A magnetic fixing support structure for outdoor camera
By designing a magnetic fixing bracket structure for the upper and lower shells of the bracket, and using a combination of iron sheets and silicone pads, the problems of cumbersome outdoor camera fixing operations and large magnet size are solved, achieving a stable and easily adjustable magnetic fixing effect.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- 70MAI CO LTD
- Filing Date
- 2025-09-22
- Publication Date
- 2026-07-28
AI Technical Summary
Existing methods for fixing outdoor cameras are cumbersome to operate. Magnetic adsorption fixing devices are bulky, costly, and have redundant magnetic force, making it difficult to adjust their position.
A magnetic fixing bracket structure including an upper bracket shell and a lower bracket shell was designed. The iron sheet is used to reduce the size of the magnet and increase the magnetic field range. Combined with the arc structure of the silicone pad and the detachable connection of the mounting bracket, a stable and easy-to-adjust fixing is achieved.
It provides sufficient magnetic force without redundancy, is easy to install and adjust, improves the user experience, and is suitable for fixing both magnetic and non-magnetic surfaces.
Smart Images

Figure CN224567046U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of outdoor cameras, specifically to a magnetic fixing bracket structure for outdoor cameras. Background Technology
[0002] Currently, the common method for fixing outdoor battery cameras is to use studs and nuts for locking with a swivel bracket with a ball joint. This is relatively cumbersome for users to operate, and adjusting the ball joint bracket to maintain the angle after swivel is generally quite laborious.
[0003] Furthermore, conventional magnetic adsorption is generally used in indoor scenarios with flat surfaces, and the magnets tend to be larger to hold heavier objects, increasing costs. Moreover, magnetic adsorption devices are commonly used indoors, and the magnets are typically large to meet the mounting requirements, resulting in higher costs. Additionally, the magnetic force is often redundant, making it difficult to remove the device after it's in place and inconvenient for users to handle and adjust its position. Utility Model Content
[0004] To address the technical problem mentioned above where the magnetic adsorption fixation results in redundant magnetic force due to the large size of the magnet, making it difficult to remove the bracket and inconvenient for users to handle and adjust its position, this utility model provides a magnetic fixation bracket structure for outdoor cameras.
[0005] This utility model provides a magnetic fixing bracket structure for outdoor cameras. The magnetic fixing bracket structure for outdoor cameras includes: a bracket upper shell, the upper surface of which is inclined and a silicone pad is provided inside; a bracket lower shell, which is connected to the bracket upper shell; wherein, a mounting groove is provided inside the bracket lower shell, and a magnet and an iron plate are placed in the mounting groove. The magnet is located at one end of the mounting groove near the bottom of the bracket upper shell, and the iron plate is located at one end of the mounting groove away from the bottom of the bracket upper shell.
[0006] The magnetic fixing bracket structure for outdoor cameras provided by this utility model may also have the following feature: the magnetic fixing bracket structure further includes a mounting bracket, which is detachably connected to the lower shell of the bracket.
[0007] The magnetic fixing bracket structure for outdoor cameras provided by this utility model may also have the following features: a buckle is provided at the bottom of the bracket lower shell along its circumference, the mounting bracket is provided with a sliding groove, and fixed positions are distributed on the sliding groove. When the buckle slides along the sliding groove into the fixed position, the bracket lower shell is connected to the mounting bracket.
[0008] The magnetic fixing bracket structure for outdoor cameras provided by this utility model may also have the following features: a limiting groove is provided at the upper end of the lower bracket shell, a limiting buckle is provided at the bottom of the upper bracket shell, and the upper bracket shell and the lower bracket shell are connected by the limiting groove and the limiting buckle.
[0009] The magnetic fixing bracket structure for outdoor cameras provided by this utility model may also have the following features: a connecting buckle is provided at the bottom of the silicone pad, and a connecting slot is provided inside the upper shell of the bracket. The silicone pad and the upper shell of the bracket are connected by the connecting buckle and the connecting slot.
[0010] The magnetic fixing bracket structure for outdoor cameras provided by this utility model may also have the following feature: the upper surface of the silicone pad is an inwardly concave arc structure, which fits against the bottom of the outdoor camera to be fixed.
