Blind assembly and camera device
By designing blind-installation components and utilizing the combination of positioning parts and sliding grooves, the problem of difficult installation of high-altitude cameras is solved, achieving a fast and stable installation process and an aesthetically pleasing appearance.
Patent Information
- Application Number
- CN202520367507.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-04
- Publication Date
- 2026-01-09
- Estimated Expiration
- 2035-03-04
AI Technical Summary
When installing cameras, especially those suspended high up, it is not easy to align and fasten the base and camera support, which increases the difficulty of installation.
A blind-installation component was designed, including a fixed base and a fixed bracket. The installation direction is indicated by the cooperation of the first positioning component and the second positioning component, and the sliding cooperation between the slide groove and the main body enables quick blind installation. Stable connection is achieved in three-dimensional space with the help of the limiting component.
It enables quick and stable camera installation even when direct observation is not possible, simplifies the installation process, improves assembly efficiency, and ensures the stability and aesthetics of the camera.
Smart Images

Figure CN223782460U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of camera equipment technology, and in particular to a blind-mounted component and camera device. Background Technology
[0002] Surveillance cameras are semiconductor imaging devices with advantages such as high sensitivity, resistance to strong light, low distortion, long lifespan, and vibration resistance. In surveillance camera security systems, image generation currently primarily comes from CCD cameras. They can also extract stored electrical charges to change voltage, and their vibration and impact resistance makes them widely used. When installing cameras, for lower-positioned cameras, alignment can be easily observed to ensure the base and camera support are properly engaged. However, for cameras that need to be suspended high up, observation is difficult, making alignment and engagement of the base and camera support more challenging and increasing installation difficulty. Utility Model Content
[0003] To address the aforementioned technical problems, embodiments of this application provide a blind assembly component and a camera device.
[0004] The first aspect of the technical solution of this application provides a blind-assembly assembly, which includes:
[0005] The fixed base is provided with a first limiting component and a first positioning component, and the fixed base is also provided with a sliding groove;
[0006] A fixed bracket includes a body for fixing to a mounting surface, a second limiting component, and a second positioning member extending from the body. The first positioning member is used to cooperate with the second positioning member to indicate the mounting direction of the fixed base. The body is configured to be received within the slide groove and to move relative to the fixed base in a first direction.
[0007] The blind assembly has a locked state and a released state. In the locked state, the first limiting component and the second limiting component are matched and connected to make the fixed bracket and the fixed seat limit at least in the first direction and the groove depth direction of the slide. In the released state, the first limiting component and the second limiting component release the limitation of the fixed bracket and the fixed seat in the first direction.
[0008] Furthermore, in a plane perpendicular to the depth direction of the groove, the orthographic projection of the fixed seat completely covers the orthographic projection of the main body.
[0009] Furthermore, the first limiting component includes a first insertion slot disposed on the fixed base, and the second limiting component includes a first insertion block disposed on the main body. In the locked state, the first insertion block is inserted into the first insertion slot to limit the fixed bracket and the fixed base in the direction of the groove depth.
[0010] Furthermore, the first positioning member is a notch extending from one end of the fixed seat in the first direction to the groove in the first direction, and the second positioning member extends in the first direction, and the first positioning member and the second positioning member can slide together in the first direction.
[0011] Furthermore, the second positioning member includes an elastic sheet formed on the main body, the elastic sheet being elastically deformable in a direction close to or away from the main body, the second limiting component includes a locking protrusion disposed on the side of the elastic sheet away from the main body, and the first limiting component includes a locking hole formed on the bottom surface of the notch, in the locked state, the locking protrusion is matched and inserted into the locking hole and the elastic sheet abuts against the bottom surface of the notch.
[0012] Furthermore, the locking protrusion forms a locking surface perpendicular to the first direction on one side facing the body in the first direction, and the locking protrusion forms an inclined wedge-shaped surface on the side facing away from the body in the first direction. The bottom of the groove is provided with a hollow hole. In the released state, the locking protrusion is located in the hollow hole. In the locked state, the locking surface cooperates with the hole wall of the locking hole to restrict the body from moving in the first direction away from the notch.
[0013] Furthermore, the first limiting component also includes a first abutting surface formed on the fixed base, and the second limiting component also includes a second abutting surface formed on the main body. In the locked state, the first abutting surface and the second abutting surface abut against each other to restrict the main body from moving in the first direction along the direction close to the notch.
[0014] Furthermore, the first limiting component also includes an arc-shaped third abutment surface, which is formed by the groove wall of the slide near the notch. The second limiting component also includes an arc-shaped fourth abutment surface, which is formed on the side of the main body where the second positioning member is disposed. In the locked state, the third abutment surface and the fourth abutment surface abut against each other.
[0015] Furthermore, the first limiting component also includes a second insertion slot disposed on the fixed base, the second insertion slot being located on both sides of the notch, and the second limiting component also includes a second insertion block disposed on the main body, the second insertion block being disposed on both sides of the second positioning member, and in the locked state, the second insertion block is inserted into the second insertion slot.
[0016] The first aspect of the technical solution of this application provides a camera device, which includes:
[0017] The blind-mounted assembly provided in the first aspect of the technical solution of this application has a fixing bracket configured to be fixed on the mounting surface;
[0018] The fuselage is rotatably connected to the fixed base;
[0019] The camera is rotatably attached to the body of the device.
