust adaptively according to the severity of the load accident to achieve frequency and voltage decoupling.
Effectively reduce the power coupling rate, improve frequency voltage stability, improve the control capability of the double-feed fan under the weak grid, reduce system noise and current overcurrent, and enhance voltage regulation capability.
Smart Images

Figure CN119834386B_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the technical field of wind power generation, and more specifically, relates to a decoupling control method and device for a doubly-fed wind turbine based on dynamic feedforward compensation. Background Art
[0002] The current power system is trending towards a high proportion of renewable energy integration, with wind power generation systems, primarily doubly-fed wind turbines, experiencing rapid growth. Existing onshore wind farms are primarily located in areas with abundant wind resources, such as the Three Norths region, and are often located far from load centers. Furthermore, large-scale wind power is typically connected to the grid after boosting, resulting in high grid impedance and a low short-circuit ratio in the AC system connected to it. This creates a scenario where wind power is connected to a weak grid, increasing the risk of system frequency and voltage instability. Compared to synchronous generator synchronization, grid-following control of doubly-fed wind turbines often uses phase-locked loop (PLL) feedback to obtain the amplitude, frequency, and phase of the grid voltage to achieve synchronization with the grid. Current research on the power coupling characteristics and decoupling strategies caused by the phase-locked loop (PLL) in doubly-fed wind turbines is limited, primarily focusing on the impact of the PLL on system stability.
[0003] However, under weak grid conditions, grid-following control has dynamic errors in voltage orientation, which ultimately leads to the mutual coupling of active power and reactive power, thereby affecting the dynamic performance of converter control and worsening the system's active and reactive power shortages. This further causes mutual influence between frequency regulation and voltage regulation. At the same time, in cases of sudden changes in system power flow, frequency and voltage fluctuations increase, increasing the risk of system collapse. Summary of the Invention
[0004] In response to the above defects or improvement needs of the prior art, the present invention provides a decoupling control method and device for a doubly fed wind turbine based on dynamic feedforward compensation. Its purpose is to solve the problem of insufficient power decoupling when the doubly fed wind turbine is connected to a weak power grid due to inaccurate tracking of the voltage phase of the phase-locked loop at the grid connection point, which in turn causes frequency and voltage stability problems.
[0005] To achieve the above object, according to one aspect of the present invention, a decoupling control method for a doubly-fed wind turbine based on dynamic feedforward compensation is provided, comprising:
[0006] In the scenario where the doubly-fed wind turbine is connected to a weak AC grid and adopts grid-following control, real-time collection of grid frequency information and grid connection point voltage information; the grid frequency information includes: grid frequency deviation and grid frequency change rate per unit time; the grid connection point voltage information includes: grid connection point voltage deviation and grid connection point voltage change rate per unit time;
[0007] When the grid frequency deviation and the grid frequency change rate per unit time both exceed their respective corresponding first preset thresholds, the active power compensation loop based on dynamic feedforward is started; when the grid connection point voltage deviation and the grid connection point voltage change rate per unit time both exceed their respective corresponding second preset thresholds and the grid frequency deviation and the grid frequency change rate per unit time do not exceed their respective corresponding first preset thresholds, the reactive power compensation loop based on dynamic feedforward is started;
[0008] Wherein, the active power compensation loop and the reactive power compensation loop are both adaptively adjusted according to the severity of the power grid load accident;
[0009] When the grid frequency reaches the lowest point and the corresponding grid frequency change rate is equal to 0, all currently started compensation loops are closed.
[0010] In one embodiment, the active coupling value P in the active compensation loop based on dynamic feedforward is com Expressed as: Among them, P s is the real-time changing active power, Q s is the reactive power that changes in real time, K Qδ is the coefficient of the relationship between reactive power and voltage phase angle, ΔQ is the reactive power output of the wind turbine, v0 is the initial voltage value, K QU is the relationship coefficient between reactive power and voltage amplitude.
