Automatic intelligent monitoring equipment
By designing the installation components and locking structure of the automated intelligent monitoring equipment, the looseness of the intelligent monitoring camera when used at high altitude is solved, the installation stability and shooting effect are improved, and the remote rapid response function is realized.
Patent Information
- Application Number
- CN202422414749.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-08
- Publication Date
- 2025-06-27
- Estimated Expiration
- 2034-10-08
AI Technical Summary
When used at high altitudes, the installation safety and shooting stability of existing intelligent surveillance cameras are affected due to the loose installation of bolts and other structures.
An automated intelligent monitoring device is designed to stably install the surveillance camera on the rotor frame by installing components, adopt an autonomous locking structure to avoid loosening, and is equipped with a distance sensor and a support telescopic rod to ensure installation stability and anti-shake.
It improves the installation stability and use safety of the surveillance camera, avoids image jitter, enhances the monitoring effect, and achieves the ability to respond quickly and solve loose problems through remote control.
Smart Images

Figure CN223036148U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of intelligent monitoring, and specifically relates to an automated intelligent monitoring device. Background Art
[0002] Automated intelligent monitoring devices can achieve the monitoring and management of devices or environments through real-time data collection, analysis, and feedback; automated intelligent monitoring devices are widely used in industries such as security, industrial production, and operation and maintenance. Through functions such as face recognition, behavior analysis, and vehicle recognition, the efficiency and accuracy of the monitoring system have been greatly improved.
[0003] Chinese Patent CN216356944U discloses an industrial automated intelligent monitoring and warning device, including an intelligent monitoring camera. A support arm is rotatably installed at the lower position of the outer surface of the intelligent monitoring camera. A dovetail groove is formed at one end of the support arm away from the intelligent monitoring camera. A dovetail strip is inserted into the dovetail groove. The dovetail strip is arranged vertically and fixed to one side surface of a support plate. Both ends of the support plate are fixedly connected with connecting plates. Two fixing holes for inserting bolts are symmetrically formed on the surface of the connecting plate facing the intelligent monitoring camera. A vertically arranged vertical rod is rotatably installed on the lower surface of the support arm. A support for restricting the position of the vertical rod is provided at the lower end of the vertical rod. The support is fixedly connected with the connecting plate at the lower end of the support plate, realizing the lowering of the intelligent monitoring camera during maintenance or cleaning without the need for personnel to climb high, improving safety.
[0004] In order to facilitate the disassembly and repair of the camera, the camera and the mounting bracket are connected by a detachable assembly method. With the increase of the use time, high-altitude wind force, bird flight impact and other factors, the installation position of the camera is prone to looseness, affecting its safety in high-altitude use. Moreover, the camera in a loose state will shake during shooting and monitoring, which is not conducive to stably and clearly shooting the images of the monitored area, affecting the shooting and monitoring effect. Summary of the Utility Model
[0005] Aiming at the above problems, an automated intelligent monitoring device is provided. Through the installation component, the monitoring camera can be stably installed on the rotating frame, and the installation structure can be automatically locked to avoid the loosening of the installation structure of the monitoring camera, solving the problems that the camera installed by structures such as bolts is prone to looseness in the installation position due to factors such as the increase of the use time, high-altitude wind force, bird flight impact, etc., affecting its safety in high-altitude use.
[0006] To solve the problems of the prior art, the utility model provides an automatic intelligent monitoring device, including a mounting bracket. The intelligent monitoring device further includes a steering bracket group installed on the mounting bracket to adjust the monitoring direction, a mounting component installed on the steering bracket group to facilitate the disassembly of the monitoring device, and a monitoring camera fixed on the mounting component. The steering bracket group includes a support base fixed on the mounting bracket, a rotating chassis rotatably installed on the support base, a rotating frame rotatably installed on the rotating chassis, and the rotating frame is assembled with the mounting component.
[0007] Preferably, the mounting component includes a mounting base fixed at the bottom of the monitoring camera. A stepped tooth column group is horizontally slidably connected in the mounting base. A guide rod is fixedly installed on the stepped tooth column group, and the guide rod is slidably connected through the mounting base. An installation tooth groove is formed on the rotating frame, and the stepped tooth column group is engaged and assembled with the installation tooth groove.
