Self-adaptive wind power generation system

Through the inlet wind force adjustment device and ground visualization device in the adaptive wind power generation system, synchronous and symmetrical adjustment of wind force is achieved, which solves the problem of inlet wind force fluctuation of wind turbine generator set and improves power generation efficiency and structural stability.

CN120701501APending Publication Date: 2025-09-26KUNLONG NEW ENERGY TECHNOLOGY (SHANDONG) CO LTD
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Patent Information

Application Number
CN202511223694.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-08-29
Publication Date
2025-09-26

AI Technical Summary

Technical Problem

The fluctuation of wind power entering existing wind turbines leads to unstable power generation efficiency, making it difficult to ensure the stability of power generation efficiency of wind turbines.

Method used

An adaptive wind power generation system is adopted, including an incoming wind force adjustment device and a ground visualization device. The real-time wind force is detected by a wind force detection device, and the rotation axes of the upper and lower adjustment plates are adjusted using the control unit and telescopic control components to achieve synchronous and symmetrical adjustment of the wind force and reduce the fluctuation of the incoming wind force.

Benefits of technology

The power generation efficiency and stability of the wind turbine are improved, the stability of the structure is enhanced, and it can maintain efficient power generation when the external wind force changes.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the field of wind power generation, in particular to a self-adaptive wind power generation system. Specifically, the left wind shield / the right wind shield is fixed to the left side / the right side of the fixing frame, the upper adjusting plate and the lower adjusting plate are assembled between the left wind shield and the right wind shield in an adjusting mode, and the rear end of the upper adjusting plate / the lower adjusting plate is fixed to the upper rotating shaft / the lower rotating shaft. In combination with external real-time wind power and preset parameters, an upper rotating shaft / a lower rotating shaft is subjected to synchronous, symmetrical and equal-angle rotation driving on the basis of an upper control assembly / a lower control assembly arranged outside a control unit, and air inlet wind power fluctuation of the wind generating set is slowed down through adjustable compressed air flowing; and the stability of the generating efficiency of the wind generating set is ensured. The telescopic control assembly with the locking function is arranged, so that the structural stability of the air inlet wind power adjusting device is further improved, and the stability degree of the structure dealing with external wind power is improved.
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Description

Technical Field

[0001] The present invention relates to the technical field of wind power generation, and in particular to an adaptive wind power generation system. Background Art

[0002] To achieve the goal of energy conservation and emission reduction, wind power generation has gradually replaced some forms of power generation that rely on traditional non-renewable energy. Compared with traditional power generation, wind power generation has advantages, but it still has some shortcomings that can be improved. Specifically, the air inlet structure of existing wind turbines is fixed. When the external wind force changes continuously, the wind force entering the wind turbine also changes, which leads to large fluctuations in the wind force entering the wind turbine, making it difficult to ensure the stability of the wind turbine's power generation efficiency. In order to solve the above technical problems, it is urgent to propose an adaptive wind power generation system. Summary of the Invention

[0003] In view of the above-mentioned shortcomings and deficiencies of the prior art, the present invention provides an adaptive wind power generation system, which solves the current technical problem of wind power generation: "how to slow down the fluctuation of the incoming wind force of the wind turbine generator set so as to ensure the stability of the power generation efficiency of the wind turbine generator set."

[0004] In order to achieve the above objectives, the main technical solutions adopted by the present invention include: The present invention provides an adaptive wind power generation system, which includes: an inlet wind force adjustment device and a ground visualization device; The wind speed regulating device includes: a wind speed detecting device, a fixing frame connected to the wind turbine generator set air inlet, a left wind shield plate / a right wind shield plate fixed to the left side / right side of the fixing frame, and an upper regulating plate and a lower regulating plate adjustable and mounted between the left wind shield plate and the right wind shield plate; A control unit is fixed to the outside of the left windshield; the rear ends of the upper adjustment plate / lower adjustment plate are fixed to the upper rotating shaft / lower rotating shaft; the control unit is externally connected with: an upper control component / lower control component adapted to be connected to the upper rotating shaft / lower rotating shaft, and a telescopic control component adapted to be connected to the side of the upper adjustment plate and the side of the lower adjustment plate; the telescopic control component is a telescopic structure with a locking function; The left windshield is provided with: a circular hole adapted for the upper control assembly and the lower control assembly, and an arc slide adapted for the telescopic control assembly; The wind force detection device is electrically connected to the control unit, and the control unit signal communication is transmitted to the ground visualization device.

