Monitoring device for remote management of photovoltaic power station
By designing the supporting main components and connecting structures, the problem of the camera angle being difficult to fix was solved, achieving stable fixing and adaptive adjustment of the camera angle, thus enhancing the stability and applicability of the monitoring device.
Patent Information
- Application Number
- CN202520501431.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-21
- Publication Date
- 2026-01-09
- Estimated Expiration
- 2035-03-21
AI Technical Summary
The existing monitoring devices are difficult to fix after the camera angle is adjusted during assembly, resulting in poor performance.
The system employs a supporting main component and connecting structure. The camera drives the connecting rod to rotate and push the sliding seat. Fastening screws are used to fix the camera angle. The system also features a support cylinder and insert design to adapt to different height requirements. Insulating and anti-corrosion coatings are applied to enhance stability.
It achieves stable and fixed camera angle, adapts to different height requirements, improves the applicability and stability of the device, prevents external force deviation, and avoids shaking and corrosion in severe weather.
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Figure CN223782469U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to photovoltaic power plant technical field especially relates to a monitoring device for remote management of photovoltaic power plant. BACKGROUND
[0002] In prior art, people monitor photovoltaic power plant by using monitoring equipment, master the dynamic of key areas such as power station perimeter, equipment area in real time, prevent security risks such as theft, human damage, capture picture in extreme weather (such as hail, strong wind, rainstorm, sandstorm), judge the influence of bad weather on power station, can quickly evaluate equipment damage situation. Whole process playback is carried out to equipment failure, fire and other accidents, thereby facilitating management.
[0003] Most of the cameras in photovoltaic power station adopt fixed design due to simple function demand (such as fixed area monitoring) or cost control, only adjust angle during installation, but monitoring angle may change in subsequent use process due to external factors, leading to that the to-be-monitored area cannot be completely covered, and human adjustment is needed, therefore, in order to better realize the fixation of camera angle and prevent deviation caused by external force, and in order to improve industry technology progress and core technology competitiveness, the application provides a new implementation scheme different from the camera mounting and fixing structure and application mode in prior art. UTILITARIAN CONTENT
[0004] The utility model aims at solving the problem that the camera angle adjusted during assembly of the monitoring device is inconvenient to fix, leading to poor use effect of the monitoring device, and provides a monitoring device for remote management of photovoltaic power plant.
[0005] In order to achieve the above-mentioned purpose, the utility model adopts the following technical scheme:
[0006] A monitoring device for remote management of photovoltaic power plant, comprising a support main body assembly, a connecting barrel is inserted at the top end of the support main body assembly, a support seat is fixedly connected to the circumferential outer wall of the connecting barrel, a camera is rotatably connected to the top of the support seat, two connecting rods are rotatably connected to the outer wall of one end of the camera, a connecting plate is rotatably connected to the other end of the two connecting rods, a sliding seat is fixedly connected between the two ends of the connecting plate, the sliding seat is slidingly sleeved with the support seat, two fastening screws are inserted into the top of the connecting plate, a plurality of connecting screw holes are arranged on the top of the support seat, and the fastening screws are threadedly inserted into the connecting screw holes.
[0007] Further, the support main body assembly comprises a plurality of support barrels, connecting discs are fixedly connected to the top end and the bottom end of the support barrels, and the connecting discs of the upper and lower support barrels are fixed by bolts.
[0008] Further, the outer wall of the circumference of the connecting cylinder is fixedly connected with a fixed disc, and the fixed disc and the connecting disc at the top end of the top support cylinder are fixed by bolts.
[0009] Further, the top end of the connecting cylinder is clamped with a top cover.
[0010] Further, the outer wall of one side of the connecting cylinder is fixedly connected with a connecting rib, and one end of the connecting rib is fixedly connected with the support seat.
[0011] Further, the inner wall of the circumference of the connecting cylinder is fixedly connected with an upper support rib.
[0012] Further, the bottom end of the inner wall of the circumference of the support cylinder is fixedly connected with a plug-in cylinder, the inner wall of the circumference of the plug-in cylinder is fixedly connected with a lower support rib, and the plug-in cylinder is inserted into the top end of the support cylinder below.