[0020] Compared with the prior art, the above-mentioned technical solutions provided in this application have the following advantages: The blind assembly provided in this application can achieve rapid blind assembly even when the main body of the fixed bracket is blocked by the fixed seat, by means of the installation direction indication function of the first positioning member and the second positioning member, and the sliding cooperation between the slide groove and the main body, and obtain a locked state during the sliding process, and achieve a stable connection between the fixed seat and the fixed bracket in three-dimensional space by means of the limiting component. Attached Figure Description
[0021] The accompanying drawings, which are incorporated in and form part of this specification, illustrate embodiments consistent with the present invention and, together with the description, serve to explain the principles of the present invention.
[0022] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, for those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0023] One or more embodiments are illustrated by way of example with reference numerals in the accompanying drawings. These illustrations do not constitute a limitation on the embodiments. Elements with the same reference numerals in the drawings are denoted as similar elements. Unless otherwise stated, the figures in the drawings are not to be limited by scale.
[0024] Figure 1 A three-dimensional structural diagram of the blind-mounted assembly is provided for the embodiments of this application;
[0025] Figure 2 A frontal projection view of the blind-mounted assembly is provided for embodiments of this application;
[0026] Figure 3 for Figure 2 AA section view in the middle;
[0027] Figure 4 This application provides a three-dimensional structure for the fixing base in a blind-mount assembly. Figure 1 ;
[0028] Figure 5 This application provides a three-dimensional structure for the fixing base in a blind-mount assembly. Figure 2 ;
[0029] Figure 6 This application provides a three-dimensional structure for the fixing bracket in a blind-mount assembly. Figure 1 ;
[0030] Figure 7 This application provides a three-dimensional structure for the fixing bracket in a blind-mount assembly. Figure 2 ;
[0031] Figure 8 This application provides an orthographic projection view of the fixing bracket in the blind-mount assembly for an embodiment of the present application;
[0032] Figure 9 For Figure 8 BB section view in the middle;
[0033] Figure 10 A three-dimensional structural diagram of the camera device is provided for the embodiments of this application.
[0034] Explanation of reference numerals in the attached figures:
[0035] 100. Fixed base; 101. First positioning element; 102. Slide groove; 103. First sliding surface; 104. First insertion groove; 106. Locking hole; 107. Hollow hole; 108. First abutment surface; 109. Third abutment surface; 110. Second insertion groove; 111. Fifth abutment surface;
[0036] 200. Fixed bracket; 201. Main body; 202. Second positioning element; 203. Second sliding surface; 204. Locking protrusion; 2041. Locking surface; 2042. Wedge-shaped surface; 205. Second abutting surface; 206. Fourth abutting surface; 207. Second insertion block; 208. Fixing hole; 209. Sixth abutting surface; 210. First insertion block;
[0037] 300. Fuselage;
[0038] 400. Camera. Detailed Implementation
[0039] To make the objectives, technical solutions, and advantages of the embodiments of this application clearer, the technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, not all embodiments. Based on the embodiments of this application, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this application.
[0040] The following disclosure provides numerous different embodiments or examples for implementing various structures of the present invention. To simplify the disclosure, specific examples of components and arrangements are described below. These are merely examples and are not intended to limit the scope of the invention. Furthermore, reference numerals and / or letters may be repeated in different examples. Such repetition is for simplification and clarity and does not in itself indicate a relationship between the various embodiments and / or arrangements discussed.
[0041] For ease of description, spatial relative terms may be used in the text to describe the relative position or movement of one element or feature relative to another element or feature, as shown in the figure. These relative terms include, for example, "inside," "outside," "middle," "outer," "below," "below," "above," "front," "back," etc. Such spatial relative terms are intended to include different orientations of the device in use or operation, other than those depicted in the figure. For example, if the device in the figure undergoes a positional flip, orientation change, or change of motion, these directional indications will change accordingly. For instance, an element described as "below other elements or features" or "below other elements or features" will subsequently be oriented "above other elements or features" or "above other elements or features." Therefore, the example term "below" can include both upper and lower orientations. The device may be otherwise oriented (rotated 90 degrees or in other directions), and the spatial relative descriptors used in the text will be interpreted accordingly.
[0042] The main structure of the blind-installation assembly provided in this application embodiment includes a fixing base 100 and a fixing bracket 200. As the name suggests, the blind-installation assembly can ensure quick assembly and disassembly between the fixing base 100 and the fixing bracket 200 through structural control, simplifying the assembly process and improving assembly efficiency. The fixing bracket 200 is used to fix to the mounting surface, which includes, but is not limited to, walls, desktops, ceilings, etc. The fixing base 100 can be an independent mounting structure, which, when assembled with the fixing bracket 200, forms a complete product. The fixing base 100 can also be used as a transition structure to allow other functional structures to be assembled onto the fixing bracket 200 via the fixing base 100. These other functional modules include, but are not limited to, image acquisition structures, lamps, smoke detectors, alarms, gateways, etc. This specification uses the fixing base 100 as a transition structure to exemplify the installation of a camera 400 onto the fixing bracket 200 via the fixing base 100 for illustration.
