Camera with anti-shake structure
By introducing a buffer stabilization component into the camera, the energy of the buffer spring is consumed by frictional resistance and magnetic force, thus solving the camera shake problem caused by the vibration of the buffer spring and improving the camera's stability.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- GUANGZHOU SUNRISE ELECTRONICS TECH
- Filing Date
- 2025-01-10
- Publication Date
- 2026-06-02
AI Technical Summary
When existing cameras are subjected to impact, the buffer springs are prone to vibration, causing the camera to shake and affecting the stability of the video recording.
The system employs a buffer stabilization assembly, including a tray, mounting plate, sliding base, buffer spring, longitudinal friction stabilization unit, lateral friction stabilization unit, and fine-tuning stabilization unit. It reduces camera shake by consuming the energy of the buffer spring through frictional resistance and magnetic force.
It effectively reduces camera shake caused by the vibration of the buffer spring after being subjected to impact, thus improving camera stability.
Smart Images

Figure CN119755259B_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of cameras, specifically a camera with an image stabilization structure. Background Technology
[0002] A webcam generally has basic functions such as transmitting video and capturing still images. It captures images through a lens, and then the image is processed by the webcam's internal photosensitive components and control components, converting it into a digital signal that a computer can recognize. This signal is then input to a computer via a parallel port or USB connection, where software reconstructs the image. When using a webcam, it is typically mounted on a support bracket, forming a complete unit. To protect the webcam, the support bracket usually has a buffer spring. When the webcam is subjected to external impact, the buffer spring can cushion the impact, thus protecting the webcam. However, the following drawbacks still exist:
[0003] When subjected to an impact, the buffer spring is compressed and stores energy. When the impact disappears, the buffer spring is prone to vibration, which in turn causes the camera to shake, thus making the camera's recording stability worse. Summary of the Invention
[0004] In order to overcome the shortcomings of the prior art, the present invention provides a camera with a stabilization structure, which effectively solves the problem that the camera shake is easily caused when the buffer spring is used to protect the camera.
[0005] To achieve the above objectives, the present invention provides the following technical solution: a camera with an image stabilization structure, comprising a mounting bracket and a camera module, wherein a top platform is movably mounted inside the mounting bracket, a buffer image stabilization component for mounting the camera module is mounted on the top of the top platform, a height adjustment component is mounted on the bottom of the top platform, a base is mounted on the bottom of the mounting bracket, and a control panel is mounted on the front of the mounting bracket.
[0006] The image stabilization assembly includes a support plate located above a top platform, a mounting plate above the support plate, and a fixing bolt at the top of the mounting plate for mounting the camera module. Multiple support rods are hinged at equal angles at the bottom of the support plate, and a sliding seat is hinged at the bottom of each support rod. The sliding seat is slidably mounted inside a sliding groove, which is angled on the top platform. A buffer spring is mounted on the side of the sliding seat away from the central axis of the top platform, with one end of the buffer spring fixedly connected to the inner wall of the sliding groove. Double-sided toothed plates are mounted at the bottom of the support plate, and a longitudinal friction image stabilization unit is mounted on the outer side of the double-sided toothed plates. A fine-tuning image stabilization unit is installed between the support plate and the mounting plate.
[0007] Preferably, the longitudinal friction anti-vibration unit includes two side plates symmetrically arranged on both sides of the double-sided toothed plate. A support plate is installed on the side of the two side plates that are far apart from each other. The support plate is fixedly installed on the top platform. Two gears are symmetrically rotatably installed between the two side plates. The two gears mesh with the toothed sides of the double-sided toothed plate respectively. A first internal groove is symmetrically opened inside the side plate. Circular blocks are symmetrically installed at both ends of the gear shaft. The circular blocks are located inside the first internal groove. A transverse friction anti-vibration unit is installed between the support plate and the sliding seat.