[0008] Preferably, a driven seat is fixedly installed on the guide rod. A lead screw is rotatably installed in the mounting base. An internally threaded frame is threadedly assembled on the lead screw. A power rotating rod is rotatably installed on the internally threaded frame, and the power rotating rod is rotatably assembled with the driven seat.
[0009] Preferably, the stepped tooth column group includes a main stepped tooth column and a sub-stepped tooth column symmetrically installed about the central axis of the mounting base. A locking mechanism for reinforcement installation is arranged between the main stepped tooth column and the sub-stepped tooth column.
[0010] Preferably, the locking mechanism includes an embedded groove formed on the main stepped tooth column. A plurality of groups of locking circular grooves are equiangularly formed in the main stepped tooth column. A convex disc is coaxially fixedly installed on the sub-stepped tooth column. The convex disc is engaged and installed with the embedded groove, and a locking spring pin engaged and installed with the locking circular groove is installed on the convex disc.
[0011] Preferably, the locking spring pin includes a slide rod fixedly installed in the sub-stepped tooth column at equal angles. An arc-shaped locking block is slidably installed on the slide rod. A limiting spring is connected between the arc-shaped locking block and the sub-stepped tooth column. The arc-shaped locking block is engaged and assembled with the locking circular groove.
[0012] Preferably, a distance sensor for sensing the assembly gap between the main stepped tooth column and the sub-stepped tooth column is embedded in the main stepped tooth column.
[0013] Preferably, a rotating ring is rotatably installed on the support base. A support telescopic rod is rotatably connected to the rotating ring. The telescopic end of the support telescopic rod is rotatably assembled with the rotating frame, and a support spring is installed on the support telescopic rod.
[0014] The beneficial effects of the utility model compared with the prior art are:
[0015] 1. In the present utility model, an installation component is provided, which can quickly and stably assemble a monitoring camera and a rotating frame. The installation base is snapped onto the rotating frame, and the control screw rod is rotated to push the internally threaded frame to move directionally. The power rotating rod on the internally threaded frame rotates to push the main stepped tooth column and the secondary stepped tooth column to snap into the rotating frame. Under the locking action of the screw rod and the internally threaded frame, the monitoring camera can be quickly assembled. The main stepped tooth column and the secondary stepped tooth column are mutually snapped and locked through a locking mechanism, strengthening the stability of the installation base assembled on the rotating frame, and improving the installation stability and use safety of the monitoring camera.
[0016] 2. A distance sensor is embedded in the main stepped tooth column of the present utility model. If the distance between the main stepped tooth column and the secondary stepped tooth column changes, the installation structure of the monitoring camera is loosened at this time. The distance sensor can quickly sense the change in the installation state of the monitoring camera and transmit the loosening signal to the background supervision system. The staff can remotely control the motor that drives the screw rod to rotate. The screw rod rotates to push the main stepped tooth column and the secondary stepped tooth column to move into the rotating frame, tightening the installation of the monitoring camera, avoiding image jitter of the monitoring camera, and improving the monitoring effect.
[0017] 3. A support anti-vibration structure is provided in the present utility model. A support telescopic rod is inclined between the support seat and the rotating frame, forming a triangular structure among the three, strengthening the stability of the steering support group structure. The support telescopic rod is elastically supported on the side of the rotating frame through a support spring, which can further maintain the installation and application stability of the installation component and the monitoring camera. Description of the Drawings
[0018] Figure 1 It is a three-dimensional structural schematic diagram of a monitoring camera of an automated intelligent monitoring device.
[0019] Figure 2 It is a three-dimensional structural schematic diagram of the installation component of an automated intelligent monitoring device.
[0020] Figure 3 It is a three-dimensional structural schematic diagram of the installation base of an automated intelligent monitoring device.
[0021] Figure 4 It is a three-dimensional structural schematic diagram of the stepped tooth column group of an automated intelligent monitoring device.
[0022] Figure 5 It is a three-dimensional structural schematic diagram of the guide rod of an automated intelligent monitoring device.
[0023] Figure 6 It is a three-dimensional structural schematic diagram of the locking mechanism of an automated intelligent monitoring device.
[0024] Figure 7Schematic diagram of the three-dimensional structure of the distance sensor of an automated intelligent monitoring device.
[0025] Figure 8 Schematic diagram of the three-dimensional structure of the convex disk of an automated intelligent monitoring device.