[0043] like Figure 1-9 As shown, the mounting base 100 of the blind-mount assembly is provided with a first limiting component and a first positioning component 101, and the mounting base 100 is also provided with a sliding groove 102; the mounting bracket 200 of the blind-mount assembly includes a main body 201 for fixing to the mounting surface, a second limiting component, and a second positioning component 202 extending out of the main body 201. The first positioning component 101 is used to cooperate with the second positioning component 202 to indicate the installation direction of the mounting base 100. The main body 201 is configured to be accommodated in the sliding groove 102 and to move relative to the mounting base 100 in a first direction; the blind-mount assembly has a locked state and a released state. In the locked state, the first limiting component and the second limiting component are matched and connected to make the mounting bracket 200 and the mounting base 100 at least limited in the first direction and in the groove depth direction of the sliding groove 102. In the released state, the first limiting component and the second limiting component release the limitation of the mounting bracket 200 and the mounting base 100 in the first direction.
[0044] The first direction is the extension direction of the slide groove 102, that is, the relative sliding direction between the main body 201 and the fixed seat 100. For ease of description, the width direction of the slide groove 102 is further defined as the second direction, and the depth direction of the slide groove 102 is defined as the third direction. The first direction, the second direction and the third direction are orthogonal to each other.
[0045] In the above embodiment, the main body 201 of the fixed bracket 200 is used to fix it to the mounting surface to provide a load-bearing foundation for the overall structure. The sliding groove 102 of the mounting base can be fastened onto the main body 201 of the fixed bracket 200 so that the main body 201 can be completely embedded and accommodated in the sliding groove 102. Since the sliding groove 102 faces the fixed bracket 200 during installation, the user cannot observe the sliding groove 102. During this process, the user can use the relative positional relationship between the first positioning member 101 and the second positioning member 202 to assist in the initial positioning of the two, so as to indicate the installation direction of the fixed base 100 relative to the fixed bracket 200, so that the main body 201 can be quickly accommodated in the sliding groove 102.
[0046] It should be noted that the first positioning member 101, which cooperates with the second positioning member 202 to indicate the installation direction of the fixing base 100, should be understood as follows: Since the second positioning member 202 extends out of the main body 201, even if the main body 201 is blocked by the mounting base during installation, the user can still observe the second positioning member 202 to indicate the installation direction of the fixing base 100. By pre-adjusting the direction of the mounting base so that the first positioning member 101 on the mounting base is kept in a preset relative position with respect to the second positioning member 202 on the fixing bracket 200, the slide groove 102 of the fixing base 100 is already aligned with the main body 201 of the fixing bracket 200 in one of the first and second directions. The user only needs to adjust the position of the fixing base 100 in the other direction to find the position where the main body 201 is completely embedded in the slide groove 102. For example, the second positioning member 202 can be set at one end of the main body 201 along the first direction and extend along the first direction. When the first positioning member 101 on the fixed seat 100 and the second positioning member 202 are aligned and engaged, the slide groove 102 of the fixed seat 100 is aligned with the main body 201 of the fixed bracket 200 in the second direction. Then, during the installation process, the user only needs to adjust the direction of the mounting seat so that the first positioning member 101 and the second positioning member 202 are aligned and engaged, and then adjust the position of the fixed seat 100 back and forth along the first direction to quickly find the position where the main body 201 is completely embedded in the slide groove 102. For example, the second positioning member 202 can be set at one end of the main body 201 along the second direction and extend along the second direction. When the first positioning member 101 on the fixed seat 100 and the second positioning member 202 are aligned and engaged, the slide groove 102 of the fixed seat 100 is aligned with the main body 201 of the fixed bracket 200 in the first direction. Then, during the installation process, the user only needs to adjust the direction of the mounting seat so that the first positioning member 101 and the second positioning member 202 are aligned and engaged, and then adjust the position of the fixed seat 100 back and forth along the second direction to quickly find the position where the main body 201 is completely embedded in the slide groove 102.
[0047] After the main body 201 is fully embedded in the slide groove 102, the fixing seat 100 can slide back and forth relative to the main body 201 in the first direction, so that the blind assembly has a locked state and a released state. In the locked state, the first limiting component and the second limiting component are matched and connected, so that the fixing bracket 200 and the fixing seat 100 are at least limited in the first direction and the groove depth direction (third direction) of the slide groove 102. In addition, since the slide groove 102 and the main body 201 are in sliding fit, the groove walls on both sides of the width direction of the slide groove 102 and the main body 201 will inevitably make the fixing bracket 100 and the fixing seat 100 limited in the second direction. Thus, in the locked state, the fixing seat 100 and the fixing bracket 200 are stably connected through the limiting fit in three directions in space. In the released state, the first limiting component and the second limiting component release the limiting of the fixing bracket 200 and the fixing seat 100 in the first direction, so that the fixing seat 100 can slide relative to the main body 201 again. Then, by sliding, the first limiting component and the second limiting component completely disengage, so that the fixing bracket 200 and the fixing seat 100 are also released in the groove depth direction (third direction) of the slide groove 102. The fixing seat 100 can be disengaged from the fixing bracket 200 in the third direction, and the disassembly is completed.
[0048] In summary, the blind-installation assembly provided in this application embodiment can achieve rapid blind installation even when the main body 201 of the fixed bracket 200 is blocked by the fixed seat 100, by means of the installation direction indication function of the first positioning member 101 and the second positioning member 202 and the sliding cooperation between the slide groove 102 and the main body 201, and obtain a locked state during the sliding process, and achieve a stable connection between the fixed seat 100 and the fixed bracket 200 in three-dimensional space by means of the limiting component.
