Support and camera assembly
The integrated bracket structure, combined with adjustable angles and connectors, solves the problem of unstable camera angles when shooting from the second floor to the first floor. This achieves stable camera connection and precise positioning, adapts to various scenarios, and improves shooting effects and ease of installation.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SHARETRONIC DATA TECH CO LTD
- Filing Date
- 2025-07-22
- Publication Date
- 2026-07-28
AI Technical Summary
When using existing camera brackets to shoot footage from the first floor from the second floor, the shooting results are often poor due to insufficient angle adjustment. It is difficult to maintain the tilt angle required for overhead shooting and is easily affected by external forces, causing the image to be missing or distorted.
The bracket features an integrated design, including a first positioning edge, a tilting boss, and a second positioning edge. It achieves a stable connection between the camera and the carrier through a through hole. Combined with adjustable angles and connectors, it ensures that the camera is accurately aligned with the shooting area at a preset angle and provides an unobstructed shooting channel.
It achieves stable camera connection and precise positioning, avoids image shift, adapts to various scene requirements, improves the stability and integrity of shooting, reduces damage to the carrier, and is easy to install.
Smart Images

Figure CN224567106U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of cameras, and more particularly to a bracket and camera assembly. Background Technology
[0002] Existing camera mounts often result in poor image quality when shooting from the second floor onto the first floor due to insufficient angle adjustment. Most mounts struggle to maintain the tilt angle required for overhead shots and are easily shifted by external forces after installation, causing incomplete or distorted images of the first-floor area and failing to capture the entire scene. Therefore, a mount capable of controlling the tilt angle is needed to ensure complete and precise images when shooting from the second floor onto the first floor, meeting the needs of monitoring, recording, and other scenarios. Utility Model Content
[0003] The purpose of this application is to provide a bracket and camera assembly to solve the problems mentioned in the background art.
[0004] To address the aforementioned issues, in a first aspect, this application provides a bracket for fixing a camera to a carrier. The bracket includes a first positioning edge and an inclined boss. One end of the inclined boss is connected to the first positioning edge, and the other end of the inclined boss forms a second positioning edge. The bracket also includes a first through hole penetrating the inclined boss, the first positioning edge, and the second positioning edge. The first positioning edge is used to connect to the carrier, and the second positioning edge is used to connect to the camera. The camera can capture images through the first through hole.
[0005] Therefore, the bracket of this application achieves a stable connection between the camera and the carrier through the integrated structural design of the first positioning edge, the tilting boss, and the second positioning edge. The tilting boss's structural design can flexibly adapt to the tilted installation requirements of the camera 200 (such as shooting from the second floor to the first floor), ensuring that the camera can accurately align with the shooting area at a preset angle. The first through hole penetrating the tilting boss, the first positioning edge, and the second positioning edge provides a stable shooting channel for the camera 200's lens and enhances the lens's positioning effect through the overall structural integrity, preventing image shift due to shaking during shooting.
[0006] In some possible embodiments of the first aspect, an angle is formed between the first positioning edge and the second positioning edge.
[0007] In some possible embodiments of the first aspect, the included angle ranges from 0° to 20°.
[0008] In some possible embodiments of the first aspect, the central axis of the first through hole intersects the surfaces where the first positioning edge and the second positioning edge are located.
[0009] In some possible embodiments of the first aspect, both the first positioning edge and the second positioning edge are annular, and the projection of the second positioning edge onto the plane containing the first positioning edge is located within the inner periphery of the first positioning edge.
[0010] In some possible embodiments of the first aspect, the bracket further includes a first connector disposed on a surface of the first positioning edge opposite to the second positioning edge, the first connector being used to connect the bracket to the carrier.
[0011] In some possible embodiments of the first aspect, the first connector secures the bracket to the carrier by at least one of magnetic attraction, adhesive, Velcro, or negative pressure.
[0012] In some possible embodiments of the first aspect, a first connector receiving groove is provided on the surface of the first positioning edge opposite to the second positioning edge, the contour of the first connector receiving groove being adapted to the first connector to be embedded in the first connector.
[0013] In some possible embodiments of the first aspect, the bracket further includes a second connector disposed on a surface of the second positioning edge opposite to the first positioning edge, the second connector being used to connect the camera to the bracket.
[0014] In some possible embodiments of the first aspect, the second connector secures the camera to the bracket by at least one of magnetic attraction, adhesive bonding, or Velcro.
[0015] In some possible embodiments of the first aspect, the surface of the second positioning edge opposite to the first positioning edge is provided with a second connector receiving groove, the contour of the second connector receiving groove being adapted to the second connector to embed the second connector.
[0016] In some possible embodiments of the first aspect, the second connector receiving groove has an annular positioning protrusion on the groove edge facing the camera side. The positioning protrusion is continuously distributed along the circumference of the second connector receiving groove to form a closed loop structure. When the camera is connected to the bracket, at least a portion of the outer periphery of the camera is accommodated in the inner ring space of the annular positioning protrusion.
[0017] In some possible embodiments of the first aspect, the inner wall contour of the second connector receiving groove is adapted to the outer peripheral contour of the camera facing the bracket side, forming a contour-following structure.
[0018] In some possible embodiments of the first aspect, the second connector includes a first sub-connector and a second sub-connector. The first sub-connector is connected to a surface on the side of the second positioning edge opposite to the first positioning edge, and the second sub-connector is connected to a surface on the side of the camera facing the second positioning edge. When the first sub-connector and the second sub-connector are connected, the camera is fixedly connected to the bracket. When the first sub-connector and the second sub-connector are separated, the camera is separated from the bracket.
[0019] In some possible embodiments of the first aspect, the inclined boss has a flared structure at one end facing the carrier. The flared structure is a structure that continuously expands along the direction of the first through hole toward the carrier. The outer wall of the flared structure is sloped, and the maximum inner diameter of the flared structure is greater than the inner diameter of the first through hole at the first positioning edge and the second positioning edge.
[0020] In a second aspect, a camera assembly is provided, the camera assembly including a camera and a bracket as described in the first aspect, wherein the bracket is connected between a carrier and the camera.
[0021] Therefore, the first aspect of the bracket, through its integrated first positioning edge, tilting boss, and second positioning edge structure, combined with a flexibly adjustable angle design, can precisely adapt to the tilt installation requirements of the camera, ensuring a stable shooting angle. The first through hole and flared structure provide an unobstructed shooting channel for the lens, ensuring the integrity of the field of view. The setting of the first and second connectors and their corresponding receiving slots achieves a stable connection with the carrier and the camera, and the drill-free design protects the integrity of the carrier. At the same time, the positioning protrusion and contour structure further improve the installation accuracy, allowing the bracket to ensure structural stability while also being convenient to install and adaptable to different scenarios, effectively solving the problems of poor angle control, inaccurate positioning, and cumbersome installation of traditional brackets.
