Enterprise operation and maintenance visualization integrated device
By designing a moving mechanism for the sensor, the problems of data parsing failure and troubleshooting difficulties caused by sensor malfunctions were solved, enabling stable sensor movement and efficient operation and maintenance.
Patent Information
- Application Number
- CN202423069198.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-12
- Publication Date
- 2026-01-06
- Estimated Expiration
- 2034-12-12
AI Technical Summary
In enterprise operation and maintenance visualization integrated devices, sensor failures can lead to data parsing failures and difficulties in troubleshooting, affecting operation and maintenance efficiency.
A moving mechanism for the sensor body was designed, including a mounting platform, a moving structure, and a mounting structure. The sensor can move stably under the action of the moving mechanism, avoiding blind spots in monitoring and improving operation and maintenance efficiency.
It effectively solves the problem of troubleshooting sensor failures, improves operation and maintenance efficiency, and ensures the accuracy and stability of data collection.
Smart Images

Figure CN223768495U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of integrated operation and maintenance visualization devices, specifically to an integrated enterprise operation and maintenance visualization device. Background Technology
[0002] The Enterprise Operations and Maintenance Visualization Appliance is a comprehensive solution integrating multiple functions, designed to improve the efficiency and management value of enterprise IT operations and maintenance. This appliance helps enterprises better manage and maintain their IT infrastructure through real-time monitoring, data analysis, and visualization.
[0003] In terms of hardware, operation and maintenance visualization typically includes the following types of equipment: servers, network devices (such as routers, switches, etc.), storage devices (such as hard drives, etc.), sensors (such as temperature, pressure, etc.), video surveillance equipment (such as cameras), smart meters and water meters, etc.
[0004] In this system, sensors, as data acquisition devices, are typically used in multiple locations to collect relevant data to avoid blind spots or dead zones in the acquisition area. To reduce system complexity, these sensors are often configured to share circuitry. However, if one of these sensors malfunctions and sends invalid data packets or error signals, it can easily lead to data parsing failures on the bus, causing errors throughout the entire bus. Troubleshooting errors caused by this phenomenon is difficult because the failure of any single sensor can affect the normal operation of the entire bus, making maintenance time-consuming and labor-intensive. Utility Model Content
[0005] This utility model proposes an integrated visualization device for enterprise operation and maintenance, which solves the problem of difficult troubleshooting in related technologies and improves operation and maintenance efficiency.
[0006] The technical solution of this utility model is as follows:
[0007] An integrated enterprise operation and maintenance visualization device includes a sensor body and a moving mechanism for moving the sensor body. The moving mechanism includes an installation platform and a moving structure for moving the installation platform. The installation platform is provided with an installation structure for mounting the sensor body.
[0008] Furthermore, the mounting structure includes a mounting slot and a plurality of fixing claws for fixing the sensor body. The sidewall of the mounting slot abuts against the sidewall of the sensor body, and each fixing claw is evenly distributed around the mounting slot in a circle.
[0009] Furthermore, the fixing claw includes a fixing claw body, a first connecting rod, a second connecting rod, a third connecting rod, a lifting rod, and a fixing seat. The two ends of the first connecting rod are rotatably connected to the lifting rod and the fixing claw body, respectively. The lifting rod is slidably connected to the mounting platform. The two ends of the second connecting rod are rotatably connected to the fixing seat and the fixing claw body, respectively. The two ends of the third connecting rod are rotatably connected to the first connecting rod and the second connecting rod, respectively. A push linkage rod for pushing the lifting rod to move up and down is provided between the mounting platform and the lifting rod. The push linkage rod is slidably connected to the mounting platform.
[0010] Furthermore, the installation platform is provided with a sliding groove for sliding the push linkage rod. The sliding groove has a first contact opening on the installation platform. A fixing structure for fixing the push linkage rod is provided at the first contact opening. A first elastic element is provided between the end of the sliding groove away from the first contact opening and the push linkage rod. The push linkage rod includes a linkage inclined surface. The end of the lifting rod away from the fixing claw body abuts against the linkage inclined surface. The horizontal height of the end of the linkage inclined surface close to the first elastic element is lower than the horizontal height of the end of the linkage inclined surface away from the first elastic element.
[0011] Furthermore, the end of the lifting rod away from the fixed claw body has an arc-shaped structure.