[0049] The sliding fit between the groove 102 and the main body 201 can be illustrated as follows: The groove 102 has two opposing groove walls in the second direction with first sliding surfaces 103 extending in the first direction. The main body 201 has opposing sides with second sliding surfaces 203 that slide in fit with the first sliding surfaces 103. Preferably, the first sliding surfaces 103 and the second sliding surfaces 203 are designed to be smooth and flat, which can reduce jamming caused by excessive friction during sliding, and reduce assembly time and operational difficulty. During installation, users simply align the sliding groove 102 of the fixing base 100 with the main body 201 of the fixing bracket 200. Initial positioning is quickly achieved through the relative positions of the first positioning member 101 and the second positioning member 202. Then, by adjusting the sliding surfaces 103 and 203, users can easily slide the fixing base 100 to the correct position until the first and second limiting components are engaged, locking the fixing bracket 200 to the fixing base 100. This process requires no additional tools or complex operations, simplifying the installation steps and improving efficiency. The precise sliding surface engagement and locking mechanism significantly enhance the overall usability of the blind-installation assembly, making it suitable for various installation scenarios. Especially when the position of the fixing bracket 200 is difficult to observe directly or is fixed at a high position, it effectively assists installers in completing quick and accurate assembly.
[0050] In some embodiments, the orthographic projection of the mounting base 100 completely covers the orthographic projection of the main body 201 in a plane perpendicular to the depth direction of the groove 102. In this embodiment, after the mounting base 100 completely covers the main body 201, the product appearance can remain neat, simple, and aesthetically pleasing. Specifically, the mounting base 100 is designed to completely cover the main body 201 of the mounting bracket 200, so that after assembly, the main body 201 of the mounting bracket 200 is not exposed, and there are no exposed screws, connectors, or other structures, avoiding the industrial feel brought by exposed fasteners in traditional structures, making the product appearance more modern and simple. The product appearance will present a flat and seamless effect, and the entire device looks like a streamlined product, avoiding the cluttered appearance that may occur in traditional installation methods, further improving the overall aesthetics of the product and providing users with a more comfortable visual experience. Regardless of the installation location, such as on a wall, ceiling, or tabletop, the overall appearance of the product can more easily blend into the environment, without being affected by exposed connectors or accessories.
[0051] Furthermore, in this embodiment, the outline of the fixing seat 100 completely obscures the main body 201 in a plane perpendicular to the depth direction of the slide groove 102. This means that during assembly, the user cannot directly observe the position of the main body 201 of the fixing bracket 200. However, based on the preceding discussion, the user can still successfully complete the installation in the following ways: the first positioning member 101 on the fixing seat 100 cooperates with the second positioning member 202 on the main body 201 of the fixing bracket 200, still providing the user with accurate installation direction guidance, thereby helping the user to quickly install the fixing seat 100 to the correct position without observing the main body 201; the slide groove 102 on the fixing seat 100 and the main body 201 of the fixing bracket 200 enter a locked state through sliding. The design of the fixing seat 100 obscuring the main body 201 does not affect the convenience and efficiency of assembly; on the contrary, by simplifying the adjustment of position during assembly, it ensures the rapid completion of the assembly process.
[0052] In some embodiments, the first limiting component includes a first insertion slot 104 disposed on the fixed base 100, and the second limiting component includes a first insertion block 210 disposed on the main body 201. In the locked state, the first insertion block 210 is inserted into the first insertion slot 104 to limit the fixed bracket 200 and the fixed base 100 in the direction of the groove depth of the slide 102.
[0053] The first insertion slot 104 is disposed on the fixed base 100 as part of the first limiting component, and has an appropriate depth and width to ensure that the first insertion block 210 can be smoothly inserted into it and firmly fixed. The first insertion block 210 is disposed on the main body 201 of the fixed bracket 200, preferably on the side wall on the thickness side of the main body, as part of the second limiting component, and its shape and size match the first insertion slot 104. In the locked state, the first insertion block 210 is inserted into the first insertion slot 104, thereby achieving limiting between the fixed base 100 and the fixed bracket 200 in the groove depth direction (i.e., the third direction) of the slide groove 102. In this case, the first plug-in block 210 and the first plug-in groove 104 form a mechanical connection through plugging, which prevents the fixed seat 100 and the fixed bracket 200 from moving or separating further in the depth direction of the slide groove 102. This effectively prevents unnecessary movement between the fixed bracket 200 and the fixed seat 100, ensures the connection stability between the fixed seat 100 and the fixed bracket 200, and ensures that the assembled components are not prone to loosening or displacement due to gravity, external vibration or uneven force.
[0054] The first insertion block 210 and the first insertion slot 104 are arranged along the first direction, so that the first insertion block 210 and the first insertion slot 104 can be engaged or disengaged during the reciprocating sliding of the fixed base 100 relative to the fixed bracket 200 along the first direction. That is, the engagement or disengagement of the first insertion block 210 and the first insertion slot 104 can be achieved by sliding operation alone, which is convenient for assembly or disassembly and is less likely to cause jamming or damage, making the assembly and disassembly process simple and quick.