[0022] The second aspect of the camera component integrates the aforementioned bracket and camera, fully leveraging the structural advantages of the bracket to ensure the camera is stably and accurately fixed to the carrier. This guarantees consistent shooting angles and clear, complete images. Furthermore, the flexible assembly and disassembly methods and drill-free design make it suitable for various scenarios such as home, vehicle, and security applications, reducing damage to both the camera and the carrier. This also enhances the overall practicality and reliability of the component, providing users with a convenient and efficient shooting solution. Attached Figure Description
[0023] To more clearly illustrate the technical solutions in the embodiments of this application 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 only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0024] Figure 1 This is a schematic diagram illustrating the connection between the camera and the carrier in some embodiments of this application;
[0025] Figure 2 This is a schematic diagram of the structure of the bracket in some embodiments of this application;
[0026] Figure 3 for Figure 2 A schematic cross-sectional view of the bracket shown;
[0027] Figure 4 This is a schematic diagram showing different tilting directions of the bracket described in some embodiments of this application;
[0028] Figure 5 for Figure 2 Another cross-sectional view of the bracket shown;
[0029] Figure 6 for Figure 1 The diagram shown is a breakdown of the structure.
[0030] Figure 7 for Figure 1 Another exploded structure diagram is shown below;
[0031] Figure 8 for Figure 6 Enlarged view at point C;
[0032] Figure 9 This is a structural block diagram of a camera component in some embodiments of this application. Detailed Implementation
[0033] To enable those skilled in the art to better understand the present application, the technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present application, and not all embodiments. Based on the embodiments in the present application, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of the present application.
[0034] The terms "first," "second," etc., in the specification, claims, and accompanying drawings of this application are used to distinguish different objects, not to describe a specific order. Furthermore, the terms "comprising" and "having," and any variations thereof, are intended to cover non-exclusive inclusion. For example, a process, method, system, product, or apparatus that includes a series of steps or units is not limited to the listed steps or units, but may optionally include steps or units not listed, or may optionally include other steps or units inherent to these processes, methods, products, or apparatuses.
[0035] In this document, the term "embodiment" means that a particular feature, structure, or characteristic described in connection with an embodiment may be included in at least one embodiment of this application. The appearance of this phrase in various places throughout the specification does not necessarily refer to the same embodiment, nor is it a separate or alternative embodiment mutually exclusive with other embodiments. It will be explicitly and implicitly understood by those skilled in the art that the embodiments described herein can be combined with other embodiments.
[0036] Please refer to the following: Figure 1 and Figure 2 , Figure 1 This is a schematic diagram of the connection between the camera and the carrier in some embodiments of this application. Figure 2 This is a schematic diagram of the structure of the bracket in some embodiments of this application. In some embodiments, such as Figure 1 As shown, the bracket 100 is used to fix the camera 200 to the carrier 300. Please refer to [link / reference]. Figure 2 The bracket 100 includes a first positioning edge 110 and an inclined boss 120. One end of the inclined boss 120 is connected to the first positioning edge 110, and the other end of the inclined boss 120 forms a second positioning edge 130. The bracket 100 also includes a first through hole 140 that passes through the inclined boss 120, the first positioning edge 110, and the second positioning edge 130. The first positioning edge 110 is used to connect with the carrier 300, and the second positioning edge 130 is used to connect with the camera 200. The camera 200 can take pictures through the first through hole 140.
[0037] Thus, the bracket 100 of this application achieves a stable connection between the camera 200 and the carrier 300 through the integrated structural design of the first positioning edge 110, the tilting boss 120, and the second positioning edge 130. The tilting boss 120's structural design can flexibly adapt to the tilted installation requirements of the camera 200 (such as shooting from the second floor to the first floor), ensuring that the camera 200 can accurately align with the shooting area at a preset angle. The first through hole 140, passing through the tilting boss 120, the first positioning edge 110, and the second positioning edge 130, provides a stable shooting channel for the camera 200's lens and further enhances the positioning effect of the camera 200, preventing image shift due to shaking during shooting.
[0038] Meanwhile, the reliable connection between the first positioning edge 110 and the carrier 300, the precise cooperation between the second positioning edge 130 and the camera 200, and the transitional support of the tilted boss 120, improve the overall structural stability and installation accuracy of the bracket 100. This effectively solves the problems of poor angle control and inaccurate positioning of traditional brackets, enabling the camera 200 to maintain a stable shooting state in various scenarios and ensuring the integrity and accuracy of the image.
[0039] In some embodiments, the camera 200 includes a lens. When the camera 200 is connected to the carrier 300 via the bracket 100, the lens of the camera 200 passes through the first through hole 140 to capture images outside the carrier 300.
[0040] The bracket 100 of this application can be applied to various carriers 300, such as transparent window glass, transparent car windows or fish tank glass, etc. The lens passes through the carrier 300 to capture the image on the other side of the carrier 300.
[0041] In some embodiments, please refer to Figure 3 , Figure 3 for Figure 2 The diagram shows a cross-sectional view of the bracket. As shown, an angle θ is formed between the first positioning edge 110 and the second positioning edge 130.
[0042] Therefore, the presence of the included angle θ allows the bracket 100 to flexibly adapt to different shooting scenario requirements. For example, in a scenario where the second floor is shooting the first floor, by setting an appropriate included angle θ, the camera 200 fixed on the second positioning edge 130 can be aimed at the shooting area on the first floor at a preset overhead angle. Without the need to adjust the installation position or angle of the carrier 300, the required image can be accurately obtained, greatly improving the scene adaptability of the bracket 100.
[0043] Meanwhile, the angle θ allows the connection force between the first positioning edge 110 and the carrier 300, and the connection force between the second positioning edge 130 and the camera 200 to be transmitted more evenly through the inclined boss 120, reducing local stress concentration, enhancing the structural stability of the bracket 100 under long-term use or external force, reducing the probability of deformation due to uneven force, and thus ensuring the consistency of the shooting angle of the camera 200.
