Solar monitoring rod
By fixing the control cabinet to the bottom of the pole and eliminating the bracket for fixing the solar panel, and using carbon structural steel to form an L-shaped or T-shaped structure, the stability problem of the solar monitoring pole under extreme weather conditions is solved, achieving efficient installation and convenient maintenance.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-28
- Publication Date
- 2026-03-31
AI Technical Summary
Existing solar monitoring poles are prone to swaying under extreme weather conditions due to their height, which can cause the solar panels or poles to tilt or even fall off. In addition, the electrical control cabinet is difficult to install and maintain at high altitudes.
The electrical control cabinet is placed at the bottom of the pole as a base and fixed with anchor bolts. Solar panels are installed on the pole and crossbar respectively, forming an L-shaped or T-shaped structure. The bracket fixing is eliminated. Carbon structural steel or metal materials are used and corrosion-resistant treatment is applied. The camera is set under the crossbar and can rotate 360°.
It improves wind resistance and stability, reduces the risk of solar panels falling off, simplifies the installation and maintenance of the electrical control cabinet, reduces production costs, and enhances the aesthetics and convenience of the equipment.
Smart Images

Figure CN224065168U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of installation and monitoring equipment technology, and in particular to a solar-powered monitoring pole. Background Technology
[0002] Currently, most surveillance poles consist of a single upright pole (1), such as... Figure 1 As shown, the monitoring device 4 is connected to the pole 1 by cable, the electrical control cabinet 2 is connected to the pole 1 by bolts, and the bottom of the pole 1 is connected to the pole 1 by bolts in the form of buried steel cage. As for the solar monitoring pole, the solar panel 3 is installed on the pole 1 by brackets, and the solar panel 3 converts light energy into electrical energy to power the monitoring device 4.
[0003] Regarding the aforementioned technologies, the applicant discovered that when solar panels are installed on poles, especially tall poles such as 5 meters, they are prone to swaying in strong winds or extreme weather, which may cause the solar panels or poles to tilt or even cause the solar panels to fall off.
[0004] Therefore, there is an urgent need to provide a solar-powered monitoring pole. Utility Model Content
[0005] This utility model addresses the shortcomings of existing technologies by providing a solar-powered monitoring pole.
[0006] The technical solution of this utility model to solve the above-mentioned technical problems is as follows:
[0007] A solar-powered monitoring pole includes a pole, an electrical control cabinet at the bottom of the pole, an installation part at the top of the pole, a crossbar at the installation part, a first solar panel on the pole, a second solar panel on the crossbar, and a monitoring device on the underside of the crossbar.
[0008] Furthermore, the second solar panel is disposed along the outer wall of the crossbar.
[0009] Furthermore, the second solar panel is disposed on the upper side of the crossbar.
[0010] Furthermore, the angle between the second solar panel and the crossbar is 0° to 90°.
[0011] Furthermore, the crossbar and the upright form an L-shaped structure.
[0012] Furthermore, there are two crossbars, which are respectively set on both sides of the upright.
[0013] Furthermore, the upright and the two crossbars form a T-shaped structure.
[0014] Furthermore, the monitoring device includes camera one and camera two. Camera one is installed below the crossbar via connector one, and camera two is installed below the crossbar via connector two.
[0015] Furthermore, the second connector is a square tube or a round tube.
[0016] In summary, compared with the prior art, the beneficial effects of the above technical solution are:
[0017] This utility model provides a solar monitoring pole, in which the electrical control cabinet is set at the bottom of the pole as its base, and then connected to the ground foundation (such as a cement block) by anchor bolts to ensure the pole is fixed and to ensure wind resistance stability. The solar panels are set on the pole and crossbars respectively, eliminating the need for the existing method of fixing the solar panels with brackets, which can reduce the possibility of solar panels falling off in extreme weather. At the same time, by integrating the electrical control cabinet and solar panels with the pole and crossbars as a whole, the overall equipment is more visually simple and aesthetically pleasing. Attached Figure Description
[0018] Figure 1 A schematic diagram of the structure in the background art.
[0019] Figure 2 A schematic diagram of the overall structure of the solar-powered monitoring pole. Figure 1 ;
[0020] Figure 3 A schematic diagram of the overall structure of the solar-powered monitoring pole. Figure 2 ;
[0021] Figure 4 This is a right view of the solar-powered monitoring pole.
[0022] Figure 5 This is the front view of the solar monitoring pole;
[0023] Figure 6 This is a schematic diagram of a solar monitoring pole with a square tube connector.
