Multi-sensor intelligent operation and maintenance monitoring device
Through the design of the No. 1 bump and No. 2 bump structure, combined with the elastic action of the spring, the multi-sensor intelligent operation and maintenance monitoring device is realized conveniently disassembled and assembly and height adjustment, solving the problems of cumbersome installation and inconvenient disassembly in the existing technology, and improving the practicality of the device.
Patent Information
- Application Number
- CN202422498052.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-16
- Publication Date
- 2025-07-22
- Estimated Expiration
- 2034-10-16
AI Technical Summary
The existing multi-sensor intelligent operation and maintenance monitoring device is cumbersome to install, requires external tools and is inconvenient to disassemble.
The No. 1 bump and No. 2 bump are structured, combined with the elastic action of the spring, to achieve tool-free assembly of the monitoring body and the assembly shell, and the height of the monitoring body is adjusted through threaded rods and motors.
It realizes convenient disassembly and assembly without external tools and flexibly adjusts the installation height of the monitoring body, improving the practicality of the device.
Smart Images

Figure CN223138725U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of monitoring devices, and particularly relates to a multi-sensor intelligent operation and maintenance monitoring device. Background Technique
[0002] A multi-sensor intelligent operation and maintenance monitoring device is a device integrating multiple sensors and intelligent algorithms, aiming to achieve real-time monitoring and maintenance of industries, buildings or other facilities. This device usually has functions such as data acquisition, processing, analysis and communication, and can provide services such as fault prediction, health management and performance optimization to improve the reliability and efficiency of the system, reduce downtime and maintenance costs, and is widely used in many industries such as electric power, chemical industry, railway, mine, metallurgy, cement, etc.
[0003] Currently, during the use of existing monitoring devices for intelligent operation and maintenance monitoring of sensors, most of the installation methods of the monitoring devices adopt wall-mounted or embedded installation, and the monitoring devices are fixedly installed at the use position by means of screws and other methods. Installing the monitoring device by means of screws and other methods not only requires the use of external specific tools, but also when disassembling the monitoring device later, the disassembly steps are relatively cumbersome, which easily leads to inconvenient disassembly and assembly of the monitoring device. To solve this technical problem, the utility model proposes a multi-sensor intelligent operation and maintenance monitoring device. Content of the Utility Model
[0004] The main purpose of the utility model is to provide a multi-sensor intelligent operation and maintenance monitoring device, which can effectively solve the problems mentioned in the background technique.
[0005] To achieve the above purpose, the technical solution adopted by the utility model is as follows:
[0006] A multi-sensor intelligent operation and maintenance monitoring device includes a monitoring main body, an installation shell and an assembly shell. Two groups of connection blocks are arranged on the back of the monitoring main body. A second convex block is arranged on the outside of the connection block, and one side of the second convex block is a slope surface. A plurality of guide columns are arranged inside the assembly shell. A first convex block is arranged at the bottom end of the guide column, and one side of the first convex block is a slope surface. A spring is arranged on the outside of the guide column, and the top end of the spring contacts the inner wall of the top of the assembly shell, and the bottom end of the spring contacts the top end of the first convex block.
[0007] Preferably, a display screen is arranged inside the monitoring main body. A bolt is threadedly arranged inside the installation shell, and a guide groove is arranged inside the installation shell.
[0008] Preferably, two groups of guide blocks are arranged on the back of the assembly shell, and the guide blocks movably penetrate through the inside of the guide groove.
[0009] Preferably, a first connecting plate is provided between two groups of the assembly shells. A motor is provided at the top of the installation shell, and a threaded rod is provided at the output end of the motor. The threaded rod threadedly penetrates through the interior of the first connecting plate.
[0010] Preferably, two support blocks are provided on the bottom inner wall of the assembly shell, and the support blocks are in contact with the bottom ends of the second convex blocks. A through groove is formed through the interior of the assembly shell. The first convex block movably penetrates through the interior of the through groove. A second connecting plate is provided between two groups of the first convex blocks.
[0011] Preferably, the assembly shell is located behind the monitoring main body, and the assembly shell is movably located inside the installation shell.
[0012] Compared with the prior art, the utility model has the following beneficial effects:
[0013] In the utility model, by providing components such as the first convex block and the second convex block, during the process of inserting the connecting block into the interior of the assembly shell, due to the extrusion of the second convex block on the first convex block, two groups of the first convex blocks and the guide posts movably arranged inside the assembly shell can move upward and downward respectively. After the second convex block squeezes through the first convex block, by using the elastic action of the spring, the downward movement of the first convex block can block one side of the second convex block, realizing the assembly of the monitoring main body and the assembly shell, and the disassembly and assembly of the monitoring device in the later stage can be realized without using external specific tools.