[0005] Optionally, the fixing frame is used to fit and be fixedly nested on the outside of the air inlet of the wind turbine generator set to establish a structural connection between the air inlet wind force regulating device and the wind turbine generator set; The upper control assembly, the lower control assembly, the telescopic control assembly and the wind detection device are electrically connected to the control unit; and the control unit is electrically connected to the wind turbine generator set.

[0006] Optionally, the two sides of the upper adjustment plate are attached to the inner side surfaces of the left windshield and the right windshield; the two sides of the lower adjustment plate are attached to the inner side surfaces of the left windshield and the right windshield; The assembly of the upper and lower adjustment plates satisfies the following requirements: the upper rotating shaft at the rear end of the upper adjustment plate fits on the top of the fixed frame, and the lower rotating shaft at the rear end of the lower adjustment plate fits on the bottom of the fixed frame.

[0007] Optionally, the upper control assembly includes: an upper controller, an upper connecting rod and an upper coupling; the lower control assembly includes: a lower controller, a lower connecting rod and a lower coupling; One end of the upper controller is fixedly connected to the top of the control unit based on the upper connecting rod, and the other end is connected to the upper rotating shaft based on the upper coupling; one end of the lower controller is fixedly connected to the bottom of the control unit based on the lower connecting rod, and the other end is connected to the lower rotating shaft based on the lower coupling.

[0008] Optionally, the telescopic control assembly includes: a first telescopic controller, a horizontal telescopic rod, a second telescopic controller, an upper telescopic connecting rod group, a lower telescopic connecting rod group, a top adjustment end, a top connecting rod, a bottom adjustment end, and a bottom connecting rod; The top adjustment end is connected to the side of the upper adjustment plate based on the top connecting rod; the bottom adjustment end is connected to the side of the lower adjustment plate based on the bottom connecting rod; The horizontal telescopic rod, the upper telescopic connecting rod group and the lower telescopic connecting rod group are provided with a structural fixing locking device.

[0009] Optionally, the first telescopic controller is fixed to the front end of the control unit; the rear end of the horizontal telescopic rod is connected to the first telescopic controller, and the front end of the horizontal telescopic rod is connected to the second telescopic controller; The bottom end of the upper telescopic connecting rod group is connected to the top end of the second telescopic controller, and the top end of the upper telescopic connecting rod group is connected to the bottom side of the top adjustment end; The top end of the lower telescopic connecting rod group is connected to the bottom end of the second telescopic controller, and the bottom end of the lower telescopic connecting rod group is connected to the top side of the bottom adjustment end.

[0010] Optionally, the left windshield is provided with: a first adapting hole / a second adapting hole adapted to fit the upper coupling / the lower coupling, and a first arc slideway / a second arc slideway adapted to fit the top connecting rod / the bottom connecting rod; The first arc slideway is configured to: take the first adapter hole as the center, start at 0 degrees in the positive direction, and rotate 90 degrees counterclockwise; The second arc slideway is set to: take the second adapter hole as the center of the circle, start at 0 degrees in the positive direction, and rotate 90 degrees clockwise.

[0011] Optionally, the control unit synchronously and symmetrically adjusts and rotates the upper rotating shaft and the lower rotating shaft based on the real-time wind force detected by the wind force detection device to adjust the degree of compression of the external wind by the wind force adjustment device, so as to ensure that the wind force at the wind turbine generator set air inlet is within a preset range; The structural fixing lock device corresponding to the horizontal telescopic rod, the upper telescopic connecting rod group and the lower telescopic connecting rod group satisfies the following conditions: when either the upper rotating shaft or the lower rotating shaft is in a rotating state, the structural fixing lock device is in an unlocked state; otherwise, the structural fixing lock device is in a locked state.