[0026] Figure 9 Schematic diagram of the three-dimensional structure of the arc locking block of an automated intelligent monitoring device.
[0027] Figure 10 Schematic diagram of the three-dimensional structure of the support telescopic rod of an automated intelligent monitoring device.
[0028] The reference numerals in the figure are:
[0029] 1. Mounting bracket; 2. Steering bracket group; 21. Support base; 22. Rotating chassis; 23. Rotating frame; 3. Mounting component; 31. Mounting base; 32. Step tooth column group; 321. Main step tooth column; 322. Sub-step tooth column; 33. Guide rod; 34. Mounting tooth groove; 35. Driven seat; 36. Lead screw; 37. Internal thread frame; 38. Power rotating rod; 4. Monitoring camera; 5. Locking mechanism; 51. Embedded groove; 52. Locking circular groove; 53. Convex disk; 54. Locking spring pin; 541. Slide bar; 542. Arc locking block; 543. Limit spring; 6. Distance sensor; 71. Rotating ring; 72. Support telescopic rod; 73. Support spring. Detailed implementation manners
[0030] To further understand the features, technical means, specific purposes, and functions achieved by the present invention, the present invention will be further described in detail below in conjunction with the accompanying drawings and specific implementation manners.
[0031] See Figures 1 - 5 As shown, an automated intelligent monitoring device includes a mounting bracket 1. The intelligent monitoring device further includes a steering bracket group 2 mounted on the mounting bracket 1 to adjust the monitoring direction, a mounting component 3 mounted on the steering bracket group 2 to facilitate the disassembly of the monitoring device, and a monitoring camera 4 fixed on the mounting component 3. The steering bracket group 2 includes a support base 21 fixed on the mounting bracket 1. A rotating chassis 22 is rotatably mounted on the support base 21. A rotating frame 23 is rotatably mounted on the rotating chassis 22. The rotating frame 23 and the mounting component 3 are assembled with each other.
[0032] The monitoring camera 4 is installed at a high altitude through the mounting bracket 1. By controlling the rotation of the rotating chassis 22 and the rotating frame 23, the shooting angle of the monitoring camera 4 can be adjusted. The installation structure between the monitoring camera 4 and the rotating frame 23 through the installation component 3 is convenient for disassembly. When the monitoring camera 4 is damaged, the monitoring camera 4 can be quickly disassembled through the installation component 3 for maintenance. The installation structure between the installation component 3 and the rotating frame 23 is stable, improving the safety of the monitoring camera 4 installed at a high altitude.
[0033] See Figures 3 - 6 As shown, the installation component 3 includes a mounting base 31 fixed to the bottom of the monitoring camera 4. A stepped tooth column group 32 is horizontally slidably connected in the mounting base 31. A guide rod 33 is fixedly installed on the stepped tooth column group 32, and the guide rod 33 is slidably connected through the mounting base 31; an installation tooth groove 34 is provided on the rotating frame 23, and the stepped tooth column group 32 is engaged and assembled with the installation tooth groove 34; a groove structure is provided on the mounting base 31 to cooperate with the stepped tooth column group 32 and the guide rod 33. After the monitoring camera 4 is disassembled, the stepped tooth column group 32 and the guide rod 33 are always connected to the mounting base 31, and are not easily discarded during the maintenance process compared with traditional bolts.
[0034] The mounting base 31 is engaged with the rotating frame 23, and the guide rod 33 is controlled to slide through the mounting base 31. The guide rod 33 drives the stepped tooth column group 32 to move directionally, so that the stepped tooth column group 32 is engaged into the installation tooth groove 34 provided on the rotating frame 23. The monitoring camera 4 is quickly installed on the rotating frame 23 through the assembly of the stepped tooth column group 32 and the installation tooth groove 34, and the installation and disassembly are very convenient.
[0035] See Figures 3 - 6 As shown, a driven seat 35 is fixedly installed on the guide rod 33. A lead screw 36 is rotatably installed in the mounting base 31. An internally threaded frame 37 is threadedly assembled on the lead screw 36. A power rotating rod 38 is rotatably installed on the internally threaded frame 37, and the power rotating rod 38 is rotatably assembled with the driven seat 35; a motor is provided on the mounting base 31 to control the rotation of the lead screw 36, and the motor can remotely control the start-stop state.