[0008] Preferably, a movable groove is provided in the middle of the side plate, extending through to the side of the side plate near the double toothed plates. A first friction plate and a pressure plate are movably installed inside the movable groove. The first friction plate contacts the side wall of the double toothed plates. A first spring is installed between the pressure plate and the first friction plate. Second internal grooves are symmetrically provided on both sides of the movable groove. Moving blocks are movably installed inside the second internal grooves. Pushing rods are symmetrically hinged on both sides of the pressure plate. The other ends of the two pushing rods are respectively hinged to the two moving blocks.
[0009] Preferably, a winding groove is provided on the outer wall of the circular block, and a winding rope is installed between the moving block and the inner wall of the winding groove. When the gear rotates, the winding rope is wound around, pulling the moving block to move towards one side of the circular block, thereby pushing the pressure plate towards the first friction plate through the push rod.
[0010] Preferably, the lateral friction anti-vibration unit includes a longitudinal groove formed inside the side plate, which is connected to a movable groove. A pressure block is movably installed inside the longitudinal groove, and a squeezing block is provided above the pressure block. The squeezing block is fixedly connected to the pressure plate. When the pressure plate moves toward the first friction plate, the squeezing block pushes the pressure block downward. A second spring is fixedly installed at the bottom of the pressure block, and the bottom of the second spring is fixedly connected to the inner bottom wall of the longitudinal groove. A side groove is formed on the side of the longitudinal groove away from the double toothed plates. A longitudinal moving frame is provided above the top platform, and the longitudinal moving frame is fixedly connected to the pressure block.
[0011] Preferably, a fixed box is provided above the sliding seat. The fixed box is fixedly installed on the top of the top platform. A second friction plate is movably installed inside the fixed box. A top rod is installed on the top of the second friction plate. The top of the top rod extends through to the top of the fixed box. A top cylinder is fixedly installed on the top of the top rod. A pressure rod is movably installed inside the top cylinder. The top of the pressure rod is fixedly connected to the longitudinal frame. A third spring is fixedly installed on the bottom of the pressure rod.
[0012] Preferably, the fine-tuning anti-shake unit includes four side air boxes installed at equal angles on the top of the support plate. A first piston is movably installed inside the side air box. A support rod is fixedly installed on the top of the first piston. The top of the support rod extends through to the top of the side air box and is fixedly connected to the mounting plate. A fourth spring is symmetrically installed on the bottom of the first piston.
[0013] Preferably, a central air box is fixedly installed at the top center of the pallet, a second piston is movably installed inside the central air box, two connecting pipes are installed at equal angles on the four sides of the central air box, one end of the two connecting pipes is connected to the side air box, and the two connecting pipes are respectively connected to the space inside the central air box located above and below the second piston and the space inside the side air box located above and below the first piston. A magnetic block is installed on the second piston, and an electromagnet is installed at the top of the central air box.
[0014] Preferably, a conductive rod is fixedly installed at the top of the circular block, and conductive rings are symmetrically installed on both sides of the inner wall of the first internal groove. The two ends of the conductive rod are in contact with the two conductive rings respectively. A first magnetic plate is provided above the circular block, and a second magnetic plate is provided below the circular block. The first and second magnetic plates are fixedly installed on the side plate. The two conductive rings are electrically connected to the electromagnet. The rotation angle of the gear is from degrees to degrees.
[0015] Preferably, the height adjustment component includes a base column fixedly installed at the bottom end of the top platform, a bottom platform installed at the bottom end of the base column, a limit ring fixedly installed on the inner wall of the mounting frame, the limit ring being located above the bottom platform, a guide rod fixedly installed at the bottom end of the limit ring, the bottom platform being slidably connected to the guide rod, a screw being rotatably installed on the limit ring, the screw being threadedly connected to the bottom platform, the top end of the screw being fixedly connected to the output shaft of the motor, and the motor being fixedly installed at the top end of the limit ring.
[0016] Compared with the prior art, the beneficial effects of the present invention are:
[0017] (1) In this invention, when the support plate vibrates, the gear rotates under the action of the double toothed plates, thereby winding the winding rope, which in turn pulls the two moving blocks away from each other, pushing the pressure plate to move towards the first friction plate. The first friction plate contacts the surface of the double toothed plates, causing the first spring to compress and increase the frictional resistance between the first friction plate and the double toothed plates. The frictional resistance consumes the energy stored in the buffer spring, thereby reducing the vibration of the mounting plate and stabilizing the camera.