[0044] Please see Figure 4 , Figure 4 This is a schematic diagram illustrating different tilt directions of the bracket described in some embodiments of this application. In some embodiments, the bracket 100 can flexibly change the monitoring angle of the camera 200 through structural design, achieving multi-directional coverage such as "looking left, looking right, looking down, and looking up." Based on the design of the included angle θ, the tilt direction of the bracket 100 can vary according to the monitoring angle requirements of the camera 200, thereby changing the shooting angle of the camera 200. That is, the opening direction of the included angle θ formed between the first positioning edge 110 and the second positioning edge 130 can be set according to actual shooting needs and scenarios, thereby directly changing the orientation of the camera 200. Figure 4 As shown, in part (1), direction a indicates that the angle θ of the bracket 100 opens to the left, so that the camera 200 looks to the left, that is, the lens of the camera 200 faces the left area, for monitoring specific scenes on the left; in part (2), direction b indicates that the angle θ of the bracket 100 opens to the right, so that the camera 200 looks to the right, that is, the lens of the camera 200 faces the right area, for monitoring scenes on the right; in part (3), direction c indicates that the angle θ of the bracket 100 opens downward, so that the camera 200 is downward, suitable for shooting down into the area below, such as monitoring the area on the first floor from the second floor; in part (4), direction d indicates that the angle θ of the bracket 100 opens upward, so that the camera 200 looks upward, which can be used to shoot images from high places, such as monitoring the ceiling.
[0045] Therefore, the bracket 100 is not limited to a single tilt direction, allowing the camera 200 to flexibly cover monitoring needs from different angles. When monitoring requirements need to be changed, there is no need to replace the bracket 100; only the tilt dimension and direction of the bracket 100 need to be adjusted. This enables the camera 200 to achieve multi-directional monitoring, accurately capture targets from different angles, and ensure the integrity of the image. For example, in an application scenario, when the camera 200 needs to monitor the first floor from the second floor (i.e., looking down), simply press the bracket 100 as shown in the image. Figure 4The camera 200 is installed in the direction shown in section (3) to monitor the first floor from the second floor. When the camera 200 needs to look left or right to monitor the left or right area, the bracket 100 can be installed as shown in section (3). Figure 4 Installed in the direction shown in part (1) or part (2) to monitor a specific area on the left or right. When the camera 200 needs to look upwards, the bracket 100 is pressed as shown in the diagram. Figure 4 By installing the camera in the direction shown in part (4), it is possible to monitor the area above. Therefore, the bracket 100 of this application can be combined with different installation directions according to the actual application scenario, thereby changing the monitoring angle of the camera 200 and expanding the scope of application of the bracket 100 of this application.
[0046] In some embodiments, the included angle θ ranges from 0° to 20°, thereby enabling the camera 200 to be installed at a specific tilt angle. For example, when the camera 200 is installed at a high position such as the second floor, the tilt angle allows the camera 200 fixed to the second positioning edge 130 to form a moderate downward angle, which can cover a large shooting area on the first floor and avoid image distortion caused by excessive angle, thus ensuring the integrity and clarity of the captured image. For scenarios that require near-horizontal shooting, an included angle close to 0° allows the camera 200 to remain horizontal, flexibly adapting to different viewing angle requirements.
[0047] Furthermore, the 0°~20° angle range makes the tilt of the inclined boss 120 relatively gentle, which can evenly transmit the forces between the first positioning edge 110 and the carrier 300, and between the second positioning edge 130 and the camera 200, reducing structural stress concentration. Compared to a larger angle, this range can reduce the load-bearing pressure at the connection between the inclined boss 120 and the two positioning edges, improve the overall deformation resistance of the bracket 100, and ensure the stability of the shooting angle of the camera 200 during long-term use.
[0048] The included angle θ of the bracket 100 can be adjusted according to the actual installation scenario and monitoring needs to achieve the best shooting effect, so that the camera 200 can adapt to different heights, different installation positions and different monitoring targets, thereby improving the versatility and adaptability of the product and expanding its application range.
[0049] In some embodiments, the included angle θ is not limited to the range of 0° to 20°, and can be flexibly adjusted according to the needs of the actual shooting scenario. That is, the included angle θ formed between the first positioning edge 110 and the second positioning edge 130 can exceed 20°. For example, when the camera 200 is installed at a higher position and a wider shooting range is required, a larger tilt angle is needed, and the required included angle θ will be larger to meet the need for a wider and larger shooting range.
[0050] Therefore, by setting up the bracket 100 without being limited by a fixed angle, it can adapt to more diverse shooting needs, expand the range of scene adaptation, and improve the adaptability and flexibility of the bracket 100.
[0051] Please see Figure 5 , Figure 5 for Figure 2 Another cross-sectional view of the bracket is shown. In some embodiments, the central axis L of the first through hole 140 intersects both the first surface A where the first positioning edge 110 is located and the second surface B where the second positioning edge 130 is located. That is, the first through hole 140 penetrates the inclined boss 120, the first positioning edge 110 and the second positioning edge 130 in an inclined posture, wherein the axis L forms a certain angle with both the first surface A and the second surface B, just like an oblique line passing through two intersecting planes at the same time, ensuring that the spatial penetration path of the first through hole 140 is adapted to the surface morphology of the first positioning edge 110 and the second positioning edge 130.
[0052] Since the central axis L of the first through hole 140 intersects both the first surface A and the second surface B, when the camera 200 is mounted on the second positioning edge 130, the lens can naturally extend into the first through hole 140 along the direction of the central axis L. This ensures that when the lens of the camera 200 passes through the first through hole 140, the light path always forms a reasonable spatial angle relationship with the first surface A and the second surface B. Even in tilted installation scenarios where there is an angle θ between the first positioning edge 110 and the second positioning edge 130, the lens can avoid being blocked by the hole wall of the first through hole 140. This is especially suitable for scenarios where a large area of the image needs to be clearly captured, such as shooting from the second floor to the first floor, ensuring the integrity of the captured image.
[0053] In some embodiments, both the first positioning edge 110 and the second positioning edge 130 are annular, and the projection of the second positioning edge 130 onto the plane containing the first positioning edge 120 is located within the inner periphery of the first positioning edge 110.
[0054] The first positioning edge 110 and the second positioning edge 130 present a nested projection relationship in space. When viewed from the vertical direction of the plane containing the first positioning edge 110, the annular contour of the second positioning edge 130 will fall completely inside the annular contour of the first positioning edge 110 and will not exceed the inner periphery of the first positioning edge 110.