[0012] Optionally, the ground visualization device is used to perform: remote setting of preset parameters and display of real-time data adjustment on the air inlet wind force adjustment device; The preset parameters include: the preset outlet wind speed of the air inlet wind speed regulating device and the external real-time wind speed change threshold; and the real-time data adjustment method includes: If the change value of F1 exceeds the preset threshold, the parameter A is calculated based on the control unit, as shown in formula (1), and the upper and lower shafts are driven to rotate accordingly; A=a-arcsin(F2 / 2F1-k / 2l) (1); Wherein, F1 is the external real-time wind force, in meters per second; F2 is the preset outlet wind force of the inlet wind force regulating device, in meters per second; A is the angle of either the upper or lower rotating shaft that needs to be adjusted, in degrees; k is the height of the fixed frame, in meters; l is the length of either the upper or lower adjusting plate, in meters; a is the angle between either the upper or lower adjusting plate and the horizontal direction, in meters per second; Among them, when the value of A is a positive number, the upper shaft rotates clockwise and the lower shaft rotates counterclockwise; when the value of A is a negative number, the upper shaft rotates counterclockwise and the lower shaft rotates clockwise. Optionally, the initial value of a is set in combination with the external real-time wind force corresponding to the start-up of the air inlet wind force regulating device; when either the upper regulating plate or the lower regulating plate rotates, the value change of a satisfies the formula (2): a=arcsin(F2 / 2F1-k / 2l) (2).

[0013] The beneficial effects of this application are: In the present application, the left wind shield / right wind shield is fixed to the left side / right side of the fixing frame, and the upper adjustment plate and the lower adjustment plate are adjustably assembled between the left wind shield and the right wind shield, wherein the rear end of the upper adjustment plate / lower adjustment plate is fixed to the upper rotating shaft / lower rotating shaft; based on the "upper control component / lower control component disposed outside the control unit" and in combination with the external real-time wind force and preset parameters, the upper rotating shaft / lower rotating shaft is driven to rotate synchronously, symmetrically, and at equal angles, and the regulated compressed air flow is used to reduce the fluctuation of the wind force entering the wind turbine generator set, thereby ensuring the stability of the power generation efficiency of the wind turbine generator set; In this application, by providing a "telescopic control component with a locking function", the structural stability of the air inlet wind force adjustment device is further improved to improve the stability of the structure in responding to external wind force; In this application, a new set of structural adjustment formulas is proposed in combination with the structure of the air inlet wind force adjustment device. Based on the structural adjustment formulas, the control unit performs intelligent rotation adjustment on the upper and lower rotating shafts. BRIEF DESCRIPTION OF THE DRAWINGS Figure 1 A schematic diagram of the structural connection of a fixing frame, a left windshield plate, and a right windshield plate provided in one embodiment of the present invention; Figure 2 A schematic structural diagram of an air inlet wind force regulating device provided in one embodiment of the present invention; Figure 3 A schematic diagram of the structural connection of an upper regulating plate, a lower regulating plate, and a control unit provided in one embodiment of the present invention; Figure 4 A schematic diagram of the structural connection of an upper regulating plate, a lower regulating plate, and a control unit provided in one embodiment of the present invention; Figure 5 A schematic structural diagram of a left windshield provided in one embodiment of the present invention; Figure 6 This is a schematic diagram of the structural assembly of a fixed frame, an upper adjustment plate, a lower adjustment plate, a control unit, and an upper rotating shaft provided in one embodiment of the present invention.

[0014] above Figures 1 to 6 The symbols in include: 1. Wind force detection device; 2. Fixed frame; 3. Left windshield; 4. Right windshield; 5. Upper adjustment plate; 6. Lower adjustment plate; 7. Control unit; 8. Upper rotating shaft; 9. Lower rotating shaft; 10. Upper controller; 11. Upper connecting rod; 12. Upper coupling; 13. Lower controller; 14. Lower connecting rod; 15. Lower coupling; 16. First telescopic controller; 17. Horizontal telescopic rod; 18. Second telescopic controller; 19. Upper telescopic connecting rod group; 20. Lower telescopic connecting rod group; 21. Top adjustment end; 22. Top connecting rod; 23. Bottom adjustment end; 24. Bottom connecting rod; 25. First adapter hole; 26. Second adapter hole; 27. First arc slide; 28. Second arc slide. DETAILED DESCRIPTION

[0015] In order to better explain the present invention and facilitate understanding, the present invention is described in detail below through specific implementation methods in conjunction with the accompanying drawings.