[0018] (2) When the pressure plate moves toward the first friction plate, the pressing block pushes the pressed block downward, which in turn drives the longitudinal frame to move downward, so that the pressure rod moves toward the second friction plate. The second friction plate contacts the top wall of the sliding seat, which compresses the third spring, increases the frictional resistance of the second friction plate to the sliding seat, and further consumes the energy stored in the buffer spring, reduces the vibration of the mounting plate, and stabilizes the camera.
[0019] (3) When the mounting plate moves downward, the conductive rod moves toward the double toothed plates. When the mounting plate moves upward, the conductive rod moves back. When the conductive rod moves, it cuts the magnetic field lines. Since the directions of movement are different, the directions of the current passing through the electromagnet are different, so the forces generated on the magnetic block are opposite. When the support plate moves downward, the mounting plate is slightly adjusted upward, and when the support plate moves upward, the mounting plate is slightly adjusted downward, so that the camera is always within a certain height range, thereby reducing the camera shake. Attached Figure Description
[0020] The accompanying drawings are provided to further illustrate the invention and form part of the specification. They are used together with the embodiments of the invention to explain the invention and do not constitute a limitation thereof.
[0021] In the attached diagram:
[0022] Figure 1 This is a schematic diagram of the camera structure with image stabilization of the present invention;
[0023] Figure 2 This is a schematic diagram of the internal structure of the mounting frame of the present invention;
[0024] Figure 3 This is a schematic diagram of the structure of the buffer anti-shake component of the present invention;
[0025] Figure 4 This is a schematic diagram of the internal structure of the side plate of the present invention;
[0026] Figure 5 This is a schematic diagram of the internal structure of the support plate of the present invention;
[0027] Figure 6 This is a schematic diagram of the top structure of the second friction plate of the present invention;
[0028] Figure 7 This is a schematic diagram of the external structure of the circular block of the present invention;
[0029] Figure 8 This is a schematic diagram of the side air box and the middle air box structure of the present invention;
[0030] In the diagram: 1. Mounting frame; 2. Control panel; 3. Base; 4. Top platform; 5. Buffer and anti-shake assembly; 501. Support plate; 502. Mounting plate; 503. Fixing bolt; 504. Support rod; 505. Sliding seat; 506. Sliding groove; 507. Buffer spring; 508. Double-sided toothed plate; 509. Longitudinal friction anti-shake unit; 5091. Side plate; 5092. Support plate; 5093. Gear; 5094. First internal groove; 5095. Circular block; 5096. Movable groove; 5097. First friction plate; 5098. Pressure plate; 5099. First spring; 50910. Second internal groove; 50911. Moving block; 50912. Push rod; 50913. Winding rope; 50914. Winding groove; 510. Lateral friction anti-shake unit; 5101. Longitudinal groove; 5 102. Extrusion block; 5103. Pressure block; 5104. Second spring; 5105. Side groove; 5106. Longitudinal moving frame; 5107. Fixing box; 5108. Second friction plate; 5109. Top rod; 51010. Top cylinder; 51011. Pressure rod; 51012. Third spring; 511. Fine-tuning anti-shake unit; 5111. First magnetic plate; 5112. Second magnetic plate; 5113. 5114. Conductive ring; 5115. Conductive rod; 5116. Side air box; 5117. First piston; 5118. Support rod; 5119. Fourth spring; 5110. Connecting pipe; 51110. Middle air box; 51111. Second piston; 51112. Magnetic block; 51113. Electromagnet; 6. Bottom column; 7. Bottom platform; 8. Limiting ring; 9. Guide rod; 10. Screw; 11. Motor. Detailed Implementation
[0031] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. All other embodiments obtained by those skilled in the art based on the embodiments of the present invention without creative effort are within the scope of protection of the present invention.