[0036] The lead screw 36 is controlled to rotate. Under the action of screw thread transmission, the internally threaded frame 37 is controlled to move directionally. The two ends of the power rotating rod 38 connected between the internally threaded frame 37 and the driven seat 35 rotate, and the rotating power rotating rod 38 pushes the guide rod 33 to slide through the mounting base 31, realizing the function of driving the guide rod 33, so as to automatically install and disassemble the monitoring camera 4.
[0037] See Figures 4 - 9As shown, the stepped tooth column group 32 includes a main stepped tooth column 321 and a secondary stepped tooth column 322 symmetrically installed about the central axis of the mounting base 31; a locking mechanism 5 for reinforcement installation is provided between the main stepped tooth column 321 and the secondary stepped tooth column 322.
[0038] Under the driving action of the guide rod 33, the main stepped tooth column 321 and the secondary stepped tooth column 322 are moved and engaged into the mounting tooth grooves 34. The main stepped tooth column 321 and the secondary stepped tooth column 322 move relative to each other, and the locking mechanism 5 provided between the main stepped tooth column 321 and the secondary stepped tooth column 322 can reinforce the installation structure and prevent the installation structure of the monitoring camera 4 from loosening.
[0039] See Figures 4 - 9 As shown, the locking mechanism 5 includes an embedded groove 51 opened on the main stepped tooth column 321. A plurality of groups of locking circular grooves 52 are equiangularly opened in the main stepped tooth column 321. A convex disk 53 is coaxially and fixedly installed on the secondary stepped tooth column 322. The convex disk 53 is engaged and installed with the embedded groove 51. A locking spring pin 54 engaged and installed with the locking circular groove 52 is installed on the convex disk 53.
[0040] When the main stepped tooth column 321 and the secondary stepped tooth column 322 move relative to each other, the convex disk 53 on the secondary stepped tooth column 322 is engaged into the embedded groove 51 opened on the main stepped tooth column 321, and the locking spring pin 54 on the convex disk 53 is engaged into the locking circular groove 52 in the main stepped tooth column 321, and the installation of the main stepped tooth column 321 and the secondary stepped tooth column 322 in the rotating frame 23 is reinforced through the locking structure.
[0041] See Figures 6 - 9 As shown, the locking spring pin 54 includes a sliding rod 541 fixedly installed in the secondary stepped tooth column 322 at equal angles. An arc-shaped locking block 542 is slidably installed on the sliding rod 541. A limiting spring 543 is connected between the arc-shaped locking block 542 and the secondary stepped tooth column 322; the arc-shaped locking block 542 is engaged and assembled with the locking circular groove 52.
[0042] When the convex disk 53 is engaged into the embedded groove 51, the surface of the arc-shaped locking block 542 on the convex disk 53 moves inward due to the pushing force, and the arc-shaped locking block 542 moves to compress the limiting spring 543. When the arc-shaped locking block 542 moves to a position corresponding to the locking circular groove 52, under the thrust of the limiting spring 543, the arc-shaped locking block 542 moves and is engaged into the locking circular groove 52, maintaining the stability of the installation of the main stepped tooth column 321 and the secondary stepped tooth column 322 in the rotating frame 23.
[0043] See Figure 6 and Figure 7 As shown, a distance sensor 6 for sensing the size of the assembly gap between the main stepped tooth column 321 and the secondary stepped tooth column 322 is fitted and installed in the main stepped tooth column 321.
[0044] When the distance between the main stepped tooth column 321 and the secondary stepped tooth column 322 becomes larger, the structures of the main stepped tooth column 321 and the secondary stepped tooth column 322 installed in the rotating frame 23 become loose. Under the sensing action of the distance sensor 6, a signal indicating the loosening of the installation structure of the monitoring camera 4 is quickly transmitted to the supervision background program. The staff can remotely control the motor to start and drive the lead screw 36 to rotate. Under the driving action of the lead screw 36, the main stepped tooth column 321 and the secondary stepped tooth column 322 move in the rotating frame 23 to tighten the loose structure and maintain the stable installation and use safety of the monitoring camera 4.
[0045] See Figure 1 and Figure 10 As shown, a rotating ring 71 is rotatably installed on the support base 21. A support telescopic rod 72 is rotatably connected to the rotating ring 71. The telescopic end of the support telescopic rod 72 is rotatably assembled with the rotating frame 23, and a support spring 73 is installed on the support telescopic rod 72.