[0012] Furthermore, the push linkage rod also includes a limiting groove, and the linkage inclined surface is located in the limiting groove.
[0013] Furthermore, the fixing structure includes several fixing clips, each of which is slidably connected to the installation platform and is symmetrically and evenly distributed around the push linkage rod. The installation platform is provided with several second contact openings for workers to contact the fixing clips, and several second elastic elements are provided between the end of each fixing clip away from the push linkage rod and the installation platform.
[0014] Furthermore, the projection surface of each of the aforementioned fixing clips on the axial direction of the lifting rod is a horizontally placed "T"-shaped structure.
[0015] The working principle and beneficial effects of this utility model are as follows:
[0016] The sensor body in this invention is equipped with a moving mechanism for its own movement. Under the action of the moving mechanism, the sensor itself can move. In this way, even if only one sensor is set up, the existence of blind spots in the monitoring area can be effectively avoided.
[0017] Furthermore, the existence of only one sensor solves the problem of difficulty in troubleshooting from the root, thereby effectively ensuring operational efficiency.
[0018] The moving mechanism mainly includes an installation platform and a moving structure for moving the installation platform. The installation platform is equipped with a mounting structure for mounting the sensor body, so as to ensure that the sensor body moves stably as the moving mechanism is activated. Attached Figure Description
[0019] The present invention will now be described in further detail with reference to the accompanying drawings and specific embodiments.
[0020] Figure 1 This is a schematic diagram of the structure of Example 1 or Example 2;
[0021] Figure 2 This is a schematic diagram of the installation platform in Example 1 or Example 2;
[0022] Figure 3 for Figure 2 Enlarged view of a portion of point A in the middle;
[0023] Figure 4 for Figure 2 Side view;
[0024] Figure 5 This is a cross-sectional view of the mounting platform in Example 1 or Example 2 when it is not in conjunction with the temperature sensor;
[0025] Figure 6 This is a schematic diagram of the fixing structure in Example 1 or Example 2;
[0026] Figure 7 for Figure 6 Enlarged view of a section at point B in the middle;
[0027] Figure 8 This is a schematic diagram of the chassis used in Example 1 or Example 2.
[0028] In the picture:
[0029] 1. Sensor body; 2. Moving mechanism; 21. Mounting platform; 211. Sliding groove; 2111. First contact opening; 212. Second contact opening; 22. Moving structure; 3. Mounting structure; 31. Mounting slot; 32. Fixing claw; 321. Fixing claw body; 322. First connecting rod; 323. Second connecting rod; 324. Third connecting rod; 325. Lifting rod; 326. Fixing base; 4. Push linkage rod; 41. Linkage inclined surface; 42. Limiting groove; 5. Fixing structure; 51. Fixing clip; 6. First elastic element; 7. Second elastic element. Detailed Implementation
[0030] The technical solutions of this utility model will be clearly and completely described below with reference to the embodiments of this utility model. Obviously, the described embodiments are only some embodiments of this utility model, and not all embodiments. Based on the embodiments of this utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of this utility model.
[0031] Example 1
[0032] like Figure 1 , Figure 8 As shown, this embodiment proposes an integrated enterprise operation and maintenance visualization device, which mainly includes a sensor body 1. The sensor body 1 is provided with a moving mechanism 2 for moving itself (sensor body 1), so that the sensor body 1 has mobility. In this way, even if only one sensor body 1 is set, the monitoring and collection blind spots in this embodiment can be avoided by moving it, without having to set up multiple sensors to achieve the above-mentioned visualization. This fundamentally solves the problem of difficulty in troubleshooting sensor failures and errors, and greatly improves operation and maintenance efficiency.
[0033] The moving mechanism 2 includes a mounting platform 21 and a moving structure 22 for moving the mounting platform 21. The mounting platform 21 is provided with a mounting structure 3 for mounting the sensor body 1 to ensure that the sensor body 1 can move stably under the action of the moving mechanism 2.
