Multi-axis linkage anti-shake fan gyroscope dynamic display device

Through multi-axis linkage anti-shake design, the problems of shaking and mode switching complexity in the dynamic display device of wind turbine gyroscope during the display process are solved, realizing the stable fixation of wind turbine rotor and multi-mode rotation display, improving safety and display effect.

CN121606159APending Publication Date: 2026-03-06GUANGZHOU LIZHOU AIR CONDITIONING ELECTROMECHANICAL EQUIP CO LTD
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Patent Information

Application Number
CN202610052588.8
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2026-01-15
Publication Date
2026-03-06

AI Technical Summary

Technical Problem

Existing wind turbine gyroscope dynamic display devices exhibit vibration when displaying wind turbines, which reduces the safety and display effect of the device. Furthermore, switching display modes is complex and increases the difficulty of operation.

Method used

Employing a multi-axis linkage anti-vibration design, the combination of anti-vibration mechanism, snap-fit ​​component, self-rotation component, and revolution component enables the stable fixing of the wind turbine rotor and the switching of multiple rotation modes, including free adjustment of self-rotation and revolution.

Benefits of technology

It improves the safety and flexibility of the display device, simplifies the operation process, and enables a 360-degree display of the wind turbine and rotor without blind spots.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of fan dynamic display, and discloses a multi-axis linkage anti-shake fan gyroscope dynamic display device which comprises a display base, a plurality of supporting rods are rotatably connected to the outer walls of two connecting rings at equal intervals, and a plurality of limiting rods are rotatably connected to the edges of one ends of two pushing shafts at equal intervals. According to the device, an electric cylinder in the first mounting groove is started to push a push shaft at one end to stretch out and draw back outside the rotating frame, and an extrusion ring extrudes the outer wall of one side of the rotating frame while stretching out and drawing back, so that the connecting ring is limited by the extrusion ring to continue to move, and then the connecting ring slides relative to the push shaft; a supporting rod rotationally connected to the outer side of the connecting ring rotates along with the supporting rod to extrude a limiting rod at the edge of a pushing shaft to rotate, incline and erect, one end of the limiting rod continuously approaches the outer wall of the fan, after the limiting rod makes contact with the outer wall of the fan, contraction of the pushing shaft is stopped, and the two sides of the pushing shaft are extruded in cooperation with the limiting ring, so that the pushing shaft cannot shake in the rotating display process.
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Description

Technical Field

[0001] This invention belongs to the technical field of dynamic display of wind turbines, and specifically relates to a multi-axis linkage anti-shake wind turbine gyroscope dynamic display device. Background Technology

[0002] Wind turbines, as key electrical equipment that efficiently converts wind energy into mechanical work and further outputs alternating current, occupy a pivotal position in the renewable energy field. They typically consist of important components such as a wind rotor, generator (including related devices), directional control (tail fin), tower, speed limiting safety mechanism, and energy storage device. The wind rotor, commonly known as the fan blade, varies in size and specifications depending on the specific application and power generation frequency requirements of the wind turbine. In the production and sales of wind turbines, the wind rotor is often sold and displayed separately.