[0032] Depend on Figures 1-8 The present invention includes a camera with a stabilization structure, comprising a mounting bracket 1 and a camera module. A top platform 4 is movably mounted inside the mounting bracket 1. A buffer stabilization component 5 for mounting the camera module is mounted on the top of the top platform 4. A height adjustment component is mounted on the bottom of the top platform 4. A base 3 is mounted on the bottom of the mounting bracket 1. A control panel 2 is mounted on the front of the mounting bracket 1.
[0033] The buffer anti-shake assembly 5 includes a support plate 501 located above the top platform 4. A mounting plate 502 is located above the support plate 501. A fixing bolt 503 is installed at the top of the mounting plate 502 for mounting the camera module. Multiple support rods 504 are hinged at equal angles at the bottom of the support plate 501. A sliding seat 505 is hinged at the bottom of the support rods 504. The sliding seat 505 is slidably installed inside the sliding groove 506. The sliding groove 506 is opened at equal angles on the top platform 4. A buffer spring 507 is installed on the side of the sliding seat 505 away from the central axis of the top platform 4. One end of the buffer spring 507 is fixedly connected to the inner wall of the end of the sliding groove 506. A double-sided toothed plate 508 is installed at the bottom of the support plate 501. A longitudinal friction anti-shake unit 509 is installed on the outer side of the double-sided toothed plate 508. A fine-tuning anti-shake unit 511 is installed between the support plate 501 and the mounting plate 502.
[0034] The longitudinal friction anti-shake unit 509 includes two side plates 5091 symmetrically arranged on both sides of the double-sided toothed plate 508. A support plate 5092 is installed on the side of each side plate 5091 that is far apart from each other. The support plate 5092 is fixedly installed on the top platform 4. Two gears 5093 are symmetrically rotatably mounted between the two side plates 5091. The two gears 5093 mesh with the toothed sides of the double-sided toothed plate 508 respectively. A first internal groove 5094 is symmetrically formed inside the side plate 5091. Circular blocks 5095 are symmetrically mounted at both ends of the rotating shaft of the gears 5093, and the circular blocks 5095 are located within the first internal groove 5094. A transverse friction anti-vibration unit 510 is installed between the support plate 5092 and the sliding seat 505. A movable groove 5096 is formed in the middle of the side plate 5091, extending to the side of the side plate 5091 near the double-sided toothed plate 508. A first friction plate 5097 and a pressure plate 5098 are movably installed inside the movable groove 5096. The first friction plate 5097 contacts the side wall of the double-sided toothed plate 508. A first spring 5099 is installed between the pressure plate 5098 and the first friction plate 5097. Second internal grooves 50910 are symmetrically formed on both sides of the movable groove 5096. The internal movable part is equipped with a movable block 50911. Pushing rods 50912 are symmetrically hinged to both sides of the pressure plate 5098. The other ends of the two pushing rods 50912 are respectively hinged to the two movable blocks 50911. A winding groove 50914 is formed on the outer wall of the circular block 5095. A winding rope 50913 is installed between the movable block 50911 and the inner wall of the winding groove 50914. When the gear 5093 rotates, the winding rope 50913 is wound, pulling the movable block 50911 towards one side of the circular block 5095, thereby pushing the pressure plate 5098 towards the first... When the friction plate 5097 moves, the support plate 501 vibrates, and the gear 5093 rotates under the action of the double toothed plates 508, thereby winding the winding rope 50913. This then pulls the two moving blocks 50911 away from each other, pushing the pressure plate 5098 towards the side of the first friction plate 5097. The first friction plate 5097 contacts the surface of the double toothed plates 508, causing the first spring 5099 to compress and increase the frictional resistance between the first friction plate 5097 and the double toothed plates 508. The frictional resistance consumes the energy stored in the buffer spring 507, thereby reducing the vibration of the mounting plate 502 and stabilizing the camera.