[0014] In the utility model, by providing components such as the threaded rod, two groups of the assembly shells are connected by the first connecting plate. The threaded rod is threadedly penetrated and connected with the first connecting plate. After the motor at the top of the installation shell rotates forward and backward, the rotation of the threaded rod can adjust the use position of the assembly shell inside the installation shell, facilitating the adjustment of the use height of the monitoring main body after fixation according to the use requirements, and effectively improving the practicability of the monitoring main body. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] Figure 1 It is a schematic front view of the overall structure of a multi-sensor intelligent operation and maintenance monitoring device of the utility model;
[0016] Figure 2 It is a schematic rear view of the overall structure of a multi-sensor intelligent operation and maintenance monitoring device of the utility model;
[0017] Figure 3 It is an exploded structure schematic diagram of the connecting block and the assembly shell of a multi-sensor intelligent operation and maintenance monitoring device of the utility model;
[0018] Figure 4 It is an exploded structure schematic diagram of the assembly shell and the installation shell of a multi-sensor intelligent operation and maintenance monitoring device of the utility model;
[0019] Figure 5In a multi-sensor intelligent operation and maintenance monitoring device of the present utility model Figure 4 Schematic diagram of the enlarged local structure at position A
[0020] In the figure: 1, monitoring main body; 2, display screen; 3, connecting block; 4, installation shell; 5, bolt; 6, guide groove; 7, motor; 8, threaded rod; 9, assembly shell; 10, first connecting plate; 11, guide block; 12, guide post; 13, first convex block; 14, spring; 15, second convex block; 16, second connecting plate; 17, support block; 18, through groove Specific embodiments
[0021] In order to make the technical means, creative features, achieved purposes and effects of the present utility model easy to understand, the present utility model will be further described below in conjunction with specific embodiments
[0022] As shown in Figure 1 , Figure 2 , Figure 3 , Figure 4 and Figure 5 , a multi-sensor intelligent operation and maintenance monitoring device
[0023] Comprising a monitoring main body 1, an installation shell 4 and an assembly shell 9, two groups of connecting blocks 3 are arranged on the back of the monitoring main body 1, a second convex block 15 is arranged on the outer side of the connecting block 3, and one side of the second convex block 15 is a slope surface. A plurality of guide posts 12 are arranged inside the assembly shell 9, a first convex block 13 is arranged at the bottom end of the guide post 12, and one side of the first convex block 13 is a slope surface. A spring 14 is arranged on the outer side of the guide post 12, and the top end of the spring 14 contacts the inner wall of the top of the assembly shell 9, and the bottom end of the spring 14 contacts the top end of the first convex block 13
[0024] Two groups of connecting blocks 3 are symmetrically arranged on the back of the monitoring main body 1 by bolts. The connecting block 3 provides installation support for the second convex block 15. During the process of inserting the connecting block 3 into the inside of the assembly shell 9, the slope surface of the second convex block 15 contacts and squeezes the slope surface of the first convex block 13 and advances. Due to the extrusion of the second convex block 15 on the first convex block 13, the two groups of first convex blocks 13 and guide posts 12 movably arranged inside the assembly shell 9 can move upward and downward respectively. At this time, the spring 14 on the outer side of the guide post 12 is in a state of extrusion deformation. After the second convex block 15 squeezes and passes through the first convex block 13, by using the elastic action of the spring 14, the downward movement of the first convex block 13 can block one side of the second convex block 15, realizing the assembly of the monitoring main body 1 and the assembly shell 9, and the disassembly and assembly of the monitoring device can be realized later without using external specific tools
[0025] As shown in Figure 1 , Figure 2 , Figure 3 , Figure 4 and Figure 5As shown, a multi-sensor intelligent operation and maintenance monitoring device;
[0026] Inside the monitoring main body 1, there is a display screen 2. Inside the installation shell 4, there are bolts 5 arranged in a threaded manner. Inside the installation shell 4, there is a guiding groove 6. On the back of the assembly shell 9, there are two groups of guiding blocks 11, and the guiding blocks 11 movably penetrate inside the guiding groove 6. Between the two groups of the assembly shell 9, there is a first connecting plate 10. On the top of the installation shell 4, there is a motor 7, and the output end of the motor 7 is provided with a threaded rod 8, and the threaded rod 8 threadedly penetrates inside the first connecting plate 10.