[0055] Therefore, the projected nesting relationship between the first positioning edge 110 and the second positioning edge 130 makes the overall center of gravity of the bracket 100 more biased towards the central area. When the first positioning edge 110 is fixed on the carrier 300, the weight generated by the second positioning edge 130 and the camera 200 mounted on it can be more evenly transferred to the first positioning edge 110, and then distributed to the carrier 300, reducing the situation of excessive local stress and lowering the possibility of the bracket 100 tilting or loosening. Moreover, this structural design also makes the appearance of the bracket 100 simpler and more compact, saving installation space and making it suitable for scenarios with strict limitations on installation space, thereby further improving the applicability of the bracket 100.
[0056] Please see Figure 6 , Figure 6 for Figure 1 The diagram shows an exploded view. In some embodiments, the bracket 100 further includes a first connector 310, which is disposed on the surface of the first positioning edge 110 opposite to the second positioning edge 130, and the first connector 310 is used to connect the bracket 100 to the carrier 300.
[0057] The bracket 100 further includes a first connector 310 disposed on the surface of the first positioning edge 110 opposite to the second positioning edge 130. The first connector 310 is located on the surface of the first positioning edge 110 that contacts the carrier 300. Thus, the first connector 310, through its connection with the carrier 300, stably fixes the entire bracket 100 and the camera 200 mounted thereon onto the carrier 300, ensuring that it will not easily loosen or fall off during use.
[0058] Therefore, the first connector 310 acts directly on the contact surface between the first positioning edge 110 and the carrier 300, which can concentrate the weight of the camera 200 and the bracket 100 to the carrier 300, avoiding the problem of weak connection caused by force dispersion. Especially in scenarios such as shooting from the second floor to the first floor, where the bracket needs to bear the weight and may be subject to slight external vibrations, it can effectively ensure the stability of the bracket 100 and reduce the shaking of the camera 200.
[0059] Meanwhile, the first connector 310 can enable the bracket 100 to adapt to different types of carriers 300. For example, for carriers 300 of different materials, the corresponding type of first connector 310 can be selected. For example, suction cup or adhesive first connector 310 can be used on glass carriers, and screw-type first connector 310 can be used on walls, which greatly improves the applicability of the bracket 100.
[0060] The first connector 310 is placed on the surface of the first positioning edge 110, which will not affect the connection between the second positioning edge 130 and the camera 200. This makes the overall structure of the bracket 100 more reasonable, with each part having a clear function and not interfering with each other, which is convenient for installation and later maintenance. When the bracket 100 needs to be replaced or adjusted, only the first connector 310 needs to be operated, which is simple and convenient.
[0061] In some embodiments, the first connector 310 fixes the bracket 100 to the carrier 300 by at least one of magnetic attraction, adhesive, Velcro or negative pressure.
[0062] When the first connector 310 fixes the bracket 100 to the carrier 300 by magnetic attraction, the first connector 310 can be set as a ring magnet, which is embedded in the surface of the first positioning edge 110. A corresponding opposite magnet is fixed on the surface of the carrier 300. During installation, the two opposite magnets automatically attract each other under the action of magnetic force, and the bracket 100 is quickly fixed by magnetic attraction, thus completing the installation.
[0063] In some embodiments, when the fixing method is adhesive bonding, the first connector 310 may be a double-sided adhesive layer or a curable adhesive block, with one side attached to the surface of the first positioning edge 110 and the other side attached to the carrier 300, thereby achieving installation.
[0064] In some embodiments, when the fixing method is hook and loop fastener installation, the first connector 310 adopts a ring-shaped hook and loop fastener, including a hook side fixed to the surface of the first positioning edge 110 and a loop side fixed to the carrier 300, or a loop side fixed to the surface of the first positioning edge 110 and a hook side fixed to the carrier 300. Thus, by aligning the hook side and the loop side and applying appropriate pressure, the hook side and the loop side are fully engaged to ensure that the installation is completed.
[0065] When the first connector 310 is a Velcro, the inner diameter of the Velcro can be larger than the outer diameter of the first positioning edge 110. Thus, when the Velcro is attached, the outer ring of its hook and loop surfaces extends beyond the outer periphery of the first positioning edge 110, forming an annular light-shielding part around the first positioning edge 110. This light-shielding part can block ambient stray light entering from the gap between the first positioning edge 110 and the carrier 300, preventing stray light from interfering with the shooting image of the camera 200 through the first through hole 140.
[0066] In some embodiments, when the installation method is negative pressure installation, the first connector 310 can be a suction cup. The surface of the suction cup is sealed to the surface of the first positioning edge 110. After pressing the suction cup to expel the internal air, atmospheric pressure is used to adsorb the bracket 100 onto the surface of the carrier 300. The edge of the suction cup can be provided with anti-slip texture to improve the stability of the negative pressure state.
[0067] Therefore, the diverse fixing methods can cover carriers of different materials such as metal, walls, glass, and plastic 300, making it especially suitable for installation needs in various scenarios such as home, office, and vehicle, solving the problem of traditional brackets having strict requirements on carrier materials. Moreover, it supports repeated assembly and disassembly through magnetic, Velcro, and negative pressure methods, making it easy to adjust the installation position and angle of the bracket 100, while the adhesive method can meet the needs of long-term fixation, allowing users to flexibly choose according to the frequency of use.
[0068] In addition, the light-shielding part of the Velcro is designed to specifically solve the problem of stray light interference that may occur in tilted installation scenarios (such as shooting the first floor from the second floor), improving the imaging clarity of the camera 200; at the same time, the light-shielding part can also block the connection structure between the first positioning edge 110 and the carrier 300, optimizing the overall appearance of the bracket 100.
[0069] The installation method of the bracket 100 and the carrier 300 can be set according to the actual situation. The first connector 310 can be set to different types, and can be flexibly selected according to the material of the carrier 300 and the usage scenario.
[0070] Furthermore, by installing and fixing the bracket 100 in the above manner, no drilling is required on the carrier 300. When the first connector 310 fixes the bracket 100 to the carrier 300 in the above manner, the carrier 300 is not damaged, thereby protecting the integrity of the carrier 300 and fundamentally avoiding damage to the glass structure. This preserves the smoothness, flatness, transparency, and beauty of the glass surface, while ensuring that the physical properties of the glass are not affected, maintaining its original strength and stability, and extending its service life. Moreover, installation can be easily completed without the need for professional drilling equipment and operating skills, reducing installation difficulty and improving user experience.
[0071] Please see Figure 7 , Figure 7 for Figure 1 Another exploded structural diagram is shown. In some embodiments, the surface of the first positioning edge 110 opposite to the second positioning edge 120 is provided with a first connector receiving groove 311, the contour of the first connector receiving groove 311 being adapted to the first connector 310 to be embedded in the first connector 310.
