Light meteorological element detection device
Through the installation method of insertion and splicing, the light meteorological element detection device that adjusts the orientation of the solar panels and the height of the observation box has solved the problem of large and inconvenient portability in the meteorological station, and improved the installation efficiency and wide application.
Patent Information
- Application Number
- CN202422518031.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-17
- Publication Date
- 2025-08-22
- Estimated Expiration
- 2034-10-17
AI Technical Summary
The existing meteorological stations are large in size and are inconvenient to carry around, resulting in low transportation efficiency and reducing the widespread use.
A light-weight meteorological element detection device is designed, which adopts plug-in and spliced installation methods, including solar panels and main body, adjusts the orientation of the solar panels and the height of the observation box through a motor, and uses support columns and fixing mechanisms to achieve rapid installation and adjustment.
It improves the installation efficiency and wide application of the device, enhances the working efficiency of solar panels, facilitates the viewing of meteorological data, and expands the application scope.
Smart Images

Figure CN223257861U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of meteorological monitoring, in particular to a light meteorological element detection device. Background Art
[0002] A weather station is a device that monitors weather changes. It can measure meteorological elements such as atmospheric temperature, humidity, air pressure, wind direction, wind speed, and rainfall. It has data collection, processing, and display functions. Generally speaking, a weather station consists of a main body, solar panels, and an observation box. The solar panels convert sunlight energy into electrical energy to power various devices on the main body. A display for viewing meteorological data is placed in the observation box to protect the display.
[0003] For example, the utility model patent with publication number CN215932179U discloses a weather station, including a bracket, a sensor assembly, an electric control box and a mosquito-killing lamp. The sensor assembly is installed on the bracket, including a temperature sensor, a humidity sensor, a rain sensor, and a light intensity sensor. The electric control box is installed on the bracket, has a speaker inside, and a display screen on the outer surface. The mosquito-killing lamp is installed on the top of the bracket. When the weather station is in use, the weather station is large in size and inconvenient to carry around, which reduces the transportation efficiency of the weather station and thus reduces the wide application of the weather station. Utility Model Content
[0004] In response to the shortcomings of the existing technology, the utility model provides a lightweight meteorological element detection device, which solves the problem that the existing detection device is large in size and inconvenient to carry, which reduces the transportation efficiency of the weather station and thus reduces the wide application of the detection device.
[0005] To achieve the above objectives, the utility model is implemented through the following technical solutions: a lightweight meteorological element detection device, including a main body, a solar panel and a first support column, a second support column movably arranged in the first support column, a motor arranged in the second support column, a second support block arranged on the driving end of the motor, the second support block being rotatably mounted on the second support column, a pair of support rods being arranged on the solar panel, a pair of the support rods being respectively provided with a second insertion block, a pair of second slots being provided on the second support block, the solar panel being inserted into the second slot through the second insertion block, a fixed block being movably provided on the fourth slider, a second connecting column being provided on the upper wall surface of the fixed block, a first mounting block being provided on the upper wall surface of the second connecting column, a first connecting column being provided on the main body, a second mounting block being provided on the lower wall surface of the first connecting column, the second mounting block being movably arranged on the first mounting block, and a fixing mechanism being provided on the first mounting block.
[0006] Preferably, the fixing mechanism includes a pair of first plug blocks, which are movably arranged in the first mounting block, a pair of second slide grooves are provided on the first mounting block, a pair of second sliders are respectively provided on the first plug blocks, the second sliders are slidably arranged in the second slide grooves, and a pair of first slots are provided on the second mounting block, and the first plug blocks are movably arranged in the first slots.
[0007] Preferably, a first groove is provided on the first support column, a first screw rod is rotatably provided in the first groove, a first handle is rotatably provided on the first support column, a first bevel gear is provided on the first handle, a second bevel gear is provided on the first screw rod, the first bevel gear and the second bevel gear are meshed with each other, a first support block is slidably provided in the first groove, and the first screw rod is screwed into the first support block.
[0008] Preferably, a mounting frame is provided on the first support block, an observation box is movably provided on the mounting frame, a pair of first sliders are provided on the observation box, a pair of third slide grooves are provided on the mounting frame, and the observation box is slidably installed in the third slide grooves through the first sliders.