[0055] To enhance the limiting effect in the third direction when locked, the first plug-in block 210 and the first plug-in groove 104 are preferably configured in multiple sets. For example, in this embodiment, the first plug-in block 210 and the first plug-in groove 104 are configured in two sets, respectively arranged on both sides of the groove width direction of the slide 102. This makes the connection between the fixed bracket 200 and the fixed seat 100 more uniform and symmetrical, thereby effectively dispersing the impact and vibration from external forces, reducing stress concentration at single points, and making the overall component more stable. Each set of the first plug-in block 210 and the first plug-in groove 104 can independently provide a limiting effect, thereby more stably restricting the movement of the fixed bracket 200 and the fixed seat 100 in the groove depth direction (i.e., the third direction) of the slide 102 when locked. It can also prevent loosening caused by the failure of a certain set of plugs, thereby improving the overall stability.
[0056] In some embodiments, the first positioning member 101 is a notch extending from one end of the fixed base 100 in a first direction to the slide groove 102 in the first direction, and the second positioning member 202 extends in the first direction. The first positioning member 101 and the second positioning member 202 can slide and engage in the first direction. When the notch on the fixed base 100 engages with the second positioning member 202, the slide groove 102 of the fixed base 100 will align with the main body 201 of the fixed bracket 200 in the second direction. During installation, the user only needs to adjust the direction of the mounting base so that the notch is precisely embedded outside the second positioning member 202, and then repeatedly adjust the position of the fixed base 100 in the first direction to quickly find the position where the main body 201 is fully embedded in the slide groove 102. The user does not need to rely too much on precise alignment and can quickly find the correct engagement position by adjusting the direction of the mounting base. Even when the installation position is relatively hidden or difficult to observe directly, the user can still confirm whether the engagement is complete by touch and operation, making this design particularly suitable for environments with limited space or areas that are difficult to observe directly.
[0057] The sidewall of the notch not only helps guide the accurate docking of the second positioning member 202, but also limits the second positioning member 202 in the second direction. This design effectively prevents misalignment or loosening of the fixed seat 100 and the fixed bracket 200 during installation. That is, through the cooperation between the sidewall of the notch and the second positioning member 202, the fixed seat 100 can not only be correctly limited in the second direction, but also achieve precise sliding fit in the first direction.
[0058] In some embodiments, the second positioning member 202 includes an elastic sheet formed on the body 201, the elastic sheet being elastically deformable in a direction close to or away from the body 201, the second limiting component including a locking protrusion 204 disposed on the side of the elastic sheet away from the body 201, and the first limiting component including a locking hole 106 formed on the bottom surface of the notch, in the locked state, the locking protrusion 204 is fitted into the locking hole 106 and the elastic sheet abuts against the bottom surface of the notch.
[0059] When in the locked state, the elasticity of the elastic sheet allows it to abut against the bottom surface of the notch, and the locking protrusion 204 is inserted into the locking hole 106 to achieve a limit in the first direction. When disassembly is required, the user presses the elastic sheet to disengage the locking protrusion 204 from the locking hole 106, contacting the limit in the first direction to achieve a released state. Then, the user slides the fixing seat 100 along the first direction to separate the fixing seat 100 from the fixing bracket 200.
[0060] The elastic sheet possesses elastic properties, allowing it to elastically deform in the direction (third direction) towards or away from the main body 201. The design of the elastic sheet allows it to provide additional fixing force during assembly through elastic action, enhancing connection stability. The design of the locking protrusion 204 enables the elastic sheet to play a crucial role in the locked state. The locking hole 106 is a key component of the first limiting assembly, cooperating with the locking protrusion 204 in the second limiting assembly to achieve first-direction limiting in the locked state. The elastic force of the elastic sheet ensures that the locking protrusion 204 is securely inserted into the locking hole 106, preventing loosening or dislodgement during use.
[0061] During assembly, the locking protrusion 204 abuts against the bottom surface of the notch, causing the elastic plate to deform away from the bottom surface of the notch. Its elasticity causes the locking protrusion 204 to press against the bottom surface of the notch. When the fixing seat 100 slides to the appropriate position, the locking protrusion 204 aligns with the locking hole 106. The elastic plate drives the locking protrusion 204 to engage within the locking hole 106, and the elastic plate contacts the bottom surface of the notch, thus forming a stable mechanical connection. At this point, the fixing seat 100 can no longer slide freely relative to the fixing bracket 200 in the first direction, ensuring the secure installation of the component. When disassembly is required, the user can press the elastic plate. Due to the elastic deformation characteristics of the elastic plate, pressing it will separate the elastic plate from the bottom surface, causing the locking protrusion 204 to disengage from the locking hole 106, thereby releasing the restriction in the first direction. Once the locking protrusion 204 disengages from the locking hole 106, the fixing seat 100 can slide in the opposite direction in the first direction to complete disassembly.
[0062] In summary, the design of the elastic plate effectively limits the positioning of the fixing base 100 and the fixing bracket 200 in the first direction through the contact between the elastic plate and the bottom surface. This design provides strong locking force, enhances stability during installation, and reduces the possibility of misoperation. Secondly, users can easily switch between locking and releasing simply by pressing the elastic plate, allowing for simple and easy operation without the need for special tools.
[0063] In some embodiments, the locking protrusion 204 forms a locking surface 2041 perpendicular to the first direction on the side facing the body 201 in the first direction, and forms an inclined wedge-shaped surface 2042 on the side facing away from the body 201 in the first direction. The bottom of the groove 102 is provided with a hollow hole 107. In the released state, the locking protrusion 204 is located in the hollow hole 107. In the locked state, the locking surface 2041 cooperates with the hole wall of the locking hole 106 to restrict the body 201 from moving in the first direction away from the notch.