[0072] For example, when the first connector 310 is a ring magnet, the first connector receiving groove 311 is a corresponding ring groove, the inner diameter, outer diameter and depth of which match the size of the ring magnet, ensuring that the surface of the ring magnet is flush with the surface of the first positioning edge 110 after it is embedded; if the first connector 310 is a double-sided adhesive layer, the depth of the first connector receiving groove 311 is slightly less than the thickness of the adhesive layer, so that the adhesive layer still protrudes after it is embedded to ensure the bonding effect; if the first connector 310 is a ring hook and loop fastener, the outline of the first connector receiving groove 311 is completely matched with the hook or loop surface of the hook and loop fastener, and the bonding surface of the hook and loop fastener is just exposed after it is embedded; if the first connector 310 is a silicone suction cup, the first connector receiving groove 311 is designed according to the shape of the suction cup, so that the fixed end of the suction cup is firmly embedded, and the main body of the suction cup protrudes outward to achieve negative pressure adsorption.
[0073] Thus, the first connector receiving groove 311 provides precise installation positioning for the first connector 310, preventing the first connector 310 from shifting or falling off during use. When the bracket 100 is subjected to external impact or vibration, the inner wall of the receiving groove will limit the first connector 310, preventing it from affecting the connection strength with the carrier 300 due to displacement. Especially in scenarios with more vibration, such as vehicle-mounted or outdoor environments, it can effectively ensure the stability of the bracket 100. At the same time, since the contour of the first connector receiving groove 311 is adapted to the first connector 310, after being embedded, the first connector 310 can form an integral structure with the first positioning edge 110, reducing the problem of uneven installation caused by the protrusion or depression of the first connector 310. For example, when the first connector 310 is a ring magnet, after being embedded in the first connector receiving groove 311, its surface can be flush with the surface of the first positioning edge 110, so that the first positioning edge 110 can fit tightly against the carrier 300, avoiding the gap caused by the protrusion of the ring magnet from affecting the magnetic attraction effect, thereby improving the reliability of the connection.
[0074] The first connector receiving groove 311 also protects the first connector 310, reducing wear and tear during transportation, installation, or use. For example, when the suction cup's surface is embedded in the receiving groove, it avoids direct collisions with other objects, extending the service life of the first connector 310. Simultaneously, this design makes the bracket 100 look cleaner and more aesthetically pleasing, as the first connector 310 is not obtrusively exposed, enhancing the product's appearance. Furthermore, for scenarios requiring replacement of the first connector 310, since it is embedded in the receiving groove, replacement is simple: just remove the old first connector 310 from the receiving groove 311 and insert the new one. This operation is simple and convenient, reducing maintenance costs.
[0075] Please continue reading. Figure 6In some embodiments, the bracket 100 further includes a second connector 210, which is disposed on the surface of the second positioning edge 130 on the side opposite to the first positioning edge 110, and the second connector 210 is used to connect the camera 200 to the bracket 100.
[0076] The bracket 100 further includes a second connector 210 disposed on the surface of the second positioning edge 130 opposite to the first positioning edge 110. The second connector 210 is located on the surface of the second positioning edge 130 that contacts the camera 200. Thus, the second connector 210, through its connection with the camera 200, firmly fixes the camera 200 to the second positioning edge 130, ensuring that the camera 200 will not shake, shift, or even fall off during use, thereby guaranteeing the normal operation of the shooting process.
[0077] Therefore, the second connector 210 acts directly on the contact surface between the second positioning edge 130 and the camera 200, concentrating the weight of the camera 200 to the second positioning edge 130, and then transferring it to the first positioning edge 110 and the carrier 300 through the tilting boss 120, making the entire force chain more stable. Especially in scenarios where the camera 200 needs to maintain a specific tilt angle, such as shooting from the second floor to the first floor, it can effectively prevent the camera 200 from changing its shooting angle due to its own weight or slight external impacts, ensuring the stability and consistency of the captured image.
[0078] Meanwhile, by providing the second connector 210, the installation and removal of the camera 200 from the bracket 100 become much simpler. Without the need for complex tools, the camera 200 can be quickly installed or removed simply by connecting or disconnecting the second connector 210, facilitating charging, maintenance, or replacement of the camera 200. For example, this convenient installation method greatly improves operational efficiency when it is necessary to temporarily remove the camera 200 to view the captured content.
[0079] The second connector 210 reduces direct friction between the camera 200 and the second positioning edge 130. During installation, disassembly, or use, the camera 200 and the second positioning edge 130 will not directly contact or collide, thereby reducing the possibility of wear on the housing of the camera 200 and the surface of the second positioning edge 130, and extending the service life of the camera 200 and the bracket 100.
[0080] In some embodiments, the second connector 210 secures the camera 200 to the bracket 100 by at least one of magnetic attraction, adhesive bonding, or Velcro.
[0081] When the installation method is magnetic installation, the second connector 210 can be composed of a pair of mutually attracting magnetic components. One magnetic component is embedded in the surface of the second positioning edge 130, and the other is installed on the side of the camera 200 facing the bracket. When the camera 200 approaches the second positioning edge 130, the attraction generated by the two magnetic components will quickly attract the camera 200 into place. The strength of the attraction can be designed according to the weight of the camera to ensure both stable fixation and easy manual separation.
[0082] In some embodiments, when the installation method is adhesive bonding, the second connector 210 may be double-sided adhesive, etc. One side of the double-sided adhesive is attached to the surface of the second positioning edge 130, and the other side is directly attached to the side of the camera 200 facing the second positioning edge 130. This is suitable for scenarios where high fixing strength is required and frequent disassembly is not necessary.
[0083] In some embodiments, when the installation method is Velcro installation, the second connector 210 includes a Velcro hook side and a Velcro velvet side (or vice versa) respectively fixed to the surface of the second positioning edge 130 and the housing of the camera 200. When the two are in contact, they are fixed by the interlocking of the hook side and the velvet side.
[0084] Thus, the camera 200 can be quickly attached and detached using magnetic and Velcro methods, allowing users to quickly pick up and put down the camera, which is especially suitable for scenarios that require frequent camera movement (such as temporarily adjusting the shooting angle); the adhesive method provides long-term stable fixation, can cope with complex environments such as vibration and slight collisions, and meets the needs of long-term guarding such as security monitoring, so that the bracket 100 can be adapted to the fixation needs of different usage scenarios.