[0003] During the demonstration, to facilitate customers' intuitive understanding of the structural details of the wind turbine's upper part and to allow researchers to delve into its material properties, a 360-degree, all-around display is crucial. Given the typically large size of these wind turbines, achieving a seamless display necessitates the use of a gyroscope-based dynamic display device. This device rotates the wind turbine to various angles for the demonstration. With the rapid development of modern technology, the functionality and structure of gyroscope-based dynamic display devices have been continuously upgraded, resulting in significant improvements in ease of operation. However, existing dynamic display devices for wind turbine gyroscopes still have the following drawbacks during use: 1. Existing gyroscope-based dynamic display devices for wind turbine rotors are prone to vibration during rotation due to the large size and weight of the rotor. Prolonged exposure to this vibration not only causes severe wear and tear on the display device, shortening its lifespan, but more seriously, it can lead to the rotor detaching, posing a significant safety hazard. Unfortunately, ordinary gyroscope-based dynamic devices lack anti-vibration functions and related structures for the wind turbine rotor display process, which undoubtedly greatly reduces the safety of the display device during the demonstration. 2. Existing gyroscope dynamic display devices lack flexibility in switching between the two display modes of revolution and rotation when dynamically displaying wind turbine rotors. During the display process, the wind turbine can often only perform a single rotation display, making it difficult for researchers and customers to clearly and comprehensively observe the rotor from different angles. This greatly limits the display effect of the device and reduces its display flexibility. 3. Existing wind turbine gyroscope dynamic display mechanisms require numerous complex structural parts interconnected to freely switch between revolution and rotation. This not only complicates the overall structure of the device but also necessitates a series of tedious procedures for operators to switch rotation modes. This increases the workload of staff and makes the switching process prone to errors, further reducing the ease of use of the device.

[0004] Therefore, it is necessary to invent a multi-axis linkage anti-shake dynamic display device for wind turbine gyroscopes to solve the above problems. Summary of the Invention

[0005] To address the aforementioned problems, this invention provides a multi-axis linkage anti-shake dynamic display device for wind turbine gyroscopes, thereby resolving the issues raised in the background section.

[0006] To achieve the above objectives, the present invention provides the following technical solution: a multi-axis linkage anti-shake dynamic display device for a wind turbine gyroscope, comprising a display base, a rotating base, and two display supports. The upper ends of the two display supports are each equipped with an anti-shake mechanism. The upper ends of the rotating base are respectively equipped with a snap-fit ​​component, a rotation component, and a revolution component. The rotating base is rotatably mounted on the top of the display base, and the two display supports are respectively placed on both sides of the top of the rotating base. The anti-shake mechanism includes rotating frames rotatably mounted on top of two display supports. Each rotating frame has a first mounting groove on its inner wall at one end. A push shaft is inserted into the inner wall at one end of each of the two first mounting grooves. An electric cylinder is mounted on the inner wall at the other end of each of the two first mounting grooves, and one end of each push shaft is inserted into the output end of one of the two electric cylinders. A limiting ring is fitted onto the outer wall at one end of each of the two rotating frames. A connecting ring is fitted onto the outer wall at one end of each of the two push shafts. A compression ring is fixed to one end of each of the two connecting rings. The outer walls of the two connecting rings are equal in size. Multiple support rods are rotatably connected at a distance. Multiple limiting rods are rotatably connected at equal distances at the edges of one end of the two push shafts. Each limiting rod has a connecting groove on one side. The outer wall of one end of each support rod is rotatably connected to the inner wall of each connecting groove. A roller is rotatably connected to one end of each limiting rod. A fan body is fitted on the outer wall of one end of each of the two rotating frames. One side of each fan body is extruded from one side of each of the two limiting rings. The other side of each fan body contacts the outer wall of one of the rollers. A support frame is fixedly provided on one side of the top of the rotating base. Preferably, the snap-fit ​​assembly includes a second mounting groove formed on the top of the support frame, one end of the inner wall of the second mounting groove is rotatably connected to a first gear, one end of the first gear passes through the outer wall of one side of the support frame and is fixedly connected to a first motor, the other ends of the two rotating frames are each provided with a first snap-fit ​​groove, and the two sides of the inner wall of the two first snap-fit ​​grooves are each provided with a second snap-fit ​​groove.

[0007] Preferably, a second gear is rotatably connected to the other end of the inner wall of the second mounting groove, and a snap-fit ​​connector is fixedly connected to both sides of the second gear through both sides of the support frame. A storage groove is opened on both sides of the two snap-fit ​​connectors, and a snap-fit ​​block is inserted into the inner wall of the two storage grooves.

[0008] Preferably, telescopic grooves are provided at both ends of the bottom of the inner walls of the two storage slots, and support shafts are fixedly provided on both sides of the bottom of the two card blocks. The outer wall of one end of each support shaft is inserted and connected to the inner wall of each telescopic groove. A spring is sleeved on the outer wall of each support shaft, and the two ends of the four springs are fixedly connected to the bottom of the two card blocks and the bottom of the inner wall of the storage slot, respectively.