[0011] The magnetic mounting bracket structure for outdoor cameras provided by this utility model may also have the following feature: the bottom surface of the outdoor camera is an outwardly convex spherical surface, and a metal bracket is provided inside the spherical surface, and the magnet is attracted to the metal bracket.
[0012] The magnetic fixing bracket structure for outdoor cameras provided by this utility model may also have the following feature: the outer edge of the upper surface of the silicone pad is higher than the outer edge of the upper end face of the bracket shell.
[0013] The beneficial effects of this utility model are as follows:
[0014] The magnetic mounting bracket structure for outdoor cameras of this utility model includes an upper bracket shell and a lower bracket shell. The upper surface of the upper bracket shell is a sloped structure, and a silicone pad is disposed inside the upper bracket shell. The lower bracket shell is connected to the upper bracket shell. A mounting groove is provided inside the lower bracket shell. A magnet and an iron plate are placed in the mounting groove. The magnet is positioned at one end of the mounting groove near the upper bracket shell, and the iron plate is positioned at the other end of the mounting groove away from the upper bracket shell, i.e., the iron plate is located below the magnet.
[0015] Based on this magnetic mounting bracket structure for outdoor cameras, a magnet is placed on the lower shell of the bracket, and an iron plate is placed below the magnet. By using the iron plate, the size of the magnet is reduced, while maintaining a high magnetic field value over a wider range, thus ensuring sufficient magnetic force without redundancy. Therefore, within the same volume, the closer the bracket is to the camera above the magnet, the stronger the magnetic force on the camera. Simultaneously, the increased distance between the bracket and the magnetic surface to be fixed below the lower shell reduces the relative magnetic force on the bottom surface. This makes the bracket easier to remove when it adheres to the metal surface, preventing difficult assembly and disassembly due to excessive magnetic force and improving the user experience.
[0016] In addition, the magnetic fixing bracket structure also includes a mounting bracket, which is detachably connected to the bracket's lower shell via a snap-fit at the bottom of the lower shell and a sliding groove and fixing slot on the mounting bracket. The mounting bracket allows the magnetic fixing bracket to also be fixed to non-magnetic surfaces.
[0017] Furthermore, the silicone pad on the upper shell of the bracket has an inwardly concave arc surface, while the camera's base is an outwardly convex spherical surface, within which a metal bracket is housed. The fit between the arc surface and the spherical surface, along with the attraction between the metal bracket and the magnet, ensures a secure connection between the camera and the mounting bracket. Simultaneously, the eccentric design of the silicone pad's arc surface reduces the distance between the camera and the magnet, ensuring a smoother rotation of the camera and preventing damage to the silicone pad.
[0018] Furthermore, the outer edge of the upper surface of the silicone pad is higher than the outer edge of the upper surface of the bracket shell, ensuring that the camera mainly contacts the silicone pad after it is fixed, thereby avoiding squeezing the bracket shell. Attached Figure Description
[0019] Figure 1 This is a schematic diagram of the magnetic mounting bracket structure for outdoor cameras in this embodiment;
[0020] Figure 2 This is a cross-sectional view of the magnetic mounting bracket structure for outdoor cameras in this embodiment;
[0021] Figure 3 This is a schematic diagram of the structure of the lower shell of the support in this embodiment;
[0022] Figure 4 This is a schematic diagram of the installation structure in this embodiment. Detailed Implementation
[0023] To make the technical problems solved, technical solutions, and beneficial effects of this utility model clearer, the present utility model will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative of the present utility model and are not intended to limit the present utility model.
[0024] The magnetic mounting bracket structure for outdoor cameras in this embodiment is used to fix outdoor cameras by magnetic attraction.
[0025] like Figures 1-4 As shown, the magnetic mounting bracket structure for outdoor cameras includes an upper bracket shell 10, a lower bracket shell 20, and a mounting bracket 30.
[0026] The upper shell 10 of the bracket is a hollow cylindrical structure. The upper surface of the column is inclined. In addition, a connecting groove 11 is provided at the upper end of the inner side of the upper shell 10. A limit buckle is provided at the bottom of the upper shell 10.