[0011] In one embodiment, the active coupling value P in the active compensation loop based on dynamic feedforward is com Expressed as: Among them, P s is the real-time changing active power, ΔQ is the reactive power output by the wind turbine, v0 is the initial voltage value, K QU is the relationship coefficient between reactive power and voltage amplitude.
[0012] In one embodiment, the reactive coupling value Q in the reactive compensation loop based on dynamic feedforward is com Expressed as: Among them, P s is the real-time changing active power, Q s is the reactive power K that changes in real time Pδ is the relationship coefficient between active power and voltage phase angle, ΔP is the active power output of the wind turbine, v0 is the initial voltage value, K PU is the relationship coefficient between reactive power and voltage amplitude.
[0013] In one embodiment, the reactive coupling value Q in the reactive compensation loop based on dynamic feedforward is com Expressed as: Q com =P s K PδΔP; where ΔP is the active power output of the fan, K Pδ is the relationship coefficient between active power and voltage phase angle.
[0014] In one embodiment, the parameters in the active power compensation loop of the dynamic feedforward are Among them, k P_QU is the P value of the active compensation loop PI controller, k P_QU,initial is the fault time k P_QU The initial value of k P_QU,initial =k p_fixed +k p,L0 ×(k P_QU,max -k p_fixed ), k P_QU,max is the maximum value after small signal stability analysis, k p_fixed is the fixed part of the adaptive active power accident variation coefficient, k p,L k is the active power accident severity measurement coefficient p,L =F p / F p-max , k p,L0 k p,L The initial value of F p Used to measure the average frequency deviation within each Δt period, F p-max The maximum frequency deviation caused by the most severe load reactive change.
[0015] In one embodiment, the parameters in the dynamic feedforward reactive compensation loop are Among them, k P_Pδ is the P value of the reactive compensation loop PI controller, k P_Pδ,initial is the fault time k P_Pδ The initial value of k P_Pδ,max is the maximum value after small signal stability analysis, k P_Pδ,initial =k q_fixed +k q,L0 ×(k P_Pδ,max -k q_fixed ), k q_fixed is the fixed part of the adaptive reactive accident variation coefficient, k q,L k is the coefficient for measuring the severity of reactive accidents q,L =F q / F q,max , k q,L0 k q,L The initial value of F q Used to measure the average voltage deviation within each Δt period, F q,max The maximum voltage deviation caused by the most severe load reactive change.
[0016] In one embodiment, the method further includes: after closing all currently activated compensation loops, using Evaluate the power decoupling effect after starting the compensation loop; PCD is the coupling degree, ΔX re f is the change in active / reactive reference value, and ΔY is the change in active / reactive power caused by the change in X.
[0017] According to another aspect of the present invention, a decoupling control device for a doubly-fed wind turbine based on dynamic feedforward compensation is provided, comprising:
[0018] An information acquisition module is used to collect grid frequency information and grid connection point voltage information in real time when the doubly-fed wind turbine is connected to a weak AC grid and adopts grid-following control. The grid frequency information includes: grid frequency deviation and grid frequency change rate per unit time; the grid connection point voltage information includes: grid connection point voltage deviation and grid connection point voltage change rate per unit time.
[0019] a compensation start-up module, configured to start an active power compensation loop based on dynamic feedforward when both the grid frequency deviation and the grid frequency change rate per unit time exceed their respective corresponding first preset thresholds; and start a reactive power compensation loop based on dynamic feedforward when both the grid connection point voltage deviation and the grid connection point voltage change rate per unit time exceed their respective corresponding second preset thresholds and both the grid frequency deviation and the grid frequency change rate per unit time do not exceed their respective corresponding first preset thresholds;
[0020] Wherein, the active power compensation loop and the reactive power compensation loop are both adaptively adjusted according to the severity of the power grid load accident;
[0021] The compensation stop module is used to shut down all currently started compensation loops when the grid frequency reaches the lowest point and the corresponding grid frequency change rate is equal to 0.