[0064] In this embodiment, the locking protrusion 204 has a unique design. It forms a locking surface 2041 perpendicular to the first direction on the side facing the main body 201 in the first direction, and an inclined wedge-shaped surface 2042 on the side facing away from the main body 201 in the first direction. The key purpose of the wedge-shaped surface 2042 design is to allow the user to complete the locking operation gradually by pushing the fixing seat 100 and naturally guiding the deformation of the elastic sheet through the wedge-shaped surface 2042, without pressing the elastic sheet during assembly.
[0065] To achieve the above process, a perforated hole 107 is formed at the bottom of the groove 102. One of the functions of the perforated hole 107 is to serve as a guide channel for the locking protrusion 204 to enter. During assembly, the user initially fastens the fixing seat 100 onto the fixing bracket 200. At this time, the locking protrusion 204 is located in the perforated hole 107. By sliding the fixing seat 100 along the first direction, the wedge-shaped surface 2042 of the locking protrusion 204 will come into contact with the solid structure between the locking hole 106 and the perforated hole 107 to form an abutment fit. When the user continues to push the fixing seat 100 along the first direction, the wedge-shaped surface 2042 gradually pushes up the elastic plate, causing the elastic plate to deform, so that the locking protrusion 204 slides along the bottom surface of the positioning notch to the locking hole 106. Once the locking protrusion 204 enters the locking hole 106, the elastic plate returns to its original position through its elastic properties, completing the final locking. At this time, the locking surface 2041 and the hole wall of the locking hole 106 successfully cooperate, ensuring that the fixed seat 100 and the fixed bracket 200 are limited and locked in the first direction.
[0066] The inclined design of the wedge-shaped surface 2042 ensures a gradual engagement between the locking protrusion 204 and the locking hole 106 and the hollow hole 107 during the locking process. This provides a stable guiding force, allowing the elastic sheet to deform smoothly and thus complete the locking. The assembly process eliminates the need for manual pressing of the elastic sheet; the user only needs to push the fixing base 100 to smoothly complete the locking. This reduced assembly steps makes this design particularly suitable for scenarios requiring quick, one-handed operation, especially in confined spaces or installation situations requiring rapid response.
[0067] It is not difficult to see that, in the above embodiments, although the inclined design of the wedge surface 2042 makes the locking process faster and more convenient, the limiting effect between the wedge surface 2042 and the wall of the locking hole 106 is relatively lacking in the locked state. When a force is further applied to the fixing seat 100 in the first direction, the locking protrusion 204 may further dislodge from the locking hole 106 under the guidance of the wedge surface 2042. Based on this, in some embodiments, the first limiting component further includes a first abutting surface 108 formed on the fixing seat 100, and the second limiting component further includes a second abutting surface 205 formed on the body 201. In the locked state, the first abutting surface 108 and the second abutting surface 205 abut against each other to restrict the movement of the body 201 in the first direction along the direction close to the notch, thereby enhancing the stability and accuracy in the first direction in the locked state.
[0068] Both the first abutment surface 108 and the second abutment surface 205 are preferably designed to be perpendicular to the first direction to ensure that they can make close contact when locked, thereby achieving physical limiting. In the locked state, the first abutment surface 108 and the second abutment surface 205 are in close contact, ensuring that the main body 201 cannot move relative to the notch in the first direction. Through this abutment engagement, the limiting effect in the locked state is enhanced. The engagement of the first abutment surface 108 and the second abutment surface 205 further ensures a stable connection between components, making up for the shortcomings of the wedge-shaped surface 2042 design in terms of locking effect. The complementary effect of the two provides a more stable, precise and reliable locking method, effectively improving the user experience and assembly efficiency of the product.
[0069] Preferably, two sets of first abutment surfaces 108 and second abutment surfaces 205 are respectively arranged on both sides of the groove width direction of the slide 102, making the limiting points between the fixed bracket 200 and the fixed seat 100 more uniform and symmetrical, and making the overall assembly more stable. Each set of first abutment surfaces 108 and second abutment surfaces 205 can independently provide a limiting function, thereby more firmly restricting the movement of the fixed bracket 200 and the fixed seat 100 in the first direction in the locked state, and also preventing loosening caused by the failure of one set of abutment surfaces, thereby improving the overall stability.
[0070] In some embodiments, the first limiting component further includes an arc-shaped third abutment surface 109, which is formed by the groove wall of the slide groove 102 near the notch. The second limiting component further includes an arc-shaped fourth abutment surface 206, which is formed on the side of the main body 201 where the second positioning member 202 is disposed. In the locked state, the third abutment surface 109 and the fourth abutment surface 206 abut against each other.
[0071] The arc-shaped design of the third contact surface 109 and the fourth contact surface 206 provides a larger contact area, ensuring stable contact between the two in the locked state. This effectively restricts the relative movement between the fixing seat 100 and the main body 201. Compared to planar contact, the arc-shaped structure can restrict the movement of the component in multiple spatial dimensions through its curvature, providing a limiting effect in multiple directions. It can not only limit movement in the first direction but also in the second direction, creating additional limiting effects and improving the reliability of the limiting effect. This further enhances the stability and precision of component assembly. The larger contact surface provided by the arc-shaped design can also withstand greater external forces or vibrations, strengthening the connection strength and stability between structures. This is particularly important for equipment requiring long-term stable connections, such as electronic equipment, precision machinery, or products frequently subjected to external impacts.