[0035] The lateral friction anti-vibration unit 510 includes a longitudinal groove 5101 formed inside the side plate 5091. The longitudinal groove 5101 is connected to the movable groove 5096. A pressure block 5103 is movably installed inside the longitudinal groove 5101. A pressing block 5102 is provided above the pressure block 5103. The pressing block 5102 is fixedly connected to the pressure plate 5098. When the pressure plate 5098 moves towards the first friction plate 5097, the pressing block 5102 pushes the pressure block 5103 downward. A second spring 5104 is fixedly installed at the bottom end, and the bottom end of the second spring 5104 is fixedly connected to the inner bottom wall of the longitudinal groove 5101. A side groove 5105 is opened on the side of the longitudinal groove 5101 away from the double-sided toothed plate 508. A longitudinal moving frame 5106 is provided above the top platform 4. The longitudinal moving frame 5106 is fixedly connected to the pressure block 5103. A fixed box 5107 is provided above the sliding seat 505. The fixed box 5107 is fixedly installed on the top of the top platform 4. A second friction device is movably installed inside the fixed box 5107. The top of the second friction plate 5108 is equipped with a top rod 5109, the top of which extends through to the top of the fixed box 5107. A top cylinder 51010 is fixedly installed at the top of the top rod 5109. A pressure rod 51011 is movably installed inside the top cylinder 51010. The top of the pressure rod 51011 is fixedly connected to the longitudinal frame 5106. A third spring 51012 is fixedly installed at the bottom of the pressure rod 51011. The pressure plate 5098 faces the side of the first friction plate 5097. During movement, the pressing block 5102 pushes the pressure block 5103 downward, which in turn drives the longitudinal frame 5106 downward, causing the pressure rod 51011 to move towards the second friction plate 5108. The second friction plate 5108 contacts the top wall of the sliding seat 505, causing the third spring 51012 to compress, increasing the frictional resistance of the second friction plate 5108 against the sliding seat 505, thereby further consuming the energy stored in the buffer spring 507, reducing the vibration of the mounting plate 502, and stabilizing the camera.
[0036] The fine-tuning anti-shake unit 511 includes four side air boxes 5115 mounted at equal angles to the top of the support plate 501. A first piston 5116 is movably mounted inside each side air box 5115. A support rod 5117 is fixedly mounted to the top of the first piston 5116, extending through to the top of the side air box 5115. The top of the support rod 5117 is fixedly connected to the mounting plate 502. A fourth spring 5118 is symmetrically mounted at the bottom of the first piston 5116. A central air box 51110 is fixedly mounted in the middle of the top of the support plate 501. The internal movement of the cylinder is equipped with a second piston 51111. Two connecting pipes 5119 are installed at equal angles on all four sides of the central air box 51110. One end of each connecting pipe 5119 is connected to a side air box 5115. The two connecting pipes 5119 are respectively connected to the spaces above and below the second piston 51111 inside the central air box 51110 and the spaces above and below the first piston 5116 inside the side air box 5115. A magnet 51112 is installed on the second piston 51111. An electromagnet 51113 is installed at the top of the central air box 51110. A conductive rod 5114 is fixedly installed at the top of the circular block 5095. Conductive rings 5113 are symmetrically installed on both sides of the inner wall of the first internal groove 5094. The two ends of the conductive rod 5114 contact the two conductive rings 5113 respectively. A first magnetic plate 5111 is located above the circular block 5095, and a second magnetic plate 5112 is located below the circular block 5095. The first magnetic plate 5111 and the second magnetic plate 5112 are fixedly installed on the side plate 5091. The two conductive rings 5113 are electrically connected to the electromagnet 51113. The rotation angle of the gear 5093 is from 0 degrees to 90 degrees. [The last sentence appears to be incomplete and possibly refers to a mounting plate.] When 502 moves downward, the conductive rod 5114 moves toward the double-sided toothed plate 508. When the mounting plate 502 moves upward, the conductive rod 5114 moves back. The conductive rod 5114 cuts the magnetic field lines when it moves, and the different directions of movement result in different directions of current passing through the electromagnet 51113, thus producing opposite forces on the magnetic block 51112. This causes the mounting plate 502 to be slightly adjusted upward when the support plate 501 moves downward, and slightly adjusted downward when the support plate 501 moves upward, so that the camera is always within a certain height range, thereby reducing camera shake.