[0024] Figure 7 A schematic diagram showing the structure of setting two crossbars in a solar monitoring pole;
[0025] Figure 8 This is a diagram showing the solar panel 2 installed on the upper side of the horizontal bar in a solar monitoring pole. Figure 1 ;
[0026] Figure 9 This is a diagram showing the solar panel 2 installed on the upper side of the horizontal bar in a solar monitoring pole. Figure 2 ;
[0027] Figure 10This is a schematic diagram of a T-shaped structure formed by the horizontal bar and the vertical bar in a solar monitoring pole.
[0028] Explanation of reference numerals in the attached diagram: 1. Pole; 2. Electrical control cabinet; 4. Monitoring equipment; 5. Camera 1; 6. Camera 2; 7. Solar panel 1; 8. Solar panel 2; 9. Horizontal bar; 10. Mounting part; 11. Connector 1; 12. Connector 2; 13. Connecting piece; 14. Vertical pole. Detailed Implementation
[0029] The principles and features of this utility model are described below with reference to all the accompanying drawings. The examples given are only for explaining this utility model and are not intended to limit the scope of this utility model.
[0030] This utility model discloses a solar-powered monitoring pole.
[0031] Example 1
[0032] Reference Figures 2-7 A solar-powered monitoring pole includes a vertical pole 1, a horizontal bar 9, an electrical control cabinet 2, a monitoring device 4, a first solar panel 7, and a second solar panel 8. The vertical pole 1 is vertically installed. The electrical control cabinet 2 is fixedly installed at the bottom of the vertical pole 1. The electrical control cabinet 2 integrates a battery, a solar controller, and a communication module. The electrical control cabinet 2 is connected to the ground foundation (such as a 200-pound cement block) via anchor bolts to ensure wind resistance stability. The vertical pole 1 is made of carbon structural steel or other metal materials, galvanized, and then electrostatically powder-coated or coated with an anti-corrosion coating. The first solar panel 7 is installed on the vertical pole 1, longitudinally distributed along the outer wall of the vertical pole 1, distributed on all four sides of the vertical pole 1, and fixed to the outer wall of the vertical pole 1. A mounting part 10 is provided at the top of the vertical pole 1. One end of the horizontal bar 9 is connected to the mounting part 10 by bolts to fix the horizontal bar 9. Solar panel 28 is arranged along the long side of crossbar 9. In this embodiment, solar panel 28 is arranged along the three long sides of crossbar 9, that is, it is arranged on three sides of crossbar 9. There is no solar panel 28 on the bottom surface of crossbar 9, so no additional support frame is needed to fix solar panel 28, which reduces the impact of extreme weather on the stability of solar panel 28 and solar panel 17.
[0033] When the electrical control cabinet 2 is installed on the pole 1 (outer wall of the pole 1), an additional support needs to be designed to fix the electrical control cabinet 2, and the electrical control cabinet 2 is located at a high position, making maintenance difficult. Compared with the prior art, this embodiment places the electrical control cabinet 2 at the bottom of the pole 1, with the electrical control cabinet 2 acting as a base to fix the pole 1. The absence of a separate electrical control cabinet 2 on the pole 1 reduces the overall load on the pole 1 and lowers its center of gravity, resulting in higher stability. Removing the support structure connecting the electrical control cabinet 2 reduces manufacturing costs. The electrical control cabinet 2 has a maintenance door, allowing operators to open it from the ground without climbing, further improving maintenance convenience. Furthermore, the internal space of the electrical control cabinet 2 is connected to the pole 1, facilitating wiring and preventing damage to exposed cables.
[0034] The electrical control cabinet 2 is electrically connected to solar panel 7, solar panel 8, and monitoring equipment 4 to meet the power / network requirements of the monitoring equipment 4. The electrical control cabinet 2 also contains a lithium battery to store excess energy generated by the solar panels, ensuring continuous power supply during cloudy or rainy days or at night. The electrical control cabinet 2 contains energy storage equipment (battery pack), a controller (for charging and discharging management), wireless network equipment (switches or routers and other related equipment), and a voltage regulator module.
[0035] In this embodiment, one crossbar 9 can be installed. When one crossbar 9 is installed, the crossbar 9 and the upright 1 form an L-shaped structure, which can monitor the road conditions on one side of the road. Figures 2-6 As shown.
[0036] In this embodiment, two crossbars 9 can be installed. When two crossbars 9 are installed, they are respectively installed on both sides of the upright 1. The two crossbars 9 and the upright 1 form a T-shaped structure, which can monitor the road conditions on both sides of the road. Figure 7 As shown.