[0022] According to another aspect of the present invention, a wind farm control system is provided, comprising a memory and a processor, wherein the memory stores a computer program, and the processor implements the steps of the above method when executing the computer program.
[0023] According to another aspect of the present invention, a computer-readable storage medium is provided, on which a computer program is stored. When the computer program is executed by a processor, the steps of the above method are implemented.
[0024] In general, the above technical solutions conceived by the present invention can achieve the following beneficial effects compared with the prior art:
[0025] (1) The present invention provides a decoupling control method for a doubly fed wind turbine based on dynamic feedforward compensation. In a scenario where the doubly fed wind turbine is connected to a weak AC grid and adopts grid-following control, when the grid frequency deviation per unit time and the grid frequency change rate both exceed their respective corresponding first preset thresholds, the active power compensation loop based on dynamic feedforward is started; when the grid connection point voltage deviation per unit time and the grid connection point voltage change rate both exceed their respective corresponding second preset thresholds and the grid frequency deviation per unit time and the grid frequency change rate do not exceed their respective corresponding first preset thresholds, the reactive power compensation loop based on dynamic feedforward is started. The present invention incorporates adaptive control that considers both the degree of load mutation and the system response capability, which can significantly reduce the power coupling rate and provide adaptive frequency-voltage decoupling support for different degrees of load mutation, effectively alleviating the problem of insufficient power decoupling caused by inaccurate tracking of the voltage phase of the phase-locked loop at the grid connection point when the doubly fed wind turbine is connected to a weak grid, thereby causing frequency and voltage stability problems. Furthermore, the ability of the doubly-fed wind turbine to suppress stator current overcurrent, voltage distortion and reduce system noise is improved, and the ability of the doubly-fed wind turbine in weak power grid conditions is improved.
[0026] (2) The active coupling value P in the active compensation loop based on dynamic feedforward described in this scheme is com Expressed as: Taking into account the active power coupling caused by reactive power changes, frequency and voltage decoupling support is achieved in the case of active power shortage.
[0027] (3) The active coupling value P in the active compensation loop based on dynamic feedforward described in this scheme is com Expressed as: Considering that doubly-fed wind turbines connected to weak power grids often transmit power through inductive transmission lines, and reactive power mainly affects the voltage amplitude, the impact of reactive power on the voltage phase is ignored to achieve simplified analysis and control.
[0028] (4) The reactive coupling value Q in the reactive compensation loop based on dynamic feedforward described in this scheme com Expressed as: Taking into account the reactive coupling caused by active power changes, frequency and voltage decoupling support is achieved in the case of reactive power shortage.
[0029] (5) The reactive coupling value Q in the reactive compensation loop based on dynamic feedforward described in this scheme com Expressed as: Q com =P s K Pδ ΔP; Considering that the active power doubly fed wind turbine connected to the weak grid often transmits power through the inductive transmission line, the active power mainly affects the voltage phase. The influence of the active power on the voltage amplitude is ignored to achieve simplified analysis and control.
[0030] (6) In this plan Further, The time when the decoupling loop is put into operation is recorded as T mal , the exit time is recorded as T rec In T mal At this moment, taking the active compensation loop parameters as an example, the parameters suddenly increase to k P-QU,initial Then the decoupling loop parameters are adjusted in real time according to the frequency situation monitored in real time, and the system shortage changes according to the slope decrease until T rec At this moment, it is reduced to zero, which can realize the adaptive change of frequency information, voltage information and switching time parameters.