[0037] The height adjustment component includes a base column 6 fixedly installed at the bottom of the top platform 4, a bottom platform 7 installed at the bottom of the base column 6, a limit ring 8 fixedly installed on the inner wall of the mounting frame 1, the limit ring 8 being located above the bottom platform 7, a guide rod 9 fixedly installed at the bottom of the limit ring 8, the bottom platform 7 being slidably connected to the guide rod 9, a screw 10 being rotatably installed on the limit ring 8, the screw 10 being threadedly connected to the bottom platform 7, the top end of the screw 10 being fixedly connected to the output shaft of the motor 11, and the motor 11 being fixedly installed at the top end of the limit ring 8.
[0038] Working principle: When in use, the camera is installed on the top of the mounting plate 502 by fixing bolt 503, the control motor 11 is turned on, and the screw 10 is driven to rotate, thereby driving the bottom platform 7 to move longitudinally and adjust the height of the camera.
[0039] When the camera is subjected to an impact, the support plate 501 moves downward under the impact force, and pushes each sliding seat 505 to move outward along the sliding groove 506 through the support link 504, so that the buffer spring 507 is compressed. At this time, the buffer spring 507 plays a buffering role against the impact force on the camera and protects the camera. However, after the buffer spring 507 is compressed, it releases energy and vibrates continuously, which causes the camera to shake.
[0040] When the support plate 501 reciprocates, the double-sided toothed plate 508 moves longitudinally relative to the gear 5093, and the gear 5093 meshes with the double-sided toothed plate 508, thereby driving the gear 5093 to rotate. When the gear 5093 rotates, it winds the winding rope 50913, thereby pulling the moving blocks 50911 on both sides of the pressure plate 5098 away from each other. Then, under the action of the push linkage 50912, the pressure plate 5098 is pushed towards the first friction plate 5097. The first friction plate 5097 contacts the surface of the double-sided toothed plate 508, causing the pressure plate 5098 to move towards the first friction plate 5097, which compresses the first spring 5099, making the surface of the first friction plate 5097 press against the surface of the double-sided toothed plate 508. Thus, under the frictional resistance of the first friction plate 5097 against the double-sided toothed plate 508, the energy stored in the buffer spring 507 is consumed, thereby reducing the camera shake.
[0041] When the pressure plate 5098 moves toward the first friction plate 5097, the pressing block 5102 moves with the pressure plate 5098, causing the pressing block 5102 to exert pressure on the top of the pressing block 5103, pushing the pressing block 5103 downward, causing the longitudinal frame 5106 to move downward, thereby pushing the pressure rod 51011 downward. Meanwhile, the second friction plate 5108 contacts the top wall of the sliding seat 505, causing the third spring 51012 to be compressed. This causes the second friction plate 5108 to generate frictional resistance against the top wall of the sliding seat 505, further consuming the energy stored in the buffer spring 507, thereby reducing camera shake.
[0042] When the double-sided toothed plate 508 moves downward relative to the gear 5093, it drives the gear 5093 to rotate, causing the conductive rod 5114 to move towards one side of the double-sided toothed plate 508. This causes the conductive rod 5114 to cut the magnetic field lines generated between the first magnetic plate 5111 and the second magnetic plate 5112, generating a positive current. The current flows through the conductive ring 5113 and then through the electromagnet 51113, causing the electromagnet 51113 to generate a repulsive force on the magnetic block 51112. This causes the second piston 51111 to move downward, allowing the air below the second piston 51111 to enter the space below the first piston 5116 inside the side air box 5115 through the lower connecting pipe 5119. This pushes the mounting plate 502 upward, and when the support plate 501... When moving upward, the double-sided toothed plates 508 rotate upward relative to the gear 5093, causing the conductive rod 5114 to move back. When cutting the magnetic field lines, a reverse current is generated, causing the electromagnet 51113 to attract the magnetic block 51112, causing the second piston 51111 to move upward. This allows the air above the second piston 51111 to enter the space above the first piston 5116 in the side air box 5115 through the upper connecting pipe 5119, causing the mounting plate 502 to move downward. As the support plate 501 moves downward, the mounting plate 502 is slightly adjusted upward, and as the support plate 501 moves upward, the mounting plate 502 is slightly adjusted downward, keeping the camera within a certain height range, thereby reducing camera shake.