[0016] To better understand the above technical solutions, exemplary embodiments of the present invention will be described in more detail below with reference to the accompanying drawings. Although exemplary embodiments of the present invention are shown in the accompanying drawings, it should be understood that the present invention can be implemented in various forms and should not be limited by the embodiments described herein. Instead, these embodiments are provided to enable a clearer and more thorough understanding of the present invention and to fully convey the scope of the present invention to those skilled in the art.

[0017] Example 1 This embodiment provides an adaptive wind power generation system, which includes an inlet wind force adjustment device and a ground visualization device.

[0018] Combine Figure 1 and Figure 2 The wind speed regulating device includes: a wind speed detecting device 1; a fixed frame 2 connected to the wind turbine generator set air inlet; a left wind shield 3 fixed to the left side of the fixed frame 2; a right wind shield 4 fixed to the right side of the fixed frame 2; an upper regulating plate 5 and a lower regulating plate 6 adjustable and assembled between the left wind shield 3 and the right wind shield 4; Combine Figure 1 and Figure 2 Preferably, in order to ensure the detection accuracy of the wind detection device 1, the wind detection device 1 can be symmetrically arranged at the top of the left wind shield 3 and the right wind shield 4, and the detection error can be reduced by calculating the average value of the two wind detection devices 1; Combine Figure 1 and Figure 2Preferably, the left windshield plate 3 and the right windshield plate 4 are symmetrically fixed to both ends of the fixing frame 2, and the fixing method can be a screw and nut fixing method; the fixing frame 2 is perpendicular to the rear middle position of the inner side panels of the left windshield plate 3 and the right windshield plate 4; Combine Figure 1 and Figure 2 Preferably, the fixed frame is a hard frame structure with negligible frame thickness; the fixed frame can be fitted and fixedly nested on the outside of the wind turbine inlet to construct a structural connection between the air inlet wind force regulating device and the wind turbine.

[0019] Combine Figure 1 and Figure 2 、 Figure 3 , a control unit 7 is fixed to the outside of the left windshield 3; it should be noted that: the control unit 7 is electrically connected to the wind detection device 1, and the control unit 7 communicates signals to the ground visualization device.

[0020] Combine Figure 1 and Figure 2 、 Figure 3 , the rear end of the upper adjustment plate 5 is fixed to the upper rotating shaft 8, and the rear end of the lower adjustment 6 is fixed to the lower rotating shaft 9; the control unit 7 is externally connected with: an upper control component adapted to be connected to the upper rotating shaft 8, and a lower control component adapted to be connected to the lower rotating shaft 9; Combine Figure 1 and Figure 2 、 Figure 3 The upper control assembly includes: an upper controller 10, an upper connecting rod 11 and an upper coupling 12; the lower control assembly includes: a lower controller 13, a lower connecting rod 14 and a lower coupling 15; Combine Figure 1 and Figure 2 、 Figure 3 One end of the upper controller 10 is fixedly connected to the top of the control unit 7 based on the upper connecting rod 11, and the other end is connected to the upper rotating shaft 8 based on the upper coupling 12; one end of the lower controller 13 is fixedly connected to the bottom of the control unit 7 based on the lower connecting rod 14, and the other end is connected to the lower rotating shaft 9 based on the lower coupling 15.