[0009] Preferably, a support pad is fixedly provided at the lower end of one side of the support frame, and a second motor is installed on the top of the support pad.

[0010] Preferably, the self-rotating component includes limiting grooves on both sides of the top of the rotating base, limiting sliders are fixedly provided at the bottom of the two display brackets, and the two limiting sliders are slidably connected to the inner walls of the two limiting grooves respectively. A screw hole is provided on one side of each of the two limiting sliders, and a fixing frame is fixedly provided at the middle position of the top of the rotating base.

[0011] Preferably, the inner wall of the rotating base is rotatably connected to a connecting shaft, and the two ends of the connecting shaft are respectively fixedly connected to screws through the inner walls of two limiting slide grooves. The outer walls of the two screws are respectively threaded to the inner walls of two screw holes. A first helical gear is fixedly provided on the outer wall of the connecting shaft. A second helical gear is meshed on the outer wall of the first helical gear. The second helical gear is rotatably connected to the inner wall of the fixed frame, and one end of the second helical gear passes through the top of the support pad and is fixedly connected to the output end of the second motor.

[0012] Preferably, the revolution assembly includes a gear ring fixedly installed at the lower edge of the outer wall of the rotating base, a mounting frame is fixedly provided on one side of the outer wall of the display base, a third gear is rotatably connected to the inner wall of the mounting frame, a third motor is installed on the top of the mounting frame, and one end of the third gear passes through the top of the mounting frame and is fixedly connected to the output end of the third motor.

[0013] Preferably, a control panel is installed on one side of the display base, and the electric cylinder, the first motor, the second motor and the third motor are all electrically connected to an external power source through the control panel.

[0014] The technical effects and advantages of this invention are as follows: 1. During the rotation process, the electric cylinder inside the first mounting slot is activated to push the push shaft at one end to extend and retract outside the rotating frame. At the same time as the extension and retraction, the compression ring will press against the outer wall of one side of the rotating frame, restricting the connecting ring from continuing to move, and thus sliding relative to the push shaft. While sliding, the support rod rotatably connected to the outer side of the connecting ring rotates accordingly, thereby pressing the limiting rod against the edge of the push shaft and tilting it upright. As the push shaft continues to retract within the first mounting slot, one end of the limiting rod continuously approaches the outer wall of the fan until it contacts the outer wall, at which point the retraction of the push shaft stops. The roller on one side of the limiting rod presses against one side of the fan wheel, while the other side of the fan wheel presses against one side of the limiting ring, thus firmly fixing the fan wheel to the rotating frame. This prevents it from shaking during the rotation display process, making it less likely to fall off the display equipment and cause risks, thereby improving the safety of the gyroscope dynamic display device. 2. In this invention, during the snap-fit ​​process, the display brackets are brought closer together using the self-rotating component. After the snap-fit ​​connector snaps into the first slot, the first motor is activated to rotate the first gear. The first gear meshes with the second gear and rotates, causing the snap-fit ​​connector to rotate within the first slot. Simultaneously, as the snap-fit ​​connector snaps into the first slot, the snap-fit ​​blocks on both sides are compressed and tilted, retracting into the storage slot. When the snap-fit ​​connector is rotated within the first slot by the second gear, and the snap-fit ​​blocks are positioned on the inner walls of the two second slots, the elastic support of the springs and support shafts causes the snap-fit ​​blocks to pop out of the storage slots and snap into place. In the second slot, the card connector continues to rotate, which in turn rotates the rotating frame and the fan body. With the help of the revolution component, the rotation and revolution can be synchronized. When the revolution needs to be stopped, the fan body can rotate independently. After the display bracket is pushed back, the card block is squeezed and stored in the storage slot again, which can release the card connector from the first slot and release the rotation constraint, so that the fan body can rotate independently. This allows for multi-axis linkage to freely adjust the revolution and rotation of the fan body during the display process without complicated operation steps, thereby improving the flexibility of the display device. 3. In this invention, when the self-rotating fan body is required, the second motor is started to rotate the second helical gear, which in turn meshes with the first helical gear to rotate the connecting shaft. The screw threads at both ends of the connecting shaft are opposite and are threadedly connected to the screw holes on one side of the limiting slider. This allows the display bracket to move closer to or away from each other. After the snap-fit ​​assembly is connected, the fan body can rotate. The third motor on the mounting frame is started to drive the third gear to rotate, which in turn meshes with the gear ring to rotate, causing the rotating base to start rotating. This allows the fan body mounted on the display bracket to revolve and be displayed. In conjunction with the snap-fit ​​assembly and the self-rotating assembly, the fan body can be displayed 360 degrees without any blind spots. No complicated adjustment operations are required, making it convenient for staff to adjust the fan when displaying it, thus improving the ease of use of the device.