[0009] Preferably, a first slide groove is provided on the first support column, a fixing groove is provided on the first support column and located on one side of the first slide groove, an annular fixing block is movably provided on the first support column, a fourth slider is provided in the annular fixing block, the annular fixing block is slidably installed in the first slide groove through the fourth slider, and three supporting feet are rotatably provided on the annular fixing block.
[0010] Preferably, a third slider is provided on the fixed block, a fourth slide groove is provided on the second support block, the fixed block is slidably installed in the fourth slide groove through the third slider, and a pair of second grooves are provided on the fixed block, and the second grooves match the second slots.
[0011] Preferably, a second screw rod is screwed into the first support column, a second handle is provided at one end of the second screw rod, and a rubber plate is provided at the other end of the second screw rod, and the rubber plate is movably provided on the second support column.
[0012] Beneficial effects
[0013] The utility model provides a lightweight meteorological element detection device with the following beneficial effects:
[0014] This design drives the fixed block to rotate, so that the second groove moves to the top of the second slot. The solar panel is inserted into the second slot through the second plug-in block, and then the solar panel is installed on the second support block. The solar panel is installed in a plug-in installation method without the need for tools, which reduces the installation time of the solar panel and improves the installation efficiency of the detection device.
[0015] The main body of this design is installed on the first mounting block through the second mounting block, which drives the second slider to move and drives the first plug block to move into the first slot. The second mounting block can be fixed on the first mounting block, and then the main body is fixed on the detection device. The splicing installation method can reduce the installation time of the detection device and thus improve the installation efficiency of the detection device.
[0016] This design drives the motor to rotate, which drives the second support block to rotate, and then the solar panel to rotate. The direction of the solar panel can be adjusted according to the position of the sun, thereby improving the working efficiency of the solar panel.
[0017] This design drives the first handle to rotate, controls the first screw to rotate, and then raises and lowers the observation box. The position of the observation box can be adjusted according to the height of the staff, allowing the staff to view the meteorological data in the observation box more comfortably, thereby improving the wide application of the detection device. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Figure 1 It is a schematic diagram of the whole of the utility model.
[0019] Figure 2 For the utility model Figure 1 A partial enlarged view of point A in the middle.
[0020] Figure 3 For the utility model Figure 1 A partial enlarged view of point B in the middle.
[0021] Figure 4 This is a schematic diagram of the second support column of the present invention.
[0022] Figure 5 This is a schematic diagram of the first support column of the present invention.
[0023] Figure 6 For the utility model Figure 5 A partial enlarged view of point C in the middle.
[0024] Figure 7 This is a schematic diagram of the second mounting block of the present invention.
[0025] Figure 8 This is a schematic diagram of the first mounting block of the present invention.
[0026] Figure 9 Schematic diagram of the mounting bracket of the present invention.
[0027] Figure 10 This is a schematic diagram of the second support block of the present invention.
[0028] Figure 11 It is a schematic diagram of the fixing block of the present invention.
[0029] Figure 12 This is a schematic diagram of the annular fixing block of the present invention.