[0085] The magnetic and Velcro connections are non-rigid, reducing hard contact between the camera 200 and the bracket 100. When the camera is subjected to external impact, the magnetic attraction or the cushioning effect of the Velcro can alleviate the impact and reduce the risk of cracks in the camera housing due to rigid collisions. The special adhesive material itself has a certain degree of elasticity, which can also play a cushioning and protective role, avoiding surface wear caused by direct friction between the camera 200 and the second positioning edge 130.
[0086] Among them, the magnetic attraction method can guide the camera 200 to automatically align by taking advantage of the uniformity of the magnetic field. For example, when the position of the camera 200 is slightly off, the magnetic force will drive the camera 200 to fine-tune to the center position, ensuring that the lens is precisely aligned with the first through hole 140.
[0087] In addition, none of the above methods require additional mounting holes on the camera 200 or bracket 100, thus preserving the original structural integrity of both and maintaining their aesthetics. They also avoid the risk of corrosion from metal connectors such as screws, extending the lifespan of the bracket and camera.
[0088] The installation method of the bracket 100 and the camera 200 can be set according to the actual situation, and the second connector 210 can be set to different types, which can be set according to the actual application scenario and needs, and are not limited here.
[0089] Please continue reading. Figure 6 The second positioning edge 130 has a second connector receiving groove 211 on its surface opposite to the first positioning edge 110. The outline of the second connector receiving groove 211 is adapted to the second connector 210 so as to be embedded in the second connector 210.
[0090] The specific adaptation varies depending on the type of the second connector 210. For example, when the second connector 210 is a ring magnet, the second connector receiving groove 211 is designed as a groove that matches the size of the ring magnet. When the second connector 210 is double-sided adhesive, the depth of the second connector receiving groove 211 is equivalent to the thickness of the adhesive layer. After the adhesive layer is embedded, its surface is flush with or slightly convex with the surface of the second positioning edge 130, which ensures that the adhesive layer can fully contact the housing of the camera 200 and prevents the adhesive layer from shifting due to external pressure. When the second connector 210 is in the form of Velcro, the shape of the second connector receiving groove 211 is completely consistent with the hook / straw side of the Velcro. If it is a ring Velcro, the receiving groove is also ring-shaped, and its depth is just enough to accommodate the thickness of the Velcro, so that the surface of the Velcro after being embedded is flush with the surface of the second positioning edge 130, ensuring a tight fit with the Velcro part on the camera 200 and enhancing the interlocking force.
[0091] Therefore, the limiting effect of the groove wall of the second connector receiving groove 211 can effectively prevent the second connector 210 from rotating circumferentially or shifting axially during use. For example, when the second connector 210 is a magnetic component, the second connector receiving groove 211 can prevent it from shifting due to frequent picking and putting of the camera 200, ensuring the accuracy of magnetic alignment; for Velcro, the receiving groove can ensure that it is always in the preset position, preventing the camera 200 from becoming unstable due to Velcro shift.
[0092] Since the contour of the second connector receiving groove 211 is adapted to the second connector 210, after being embedded, the second connector 210 can form a regular overall structure with the second positioning edge 130. When the camera 200 is connected to the bracket 100, it can quickly find the correct position through the guidance of the second connector 210, ensuring that the lens is accurately aligned with the first through hole 140, reducing the shooting angle shift caused by the positional deviation of the second connector 210, which is especially suitable for scenes with high angle accuracy requirements, such as shooting the first floor from the second floor. At the same time, the second connector receiving groove 211 allows the second connector 210 to be embedded inside the second positioning edge 130, reducing the abruptness caused by the protrusion of the second connector 210, making the appearance of the bracket 100 more neat and beautiful.
[0093] When the second connector 210 needs to be replaced, the second connector receiving groove 211 facilitates disassembly. For example, when replacing double-sided tape, the old adhesive layer can be easily peeled off using the gap at the edge of the second connector receiving groove 211; for magnetic components, the presence of the receiving groove also makes it easier to remove and install new parts, reducing maintenance difficulty and cost.
[0094] Please see Figure 8 , Figure 8 for Figure 6 Enlarged schematic diagram at point C. In some embodiments, the second connector receiving groove 211 has an annular positioning protrusion 212 on the groove edge facing the camera 200. The positioning protrusion 212 is continuously distributed along the circumference of the second connector receiving groove 211 to form a closed loop structure. When the camera 200 is connected to the bracket 100, at least a portion of the outer periphery of the camera 200 is accommodated in the inner ring space of the annular positioning protrusion 212.
[0095] The positioning protrusion 212 is a continuous ring of protrusions surrounding the opening of the second connector receiving groove 211, without any breaks, forming a complete annular circle. When the camera 200 is connected to the bracket 100, at least a portion of the outer periphery of the camera 200 facing the bracket 100 enters the inner ring space of this annular positioning protrusion 212. The inner ring contour of the annular positioning protrusion 212 matches the outer periphery contour of the corresponding portion of the camera 200, forming a tight fit between them.
[0096] When the camera 200 approaches the bracket 100, the inner ring space formed by the positioning protrusion 212 guides the outer periphery of the camera 200 to slide into the correct position along the inner side of the protrusion, avoiding circumferential offset or tilting of the camera 200 during installation, and ensuring that the lens of the camera 200 can be accurately aligned with the first through hole 140. Especially in scenarios where the shooting angle is strictly required, such as shooting the first floor from the second floor, it can effectively ensure the accuracy of the shooting image and reduce the image deviation caused by inaccurate positioning.
[0097] Meanwhile, the cooperation between the annular positioning protrusion 212 and the outer periphery of the camera 200 can further enhance the connection between the two. When the outer periphery of the camera 200 is accommodated in the inner ring space of the positioning protrusion 212, the positioning protrusion 212 will form a wrapping limit on the camera 200 from the circumference. Even if it is subjected to slight external vibration or collision, it can limit the shaking or displacement of the camera 200. Combined with the fixing effect of the second connector 210, a double stable structure is formed, which further improves the reliability of the connection between the camera 200 and the bracket 100.
[0098] When installing the camera, there is no need to painstakingly align the camera 200 with the bracket 100. Simply align the outer periphery of the camera 200 with the inner ring space of the positioning protrusion 212 and insert it to quickly complete the initial positioning. Then, the second connector 210 is used to fix it, which further improves the convenience of installation.
[0099] The positioning protrusion 212 is shaped to perfectly match the outer periphery of the camera 200 facing the bracket. For example, if the camera 200 is square, the positioning protrusion 212 will be a corresponding square closed loop with its four sides parallel to the four sides of the camera. If the camera 200 is circular, the positioning protrusion 212 will be annular with its inner diameter precisely matching the outer periphery diameter of the camera. This ensures that when the camera 200 approaches the bracket 100, it can slide precisely along the inner contour of the positioning protrusion 212.