[0031] (7) This scheme measures the power coupling and the effectiveness of the decoupling strategy under different short-circuit ratios and phase-locked loop bandwidths based on the proposed coupling rate and decoupling rate formulas. It is verified that the smaller the SCR of the grid system, the greater the wind turbine coupling rate, indicating that the weaker the AC grid to which the doubly fed wind turbine is connected, the more serious the power coupling caused by the defects of the classic decoupling strategy. At the same time, reducing the bandwidth of the PLL will deepen the power coupling of the wind turbine, which may worsen the frequency and voltage support of the wind turbine. Furthermore, the SCR range applicable to the feedforward power decoupling loop is defined as: 1.5 to 3, which is suitable for weak grid systems with a high penetration rate of new energy. BRIEF DESCRIPTION OF THE DRAWINGS
[0032] Figure 1 A flow chart of a decoupling control method for a doubly-fed wind turbine based on dynamic feedforward compensation provided in Example 1 of the present invention;
[0033] Figure 2 This is an overall control block diagram of the decoupling control method for a doubly-fed wind turbine based on dynamic feedforward compensation provided in Example 1 of the present invention;
[0034] Figure 3 A power coupling voltage-current vector relationship diagram of a grid-side converter of a doubly-fed wind turbine under a weak power grid provided in Example 1 of the present invention;
[0035] Figure 4 Graphs showing power coupling and decoupling before and after compensation for different SCR systems provided in Example 1 of the present invention;
[0036] Figure 5 Schematic diagram of changes in wind turbine active power, reactive power, frequency, and grid connection point voltage before and after decoupling under changes in active / reactive reference values provided in Example 1 of the present invention;
[0037] Figure 6 This is a schematic diagram of the changes in wind turbine active power, reactive power, frequency, and grid connection point voltage before and after decoupling under different degrees of active / reactive load changes in the system provided by Example 1 of the present invention. DETAILED DESCRIPTION
[0038] In order to make the objectives, technical solutions and advantages of the present invention more clearly understood, the present invention is further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely for the purpose of explaining the present invention and are not intended to limit the present invention. In addition, the technical features involved in the various embodiments of the present invention described below may be combined with each other as long as they do not conflict with each other.
[0039] Example 1
[0040] like Figure 1 and Figure 2 As shown, the present invention provides a decoupling control method for a doubly fed wind turbine based on dynamic feedforward compensation, comprising the following steps.
[0041] S1: When the doubly-fed wind turbine is connected to a weak AC grid and adopts grid-following control, the grid frequency information and grid connection point voltage information are collected in real time; the grid frequency information includes: the grid frequency deviation and grid frequency change rate per unit time; the grid connection point voltage information includes: the grid connection point voltage deviation and grid connection point voltage change rate per unit time.
[0042] S2: When the grid frequency deviation and the grid frequency change rate per unit time both exceed their respective first preset thresholds, the active power compensation loop based on dynamic feedforward is started; when the grid connection point voltage deviation and the grid connection point voltage change rate per unit time both exceed their respective second preset thresholds and the grid frequency deviation and the grid frequency change rate per unit time do not exceed their respective first preset thresholds, the reactive power compensation loop based on dynamic feedforward is started; wherein, both the active power compensation loop and the reactive power compensation loop are adaptively adjusted according to the severity of the grid load accident.
[0043] S3: When the grid frequency reaches the lowest point and the corresponding grid frequency change rate is equal to 0, all currently started compensation loops are closed.
[0044] Figure 3 The power coupling voltage and current vector relationship diagram of the grid-side converter of the doubly fed wind turbine under weak power grid is shown in Figure 2. Figure 3 The power coupling voltage and current vector relationship of the grid-side converter of the doubly fed wind turbine under the weak power grid is analyzed. Under the condition of weak power grid, the active and reactive power decoupling is not complete, and the active and reactive power coupling is quantified:
[0045] P s =|v pcc |·[|i q0 +Δi qQ |sinΔδ Q +|i d0 |cosΔδ Q ];
[0046] Q s =|v pcc|·[|i d0 +Δi dP |sinΔδ P +|i q0 |cosΔδ P ];
[0047]
[0048] Among them, P s is the real-time changing active power, Q s Real-time changing reactive power, v pcc is the voltage amplitude at the PCC point after the active or reactive power changes, i.e., the dq current changes, Δδ P , Δδ Q As P ref , Q ref The voltage phase angle difference changes. Δv P , Δv Q As P ref , Q ref The voltage amplitude difference changes.