[0027] A silicone pad 12 is provided inside the upper shell 10 of the bracket. A connecting buckle 13 is provided at the bottom of the silicone pad. The silicone pad 13 engages with the connecting slot on the upper shell 10 of the bracket through the connecting buckle 13, and is connected to the upper shell 10 of the bracket.
[0028] The edge of the upper surface of the connected silicone pad 13 overlaps the outer edge of the upper surface of the bracket upper shell 10, making its upper surface higher than the upper surface of the bracket upper shell 10.
[0029] The upper surface of the silicone pad 13 is an inwardly concave arc-shaped structure, while the surface of the camera to be adhered to is an outwardly convex spherical structure, within which a metal bracket is installed. Furthermore, the arc of the silicone pad 13 is offset, meaning the distance between the arc and the contact surface of the upper housing 10 of the bracket gradually increases from the center to the edge, with the shortest distance located to the side of the center. This reduces the gap between the camera and the lower housing 20 of the bracket after adhesion.
[0030] like Figure 3 As shown, a mounting groove 21 is provided on the lower housing 20 of the bracket. A magnet 22 and an iron plate 23 are placed in the mounting groove 21. The iron plate 23 is located at the bottom of the mounting groove 21, and the magnet 22 is located above the iron plate 23. That is, the magnet 22 is located at the end closer to the bottom of the upper housing 10 of the bracket, and the iron plate is located at the end away from the bottom of the upper housing 10 of the bracket. This allows the magnet 22 to be closer to the camera, and at the same time increases the distance between it and the magnetic surface to be attracted and fixed.
[0031] In addition, the lower housing 20 of the bracket is provided with a limiting groove 24 at the upper end and a buckle 25 at the bottom end. The lower housing 20 of the bracket is connected to the upper housing 10 of the bracket by the engagement of the limiting buckle on the upper housing 10 with the limiting groove 24.
[0032] like Figure 4 As shown, the inner side of the mounting bracket 30 is provided with a sliding groove 31, and a number of blocking blocks 32 are distributed on the sliding groove 31. The blocking blocks divide the sliding groove 31 to form a fixed locking position 33.
[0033] The clips 25 of the lower bracket housing 20 engage with the slide groove 31 and slide within the slide groove 31. When the clips slide into the fixed locking position 33, the lower bracket housing 20 engages with the mounting bracket 30. Similarly, sliding the lower bracket housing 20 in the opposite direction disengages it from the fixed locking position 33, thus separating the lower bracket housing 20 from the mounting bracket 30.
[0034] When the magnetic fixing bracket structure needs to be attached to a surface to be fixed, if the surface to be fixed is a magnetic surface, the mounting bracket 30 is disassembled, and the magnetic surface is attached and fixed by the magnet 22 and the iron plate 23 inside the bracket's lower shell 20. After attachment and fixing, due to the presence of the iron plate below the magnet 22, the distance between the magnet 22 and the magnetic surface increases, making it easier to remove and adjust the magnetic fixing bracket.
[0035] If the surface to be fixed is a non-magnetic surface, connect the mounting bracket 30 below the lower shell 20 of the bracket, and then connect the mounting bracket 30 to the non-magnetic surface to achieve the connection between the magnetic fixing bracket structure and the non-magnetic surface.
[0036] The magnetic mounting bracket structure for outdoor cameras according to the above embodiments includes an upper bracket shell and a lower bracket shell. The upper surface of the upper bracket shell is a sloped structure, and a silicone pad is disposed inside the upper bracket shell. The lower bracket shell is connected to the upper bracket shell. A mounting groove is provided inside the lower bracket shell. A magnet and an iron plate are placed in the mounting groove. The magnet is positioned at one end of the mounting groove near the upper bracket shell, and the iron plate is positioned at the other end of the mounting groove away from the upper bracket shell, i.e., the iron plate is located below the magnet.