Claims
1. A camera with an image stabilization structure, comprising a mounting bracket (1) and a camera module, characterized in that: The mounting bracket (1) has a top platform (4) installed inside. The top of the top platform (4) is equipped with a buffer anti-shake component (5) for mounting the camera module. The bottom of the top platform (4) is equipped with a height adjustment component. The bottom of the mounting bracket (1) is equipped with a base (3). The front of the mounting bracket (1) is equipped with a control panel (2). The buffer anti-shake assembly (5) includes a support plate (501) located above the top platform (4). A mounting plate (502) is provided above the support plate (501). A fixing bolt (503) is installed at the top of the mounting plate (502). The fixing bolt (503) is used to install the camera module. Multiple support rods (504) are hinged at equal angles at the bottom of the support plate (501). A sliding seat (505) is hinged at the bottom of the support rods (504). The sliding seat (505) is slidably installed in the sliding groove (506). The sliding groove (506) is opened at an equal angle on the top platform (4). A buffer spring (507) is installed on the side of the sliding seat (505) away from the central axis of the top platform (4). One end of the buffer spring (507) is fixedly connected to the inner wall of the end of the sliding groove (506). A double toothed plate (508) is installed at the bottom of the support plate (501). A longitudinal friction anti-shake unit (509) is installed on the outer side of the double toothed plate (508). A fine-tuning anti-shake unit (511) is installed between the support plate (501) and the mounting plate (502). The longitudinal friction anti-shake unit (509) includes two side plates (5091) symmetrically arranged on both sides of the double-sided toothed plate (508). A support plate (5092) is installed on the side of the two side plates (5091) that is far apart from each other. The support plate (5092) is fixedly installed on the top platform (4). Two gears (5093) are symmetrically rotatably installed between the two side plates (5091). The two gears (5093) mesh with the toothed sides of the double-sided toothed plate (508) respectively. The side plates (5091) are symmetrically provided with a first internal groove (5094). Circular blocks (5095) are symmetrically installed at both ends of the shaft of the gears (5093). The circular blocks (5095) are located inside the first internal groove (5094). A transverse friction anti-shake unit (510) is installed between the support plate (5092) and the sliding seat (505). The fine-tuning anti-shake unit (511) includes four side air boxes (5115) mounted at equal angles on the top of the support plate (501). A first piston (5116) is movably mounted inside each side air box (5115). A support rod (5117) is fixedly mounted on the top of the first piston (5116). The top of the support rod (5117) extends through to the top of the side air box (5115), and the top of the support rod (5117) is fixedly connected to the mounting plate (502). The first piston (5116)... A fourth spring (5118) is symmetrically installed at the bottom end. A central air box (51110) is fixedly installed at the top center of the support plate (501). A second piston (51111) is movably installed inside the central air box (51110). Two connecting pipes (5119) are installed at equal angles on the four sides of the central air box (51110). One end of the two connecting pipes (5119) is connected to the side air box (5115), and the two connecting pipes (5119) are respectively connected to the central air box (51110). The spaces on the upper and lower sides of the second piston (51111) and the space on the upper and lower sides of the side air box (5115) are connected. A magnet (51112) is installed on the second piston (51111). An electromagnet (51113) is installed at the top of the middle air box (51110). A conductive rod (5114) is fixedly installed at the top of the circular block (5095). Conductive rings (511) are symmetrically installed on both sides of the inner wall of the first internal groove (5094). 3) The two ends of the conductive rod (5114) are in contact with two conductive rings (5113) respectively. A first magnetic plate (5111) is provided above the circular block (5095), and a second magnetic plate (5112) is provided below the circular block (5095). The first magnetic plate (5111) and the second magnetic plate (5112) are fixedly installed on the side plate (5091). The two conductive rings (5113) are electrically connected to the electromagnet (51113). The rotation angle of the gear (5093) is 0 degrees to 90 degrees.