[0049]
[0050] Use F p To measure the frequency deviation per Δt, the value when the frequency just exceeds the normal range is the preset threshold RoCoF th With F pth Similar to frequency, define the voltage change rate and F q To measure the voltage deviation per Δt seconds, the value when the frequency range exceeds the normal range is the preset threshold RoCoU th With F qth When the frequency parameter is greater than the preset threshold, the active power compensation loop starts. When the voltage parameter is greater than the preset threshold, the reactive power compensation loop starts.
[0051] Due to the support of the wind turbine on the frequency and voltage, there is a transient process, and the frequency will recover from the lowest point to the steady state. During this process, the wind turbine is in the process of increasing active power, and the dynamic error caused by the phase-locked loop is relatively reduced. If the control is still continued, the complex feedforward process will reduce the response speed of the wind turbine to the reference value, and the benefit brought by the decoupling loop will be reduced, so the decoupling loop exits the control.
[0052] Figure 4 The power coupling and decoupling diagrams for different SCR systems before and after compensation are provided in the embodiments of the present invention. By varying the short-circuit ratio of the power system, the power coupling of systems of varying strengths and the decoupling ratios before and after decoupling are tested. This indicates that the feedforward power decoupling loop is suitable for a short-circuit ratio (SCR) range of 1.5 to 3, making it suitable for weak power grids with high renewable energy penetration.
[0053] In one embodiment, the active coupling value P in the active compensation loop based on dynamic feedforward com Expressed as: Among them, P s The active power changes in real time. In one embodiment, the active coupling value P in the active power compensation loop based on dynamic feedforward is com Expressed as: Among them, P s is the real-time changing active power, K Qδ is the coefficient of the relationship between reactive power and voltage phase angle, ΔQ is the reactive power output of the wind turbine, v0 is the initial voltage value, K QU is the relationship coefficient between reactive power and voltage amplitude.
[0054] Specifically, the active coupling value P in the active compensation loop based on dynamic feedforward com The expression is:
[0055]
[0056] In one embodiment, the reactive coupling value Q in the reactive compensation loop based on dynamic feedforward com Expressed as: In one embodiment, the reactive coupling value Q in the reactive compensation loop based on dynamic feedforward com Expressed as: Q com =P s K Pδ ΔP; where P s is the real-time changing active power, Q s is the reactive power K that changes in real time Pδ is the relationship coefficient between active power and voltage phase angle, ΔP is the active power output of the wind turbine, v0 is the initial voltage value, K PU is the relationship coefficient between reactive power and voltage amplitude.
[0057] Specifically, the reactive coupling value Q in the active power compensation loop based on dynamic feedforward com The expression is:
[0058]
[0059] Therefore, by dynamically quantifying the active coupling value P when the reactive reference value changes com Reactive coupling value Q when the active reference value changes com By compensating it to the power outer loop reference value on the RSC side through feedforward compensation, the power coupling phenomenon caused by the time-varying error of the PLL tracking voltage phase angle can be decoupled.
[0060] When the frequency or voltage drops or rises significantly, the absolute value of its rate of change will increase dramatically. At this time, the decoupling loop is activated to quickly decouple the frequency / voltage and reduce the risk of system instability caused by power coupling.
[0061] Active coupling value P when the state-quantized reactive reference value changes com Reactive coupling value Q when the active reference value changes com , and compensate it to the power outer loop reference value on the RSC side through feedforward compensation. When the doubly fed wind turbine is connected to a weak power grid, in order to reduce the voltage drop during long-distance transmission and improve the line transmission efficiency, the X / R of the transmission line is often large. Power is transmitted through the inductive transmission line. Active power mainly affects the voltage phase, and reactive power mainly affects the voltage amplitude. In the process of quantifying the coupled power, we only consider the two branches of the voltage amplitude change caused by reactive power change and the voltage phase change caused by active power change.