[0013] The beneficial effects of the utility model are:
[0014] 1. By adjusting the camera, the connecting rod is rotated under the drive of the camera, so as to push the sliding seat to move on the support seat, and then the connecting plate is fixed by the fastening screw, so that the angle of the camera is fixed, the deviation caused by external force is prevented, the operation is simple, and it is convenient and fast.
[0015] 2. The setting that the support main body assembly is composed of a plurality of support cylinders can adjust the height of the support main body assembly according to different requirements, and the applicability of the device is improved.
[0016] 3. The design that the plug-in cylinder and the lower support rib are located below the support cylinder can ensure the support effect of the support main body assembly on the camera above in bad weather after the support main body assembly is spliced, the shaking of the camera in the open environment of the photovoltaic power station is avoided, and the stability of the camera in the management and monitoring of the photovoltaic power station is ensured.
[0017] 4. The connecting cylinder and the plurality of support cylinders are sprayed with an insulating coating, such as an alumina ceramic coating, so that the danger caused by the electric leakage of the substation equipment can be prevented, and the lower support rib and the plug-in cylinder are sprayed with an anticorrosive coating, such as an epoxy coal tar coating, so that the corrosion caused by the complex power generation environment, such as underground soil and seawater, can be avoided. DRAWINGS
[0018] Figure 1 It is a three-dimensional structure schematic view of the monitoring device for remote management of the photovoltaic power station;
[0019] Figure 2 It is an upper part three-dimensional structure schematic view of the monitoring device for remote management of the photovoltaic power station;
[0020] Figure 3 This is a partial cross-sectional view of the upper part of a monitoring device for remote management of a photovoltaic power station proposed in this utility model.
[0021] Figure 4 This is a partial cross-sectional view of a monitoring device for remote management of a photovoltaic power station proposed in this utility model.
[0022] In the diagram: 1. Support main component; 101. Support cylinder; 102. Connecting plate; 2. Support base; 3. Camera; 4. Connecting plate; 5. Connecting rod; 6. Fastening screw; 7. Connecting screw hole; 9. Sliding seat; 10. Connecting cylinder; 11. Fixing plate; 12. Top cover; 13. Connecting rib; 14. Upper support rib; 15. Insert cylinder; 16. Lower support rib. Detailed Implementation
[0023] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments.
[0024] Reference Figures 1-4 A monitoring device for remote management of a photovoltaic power station includes a supporting main component 1. A connecting cylinder 10 is inserted into the top of the supporting main component 1. A support base 2 is welded to the outer circumference of the connecting cylinder 10. A camera 3 is rotatably connected to the top of the support base 2. Two connecting rods 5 are rotatably connected to the outer wall of one end of the camera 3. A connecting plate 4 is rotatably connected to the other end of the two connecting rods 5. A sliding seat 9 is welded between the two ends of the connecting plate 4. The sliding seat 9 is slidably sleeved with the support base 2. Two fastening screws 6 are inserted into the top of the connecting plate 4. The top of the support base 2 is provided with multiple connecting screw holes 7. The fastening screws 6 are threaded into the connecting screw holes 7. Under the drive of the camera 3, the connecting rods 5 rotate, thereby pushing the sliding seat 9 to move on the support base 2. The fastening screws 6 are then used to fix the connecting plate 4, thereby fixing and adjusting the angle of the camera 3.
[0025] The supporting main body assembly 1 includes multiple supporting cylinders 101. The top and bottom ends of the supporting cylinders 101 are welded with connecting plates 102. The connecting plates 102 of the upper and lower supporting cylinders 101 are fixed together by bolts. The outer circumferential wall of the connecting cylinder 10 is welded with a fixing plate 11, which facilitates the connection between the connecting cylinder 10 and the supporting main body assembly 1.
[0026] The fixed plate 11 is fixed to the connecting plate 102 at the top of the top support cylinder 101 by bolts. The top of the connecting cylinder 10 is snapped with a top cover 12 to seal the top of the connecting cylinder 10. A connecting rib 13 is welded to one side of the outer wall of the connecting cylinder 10. One end of the connecting rib 13 is fixedly connected to the support base 2 to improve the connection between the support base 2 and the connecting cylinder 10. An upper support rib 14 is welded between the inner circumferences of the connecting cylinder 10 to improve the sturdiness of the connecting cylinder 10. An insert cylinder 15 is welded to the bottom of the inner circumference of the support cylinder 101. A lower support rib 16 is welded between the inner circumferences of the insert cylinder 15. The insert cylinder 15 is inserted into the top of the support cylinder 101 below it. By inserting the insert cylinder 15 into the support cylinder 101 below it, multiple support cylinders 101 can be assembled vertically according to usage requirements to suit different height needs.