[0027] The monitoring main body 1 is an integrated online monitoring host, supporting wireless modulation modes of GFSK and LORA. Two receiving modules can be integrated in the main board at the same time, and one USB receiving module can be externally connected. The system has powerful functions. The product integrates nine kinds of data monitoring, such as wireless temperature sensors, wireless temperature and humidity sensors, partial discharge online monitoring devices, water immersion sensors, smoke sensors, temperature and vibration intelligent sensors, SF6 gas monitoring sensors, inclination sensors, and mechanical characteristics, etc., solving the problem of the integration of multiple monitoring data in a power distribution environment. The uplink protocol of this device supports MODBUS-RTU, and the uplink hardware interface is RS485. Using the display screen 2 is convenient for observing the change of the monitoring data of the monitoring main body 1. The installation shell 4 can be positioned at the use position by the bolts 5. Through the guiding blocks 11 on the back of the assembly shell 9 movably inserted into the guiding groove 6, the guiding groove 6 can limit the up and down movement of the assembly shell 9 inside the installation shell 4. The first connecting plate 10 is used to connect the two groups of the assembly shell 9. The threaded rod 8 is threadedly penetrated and connected with the first connecting plate 10. After the motor 7 at the top of the installation shell 4 runs forward and backward, the rotation of the threaded rod 8 can adjust the use position of the assembly shell 9 inside the installation shell 4, facilitating the adjustment of the use height of the monitoring main body 1 after fixation according to the use requirements, effectively improving the practicability of the monitoring main body 1.
[0028] As Figure 1 、 Figure 2 、 Figure 3 、 Figure 4 and Figure 5 As shown, a multi-sensor intelligent operation and maintenance monitoring device;
[0029] On the bottom inner wall of the assembly shell 9, there are two groups of supporting blocks 17, and the supporting blocks 17 are in contact with the bottom ends of the second convex blocks 15. Inside the assembly shell 9, there is a through groove 18 penetrating through. The first convex block 13 movably penetrates inside the through groove 18. Between the two groups of the first convex block 13, there is a second connecting plate 16. The assembly shell 9 is located behind the monitoring main body 1, and the assembly shell 9 is movably located inside the installation shell 4.
[0030] Two sets of support blocks 17 provided inside the assembly shell 9 are used to support the bottom end of the second bump 15 after assembly. A push plate is provided on one side of the first bump 13, and the push plate movably penetrates through the inside of the through groove 18. The through groove 18 can limit the movement of the first bump 13 inside the assembly shell 9. By applying a thrust to the push plate, the first bump 13 can be moved inside the assembly shell 9, facilitating the first bump 13 to release the blocking and limiting with the second bump 15. The second connecting plate 16 is used to connect between the two sets of first bumps 13, so that the two sets of first bumps 13 are integrated.
[0031] The above shows and describes the basic principles, main features and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited by the above embodiments. What is described in the above embodiments and the specification only illustrates the principle of the present invention. Without departing from the spirit and scope of the present invention, the present invention will have various changes and improvements, and these changes and improvements all fall within the scope of the present invention claimed. The scope of protection claimed by the present invention is defined by the appended claims and their equivalents.
Claims
1. A multi-sensor intelligent operation and maintenance monitoring device, comprising a monitoring main body (1), an installation shell (4) and an assembly shell (9), characterized in that: On the back of the monitoring body (1), there are two sets of connecting blocks (3). On the outside of the connecting blocks (3), there are second bumps (15), and one side of the second bumps (15) is a ramp surface. Inside the assembly shell (9), there are multiple sets of guiding columns (12). At the bottom end of the guiding columns (12), there are first bumps (13), and one side of the first bumps (13) is a ramp surface. On the outside of the guiding columns (12), there are springs (14), and the top end of the springs (14) contacts the inner wall of the top of the assembly shell (9). The bottom end of the springs (14) contacts the top end of the first bumps (13).
2. The multi-sensor intelligent operation and maintenance monitoring device according to claim 1, characterized in that: Inside the monitoring body (1), there is a display screen (2). Inside the mounting shell (4), there is a bolt (5) threaded. Inside the mounting shell (4), there is a guiding groove (6).
3. The multi-sensor intelligent operation and maintenance monitoring device according to claim 2, wherein: On the back of the assembly shell (9), there are two sets of guiding blocks (11), and the guiding blocks (11) movably penetrate inside the guiding groove (6).
4. A multi-sensor intelligent operation and maintenance monitoring device according to claim 1, characterized in that: Between the two sets of the assembly shell (9), there is a first connecting plate (10). At the top end of the mounting shell (4), there is a motor (7), and at the output end of the motor (7), there is a threaded rod (8), and the threaded rod (8) threadedly penetrates inside the first connecting plate (10).
5. The multi-sensor intelligent operation and maintenance monitoring device according to claim 1, characterized in that: On the bottom inner wall of the assembly shell (9), there are two sets of supporting blocks (17), and the supporting blocks (17) contact the bottom end of the second bumps (15). Inside the assembly shell (9), there is a through groove (18) penetrating. The first bumps (13) movably penetrate inside the through groove (18). Between the two sets of the first bumps (13), there is a second connecting plate (16).
6. The multi-sensor intelligent operation and maintenance monitoring device according to claim 1, characterized in that: The assembly shell (9) is located behind the monitoring body (1), and the assembly shell (9) is movably located inside the mounting shell (4).