[0062] At the same time, in order to further optimize the strategy, the parameter K Pδ , K QU A PI controller is directly adopted to improve the applicability and robustness of the decoupling strategy. Finally, the active and reactive coupling values quantified in the GSC are compensated to the reference value of the power outer loop of the RSC to obtain the overall dynamic compensation control.
[0063] In one embodiment, the parameters in the active power compensation loop of the dynamic feedforward are:
[0064]
[0065] Among them, k P_QU is the P value of the active compensation loop PI controller, k P_QU,initial is the fault time k P_QU The initial value of k P_QU,max is the maximum value after small signal stability analysis, k p_fixed is the fixed part of the adaptive active power accident variation coefficient, k p,L k is the active power accident severity measurement coefficient p,L =F p / F p-max , F p Used to measure the average frequency deviation within each Δt period, F p-max The maximum frequency deviation caused by the most severe load reactive change.
[0066] In one embodiment, the parameters in the dynamic feedforward reactive power compensation loop are:
[0067]
[0068]
[0069] Among them, k P_Pδ is the P value of the reactive compensation loop PI controller, k P_Pδ,initial is the fault time k P_Pδ The initial value of k P_Pδ,max is the maximum value after small signal stability analysis, k q_fixed is the fixed part of the adaptive reactive accident variation coefficient, k q,L k is the coefficient for measuring the severity of reactive accidents q,L =F q / F q,max , F q Used to measure the average voltage deviation within each Δt period, F q,max The maximum voltage deviation caused by the most severe load reactive change.
[0070] When the system active power suddenly changes, the active coupling compensation loop is mainly at work. At this time, the system frequency fluctuates more than the voltage, and the active power shortage is proportional to the frequency change rate. Similarly, when the reactive power suddenly changes, the reactive coupling compensation loop is mainly at work. The voltage oscillation rate is higher than the frequency change rate, and the reactive power shortage is proportional to the voltage change rate.
[0071] Among them, F p0 is the frequency deviation within Δt after the accident, F p,max is the maximum frequency deviation caused by the most severe load active power mutation; similarly, F q0 They are the voltage deviation within Δt after the accident, F q,max The maximum voltage deviation caused by the most severe load reactive power mutation. fixed is the fixed part of the adaptive accident variation coefficient, including k p_fixed With k q_fixed , usually take the corresponding k p,max 1 / 3 to 1 / 2 of the value to ensure that k P,initial In a suitable range of values [k fixed ,k p,max ].
[0072] The time when the decoupling loop is put into operation is recorded as T mal , the exit time is recorded as T rec In T mal At this moment, taking the active compensation loop parameters as an example, the parameters suddenly increase to k P-QU,initial Then the decoupling loop parameters are adjusted in real time according to the frequency situation monitored in real time, and the system shortage changes according to the slope decrease until T rec moment, reduced to zero.
[0073] In one embodiment, the method further includes: after closing all currently activated compensation loops, using Evaluate the power decoupling effect after starting the compensation loop; PCD is the coupling degree,
[0074] At the same time, the peak value of the first oscillation cycle after the accident is defined as the coupling amount, and the relative reactive / active coupling amount caused by the change of the active / reactive reference value is defined as the coupling degree. The higher the coupling degree, the more serious the power coupling of the wind turbine's internal control.
[0075] The decoupling rate is defined to measure the decoupling capability of the dynamic feedforward compensation loop, that is, the ratio of the coupling degree difference before and after decoupling to the coupling degree before decoupling. The higher the decoupling rate, the better the decoupling effect of the feedforward power decoupling loop. Where PCD is the coupling degree, ΔX ref is the change in active / reactive reference value, ΔY is the change in active / reactive power caused by the change in X, and DPD is the decoupling rate.