[0034] Specifically, such as Figure 2 , Figures 4-5 As shown, the mounting structure 3 includes a mounting slot 31 and several fixing claws 32 for fixing the sensor body 1. The side wall of the mounting slot 31 abuts against the side wall of the sensor body 1, that is, the sensor body 1 is inserted into the mounting slot 31 in an embedded manner to limit and constrain the sensor body 1. Each fixing claw 32 is evenly distributed around the mounting slot 31 in a circle, and when fixing the sensor body 1, the contact area between each fixing claw 32 and the sensor body 1 is small and the coverage area of the sensor body 1 is small, which effectively avoids the presence of the mounting structure 3 from affecting the accuracy of data acquisition by the sensor body 1.
[0035] The fixing claw 32 itself mainly includes a fixing claw body 321, a first connecting rod 322, a second connecting rod 323, a third connecting rod 324, a lifting rod 325, and a fixing seat 326. Specifically, the two ends of the first connecting rod 322 are rotatably connected to the lifting rod 325 and the fixing claw body 321, respectively; the two ends of the second connecting rod 323 are rotatably connected to the fixing seat 326 and the fixing claw body 321, respectively; and the two ends of the third connecting rod 324 are rotatably connected to the first connecting rod 322 and the second connecting rod 323, respectively. That is, the fixing claw 32 is driven to perform the fixing work through the connecting rod structure. Because the connecting rod structure itself is simple, it is convenient to repair when a fault occurs during later use, further improving the operation and maintenance efficiency. The lifting rod 325 is slidably connected to the mounting platform 21. That is, the linear movement of the lifting rod 325 determines whether the connecting rod structure plays the role of driving the fixing claw 32 to fix the sensor body 1. In subsequent use, constraining the linear movement of the lifting rod 325 can keep the fixing claw 32 in the shape of fixing the sensor body 1, which can easily ensure the stability of the sensor body 1 after fixing.
[0036] Meanwhile, a push linkage rod 4 is provided between the installation platform 21 and the lifting rod 325 to push the lifting rod 325 to move up and down. The push linkage rod 4 is slidably connected to the installation platform 21. The moving direction of the push linkage rod 4 is perpendicular to the moving direction of the lifting rod 325. That is, the force that activates the fixing claw 32 to fix it will change direction multiple times during the transmission process. This is because when the direction of the force changes, the force transmission path may become more tortuous or complex, and more mechanical components (such as connecting rods, gears, etc.) may be needed to change the direction of the force. This increases the difficulty of resetting, because each conversion point may generate additional friction, energy loss or mechanical resistance, which further ensures the stability of the sensor body 1 after it is fixed.
[0037] The mounting base 326 is fixedly connected to the mounting platform 21, which shortens the distance between the mounting platform 21 and its matching connecting rod (second connecting rod 323), thereby shortening the length of the connecting rod itself and effectively ensuring the strength of the connecting rod.
[0038] The mounting platform 21 is provided with a sliding groove 211 for sliding the push linkage rod 4. The sliding groove 211 has a first contact opening 2111 on the mounting platform 21, which makes it convenient for workers to contact the push linkage rod 4 located inside the mounting platform 21, thereby ensuring the ease of use of this embodiment.
[0039] A fixing structure 5 for fixing the push linkage rod 4 is provided at the first contact opening 2111. That is, by fixing the push linkage rod 4, displacement of the push linkage rod 4 is prevented, causing the fixing claw 32 to reset, which further improves the stability of the sensor body 1 after fixing.
[0040] Specifically, such as Figure 3 ,Figures 6-7 As shown, the fixing structure 5 in this embodiment mainly includes several fixing clips 51. Each fixing clip 51 is slidably connected to the installation platform 21 and is symmetrically and evenly distributed around the push linkage rod 4. This ensures that the fixing effect of the fixing structure 5 on the push linkage rod 4 can be evenly applied to the push linkage rod 4, thus guaranteeing the stability of the push linkage rod 4 after it is fixed.
[0041] The installation platform 21 is provided with several second contact openings 212 for workers to contact the fixing clips 51, which facilitates workers' contact with the fixing clips 51 and determines whether the fixing clips 51 play a fixing role, thus ensuring the ease of use of the fixing structure 5. Each fixing clip 51 is provided with several second elastic elements 7 between the end away from the push linkage rod 4 and the installation platform 21. That is, when there is no external force involved at the end of the fixing clip 51 away from the second elastic element 7 (the external force involved is such as the contact between this end and the push linkage rod 4, or the force applied by the worker's finger to this end, etc.), the fixing clip 51 can automatically reach the position to fix the push linkage rod 4, further improving the ease of use of the fixing structure 5.