2. A camera with image stabilization structure according to claim 1, characterized in that: A movable groove (5096) is provided in the middle of the side plate (5091). The movable groove (5096) extends to the side of the side plate (5091) near the double toothed plate (508). A first friction plate (5097) and a pressure plate (5098) are movably installed inside the movable groove (5096). The first friction plate (5097) contacts the side wall of the double toothed plate (508). A first spring (5099) is installed between the pressure plate (5098) and the first friction plate (5097). A second internal groove (50910) is symmetrically provided on both sides of the movable groove (5096). A moving block (50911) is movably installed inside the second internal groove (50910). Push rods (50912) are symmetrically hinged on both sides of the pressure plate (5098). The other ends of the two push rods (50912) are respectively hinged to the two moving blocks (50911).
3. A camera with an image stabilization structure according to claim 2, characterized in that: A winding groove (50914) is provided on the outer wall of the circular block (5095). A winding rope (50913) is installed between the moving block (50911) and the inner wall of the winding groove (50914). When the gear (5093) rotates, the winding rope (50913) is wound around, pulling the moving block (50911) to move towards the side of the circular block (5095), thereby pushing the pressure plate (5098) towards the first friction plate (5097) through the push rod (50912).
4. A camera with image stabilization structure according to claim 1, characterized in that: The lateral friction anti-vibration unit (510) includes a longitudinal groove (5101) formed inside the side plate (5091). The longitudinal groove (5101) is connected to the movable groove (5096). A pressure block (5103) is movably installed inside the longitudinal groove (5101). A squeezing block (5102) is provided above the pressure block (5103). The squeezing block (5102) is fixedly connected to the pressure plate (5098). When the pressure plate (5098) moves towards the first friction plate (5097), the lateral friction anti-vibration unit (510) is connected to the side plate (5097). The compression block (5102) pushes the pressure block (5103) downward. The bottom end of the pressure block (5103) is fixedly installed with a second spring (5104). The bottom end of the second spring (5104) is fixedly connected to the inner bottom wall of the longitudinal groove (5101). The longitudinal groove (5101) is provided with a side groove (5105) on the side away from the double toothed plate (508). A longitudinal moving frame (5106) is provided above the top platform (4). The longitudinal moving frame (5106) is fixedly connected to the pressure block (5103).
5. A camera with an image stabilization structure according to claim 4, characterized in that: A fixed box (5107) is provided above the sliding seat (505). The fixed box (5107) is fixedly installed on the top of the top platform (4). A second friction plate (5108) is movably installed inside the fixed box (5107). A top rod (5109) is installed on the top of the second friction plate (5108). The top of the top rod (5109) extends through to the top of the fixed box (5107). A top cylinder (51010) is fixedly installed on the top of the top rod (5109). A pressure rod (51011) is movably installed inside the top cylinder (51010). The top of the pressure rod (51011) is fixedly connected to the longitudinal frame (5106). A third spring (51012) is fixedly installed at the bottom of the pressure rod (51011).
6. A camera with image stabilization structure according to claim 1, characterized in that: The height adjustment component includes a bottom column (6) fixedly installed at the bottom end of the top platform (4), a bottom platform (7) installed at the bottom end of the bottom column (6), a limit ring (8) fixedly installed on the inner wall of the mounting frame (1), the limit ring (8) is located above the bottom platform (7), a guide rod (9) is fixedly installed at the bottom end of the limit ring (8), the bottom platform (7) is slidably connected to the guide rod (9), a screw (10) is rotatably installed on the limit ring (8), the screw (10) is threadedly connected to the bottom platform (7), the top end of the screw (10) is fixedly connected to the output shaft of the motor (11), and the motor (11) is fixedly installed on the top end of the limit ring (8).