[0100] In some embodiments, the inner wall contour of the second connector receiving groove 211 is adapted to the outer peripheral contour of the side of the camera 200 facing the bracket 100, forming a contour-following structure, so as to realize the installation of the camera 200 through contour adaptation. For example, if the outer peripheral contour of the side of the camera 200 facing the bracket is a rectangle with rounded corners, the inner wall of the second connector receiving groove 211 will also be the same rectangle with rounded corners, and the four straight edges of its inner wall will fit with the four side edges of the camera 200, and the arc of the four rounded corners will be completely consistent with the rounded corners of the camera 200, forming a fitting relationship. When the camera 200 is circular, the inner wall of the second connector receiving groove 211 will also be the same circular shape.
[0101] Thus, the contouring structure enables "zero-gap" alignment between the camera 200 and the bracket 100. When the camera 200 is installed on the second positioning edge 130, its outer periphery will completely fit against the inner wall of the second connector receiving groove 211, with each contour forming mutual restraints to prevent the camera from rotating or shifting. Furthermore, the contouring structure improves overall stability by increasing the contact area. The complete fit between the inner wall and the outer periphery of the camera 200 can distribute the weight of the camera 200 and external forces (such as vibration and collision) to multiple contact points of the second connector receiving groove 211, avoiding deformation or loosening caused by excessive local stress. For example, when the camera is subjected to lateral thrust, multiple parts of the contouring inner wall will simultaneously provide reaction forces, thereby further reducing the risk of the camera 200 falling off.
[0102] Furthermore, since the inner wall contour perfectly matches the outer periphery of the camera 200, during installation, the camera 200 can be naturally slid into the correct position by simply placing it into the second connector receiving groove 211 according to the contour guide, further reducing installation deviations caused by operational errors. At the same time, if it is necessary to adapt to different models of cameras, only the inner wall contour of the second connector receiving groove 211 needs to be adjusted, without changing the overall structure of the bracket, reducing modification costs and improving the versatility and expandability of the bracket 100.
[0103] Please continue reading. Figure 6 In some embodiments, the second connector 210 includes a first sub-connector 213 and a second sub-connector 214. The first sub-connector 213 is connected to the surface of the second positioning edge 130 opposite to the first positioning edge 110, and the second sub-connector 214 is connected to the surface of the camera 200 facing the second positioning edge 130. When the first sub-connector 213 and the second sub-connector 214 are connected, the camera 200 is fixedly connected to the bracket 100. When the first sub-connector 213 and the second sub-connector 214 are separated, the camera 200 is separated from the bracket 100.
[0104] The second connector 210 includes a first sub-connector 213 and a second sub-connector 214, forming a mating structure. The first sub-connector 213 is connected to the surface of the second positioning edge 130 facing away from the first positioning edge 110. It can be fixed using methods such as embedding, bonding, or integral molding, depending on the connection method. For example, in a magnetic structure, the first sub-connector 213 can be a magnet fixed to the surface of the second positioning edge 130. The second sub-connector 214 is correspondingly connected to the surface of the camera 200 facing the second positioning edge 130, and is also fixed by an adaptation method, such as using a dissimilar magnet that mates with the magnet. When the first sub-connector 213 and the second sub-connector 214 are connected, such as two dissimilar magnets attracting each other, the camera 200 is securely attached to the bracket 100. When they are separated, if an external force is applied to overcome the magnetic force and separate the magnets, the camera 200 can be removed from the bracket 100.
[0105] The exclusive cooperation between the first sub-connector 213 and the second sub-connector 214 can form a precise and secure connection. Since they are a pair of mating structures, they can fit tightly together during connection, reducing the possibility of loosening. For example, the magnetic first sub-connector 213 and the second sub-connector 214 have magnets of compatible size and magnetic strength, and can withstand a certain amount of external force after connection, preventing the camera 200 from accidentally falling off during use, which is especially suitable for use in vibrating environments.
[0106] During installation, simply bring the camera 200 close to the bracket 100, aligning and contacting the first sub-connector 213 and the second sub-connector 214 to secure it. Disassembly is equally simple; the camera 200 can be removed without the need for complex tools. This design further improves operational efficiency for scenarios requiring frequent removal of the camera 200 to check footage, charge, or change location, such as temporarily adjusting the shooting angle of a home camera. Furthermore, when adapting to different camera models 200, only the second sub-connector 214 needs to be replaced, while the first sub-connector 213 remains unchanged, reducing the need for modifications to the overall structure of the bracket 100 and enhancing its versatility.
[0107] Furthermore, the first sub-connector 213 and the second sub-connector 214 are installed on their respective surfaces, eliminating the need for complex drilling or other processing on the camera 200 and the bracket 100, thus maintaining the original structural integrity and aesthetic appearance of both.
[0108] Please continue reading. Figure 7In some embodiments, the inclined boss 120 is provided with a flared structure 121 at one end facing the carrier 300. The flared structure 121 is a structure that continuously expands along the first through hole 140 toward the carrier 300. The outer wall of the flared structure 121 is sloping, and the maximum inner diameter of the flared structure 121 is greater than the inner diameter of the first through hole 140 at the first positioning edge 110 and the second positioning edge 130.
[0109] The inner wall of the flared structure 121 gradually expands outward from the connection point with the main body of the first through hole 140, forming a trumpet-shaped transition area. Its outer wall is a smooth slope. The maximum inner diameter of the flared structure 121 (i.e., the inner diameter near the end of the carrier 300) is greater than the inner diameter of the first through hole 140 at the first positioning edge 110 and the second positioning edge 130, forming a gradual opening from the main body of the first through hole 140 to the side of the carrier 300.
[0110] Therefore, the flared structure 121 can effectively expand the shooting range of the camera 200 and avoid obstructing the lens's field of view. In scenarios where the bracket 100 is installed at an angle (such as shooting the first floor from the second floor), when the lens of the camera 200 shoots through the first through hole 140, the enlarged opening of the flared structure 121 can reduce the restriction of the inner wall of the first through hole 140 on the edge field of view of the lens, avoid the problem of image edge cropping caused by the through hole diameter being too small, ensure that the shooting area below or far away can be fully captured, and improve the integrity and practicality of the image.