[0046] The support telescopic rod 72 is obliquely arranged between the rotating frame 23 and the support base 21, and the three form a triangular structure. Under the support of the support telescopic rod 72, the stability of the rotating frame 23 and the installation assembly 3 during installation and application is maintained, thereby maintaining the stability of the monitoring camera 4 during shooting and supervision.
[0047] The above embodiments only represent one or several implementation manners of the present utility model, and the description is relatively specific and detailed, but it should not be construed as a limitation on the scope of the present utility model. It should be noted that for those of ordinary skill in the art, without departing from the concept of the present utility model, several deformations and improvements can still be made, and these all belong to the protection scope of the present utility model. Therefore, the protection scope of the present utility model should be subject to the appended claims.
Claims
1. An automated intelligent monitoring device, comprising a mounting bracket (1), characterized in that: The intelligent monitoring device also includes a steering bracket group (2) mounted on the mounting bracket (1) for adjusting the monitoring direction, a mounting component (3) mounted on the steering bracket group (2) for facilitating disassembly of the monitoring device, and a monitoring camera (4) fixed on the mounting component (3); The steering bracket assembly (2) comprises a support seat (21) fixed on the mounting bracket (1); a rotating chassis (22) is rotatably mounted on the support seat (21); a rotating frame (23) is rotatably mounted on the rotating chassis (22); and the rotating frame (23) and the mounting assembly (3) are assembled with each other.
2. The automated intelligent monitoring device according to claim 1, characterized in that: The mounting assembly (3) comprises a mounting base (31) fixed at the bottom of the monitoring camera (4), a step tooth column group (32) is slidably connected in the mounting base (31) in a transverse manner, a guide rod (33) is fixedly mounted on the step tooth column group (32), and the guide rod (33) is slidably connected to the mounting base (31) through the guide rod (33); The rotating frame (23) is provided with a mounting tooth groove (34), and the step tooth column group (32) is snap-fitted and assembled with the mounting tooth groove (34).
3. The automated intelligent monitoring device according to claim 2, characterized in that: A driven seat (35) is fixedly mounted on the guide rod (33), a screw rod (36) is rotatably mounted in the mounting base (31), an internal thread frame (37) is threadedly mounted on the screw rod (36), a power rotating rod (38) is rotatably mounted on the internal thread frame (37), and the power rotating rod (38) is rotatably mounted on the driven seat (35).
4. The automatic intelligent monitoring device according to claim 2, characterized in that: The step tooth column group (32) comprises a main step tooth column (321) and a secondary step tooth column (322) which are symmetrically installed about the central axis of the installation base (31); A locking mechanism (5) for reinforcement is provided between the main step tooth column (321) and the auxiliary step tooth column (322).
5. The automatic intelligent monitoring device according to claim 4, characterized in that: The locking mechanism (5) comprises an embedded groove (51) formed on the main step tooth column (321), a plurality of groups of locking circular grooves (52) are formed on the main step tooth column (321) at a medium angle, a convex plate (53) is coaxially fixedly mounted on the secondary step tooth column (322), the convex plate (53) is engaged with the embedded groove (51), and a locking spring pin (54) is mounted on the convex plate (53) and is engaged with the locking circular groove (52).
6. The automated intelligent monitoring device according to claim 5, characterized in that: The locking spring pin (54) comprises a slide bar (541) fixed at an equal angle in the auxiliary step tooth column (322), an arc surface locking block (542) is slidably mounted on the slide bar (541), and a limit spring (543) is connected between the arc surface locking block (542) and the auxiliary step tooth column (322); The arc surface locking block (542) is snap-fitted and assembled with the locking circular groove (52).
7. The automated intelligent monitoring device according to claim 4, characterized in that: A distance sensor (6) for sensing the size of the assembly gap between the main step tooth column (321) and the auxiliary step tooth column (322) is embedded and installed in the main step tooth column (321).
8. The automated intelligent monitoring device according to claim 1, characterized in that: A rotating ring (71) is rotatably mounted on the support seat (21), a supporting telescopic rod (72) is rotatably connected to the rotating ring (71), a telescopic end of the supporting telescopic rod (72) is rotatably assembled with the rotating frame (23), and a supporting spring (73) is mounted on the supporting telescopic rod (72).
Citation Information
Patent Citations
Industrial automatic intelligent monitoring and early warning device
CN216356944U