[0021] Combine Figure 1 and Figure 2 、 Figure 3 、 Figure 4 , the control unit 7 is also connected to the outside with: a telescopic control component adapted to be connected to the side of the upper adjustment plate 5 and the side of the lower adjustment plate 6; the telescopic control component is a telescopic structure with a locking function; Combine Figure 1 and Figure 2 、 Figure 3 、 Figure 4The telescopic control assembly includes: a first telescopic controller 16, a horizontal telescopic rod 17, a second telescopic controller 18, an upper telescopic connecting rod group 19, a lower telescopic connecting rod group 20, a top adjustment end 21, a top connecting rod 22, a bottom adjustment end 23, and a bottom connecting rod 24; Combine Figure 1 and Figure 2 、 Figure 3 、 Figure 4 The top adjustment end 21 is connected to the side of the upper adjustment plate 5 based on the top connecting rod 22; the bottom adjustment end 23 is connected to the side of the lower adjustment plate 6 based on the bottom connecting rod 24; Combine Figure 1 and Figure 2 、 Figure 3 、 Figure 4 , the first telescopic controller 16 is fixed to the front end of the control unit 7; the rear end of the horizontal telescopic rod 17 is connected to the first telescopic controller 16, and the front end of the horizontal telescopic rod 17 is connected to the second telescopic controller 18; the bottom end of the upper telescopic connecting rod group 19 is connected to the top end of the second telescopic controller 18, and the top end of the upper telescopic connecting rod group 19 is connected to the bottom side of the top adjustment end 21; the top end of the lower telescopic connecting rod group 20 is connected to the bottom end of the second telescopic controller 18, and the bottom end of the lower telescopic connecting rod group 20 is connected to the top side of the bottom adjustment end 23.

[0022] It should be noted that the horizontal telescopic rod 17, the upper telescopic connecting rod group 19 and the lower telescopic connecting rod group 20 are provided with a structural fixing locking device; the locking and unlocking of the structural fixing locking device are adjusted by the control unit 7, specifically satisfying that: when either the upper rotating shaft 8 or the lower rotating shaft 9 is in a rotating state, the structural fixing locking device is in an unlocked state; otherwise, the structural fixing locking device is in a locked state.

[0023] Combine Figure 1 、 Figure 2 、 Figure 3 、 Figure 4 and Figure 5 The left windshield 3 is provided with: a first adapting hole 25 adapted to fit the upper coupling 12; a second adapting hole 26 adapted to fit the lower coupling 13; a first arc slide 27 adapted to fit the top connecting rod 22; and a second arc slide 28 adapted to fit the bottom connecting rod 24; The aforementioned "fitting" is reflected in: the length of the upper coupling 12 is equal to the depth of the first adapter hole 25, and the outer diameter of the upper coupling 12 is equal to the inner diameter of the first adapter hole 25; the length of the lower coupling 13 is equal to the depth of the second adapter hole 26, and the outer diameter of the lower coupling 13 is equal to the inner diameter of the second adapter hole 26; the length of the top connecting rod 22 is equal to the depth of the first circular arc slide 27, and the outer diameter of the top connecting rod 22 is equal to the width of the first circular arc slide 27; the length of the bottom connecting rod 24 is equal to the depth of the second circular arc slide 28, and the outer diameter of the bottom connecting rod 24 is equal to the width of the second circular arc slide 28.

[0024] Based on the above structure, combined with Figure 1 、 Figure 2 、 Figure 3 、 Figure 4 and Figure 5 The two sides of the upper adjustment plate 5 are fitted to the inner sides of the left wind shield 3 and the right wind shield 4; the two sides of the lower adjustment plate 6 are fitted to the inner sides of the left wind shield 3 and the right wind shield 4, thereby improving the sealing effect to ensure the wind gathering effect of wind power generation.

[0025] Combine Figure 1 、 Figure 2 、 Figure 3 、 Figure 4 、 Figure 5 and Figure 6 The assembly of the upper adjustment plate 5 and the lower adjustment plate 6 satisfies the following requirements: the upper rotating shaft 8 located at the rear end of the upper adjustment plate 5 is attached to the top end of the fixed frame 2, and the lower rotating shaft 9 located at the rear end of the lower adjustment plate 6 is attached to the bottom end of the fixed frame 2, thereby improving the sealing effect to ensure the wind gathering effect of wind power generation.