[0042] Each fixing clip 51 has a horizontally placed "T"-shaped structure projected onto the axial direction of the lifting rod 325. This means that each fixing clip 51 also possesses the good bending resistance and high strength characteristics of the "T"-shaped structure, preventing deformation when subjected to the reaction force from the pushing linkage rod 4 and ensuring the structural strength of the fixing clip 51 itself.
[0043] In this embodiment, each of the first elastic elements 6 and each of the second elastic elements 7 are preferably common elastic elements such as compression springs, so that they can be quickly replaced when the elastic elements are damaged.
[0044] like Figure 5 As shown, a first elastic element 6 is provided between the end of the sliding groove 211 away from the first contact opening 2111 and the push linkage rod 4, so that the push linkage rod 4 can reset itself without external force intervention. That is, when the fixing structure 5 cancels the fixing effect on the push linkage rod 4, the push linkage rod 4 can reset itself, further ensuring the convenience of use of this embodiment.
[0045] The push linkage rod 4 includes a linkage inclined surface 41. The end of the lifting rod 325 away from the fixed claw body 321 abuts against the linkage inclined surface 41. The horizontal height of the end of the linkage inclined surface 41 close to the first elastic member 6 is lower than the horizontal height of the end of the linkage inclined surface 41 away from the first elastic member 6. That is, the direction of force transmission between the push linkage rod 4 and the lifting rod 325 is changed through the inclined surface. Thus, when the lifting rod 325 moves along the inclined surface (linkage inclined surface 41), the direction of frictional force forms an angle with the direction of movement. By reasonably designing the tilt angle (the specific tilt effect of the linkage inclined surface 41 should be set according to the actual distance that the lifting rod 325 needs to move, which will not be elaborated in this embodiment), the frictional force may be effectively reduced. Especially when the object is rising or falling, the frictional force has a relatively small resistance effect on the object, thereby reducing energy loss and reducing the force that the operator needs to apply when fixing the sensor body 1 to this embodiment, making it easier for the operator to fix the sensor body 1.
[0046] Furthermore, in order to further reduce the friction between the lifting rod 325 and the push linkage rod 4, the end of the lifting rod 325 away from the fixed claw body 321 is an arc-shaped structure, that is, the end of the lifting rod 325 that abuts against the push linkage rod 4 is an arc-shaped structure. In this way, the contact between the lifting rod 325 and the push linkage rod 4 can be achieved in a point contact manner, effectively reducing the contact area between the two and thus reducing the friction between them.
[0047] Meanwhile, the linkage rod 4 also includes a limiting groove 42, and the linkage inclined surface 41 is located in the limiting groove 42. That is, when the lifting rod 325 abuts against the linkage inclined surface 41, the end of the lifting rod 325 that abuts against the linkage inclined surface 41 will also be located in the limiting groove 42. With the constraint effect of the limiting groove 42 on the lifting rod 325 and the constraint effect of the sliding hole opened on the mounting platform 21 for the sliding of the lifting rod 325, multiple constraints are achieved on the lifting rod 325, ensuring that it can only move along its axial direction, ensuring the stability of the movement of the lifting rod 325, and effectively avoiding interference between it and other parts of the mounting platform 21 during the movement, which would cause the lifting rod 325 to deform, thus ensuring the stability of the overall structure of this embodiment.
[0048] In this embodiment, the sensor body 1 is preferably a wireless sensor such as a Xiaomi thermometer that can wirelessly transmit temperature and humidity data, so as to avoid interference between the connection line of the sensor body 1 and the moving structure 22, thus ensuring the flexibility of operation of this embodiment.
[0049] In this embodiment, the movable structure 22 preferably uses a lead screw drive structure. That is, the movable structure 22 mainly includes a drive motor and a lead screw. The lead screw is linked to the output shaft of the drive motor. The mounting platform 21 is connected to the lead screw. When installing this embodiment, the drive motor should be fixed according to the equipment being used, such as fixing the drive motor to the opening and closing door of the chassis, to ensure the driving stability of the movable structure 22.