[0015] Other features and advantages of the invention will be set forth in the description which follows, and will be apparent in part from the description, or may be learned by practicing the invention. The objects and other advantages of the invention may be realized and obtained by means of the structures pointed out in the description, claims and drawings. Attached Figure Description

[0016] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0017] Figure 1 This is a schematic diagram of the front of the invention; Figure 2 This is a schematic diagram of the side of the invention; Figure 3 This is a schematic diagram showing the overall structure of the support frame of this invention; Figure 4 This is a schematic diagram illustrating the anti-shake mechanism of the present invention; Figure 5 This is a schematic diagram of the connection between the limiting rod, support rod, and connecting ring of the present invention; Figure 6 This is a schematic diagram of the entire support frame of the present invention; Figure 7 This is a schematic diagram of the interior of the card connector of the present invention; Figure 8 This is an appendix to the specification of this invention. Figure 7 An enlarged schematic diagram of point A in the middle; Figure 9 This is a schematic diagram of the top of the rotating base of the present invention; Figure 10 This is a schematic diagram of the rotating screw driven by the meshing of the first helical gear and the second helical gear of the present invention.

[0018] In the diagram: 1. Display base; 2. Rotating base; 3. Display bracket; 4. Display anti-vibration mechanism; 401. Rotating frame; 402. First mounting slot; 403. Push shaft; 404. Electric cylinder; 405. Limiting ring; 406. Connecting ring; 407. Compression ring; 408. Support rod; 409. Limiting rod; 410. Connecting slot; 411. Roller; 412. Fan body; 5. Support frame; 6. Snap-fit ​​assembly; 601. Second mounting slot; 602. First gear; 603. First motor; 604. First slot; 605. Second slot 606. Second gear; 607. Snap-fit ​​connector; 608. Storage slot; 609. Snap-fit ​​block; 610. Telescopic slot; 611. Support shaft; 612. Spring; 7. Support pad; 8. Second motor; 9. Rotation assembly; 901. Limiting slide groove; 902. Limiting slider; 903. Screw hole; 904. Fixing bracket; 905. Connecting shaft; 906. Screw; 907. First helical gear; 908. Second helical gear; 10. Revolution assembly; 1001. Gear ring; 1002. Mounting bracket; 1003. Third gear; 1004. Third motor. Detailed Implementation