[0026] Combine Figure 1 、 Figure 2 、 Figure 3 、 Figure 4 、 Figure 5 and Figure 6 The setting of the first arc slide 27 satisfies: with the first adapter hole 25 as the center of the circle, starting from 0 degrees in the positive direction, and rotating 90 degrees counterclockwise; the setting of the second arc slide 28 satisfies: with the second adapter hole 26 as the center of the circle, starting from 0 degrees in the positive direction, and rotating 90 degrees clockwise.

[0027] In this embodiment, the upper control assembly, the lower control assembly, the telescopic control assembly, and the wind force detection device 1 are electrically connected to the control unit 7; the control unit 7 is electrically connected to the wind turbine generator set; thereby achieving: power supply to the control unit 7 and the wind force detection device 1 based on the wind turbine generator set; the control unit 7 synchronously and symmetrically adjusts and rotates the upper rotating shaft 8 and the lower rotating shaft 9 based on the real-time wind force detected by the wind force detection device 1, so as to adjust the degree of compression of the external wind by the air inlet wind force adjustment device, thereby ensuring that the wind force at the air inlet of the wind turbine generator set is within a preset range; In this embodiment, the ground visualization device can be used to remotely set preset parameters and display real-time data adjustment of the air inlet wind force regulating device; the preset parameters include: the preset outlet wind force of the air inlet wind force regulating device and the external real-time wind force change threshold; In this embodiment, the method for real-time data adjustment specifically includes: If the change value of F1 exceeds the preset threshold, the parameter A is calculated based on the control unit, as shown in formula (1), and the upper rotating shaft 8 and the lower rotating shaft 9 are driven to rotate accordingly; A=a-arcsin(F2 / 2F1-k / 2l) (1); Wherein, F1 is the external real-time wind force, in meters per second; F2 is the preset outlet wind force of the inlet wind force regulating device, in meters per second; A is the angle of either the upper rotating shaft 8 or the lower rotating shaft 9 that needs to be adjusted, in degrees; k is the height of the fixed frame 2, in meters; l is the length of either the upper adjusting plate 5 or the lower adjusting plate 6, in meters; a is the angle between either the upper adjusting plate 5 or the lower adjusting plate 6 and the horizontal direction, in meters per second; Among them, when the value of A is a positive number, the upper rotating shaft 8 rotates clockwise and the lower rotating shaft 9 rotates counterclockwise; when the value of A is a negative number, the upper rotating shaft 8 rotates counterclockwise and the lower rotating shaft 9 rotates clockwise. Optionally, the initial value of a is set in conjunction with the real-time external wind force corresponding to the start-up of the air inlet wind force adjustment device. When either the upper adjustment plate 5 or the lower adjustment plate 6 rotates, the value of a needs to be updated promptly to ensure the effectiveness of the next real-time adjustment. The change in the value of a satisfies the formula (2): a = arcsin(F2 / 2F1-k / 2l). (2).

[0028] Based on the adaptive wind power generation system described in Example 1, the left wind shield 3 / right wind shield 4 is fixed to the left side / right side of the fixed frame 2, and the upper adjustment plate 5 and the lower adjustment plate 6 are adjustably assembled between the left wind shield 3 and the right wind shield 4. The rear ends of the upper adjustment plate 5 / lower adjustment plate 6 are fixed to the upper rotating shaft 8 / lower rotating shaft 9. In combination with the real-time external wind force and preset parameters, based on the "upper control component / lower control component provided outside the control unit 7", the upper rotating shaft 8 / lower rotating shaft 9 is driven to rotate synchronously, symmetrically, and at equal angles. Through the regulated compressed air flow, the fluctuation of the wind force entering the wind turbine generator set is reduced, thereby ensuring the stability of the power generation efficiency of the wind turbine generator set. Based on the adaptive wind power generation system described in Example 1, a "telescopic control component with a locking function" is provided to further improve the structural stability of the wind inlet wind force adjustment device, thereby improving the stability of the structure in responding to external wind forces; Based on the adaptive wind power generation system described in Example 1 and combined with the structure of the wind inlet wind force adjustment device, a new structural adjustment formula is proposed. Based on the structural adjustment formula, the control unit performs intelligent rotation adjustment on the upper rotating shaft 8 and the lower rotating shaft 9.