[0037] Based on this magnetic mounting bracket structure for outdoor cameras, a magnet is placed on the lower shell of the bracket, and an iron plate is placed below the magnet. By using the iron plate, the size of the magnet is reduced, while maintaining a high magnetic field value over a wider range, thus ensuring sufficient magnetic force without redundancy. Therefore, within the same volume, the closer the bracket is to the camera above the magnet, the stronger the magnetic force on the camera. Simultaneously, the increased distance between the bracket and the magnetic surface to be fixed below the lower shell reduces the relative magnetic force on the bottom surface. This makes the bracket easier to remove when it adheres to the metal surface, preventing difficult assembly and disassembly due to excessive magnetic force and improving the user experience.
[0038] In addition, the magnetic fixing bracket structure also includes a mounting bracket, which is detachably connected to the bracket's lower shell via a snap-fit at the bottom of the lower shell and a sliding groove and fixing slot on the mounting bracket. The mounting bracket allows the magnetic fixing bracket to also be fixed to non-magnetic surfaces.
[0039] Furthermore, the silicone pad on the upper shell of the bracket has an inwardly concave arc surface, while the camera's base is an outwardly convex spherical surface, within which a metal bracket is housed. The fit between the arc surface and the spherical surface, along with the attraction between the metal bracket and the magnet, ensures a secure connection between the camera and the mounting bracket. Simultaneously, the eccentric design of the silicone pad's arc surface reduces the distance between the camera and the magnet, ensuring a smoother rotation of the camera and preventing damage to the silicone pad.
[0040] Furthermore, the outer edge of the upper surface of the silicone pad is higher than the outer edge of the upper surface of the bracket shell, ensuring that the camera mainly contacts the silicone pad after it is fixed, thereby avoiding squeezing the bracket shell.
[0041] Obviously, those skilled in the art can make various modifications and variations to this application without departing from the spirit and scope of this application. Therefore, if such modifications and variations fall within the scope of the claims of this application and their equivalents, this application also intends to include such modifications and variations.
Claims
1. A magnetic mounting bracket structure for outdoor cameras, characterized in that, include: The upper shell of the bracket has an inclined surface on its upper surface and a silicone pad is provided inside. The lower housing of the bracket is connected to the upper housing of the bracket. The lower shell of the bracket is provided with a mounting groove, which holds a magnet and an iron sheet. The magnet is disposed within the mounting groove at one end near the bottom of the upper shell of the bracket. The iron sheet is located at one end of the mounting bracket, away from the bottom of the upper shell.
2. The magnetic mounting bracket structure for outdoor cameras according to claim 1, characterized in that: The magnetic fixing bracket structure also includes a mounting bracket, which is detachably connected to the lower shell of the bracket.
3. The magnetic mounting bracket structure for outdoor cameras according to claim 2, characterized in that: The bottom of the lower housing of the bracket is provided with a buckle along its circumference. The mounting bracket is provided with a sliding groove, and fixing positions are distributed on the sliding groove. When the buckle slides along the groove into the fixed slot, the lower shell of the bracket is connected to the mounting bracket.
4. The magnetic mounting bracket structure for outdoor cameras according to claim 1, characterized in that: The lower shell of the bracket is provided with a limit groove at its upper end, and the upper shell of the bracket is provided with a limit buckle at its bottom. The upper shell of the bracket and the lower shell of the bracket are connected by the limiting groove and the limiting buckle.
5. The magnetic mounting bracket structure for outdoor cameras according to claim 1, characterized in that: The bottom of the silicone pad is provided with a connecting buckle, and the upper shell of the bracket is provided with a connecting slot. The silicone pad and the upper shell of the bracket are connected to the connecting slot via the connecting buckle.
6. The magnetic mounting bracket structure for outdoor cameras according to claim 1, characterized in that: The upper surface of the silicone pad is an inwardly concave arc structure, which fits against the bottom of the outdoor camera to be fixed.
7. The magnetic mounting bracket structure for outdoor cameras according to claim 6, characterized in that: The bottom surface of the outdoor camera is a convex spherical surface, and a metal bracket is installed inside the spherical surface. The magnet is attracted to the metal support.
8. The magnetic mounting bracket structure for outdoor cameras according to claim 1, characterized in that: The outer edge of the upper surface of the silicone pad is higher than the outer edge of the upper end face of the bracket shell.