[0037] The monitoring device 4 is located on the bottom surface of the crossbar 9, i.e., the side without the second solar panel 8. The monitoring device 4 includes a first camera 5 and a second camera 6. The first camera 5 is mounted below the crossbar 9 via a connector 11. The connector 11 includes a vertical rod 14 and a connecting piece 13. The connecting piece 13 is fixedly mounted on the bottom surface of the crossbar 9. One end of the vertical rod 14 is fixedly connected to the connecting piece 13, and the other end of the vertical rod 14 is connected to the first camera 5, thus fixing the position of the first camera 5. The first camera 5 can rotate 360° to achieve omnidirectional monitoring. The rotation principle of the first camera 5 is existing technology and will not be specifically described in this embodiment.
[0038] Camera 26 can be set up in one or more ways, which can be flexibly adjusted according to road conditions, and the length of the crossbar 9 can also be flexibly adjusted according to road conditions to achieve all-round monitoring.
[0039] Camera 26 is installed below the crossbar 9 via connector 212. Connector 212 can be a round tube or a square tube. Figure 6 and Figure 7 This is a schematic diagram of connector 2, 12, which is a square tube. Figures 2-5 This is a schematic diagram of connector 12, which is a circular tube. Camera 6 can also rotate to achieve omnidirectional monitoring.
[0040] It should be noted that in this embodiment, the solar panel 28 is fixed to the crossbar 9 in an inverted U-shaped structure, and the solar panel 28 with this structure cannot be adjusted.
[0041] In addition, in this embodiment, a speaker or sound column can be mounted on the upright pole 1 or the horizontal pole 9. When someone enters this area they shouldn't be in, the speaker will emit a sound (such as a voice saying "Danger area, do not approach") to inform the person, serving as a reminder. This solar-powered monitoring pole also has functions such as one-button alarm, PM2.5 detection, and mobile phone charging. All of this is prior art and will not be elaborated upon here.
[0042] Example 2
[0043] Reference Figures 8-10 The difference between this embodiment and Embodiment 1 lies in the installation method and shape of the second solar panel 8. In this embodiment, the second solar panel 8 is set on the upper side of the crossbar 9, and is no longer laid along the outer wall of the crossbar 9. The angle between the second solar panel 8 and the crossbar 9 is 0° to 90°. The angle between the second solar panel 8 and the crossbar 9 is adjustable. The method for adjusting the angle of the second solar panel 8 is existing technology. For example, an electric adjustment bracket can be set between the second solar panel 8 and the crossbar 9 to adjust the angle of the second solar panel 8 according to the actual situation to improve the light absorption effect. This aspect will not be described in detail in this embodiment.
[0044] It should be noted that: in this embodiment, the solar panel 2 8 is a plate-shaped structure set on the crossbar 9. The solar panel 2 8 of this structure can be adjusted, that is, the elevation angle can be adjusted according to the latitude and longitude to achieve the purpose of optimal sunlight reception.
[0045] The above description is only a preferred embodiment of the present utility model and is 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 should be included within the protection scope of the present utility model.
Claims
1. A solar monitoring pole comprising a vertical pole (1), characterized in that: The bottom end of the stand pole (1) is provided with an electric control cabinet (2), the upper end of the stand pole (1) is provided with a mounting part (10), the mounting part (10) is provided with a horizontal pole (9), the stand pole (1) is provided with a solar panel (7), the horizontal pole (9) is provided with a solar panel (8), and the lower side of the horizontal pole (9) is provided with a monitoring device (4).
2. The solar monitoring pole of claim 1, wherein: The solar panel (8) is arranged along the outer wall of the horizontal pole (9).
3. The solar monitoring pole of claim 1, wherein: The solar panel (8) is arranged on the upper side of the horizontal pole (9).
4. The solar monitoring pole of claim 3, wherein: The included angle between the solar panel (8) and the horizontal pole (9) is 0-90 degrees.
5. The solar monitoring pole of claim 1, wherein: The horizontal pole (9) and the stand pole (1) form an L-shaped structure.
6. The solar monitoring pole of claim 1, wherein: The horizontal pole (9) is provided with two horizontal poles (9), and the two horizontal poles (9) are arranged on the two sides of the stand pole (1).
7. The solar monitoring pole of claim 6, wherein: The stand pole (1) and the two horizontal poles (9) form a T-shaped structure.
8. The solar monitoring pole of claim 1, wherein: The monitoring device (4) comprises a camera (5) and a camera (6), the camera (5) is arranged below the horizontal pole (9) through a connecting piece (11), and the camera (6) is arranged below the horizontal pole (9) through a connecting piece (12).
9. The solar monitoring pole of claim 8, wherein: The connecting piece (12) is a square tube or a round tube.