[0029] It should be noted that in the claims, any reference signs placed between parentheses should not be construed as limiting the claims. The word "comprising" does not exclude the presence of components or steps not listed in a claim. The word "a" or "an" preceding a component does not exclude the presence of a plurality of such components. The use of the words first, second, third, etc., is merely for convenience and does not denote any order. These words should be understood as part of the component name.

[0030] In addition, it should be noted that, in the description of this specification, the description of the terms "one embodiment", "some embodiments", "embodiment", "example", "specific example" or "some examples" means that the specific features, structures, materials or characteristics described in conjunction with the embodiment or example are included in at least one embodiment or example of the present invention. In this specification, the schematic expressions of the above terms do not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials or characteristics described can be combined in any one or more embodiments or examples in a suitable manner. In addition, those skilled in the art can combine and combine different embodiments or examples described in this specification and the features of different embodiments or examples, unless they are contradictory.

[0031] Although the preferred embodiments of the present invention have been described, those skilled in the art may make additional changes and modifications to these embodiments after learning the basic creative concept. Therefore, the claims should be interpreted as including the preferred embodiments and all changes and modifications that fall within the scope of the present invention.

[0032] Obviously, those skilled in the art may make various modifications and variations to the present invention without departing from the spirit and scope of the present invention. Thus, if such modifications and variations fall within the scope of the claims and their equivalents, the present invention shall also include such modifications and variations.

Claims

1. An adaptive wind power generation system, characterized in that: The wind power generation system includes: an inlet wind force regulating device and a ground visualization device; The wind speed regulating device includes: a wind speed detecting device, a fixing frame connected to the wind turbine generator set air inlet, a left wind shield plate / a right wind shield plate fixed to the left side / right side of the fixing frame, and an upper regulating plate and a lower regulating plate adjustable and mounted between the left wind shield plate and the right wind shield plate; A control unit is fixed to the outside of the left windshield; the rear ends of the upper adjustment plate / lower adjustment plate are fixed to the upper rotating shaft / lower rotating shaft; the control unit is externally connected with: an upper control component / lower control component adapted to be connected to the upper rotating shaft / lower rotating shaft, and a telescopic control component adapted to be connected to the side of the upper adjustment plate and the side of the lower adjustment plate; the telescopic control component is a telescopic structure with a locking function; The left windshield is provided with: a circular hole adapted for the upper control assembly and the lower control assembly, and an arc slide adapted for the telescopic control assembly; The wind force detection device is electrically connected to the control unit, and the control unit signal communication is transmitted to the ground visualization device.

2. The wind power generation system according to claim 1, characterized in that: The fixing frame is used to fit and be fixedly nested on the outside of the air inlet of the wind turbine generator set to establish a structural connection between the air inlet wind force regulating device and the wind turbine generator set; The upper control assembly, the lower control assembly, the telescopic control assembly and the wind detection device are electrically connected to the control unit; and the control unit is electrically connected to the wind turbine generator set.

3. The wind power generation system according to claim 1, characterized in that: The two sides of the upper adjustment plate are attached to the inner sides of the left windshield and the right windshield; the two sides of the lower adjustment plate are attached to the inner sides of the left windshield and the right windshield; The assembly of the upper and lower adjustment plates satisfies the following requirements: the upper rotating shaft at the rear end of the upper adjustment plate fits on the top of the fixed frame, and the lower rotating shaft at the rear end of the lower adjustment plate fits on the bottom of the fixed frame.

4. The wind power generation system according to claim 1, characterized in that: The upper control assembly includes: an upper controller, an upper connecting rod and an upper coupling; the lower control assembly includes: a lower controller, a lower connecting rod and a lower coupling; One end of the upper controller is fixedly connected to the top of the control unit based on the upper connecting rod, and the other end is connected to the upper rotating shaft based on the upper coupling; one end of the lower controller is fixedly connected to the bottom of the control unit based on the lower connecting rod, and the other end is connected to the lower rotating shaft based on the lower coupling.