[0072] Preferably, the groove wall of the slide 102 away from the notch forms an arc-shaped fifth abutment surface 111, and the main body 201 away from the second positioning member 202 forms an arc-shaped sixth abutment surface 209. The shapes of the fifth abutment surface 111 and the sixth abutment surface 209 are adapted to each other. The fifth abutment surface 111 and the sixth abutment surface 209 cooperate to form a limit on the fixed seat relative to the side of the main body away from the notch during the sliding process, similar to the working principle of the third abutment surface 109 and the fourth abutment surface 206. The arc-shaped design of the fifth abutment surface 111 and the sixth abutment surface 209 can provide a larger contact area, ensuring that the two form a stable contact in the connected state, thereby effectively limiting the connection stability between the fixed seat 100 and the main body 201. Compared with planar contact, the arc-shaped structure can limit the movement of the component in multiple spatial dimensions through its curvature, and can play a limiting role in multiple directions. Furthermore, the third contact surface 109 and the fifth contact surface 111 at both ends of the slide 102 make the overall shape of the slide 102 approximate a racetrack shape, which can increase the mating area with the main body 201 of the fixed bracket 200, making it easier to quickly nest the slide 102 onto the main body 201 during blind installation.
[0073] In some embodiments, the first limiting component further includes a second insertion slot 110 disposed on the fixed base 100, the second insertion slot 110 being located on both sides of the notch. The second limiting component also includes a second insertion block 207 disposed on the main body 201, the second insertion block 207 being disposed on both sides of the second positioning member 202. In the locked state, the second insertion block 207 is inserted into the second insertion slot 110. By introducing the cooperation between the second insertion slot 110 and the second insertion block 207, more limiting points are provided. This multi-point limiting structure not only enhances the limiting effect but also effectively avoids displacement or loosening that may occur due to insufficient limiting points in a single location. This not only improves the stability in the locked state but also reduces the risk of component loosening due to external impacts or vibrations.
[0074] like Figure 10 As shown in the figure, this application embodiment also provides a camera device. The main structure of the camera device includes a blind mounting component, a body 300 and a camera 400. The fixing bracket 200 of the blind mounting component is configured to be fixed on the mounting surface, the body 300 is rotatably connected to the fixing base 100, and the camera 400 is rotatably connected to the body 300.
[0075] The mounting bracket 200 in the blind mounting assembly is configured to be fixed to the mounting surface. The design of the mounting bracket 200 takes into account the stability and safety required by the camera device, capable of withstanding certain external forces or impacts to prevent loosening or displacement during use. Its installation method can include bolt fixing, snap-fit fixing, adhesive bonding, etc., ensuring that the mounting bracket 200 is firmly fixed to the mounting surface. For example, the main body 201 of the mounting bracket 200 has several fixing holes 208, allowing bolts or screws to pass through and fix it to the mounting surface. The main function of the mounting bracket 200 is to connect the camera device to the mounting surface and provide a stable support platform. Its design needs to ensure the fitting precision between the bracket and the mounting surface to guarantee the stability and accuracy of the camera device during use.
[0076] The structural design of the camera body 300 needs to consider the connection and cooperation between the camera 400 and the mounting bracket 200, ensuring that the various components do not interfere with each other during operation, while also possessing good protective capabilities to prevent external factors from damaging the sensitive components inside the camera body 300. The camera body 300 and the mounting bracket 100 adopt a rotating connection design, allowing the camera device to be adjusted within a certain angle range. By rotating the camera body 300, users can easily adjust the shooting angle of the camera 400 to meet different shooting needs.
[0077] The camera 400 is connected to the body 300 via a rotatable connection, allowing the camera 400 to be flexibly adjusted at different angles to provide different shooting perspectives. The rotation angle range of the camera 400 is typically designed according to actual needs and can include rotation in the horizontal, vertical, or broader three-dimensional directions. Preferably, the rotation axis of the body 300 relative to the mounting base 100 is parallel to a third direction, and the rotation axis of the camera 400 relative to the body 300 is perpendicular to a third direction. The superposition of these two rotation directions enables the camera 400 to capture images at large angles in three-dimensional space, allowing for convenient and quick adjustment of the camera 400's angle.
[0078] Since the camera device includes the blind assembly component of the aforementioned embodiments of this application, its technical effects necessarily include several technical effects that the blind assembly component can achieve. These will not be repeated here, but can be referred to the description of the blind assembly component embodiments above.
[0079] The blind-mount component design in camera devices offers higher installation efficiency, flexibility, and stability, thereby improving the overall performance and user experience of the camera device. Users simply connect the mounting bracket 200 to the blind-mount component, eliminating the need for complex operations or additional tools. This allows for rapid installation of the camera device, significantly improving efficiency, especially suitable for situations requiring quick deployment or temporary installation. The blind-mount component design also effectively avoids exposing the mounting holes 208 or screws, maintaining a clean and aesthetically pleasing appearance of the camera device. The concealed installation method makes the connection between the mounting bracket 200 and the mounting surface appear simpler, enhancing the overall modern and aesthetically pleasing look. Furthermore, the application of the blind-mount component eliminates the exposure of the main body 201 of the mounting bracket 200, enhancing the overall design of the camera device, making it particularly suitable for high-end locations or those requiring a pleasing appearance. With the blind-mount component, users can replace or maintain the camera device without reinstalling or disassembling complex components, reducing maintenance costs, saving operation time, and improving the overall service efficiency of the equipment.