[0027] The connecting cylinder 10 and multiple support cylinders 101 are coated with an insulating coating, such as an alumina ceramic coating, to prevent the danger caused by leakage of substation equipment; the lower support rib 16 and the insert cylinder 15 are coated with an anti-corrosion coating, such as an epoxy coal tar coating, to avoid corrosion caused by complex environments such as underground soil and seawater.
[0028] The working principle of this embodiment is as follows: In use, firstly, insert the insert 15 into the support cylinder 101 below, thereby assembling multiple support cylinders 101 vertically according to usage requirements. Then, pass bolts through the connecting plate 102 between the upper and lower support cylinders 101 to fix the multiple support cylinders 101 together. Next, insert the connecting cylinder 10 into the top of the top support cylinder 101 of the support main body assembly 1, and then pass bolts through the fixing plate 11 and the connecting plate 102. Then, move the camera 3 to adjust the shooting angle of the camera 3. At the same time, the connecting rod 5 rotates under the drive of the camera 3, thereby pushing the sliding seat 9 to move on the support seat 2. Then, use the fastening screw 6 to fix the connecting plate 4, thereby fixing the angle of the camera 3.
[0029] The above description is only a preferred embodiment of the present utility model, but the protection scope of the present utility model is not limited thereto. Any equivalent substitutions or changes made by those skilled in the art within the technical scope disclosed in the present utility model, based on the technical solution and the inventive concept of the present utility model, should be included within the protection scope of the present utility model.
Claims
1. A monitoring device for the remote management of photovoltaic plants, comprising a support body assembly (1), characterized in that, The top end of the support body assembly (1) is inserted into the connecting barrel (10), the circumferential outer wall of the connecting barrel (10) is fixedly connected with the support seat (2), the top of the support seat (2) is rotatably connected with the camera (3), one end of the outer wall of the camera (3) is rotatably connected with two connecting rods (5), the other ends of the two connecting rods (5) are rotatably connected with the connecting plate (4), the connecting plate (4) is fixedly connected between the two ends of the sliding seat (9), the sliding seat (9) is slidingly sleeved with the support seat (2), the top of the connecting plate (4) is inserted with two fastening screws (6), the top of the support seat (2) is provided with a plurality of connecting screw holes (7), and the fastening screw (6) is threadedly inserted with the connecting screw hole (7).
2. The monitoring device for remote management of a photovoltaic power station according to claim 1, characterized in that, The support body assembly (1) comprises a plurality of support barrels (101), the top end and the bottom end of the support barrel (101) are fixedly connected with the connecting disc (102), and the connecting discs (102) between the upper and lower support barrels (101) are fixed by bolts.
3. The monitoring device for remote management of a photovoltaic power station according to claim 1, characterized in that, The circumferential outer wall of the connecting barrel (10) is fixedly connected with the fixed disc (11), and the fixed disc (11) and the connecting disc (102) at the top end of the topmost support barrel (101) are fixed by bolts.
4. The monitoring device for remote management of a photovoltaic power station according to claim 1, characterized in that, The top end of the connecting barrel (10) is clamped with the top cover (12).
5. The monitoring device for remote management of a photovoltaic power station according to claim 1, characterized in that, The outer wall of one side of the connecting barrel (10) is fixedly connected with the connecting rib (13), one end of the connecting rib (13) is fixedly connected with the support seat (2).
6. The monitoring device for remote management of a photovoltaic power station according to claim 1, characterized in that, The circumferential inner wall of the connecting barrel (10) is fixedly connected with the upper support rib (14).
7. The monitoring device for remote management of a photovoltaic power station according to claim 2, characterized in that, The bottom end of the circumferential inner wall of the support barrel (101) is fixedly connected with the insertion barrel (15), the circumferential inner wall of the insertion barrel (15) is fixedly connected with the lower support rib (16), and the insertion barrel (15) is inserted with the top end of the support barrel (101) below.
Citation Information
Cited By
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