5. The wind power generation system according to claim 4, characterized in that: The telescopic control assembly includes: a first telescopic controller, a horizontal telescopic rod, a second telescopic controller, an upper telescopic connecting rod group, a lower telescopic connecting rod group, a top adjustment end, a top connecting rod, a bottom adjustment end, and a bottom connecting rod; The top adjustment end is connected to the side of the upper adjustment plate based on the top connecting rod; the bottom adjustment end is connected to the side of the lower adjustment plate based on the bottom connecting rod; The horizontal telescopic rod, the upper telescopic connecting rod group and the lower telescopic connecting rod group are provided with a structural fixing locking device.

6. The wind power generation system according to claim 5, characterized in that: The first telescopic controller is fixed to the front end of the control unit; the rear end of the horizontal telescopic rod is connected to the first telescopic controller, and the front end of the horizontal telescopic rod is connected to the second telescopic controller; The bottom end of the upper telescopic connecting rod group is connected to the top end of the second telescopic controller, and the top end of the upper telescopic connecting rod group is connected to the bottom side of the top adjustment end; The top end of the lower telescopic connecting rod group is connected to the bottom end of the second telescopic controller, and the bottom end of the lower telescopic connecting rod group is connected to the top side of the bottom adjustment end.

7. The wind power generation system according to claim 5, characterized in that: The left windshield is provided with: a first adapting hole / a second adapting hole adapted to fit the upper coupling / the lower coupling, and a first arc slideway / a second arc slideway adapted to fit the top connecting rod / the bottom connecting rod; The first arc slideway is configured to: take the first adapter hole as the center, start at 0 degrees in the positive direction, and rotate 90 degrees counterclockwise; The second arc slideway is set to: take the second adapter hole as the center of the circle, start at 0 degrees in the positive direction, and rotate 90 degrees clockwise.

8. The wind power generation system according to claim 5, characterized in that: The control unit synchronously and symmetrically adjusts and rotates the upper and lower rotating shafts based on the real-time wind force detected by the wind force detection device to adjust the degree of compression of the external wind by the wind force adjustment device, thereby ensuring that the wind force at the wind turbine generator set air inlet is within a preset range; The structural fixing lock device corresponding to the horizontal telescopic rod, the upper telescopic connecting rod group and the lower telescopic connecting rod group satisfies the following conditions: when either the upper rotating shaft or the lower rotating shaft is in a rotating state, the structural fixing lock device is in an unlocked state; otherwise, the structural fixing lock device is in a locked state.

9. The wind power generation system according to claim 8, characterized in that: The ground visualization device is used to remotely set preset parameters and display real-time data adjustment of the air inlet wind force adjustment device; The preset parameters include: the preset outlet wind speed of the air inlet wind speed regulating device and the external real-time wind speed change threshold; and the real-time data adjustment method includes: If the change value of F1 exceeds the preset threshold, the parameter A is calculated based on the control unit, as shown in formula (1), and the upper and lower shafts are driven to rotate accordingly; A=a-arcsin(F2 / 2F1-k / 2l) (1); Wherein, F1 is the external real-time wind force, in meters per second; F2 is the preset outlet wind force of the inlet wind force regulating device, in meters per second; A is the angle of either the upper or lower rotating shaft that needs to be adjusted, in degrees; k is the height of the fixed frame, in meters; l is the length of either the upper or lower adjusting plate, in meters; a is the angle between either the upper or lower adjusting plate and the horizontal direction, in meters per second; Among them, when the value of A is a positive number, the upper shaft rotates clockwise and the lower shaft rotates counterclockwise; when the value of A is a negative number, the upper shaft rotates counterclockwise and the lower shaft rotates clockwise.

10. The wind power generation system according to claim 9, characterized in that: The initial value of a is set in combination with the external real-time wind force corresponding to the start-up of the air inlet wind force regulating device; when either the upper regulating plate or the lower regulating plate rotates, the value change of a satisfies the formula (2): a=arcsin(F2 / 2F1-k / 2l) (2).