[0019] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0020] This invention provides, for example Figure 1 - Figure 10 The multi-axis linkage anti-shake dynamic display device for a wind turbine gyroscope includes a display base 1, a rotating base 2, and two display supports 3. The device is characterized in that: a display anti-shake mechanism 4 is installed on the upper end of each of the two display supports 3, and a snap-fit ​​component 6, a rotation component 9, and a revolution component 10 are respectively installed on the upper end of the rotating base 2. The rotating base 2 is rotatably mounted on the top of the display base 1, and the two display supports 3 are respectively placed on both sides of the top of the rotating base 2. The anti-shake mechanism 4 includes rotating frames 401 rotatably mounted on top of two display supports 3. Each rotating frame 401 has a first mounting groove 402 on its inner wall at one end. A push shaft 403 is inserted into the inner wall at one end of each of the two first mounting grooves 402. An electric cylinder 404 is mounted on the inner wall at the other end of each of the two first mounting grooves 402. One end of each push shaft 403 is inserted into the output end of each electric cylinder 404. A limiting ring 405 is fitted onto the outer wall at one end of each of the two rotating frames 401. A connecting ring 406 is fitted onto the outer wall at one end of each of the two push shafts 403. A compression ring 407 is fixed to one end of each connecting ring 406. The outer walls of the two connecting rings 406 are equidistant from each other. Multiple support rods 408 are rotatably connected. Multiple limiting rods 409 are rotatably connected at equal distances at the edges of one end of the two push shafts 403. A connecting groove 410 is opened on one side of each limiting rod 409. The outer wall of one end of each support rod 408 is rotatably connected to the inner wall of each connecting groove 410. A roller 411 is rotatably connected to one end of each limiting rod 409. A fan body 412 is sleeved on the outer wall of one end of each of the two rotating frames 401. One side of each of the two fan bodies 412 contacts one side of each of the two limiting rings 405. The other side of each of the two fan bodies 412 contacts the outer wall of one of the multiple rollers 411. A support frame 5 is fixedly provided on one side of the top of the rotating base 2. In use, the fan impeller is installed on the outer wall of the two rotating frames 401 at the top of the display bracket 3. It is then rotated 360 degrees without any blind spots, in conjunction with the snap-fit ​​assembly 6, the self-rotation assembly 9, and the revolution assembly 10. During the display, the revolution and rotation can be freely adjusted. During rotation, the electric cylinder 404 inside the first mounting slot 402 is activated, causing the push shaft 403 at one end to extend and retract outside the rotating frame 401. Simultaneously, the compression ring 407 presses against one side of the outer wall of the rotating frame 401, limiting its movement. As the connecting ring 406 continues to move, it slides relative to the push shaft 403. Simultaneously, the support rod 408, rotatably connected to the outer side of the connecting ring 406, rotates, pressing the limiting rod 409 against the edge of the push shaft 403, causing it to tilt and stand upright. As the push shaft 403 continuously retracts within the first mounting groove 402, one end of the limiting rod 409 continuously approaches the outer wall of the fan until it contacts the outer wall, at which point the retraction of the push shaft 403 stops. At this point, the limiting rod 409 and support rod 408 are as shown in the attached instruction manual. Figure 5 As shown, the roller 411 on one side of the limiting rod 409 presses against one side of the wind wheel, while the other side of the wind wheel presses against one side of the limiting ring 405, thereby firmly fixing the wind wheel to the rotating frame 401, so that it will not shake during the rotation display, and thus it is not easy to fall off the display equipment and cause risks, thereby improving the safety of the gyroscope dynamic display device. At the same time, the structure of the display anti-shake mechanism 4 is simple, easy to operate, and convenient for subsequent disassembly and assembly of the wind wheel. Furthermore, the snap-fit ​​assembly 6 includes a second mounting groove 601 opened on the top of the support frame 5. One end of the inner wall of the second mounting groove 601 is rotatably connected to a first gear 602. One end of the first gear 602 passes through the outer wall of one side of the support frame 5 and is fixedly connected to a first motor 603. The other ends of the two rotating frames 401 are each provided with a first snap-fit ​​groove 604. The two sides of the inner wall of the two first snap-fit ​​grooves 604 are each provided with a second snap-fit ​​groove 605.

[0021] The other end of the inner wall of the second mounting slot 601 is rotatably connected to the second gear 606. The two sides of the second gear 606 pass through the two sides of the support frame 5 and are fixedly connected to the snap-fit ​​connectors 607. Both sides of the snap-fit ​​connectors 607 are provided with storage slots 608. The inner walls of the two storage slots 608 are connected with snap-fit ​​blocks 609. With the cooperation of the self-rotating component 9, the display bracket 3 can be moved on the rotating base 2, thereby bringing the rotating frame 401 close to the two snap-fit ​​connectors 607 at the top of the support frame 5, so that the snap-fit ​​connectors 607 can be snapped into the first snap-fit ​​slot 604 for docking.