[0050] Example 2
[0051] Based on Embodiment 1, this embodiment proposes an electrical connection between the sensor body 1 and the moving source (drive motor) that controls the movement of the moving structure 22. That is, the moving structure 22 has a receiving module for receiving electrical signals emitted by the sensor body 1. When the sensor body 1 detects an abnormal value, the receiving module of the moving structure 22 can send a command to the control module (control panel) of the moving structure 22 according to the abnormal signal, so that the moving structure 22 stops working. This allows the installation platform 21 and the sensor body 1 to stay in the area where the abnormal value was detected and collected, making it convenient for staff to directly view the corresponding area, reducing the time spent troubleshooting the fault area, and further improving the operation and maintenance efficiency.
[0052] The above are merely preferred embodiments of the present utility model and are not intended to limit the present utility model. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model shall be included within the protection scope of the present utility model.
Claims
1. An enterprise operation and maintenance visual integrated device, comprising a sensor body (1), characterized in that, The sensor body (1) is provided with a moving mechanism (2) for moving the sensor body (1), the moving mechanism (2) comprises a mounting platform (21) and a moving structure (22) for moving the mounting platform (21), and the mounting platform (21) is provided with a mounting structure (3) for mounting the sensor body (1). 2.The enterprise operation and maintenance visual integrated device of claim 1, wherein, The mounting structure (3) comprises a mounting clamping groove (31) and a plurality of fixing claws (32) for fixing the sensor body (1), the side wall of the mounting clamping groove (31) abuts against the side wall of the sensor body (1), and each fixing claw (32) is uniformly distributed around the mounting clamping groove (31). 3.The enterprise operation and maintenance visual integrated device of claim 2, wherein, The fixing claw (32) comprises a fixing claw body (321), a first connecting rod (322), a second connecting rod (323), a third connecting rod (324), a lifting rod (325) and a fixing seat (326), both ends of the first connecting rod (322) are rotationally connected with the lifting rod (325) and the fixing claw body (321) respectively, the lifting rod (325) is slidingly connected to the mounting platform (21), both ends of the second connecting rod (323) are rotationally connected with the fixing seat (326) and the fixing claw body (321) respectively, both ends of the third connecting rod (324) are rotationally connected with the first connecting rod (322) and the second connecting rod (323) respectively, and the mounting platform (21) and the lifting rod (325) are provided with a pushing linkage rod (4) for pushing the lifting rod (325) to move up and down, and the pushing linkage rod (4) is slidingly connected with the mounting platform (21).
4. The enterprise operation and maintenance visualization integrated device according to claim 3, characterized in that, The mounting platform (21) is provided with a sliding groove (211) for sliding the pushing linkage rod (4), the sliding groove (211) has a first contact opening (2111) on the mounting platform (21), a fixing structure (5) for fixing the pushing linkage rod (4) is arranged at the first contact opening (2111), and a first elastic member (6) is arranged between the end of the sliding groove (211) away from the first contact opening (2111) and the pushing linkage rod (4). The pushing linkage rod (4) comprises a linkage inclined surface (41), one end of the lifting rod (325) away from the fixing claw body (321) abuts against the linkage inclined surface (41), and the horizontal height of one end of the linkage inclined surface (41) close to the first elastic member (6) is lower than the horizontal height of the other end of the linkage inclined surface (41) away from the first elastic member (6). 5.The enterprise operation and maintenance visual integrated device of claim 4, wherein, One end of the lifting rod (325) away from the fixing claw body (321) is in an arc structure. 6.The enterprise operation and maintenance visual integrated device of claim 4, wherein, The pushing linkage rod (4) further comprises a limiting groove (42), and the linkage inclined surface (41) is located in the limiting groove (42). 7.The enterprise operation and maintenance visual integrated device of claim 4, wherein, The fixing structure (5) comprises a plurality of fixing clamps (51), each fixing clamp (51) is slidingly connected with the mounting platform (21) and is uniformly and symmetrically distributed around the pushing linkage rod (4), the mounting platform (21) is provided with a plurality of second contact openings (212) for a worker to contact the fixing clamps (51), and a plurality of second elastic members (7) are arranged between one end of each fixing clamp (51) away from the pushing linkage rod (4) and the mounting platform (21). 8.The enterprise operation and maintenance visual integrated device of claim 7, wherein, The projection of each of the fixed clamps (51) in the axial direction of the lifting rod (325) is a transversely arranged "T" shaped structure.