[0076] in, Figure 5 Schematic diagram of changes in wind turbine active power, reactive power, frequency, and grid connection point voltage before and after decoupling provided in this embodiment under changes in active / reactive reference values; Figure 6 This embodiment provides a schematic diagram illustrating the changes in wind turbine active power, reactive power, frequency, and grid connection point voltage before and after decoupling under varying degrees of active / reactive load. This invention incorporates feedforward compensation to compensate the quantized power coupling component into the power outer loop reference value controlled by the rotor-side converter, ultimately achieving frequency and voltage decoupling support control for the doubly-fed wind turbine. This addresses the issue of insufficient power decoupling in weak grid conditions, which can arise from inaccurate phase-locked loop voltage phase tracking at the grid connection point, leading to frequency and voltage stability issues.
[0077] Example 2
[0078] An embodiment of the present invention provides a doubly-fed wind turbine decoupling control device based on dynamic feedforward compensation, comprising: an information acquisition module, a compensation start module, and a compensation stop module.
[0079] The information acquisition module is used to collect grid frequency information and grid connection point voltage information in real time when the doubly fed wind turbine is connected to a weak AC grid and adopts grid-following control. The grid frequency information includes: grid frequency deviation and grid frequency change rate per unit time; the grid connection point voltage information includes: grid connection point voltage deviation and grid connection point voltage change rate per unit time.
[0080] The compensation startup module is used to start the active power compensation loop based on dynamic feedforward when the grid frequency deviation and the grid frequency change rate per unit time both exceed their respective corresponding first preset thresholds; and to start the reactive power compensation loop based on dynamic feedforward when the grid connection point voltage deviation and the grid connection point voltage change rate per unit time both exceed their respective corresponding second preset thresholds and the grid frequency deviation and the grid frequency change rate per unit time do not exceed their respective corresponding first preset thresholds; wherein both the active power compensation loop and the reactive power compensation loop are adaptively adjusted according to the severity of the grid load accident.
[0081] The compensation stop module is used to shut down all currently started compensation loops when the grid frequency reaches the lowest point and the corresponding grid frequency change rate is equal to 0.
[0082] Example 3
[0083] An embodiment of the present invention provides a wind farm control system, including a memory and a processor. The memory stores a computer program, and the processor implements the steps of the above method when executing the computer program.
[0084] Example 4
[0085] This embodiment provides a computer-readable storage medium having a computer program stored thereon. When the computer program is executed by a processor, the steps of the method are implemented.
[0086] It will be easily understood by those skilled in the art that the above description is merely a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.
Claims
1. A decoupling control method for a doubly-fed wind turbine based on dynamic feedforward compensation, characterized in that: include: When a doubly-fed wind turbine is connected to a weak AC grid and adopts grid-following control, real-time grid frequency information and grid connection point voltage information are collected; The grid frequency information includes: grid frequency deviation and grid frequency change rate per unit time; the grid connection point voltage information includes: grid connection point voltage deviation and grid connection point voltage change rate per unit time; When the grid frequency deviation and the grid frequency change rate per unit time both exceed their respective corresponding first preset thresholds, the active power compensation loop based on dynamic feedforward is activated; when the grid connection point voltage deviation and the grid connection point voltage change rate per unit time both exceed their respective corresponding second preset thresholds and the grid frequency deviation and the grid frequency change rate per unit time do not exceed their respective corresponding first preset thresholds, the reactive power compensation loop based on dynamic feedforward is activated; wherein both the active power compensation loop and the reactive power compensation loop are adaptively adjusted according to the severity of the grid load accident; When the grid frequency reaches the lowest point and the corresponding grid frequency change rate is equal to 0, all currently started compensation loops are closed; The parameters in the active power compensation loop of the dynamic feedforward are is the P value of the active compensation loop PI controller, Failure time The initial value of , is the maximum value after small signal stability analysis, is the fixed part of the adaptive active power accident variation coefficient, Active power accident severity coefficient , for The initial value of To measure each The average frequency deviation during the period, The maximum frequency deviation caused by the preset most serious load reactive mutation; the decoupling loop input time is recorded as , the exit time is recorded as ; The parameters in the dynamic feedforward reactive compensation loop are is the P value of the reactive compensation loop PI controller, Failure time The initial value of is the maximum value after small signal stability analysis, , is the fixed part of the adaptive reactive accident variation coefficient, Reactive power accident severity coefficient , for The initial value of To measure each The average voltage deviation during the period, The maximum voltage deviation caused by the most severe load reactive change.