[0022] Both ends of the bottom of the inner walls of the two storage slots 608 are provided with telescopic grooves 610. Support shafts 611 are fixedly provided on both sides of the bottom of the two locking blocks 609. The outer wall of one end of each support shaft 611 is inserted and connected to the inner wall of each telescopic groove 610. A spring 612 is fitted onto the outer wall of each support shaft 611. The two ends of the four springs 612 are fixedly connected to the bottom of the two locking blocks 609 and the bottom of the inner wall of the storage slot 608, respectively. During the rotation adjustment process, the rotating frame 401 needs to be engaged with the locking connector 607. During engagement, the display bracket 3 is brought closer together in conjunction with the rotation component 9. Then, after the locking connector 607 is engaged into the first locking slot 604, the first motor 603 is started to rotate the first gear 602. After the first gear 602 meshes with the second gear 606 and rotates, the locking connector 607 rotates within the first locking slot 604. Simultaneously, as the locking connector 607 engages into the first locking slot 604, the locking blocks 609 on both sides are pressed against the inclined surface. Then, it retracts into the storage slot 608. When the snap-fit ​​connector 607 is driven by the second gear 606 to rotate in the first slot 604, the snap-fit ​​block 609 is placed on the inner wall of the two second slots 605. Under the elastic support of the spring 612 and the support shaft 611, the snap-fit ​​block 609 pops out of the storage slot 608 and snaps into the second slot 605. At this time, the snap-fit ​​connector 607 continues to rotate, which will drive the rotating frame 401 to rotate, and then drive the fan body 412 to rotate for display. With the help of the revolution component 10, the rotation and revolution can be synchronized. When the revolution needs to be stopped, it can rotate independently. After the display bracket 3 is pushed back, the snap-fit ​​block 609 is squeezed and stored in the storage slot 608 again, which can release the snap-fit ​​connector 607 from the first slot 604, thus releasing the rotation constraint and realizing independent revolution. This realizes the free adjustment of revolution and rotation of the fan body 412 during the display process through multi-axis linkage, without the need for complicated operation steps, thereby improving the flexibility of the display device. Furthermore, a support plate 7 is fixedly provided at the lower end of one side of the support frame 5, and a second motor 8 is installed on the top of the support plate 7, as shown in the instruction manual. Figure 1 Included with instruction manual Figure 6 As shown, the external structure of the support frame 5 does not affect the normal operation of the equipment, and the second motor 8 is installed on the support pad 7 on one side of the support frame 5. Furthermore, the self-rotating component 9 includes limiting slide grooves 901 opened on both sides of the top of the rotating base 2. The bottom of each of the two display brackets 3 is fixedly provided with limiting sliders 902, and the two limiting sliders 902 are slidably connected to the inner walls of the two limiting slide grooves 901 respectively. Each of the two limiting sliders 902 has a screw hole 903 opened on one side. A fixing bracket 904 is fixedly provided at the middle position of the top of the rotating base 2, and the two display brackets 3 are installed in the limiting slide grooves 901 on the top of the rotating base 2 through the limiting sliders 902, so that they can slide in them, thereby adjusting the distance between the rotating bracket 401 and the snap-fit ​​component 6.