[0111] Therefore, when installing the camera 200 and the carrier 300, the bracket 100 of this application embeds the first connector 310 into the first connector receiving groove 311 of the first positioning edge 110, thereby fixing the bracket 100 to the carrier 300 using the first connector 310. For example, a magnetic type can quickly adhere to the carrier 300 using magnetic force, while a suction cup type can adhere to the carrier 300 by creating negative pressure through pressing to expel air. This process does not require drilling holes in the carrier 300. The first connector receiving groove 311 ensures accurate positioning of the first connector 310, preventing displacement, and at the same time ensures a tight fit between the first positioning edge 110 and the carrier 300, guaranteeing the overall stability of the bracket 100.
[0112] Subsequently, the camera 200 is fixed to the second positioning edge 130 of the bracket 100 via the second connector 210. The second connector 210 is embedded in the second connector receiving groove 211, and with the annular positioning protrusion 212 and the contoured inner wall of the groove, the outer periphery of the camera 200 is guided to be precisely embedded, ensuring that the lens passes through the first through hole 140. At this time, the angle θ between the first positioning edge 110 and the second positioning edge 130 causes the camera to form a preset tilt angle. The flared structure 121 can prevent the lens's field of view from being obstructed, ensuring the integrity of the shooting range.
[0113] When disassembling the camera 200, the second connector 210 can be directly separated to achieve separation; when disassembling the bracket 100, the connection between the first connector 310 and the carrier 300 is released, thereby achieving disassembly.
[0114] Therefore, the bracket 100 of this application can be quickly installed by fast fixing (such as magnetic or Velcro) of the first connector 310 and the second connector 210. The positioning protrusion 212 and the contour structure can reduce alignment operations and reduce the complexity of installation.
[0115] Please see Figure 9 , Figure 9 This is a structural block diagram of a camera assembly in some embodiments of this application. In some embodiments, the camera assembly 400 includes a camera 410 and a bracket 100 as described in any of the foregoing embodiments, wherein the bracket 100 is connected between a carrier and the camera 410.
[0116] Thus, by combining the camera 410 with the aforementioned bracket 100, the camera assembly 400 can achieve quick installation and stable fixation of the camera 410 on the carrier by using the tilt angle and other settings of the bracket 100. At the same time, the bracket 100's flared structure 121 and first through hole 140 design ensure a complete field of view. Furthermore, the punch-free installation and flexible disassembly feature protect the carrier and equipment, making the assembly suitable for various scenarios such as home, vehicle, and monitoring, thus balancing practicality and reliability.
[0117] In the above embodiments, the descriptions of each embodiment have their own emphasis. Parts not described in detail in a particular embodiment can be found in the relevant descriptions of other embodiments. The embodiments of this utility model have been described in detail above. Specific examples have been used to illustrate the principles and implementation methods of this utility model. The descriptions of the above embodiments are only for the purpose of helping to understand the method and core ideas of this application. Furthermore, for those skilled in the art, based on the ideas of this application, there will be changes in specific implementation methods and application scope. Therefore, the content of this specification should not be construed as a limitation of this application. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of the above embodiments should be included within the protection scope of the technical solution.
Claims
1. A support, characterized in that, The bracket is used to fix the camera to the carrier. The bracket includes a first positioning edge and an inclined boss. One end of the inclined boss is connected to the first positioning edge, and the other end of the inclined boss forms a second positioning edge. The bracket also includes a first through hole that passes through the inclined boss, the first positioning edge and the second positioning edge. The first positioning edge is used to connect with the carrier, and the second positioning edge is used to connect with the camera. The camera can take pictures through the first through hole.
2. The bracket according to claim 1, characterized in that, An angle is formed between the first positioning edge and the second positioning edge.
3. The bracket according to claim 2, characterized in that, The included angle ranges from 0° to 20°.
4. The bracket according to claim 2, characterized in that, The central axis of the first through hole intersects the surfaces where the first positioning edge and the second positioning edge are located.
5. The bracket according to claim 1, characterized in that, Both the first positioning edge and the second positioning edge are annular, and the projection of the second positioning edge onto the plane containing the first positioning edge is located within the inner periphery of the first positioning edge.
6. The bracket according to claim 1, characterized in that, The bracket further includes a first connector disposed on the surface of the first positioning edge on the side opposite to the second positioning edge, and the first connector is used to connect the bracket to the carrier.
7. The stent according to claim 6, characterized in that, The first connector fixes the bracket to the carrier by at least one of magnetic attraction, adhesive, Velcro or negative pressure.
8. The bracket according to claim 6, characterized in that, The surface of the first positioning edge facing away from the second positioning edge is provided with a first connector receiving groove, the contour of the first connector receiving groove being adapted to the first connector to be embedded in the first connector.
9. The bracket according to claim 1, characterized in that, The bracket further includes a second connector disposed on the surface of the second positioning edge on the side opposite to the first positioning edge, and the second connector is used to connect the camera to the bracket.
10. The stent according to claim 9, characterized in that, The second connector secures the camera to the bracket by at least one of magnetic attraction, adhesive bonding, or Velcro.
11. The bracket according to claim 9, characterized in that, The surface of the second positioning edge opposite to the first positioning edge is provided with a second connector receiving groove, the contour of the second connector receiving groove being adapted to the second connector to be embedded in the second connector.
12. The stent according to claim 9, characterized in that, The second connector receiving groove has an annular positioning protrusion on the edge of the groove facing the camera. The positioning protrusion is continuously distributed along the circumference of the second connector receiving groove to form a closed loop structure. When the camera is connected to the bracket, at least a portion of the outer periphery of the camera is accommodated in the inner ring space of the annular positioning protrusion.
13. The stent according to claim 9, characterized in that, The inner wall contour of the second connector receiving groove is adapted to the outer peripheral contour of the camera facing the bracket, forming a contour-following structure.
14. The stent according to claim 9, characterized in that, The second connector includes a first sub-connector and a second sub-connector. The first sub-connector is connected to the surface of the second positioning edge on the side opposite to the first positioning edge, and the second sub-connector is connected to the surface of the camera on the side facing the second positioning edge. When the first sub-connector and the second sub-connector are connected, the camera is fixedly connected to the bracket. When the first sub-connector and the second sub-connector are separated, the camera is separated from the bracket.
15. The bracket according to claim 1, characterized in that, The inclined boss has a flared structure at one end facing the carrier. The flared structure is a structure that continuously expands along the direction of the first through hole toward the carrier. The outer wall of the flared structure is sloping. The maximum inner diameter of the flared structure is greater than the inner diameter of the first through hole at the first positioning edge and the second positioning edge.
16. A camera assembly, characterized in that, It includes a camera and a bracket as described in any one of claims 1-15, wherein the bracket is connected between the carrier and the camera.