2. The decoupling control method for a doubly-fed wind turbine based on dynamic feedforward compensation according to claim 1, characterized in that: The active coupling value in the active compensation loop based on dynamic feedforward Expressed as: ;in, is the real-time changing active power, is the reactive power that changes in real time, is the relationship coefficient between reactive power and voltage phase angle, is the reactive power output of the wind turbine, is the initial voltage value, is the relationship coefficient between reactive power and voltage amplitude.
3. The decoupling control method for a doubly-fed wind turbine based on dynamic feedforward compensation according to claim 1, characterized in that: The active coupling value in the active compensation loop based on dynamic feedforward Expressed as: ;in, is the real-time changing active power, is the reactive power output of the wind turbine, is the initial voltage value, is the relationship coefficient between reactive power and voltage amplitude.
4. The decoupling control method for a doubly-fed wind turbine based on dynamic feedforward compensation according to claim 1, characterized in that: The reactive coupling value in the reactive compensation loop based on dynamic feedforward Expressed as: ;in, is the real-time changing active power, Reactive power that changes in real time is the relationship coefficient between active power and voltage phase angle, is the active power output of the wind turbine, is the initial voltage value, is the relationship coefficient between reactive power and voltage amplitude.
5. The decoupling control method for a doubly-fed wind turbine based on dynamic feedforward compensation according to claim 1, characterized in that: The reactive coupling value in the reactive compensation loop based on dynamic feedforward Expressed as: ;in, is the active power output of the wind turbine, is the relationship coefficient between active power and voltage phase angle.
6. The decoupling control method for a doubly-fed wind turbine based on dynamic feedforward compensation according to any one of claims 1 to 5, characterized in that: Also includes: After closing all currently enabled compensation loops, use Evaluate the power decoupling effect after starting the compensation loop; in, is the coupling degree, , is the change in active / reactive reference value, Cause The change in active / reactive power caused by the change, is the coupling degree before decoupling, is the coupling degree after decoupling.
7. A doubly-fed wind turbine decoupling control device based on dynamic feedforward compensation, characterized in that: The method for decoupling control of a doubly-fed wind turbine based on dynamic feedforward compensation according to any one of claims 1 to 6 comprises: An information acquisition module is used to collect grid frequency information and grid connection point voltage information in real time when the doubly-fed wind turbine is connected to a weak AC grid and adopts grid-following control. The grid frequency information includes: grid frequency deviation and grid frequency change rate per unit time; the grid connection point voltage information includes: grid connection point voltage deviation and grid connection point voltage change rate per unit time. a compensation start-up module, configured to start an active power compensation loop based on dynamic feedforward when both the grid frequency deviation and the grid frequency change rate per unit time exceed their respective corresponding first preset thresholds; and start a reactive power compensation loop based on dynamic feedforward when both the grid connection point voltage deviation and the grid connection point voltage change rate per unit time exceed their respective corresponding second preset thresholds and both the grid frequency deviation and the grid frequency change rate per unit time do not exceed their respective corresponding first preset thresholds; Wherein, the active power compensation loop and the reactive power compensation loop are both adaptively adjusted according to the severity of the power grid load accident; The compensation stop module is used to shut down all currently started compensation loops when the grid frequency reaches the lowest point and the corresponding grid frequency change rate is equal to 0.
8. A wind farm control system, comprising a memory and a processor, wherein the memory stores a computer program, characterized in that: When the processor executes the computer program, the steps of the method according to any one of claims 1 to 6 are implemented.
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