[0023] The inner wall of the rotating base 2 is rotatably connected to a connecting shaft 905. The two ends of the connecting shaft 905 pass through the inner walls of two limiting slide grooves 901 and are fixedly connected to screws 906. The outer walls of the two screws 906 are threadedly connected to the inner walls of two screw holes 903. The outer wall of the connecting shaft 905 is fixedly provided with a first helical gear 907. The outer wall of the first helical gear 907 meshes with a second helical gear 908. The second helical gear 908 is rotatably connected to the inner wall of the fixed frame 904. One end of the second helical gear 908 passes through the top of the support pad 7 and is fixedly connected to the output end of the second motor 8. When the fan body 412 needs to rotate, the second motor 8 is started to rotate the second helical gear 908, which then meshes with the first helical gear 907 to rotate the connecting shaft 905. The screws 906 at both ends of the connecting shaft 905 have opposite threads. After being threadedly connected to the screw holes 903 on one side of the limiting slider 902, the display bracket 3 can be brought closer or further apart. Then, after the snap-fit ​​assembly 6 is docked, it can rotate. Furthermore, the revolution component 10 includes a gear ring 1001 fixedly installed on the lower edge of the outer wall of the rotating base 2. A mounting bracket 1002 is fixedly provided on one side of the outer wall of the display base 1. A third gear 1003 is rotatably connected to the inner wall of the mounting bracket 1002. A third motor 1004 is installed on the top of the mounting bracket 1002. One end of the third gear 1003 passes through the top of the mounting bracket 1002 and is fixedly connected to the output end of the third motor 1004. When the third motor 1004 on the mounting bracket 1002 is started, it drives the third gear 1003 to rotate, thereby engaging the gear ring 1001 to rotate, so that the rotating base 2 starts to rotate. This allows the fan body 412, which is mounted above by the display bracket 3, to be displayed around the center. In conjunction with the snap-fit ​​component 6 and the self-rotation component 9, the fan body 412 can be displayed 360 degrees without any blind spots. No complicated adjustment operations are required, making it convenient for staff to adjust the fan when displaying it, thus improving the ease of use of the device.

[0024] Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features; and these modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of the present invention.

Claims

1. A multi-axis linkage anti-shake fan gyroscope dynamic display device, comprising a display base (1), a rotating base (2) and two display supports (3), characterized in that: The upper ends of the two display supports (3) are provided with display anti-shaking mechanisms (4), the upper end of the rotating base (2) is respectively provided with a clamping assembly (6), a self-rotation assembly (9) and a revolution assembly (10), wherein the rotating base (2) is rotatably installed on the top of the display base (1), and the two display supports (3) are arranged on the two sides of the top of the rotating base (2). The display anti-shaking mechanism (4) comprises rotating frames (401) rotatably installed on the top of the two display supports (3), the inner wall of one end of each of the two rotating frames (401) is provided with a first mounting groove (402), the inner wall of one end of each of the two first mounting grooves (402) is connected with a push shaft (403), the inner wall of the other end of each of the two first mounting grooves (402) is provided with an electric cylinder (404), one end of each of the two push shafts (403) is connected with the output end of the electric cylinder (404), the outer wall of one end of each of the two rotating frames (401) is provided with a limiting ring (405), the outer wall of one end of each of the two push shafts (403) is provided with a connecting ring (406), one end of each of the two connecting rings (406) is fixedly provided with a pressing ring (407), the outer wall of each of the two connecting rings (406) is rotatably connected with a plurality of supporting rods (408) at equal distances, the edge of one end of each of the two push shafts (403) is rotatably connected with a plurality of limiting rods (409) at equal distances, one side of each of the limiting rods (409) is provided with a connecting groove (410), and the outer wall of one end of each of the supporting rods (408) is rotatably connected with the inner wall of each of the connecting grooves (410), one end of each of the limiting rods (409) is rotatably connected with a roller (411), the outer wall of one end of each of the two rotating frames (401) is provided with a fan body (412), one side of each of the two fan bodies (412) is extruded with one side of each of the limiting rings (405), the other side of each of the two fan bodies (412) is in contact with the outer wall of a plurality of the rollers (411), and one side of the top of the rotating base (2) is fixedly provided with a supporting frame (5).