[0080] It should be understood that the terminology used herein is for the purpose of describing particular exemplary embodiments only and is not intended to be limiting. Unless the context clearly indicates otherwise, the singular forms “a,” “an,” and “” used herein may also indicate the inclusion of the plural forms. The terms “comprising,” “including,” “containing,” and “having” are inclusive and therefore indicate the presence of the stated features, steps, operations, elements, and / or components, but do not exclude the presence or addition of one or more other features, steps, operations, elements, components, and / or combinations thereof. The method steps, processes, and operations described herein are not construed as requiring them to be performed in a particular order described or illustrated, unless the order of performance is explicitly indicated. It should also be understood that additional or alternative steps may be used.
[0081] Although terms such as first, second, third, etc., may be used in this document to describe multiple elements, components, regions, layers, and / or segments, these elements, components, regions, layers, and / or segments should not be limited by these terms. These terms may be used only to distinguish one element, component, region, layer, or segment from another. Unless the context clearly indicates otherwise, terms such as "first," "second," and other numerical terms used herein do not imply order or sequence. Therefore, the first element, component, region, layer, or segment discussed below may be referred to as the second element, component, region, layer, or segment without departing from the teachings of the exemplary embodiments.
[0082] The above are merely specific embodiments of this utility model, enabling those skilled in the art to understand or implement it. Various modifications to these embodiments will be readily apparent to those skilled in the art, and the general principles defined herein may be implemented in other embodiments without departing from the spirit or scope of this utility model. Therefore, this utility model is not to be limited to the embodiments shown herein, but is to be accorded the widest scope consistent with the principles and novel features claimed herein.
Claims
1. A blind-mounted assembly, characterized in that, include: The fixed base is provided with a first limiting component and a first positioning component, and the fixed base is also provided with a sliding groove; A fixed bracket includes a body for fixing to a mounting surface, a second limiting component, and a second positioning member extending from the body. The first positioning member is used to cooperate with the second positioning member to indicate the mounting direction of the fixed base. The body is configured to be received within the slide groove and to move relative to the fixed base in a first direction. The blind assembly has a locked state and a released state. In the locked state, the first limiting component and the second limiting component are matched and connected to make the fixed bracket and the fixed seat limit at least in the first direction and the groove depth direction of the slide. In the released state, the first limiting component and the second limiting component release the limitation of the fixed bracket and the fixed seat in the first direction.
2. The blind-mounted assembly according to claim 1, characterized in that, In a plane perpendicular to the depth of the groove, the orthographic projection of the fixed seat completely covers the orthographic projection of the main body.
3. The blind-mounted assembly according to claim 1, characterized in that, The first limiting component includes a first insertion slot disposed on the fixed base, and the second limiting component includes a first insertion block disposed on the main body. In the locked state, the first insertion block is inserted into the first insertion slot to limit the fixed bracket and the fixed base in the direction of the groove depth.
4. The blind-mounted assembly according to claim 1, characterized in that, The first positioning member is a notch extending from one end of the fixed base in a first direction to the groove in the first direction, and the second positioning member extends in the first direction. The first positioning member and the second positioning member can slide together in the first direction.
5. The blind-mounted assembly according to claim 4, characterized in that, The second positioning member includes an elastic sheet formed on the main body, the elastic sheet being elastically deformable in a direction close to or away from the main body, the second limiting component includes a locking protrusion disposed on the side of the elastic sheet away from the main body, and the first limiting component includes a locking hole formed on the bottom surface of the notch, in the locked state, the locking protrusion is matched and inserted into the locking hole and the elastic sheet abuts against the bottom surface of the notch.
6. The blind-mounted assembly according to claim 5, characterized in that, The locking protrusion forms a locking surface perpendicular to the first direction on one side facing the body in the first direction, and the locking protrusion forms an inclined wedge-shaped surface on the side facing away from the body in the first direction. The bottom of the groove has a hollow hole. In the released state, the locking protrusion is located in the hollow hole. In the locked state, the locking surface cooperates with the hole wall of the locking hole to restrict the body from moving in the first direction away from the notch.
7. The blind-mounted assembly according to claim 6, characterized in that, The first limiting component further includes a first abutting surface formed on the fixed base, and the second limiting component further includes a second abutting surface formed on the main body. In the locked state, the first abutting surface and the second abutting surface abut against each other to restrict the main body from moving in the first direction along the direction close to the notch.
8. The blind-mounted assembly according to claim 6 or 7, characterized in that, The first limiting component further includes an arc-shaped third abutment surface, which is formed by the groove wall of the slide near the notch. The second limiting component further includes an arc-shaped fourth abutment surface, which is formed on the side of the main body where the second positioning member is disposed. In the locked state, the third abutment surface and the fourth abutment surface abut against each other.
9. The blind-mounted assembly according to claim 4, characterized in that, The first limiting component further includes a second insertion slot disposed on the fixed base, the second insertion slot being located on both sides of the notch. The second limiting component further includes a second insertion block disposed on the main body, the second insertion block being disposed on both sides of the second positioning member. In the locked state, the second insertion block is inserted into the second insertion slot.
10. A camera device, characterized in that, include: The blind-mount assembly as described in any one of claims 1-9, wherein the fixing bracket is configured to be fixed to the mounting surface; The fuselage is rotatably connected to the fixed base; The camera is rotatably attached to the body of the device.