2. The multi-axis linkage anti-shake fan gyroscope dynamic display device according to claim 1, characterized in that: The clamping assembly (6) comprises a second mounting groove (601) formed in the top of the supporting frame (5), the inner wall of one end of the second mounting groove (601) is rotatably connected with a first gear (602), one end of the first gear (602) is fixedly connected with a first motor (603) penetrating through the outer wall of one side of the supporting frame (5), the other end of each of the two rotating frames (401) is provided with a first clamping groove (604), and the inner wall of each of the two first clamping grooves (604) is provided with a second clamping groove (605).

3. The multi-axis linkage anti-shake fan gyroscope dynamic display device according to claim 2, characterized in that: The inner wall of the other end of the second mounting groove (601) is rotatably connected with a second gear (606), the two sides of the second gear (606) are fixedly connected with clamping heads (607) penetrating through the two sides of the supporting frame (5), the two sides of each of the clamping heads (607) are provided with receiving grooves (608), and the inner wall of each of the receiving grooves (608) is connected with a clamping block (609).

4. The multi-axis linkage anti-shake fan gyroscope dynamic display device according to claim 3, characterized in that: Two ends of the inner wall bottom of each of the two accommodation grooves (608) are provided with an expansion groove (610), both sides of the bottom of each of the two clamping blocks (609) are fixedly provided with a supporting shaft (611), and the outer wall of one end of each supporting shaft (611) is respectively connected with the inner wall of each expansion groove (610), the outer wall of each supporting shaft (611) is sleeved with a spring (612), and the two ends of the four springs (612) are respectively fixedly connected with the bottom of the two clamping blocks (609) and the bottom of the inner wall of the accommodation groove (608).

5. The multi-axis linkage anti-shake fan gyroscope dynamic display device according to claim 1, characterized in that: The lower end of one side of the supporting frame (5) is fixedly provided with a supporting pad plate (7), and the top of the supporting pad plate (7) is provided with a second motor (8).

6. The multi-axis linkage anti-shake fan gyroscope dynamic display device according to claim 1, characterized in that: The autorotation assembly (9) comprises two limiting sliding grooves (901) provided on the top of the rotating base (2), the bottoms of the two display supports (3) are fixedly provided with two limiting sliding blocks (902), the two limiting sliding blocks (902) are respectively connected with the inner walls of the two limiting sliding grooves (901), one side of each of the two limiting sliding blocks (902) is provided with a threaded hole (903), and the middle position of the top of the rotating base (2) is fixedly provided with a fixing frame (904).

7. The multi-axis linkage anti-shake fan gyroscope dynamic display device according to claim 1, characterized in that: The inner wall of the rotating base (2) is rotatably connected with a connecting shaft (905), the two ends of the connecting shaft (905) are respectively fixedly connected with two screw rods (906) penetrating through the inner walls of the two limiting sliding grooves (901), the outer walls of the two screw rods (906) are respectively screwed with the inner walls of the two threaded holes (903), the outer wall of the connecting shaft (905) is fixedly provided with a first helical gear (907), the outer wall of the first helical gear (907) is engaged with a second helical gear (908), the second helical gear (908) is rotatably connected with the inner wall of the fixing frame (904), and one end of the second helical gear (908) is fixedly connected with the output end of the second motor (8) penetrating through the top of the supporting pad plate (7).

8. The multi-axis linkage anti-shake fan gyroscope dynamic display device according to claim 7, characterized in that: The revolution assembly (10) comprises a gear ring (1001) fixedly installed at the lower edge of the outer wall of the rotating base (2), one side of the outer wall of the display base (1) is fixedly provided with a mounting frame (1002), the inner wall of the mounting frame (1002) is rotatably connected with a third gear (1003), the top of the mounting frame (1002) is provided with a third motor (1004), and one end of the third gear (1003) is fixedly connected with the output end of the third motor (1004) penetrating through the top of the mounting frame (1002).

9. The multi-axis linkage anti-shake fan gyroscope dynamic display device according to claim 1, characterized in that: One side of the display base (1) is provided with a control panel, and the electric cylinder (404), the first motor (603), the second motor (8) and the third motor (1004) are electrically connected with the external power supply through the control panel.