[0030] In the figure: 1. main body; 2. support rod; 3. solar panel; 4. first support column; 5. annular fixing block; 6. supporting foot; 7. first slide; 8. fixing slot; 9. first handle; 10. first screw rod; 11. first groove; 12. second handle; 13. second screw rod; 14. first slider; 15. observation box; 16. mounting frame; 17. first connecting column; 18. second slide; 19. first mounting block; 20. second connecting column; 21. second mounting block; 22. second slider; 23. second support column; 24. rubber sheet; 25. first support block; 26. first bevel gear; 27. second bevel gear; 28. motor; 29. second support block; 30. first slot; 31. first plug block; 32. third slide; 33. second plug block; 34. second slot; 35. fourth slide; 36. fixing block; 37. third slider; 38. second groove; 39. fourth slider DETAILED DESCRIPTION
[0031] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0032] See also Figure 1-12The utility model provides a technical solution: a lightweight meteorological element detection device, including a main body 1, a solar panel 3 and a first support column 4, a second support column 23 is movably provided in the first support column 4, a motor 28 is provided in the second support column 23, a second support block 29 is provided on the driving end of the motor 28, and the second support block 29 is rotatably mounted on the second support column 23, a pair of support rods 2 are provided on the solar panel 3, a pair of the support rods 2 are respectively provided with a second plug 33, and a pair of second support blocks 29 are provided on the second support block 29. A second slot 34, wherein the solar panel 3 is inserted into the second slot 34 via the second insertion block 33, a fixing block 36 is movably provided on the fourth slider 39, a second connecting column 20 is provided on the upper wall surface of the fixing block 36, a first mounting block 19 is provided on the upper wall surface of the second connecting column 20, a first connecting column 17 is provided on the main body 1, a second mounting block 21 is provided on the lower wall surface of the first connecting column 17, the second mounting block 21 is movably provided on the first mounting block 19, and a fixing mechanism is provided on the first mounting block 19;
[0033] The driving motor 28 rotates, driving the second support block 29 to rotate, causing the second plug block 33 to rotate, driving the support rod 2 to rotate, and then causing the solar panel 3 to rotate. The direction of the solar panel 3 can be adjusted according to the position of the sun, thereby improving the working efficiency of the solar panel 3;
[0034] The solar panel 3 is inserted into the second slot 34 through the second insert block 33, thereby installing the solar panel 3 on the second support block 29. The solar panel 3 is installed in an insert installation manner without the need for tools, which reduces the installation time of the solar panel 3 and improves the installation efficiency of the detection device.
[0035] The main body 1 is installed on the first installation block 19 through the second installation block 21. The splicing installation method is adopted, which can reduce the installation time of the detection device and thus improve the installation efficiency of the detection device.
[0036] This embodiment is further configured such that the fixing mechanism includes a pair of first plug blocks 31, the pair of first plug blocks 31 being movably disposed in the first mounting block 19, the first mounting block 19 being provided with a pair of second slide grooves 18, the pair of first plug blocks 31 being respectively provided with second sliders 22, the second sliders 22 being slidably disposed in the second slide grooves 18, the second mounting block 21 being provided with a pair of first slots 30, the first plug blocks 31 being movably disposed in the first slots 30;
[0037] The second sliding block 22 is driven to move, thereby driving the first inserting block 31 to move into the first slot 30 , so that the second mounting block 21 can be fixed on the first mounting block 19 .
[0038] This embodiment is further configured such that a first groove 11 is provided on the first support column 4, a first screw rod 10 is rotatably provided in the first groove 11, a first handle 9 is rotatably provided on the first support column 4, a first bevel gear 26 is provided on the first handle 9, a second bevel gear 27 is provided on the first screw rod 10, the first bevel gear 26 and the second bevel gear 27 are meshed, a first support block 25 is slidably provided in the first groove 11, and the first screw rod 10 is screwed into the first support block 25;
[0039] Drive the first handle 9 to rotate, control the first bevel gear 26 to rotate, drive the second bevel gear 27 to rotate, control the first screw rod 10 to rotate, make the first support block 25 rise and fall, drive the mounting frame 16 to rise and fall, and then make the observation box 15 rise and fall. The position of the observation box 15 can be adjusted according to the height of the staff, so that the staff can view the meteorological data in the observation box 15 more comfortably, thereby improving the wide application of the detection device.
[0040] This embodiment is further configured such that a mounting frame 16 is provided on the first support block 25, an observation box 15 is movably provided on the mounting frame 16, a pair of first sliders 14 are provided on the observation box 15, a pair of third slide grooves 32 are provided on the mounting frame 16, and the observation box 15 is slidably installed in the third slide grooves 32 via the first sliders 14;
[0041] The observation box 15 is slidably installed in the third sliding groove 32 through the first sliding block 14, which can facilitate the installation of the observation box 15 by the staff, thereby improving the installation efficiency of the detection device.
[0042] This embodiment is further configured as follows: a first slide groove 7 is provided on the first support column 4; a fixing groove 8 is provided on the first support column 4 and located on one side of the first slide groove 7; an annular fixing block 5 is movably provided on the first support column 4; a fourth slider 39 is provided in the annular fixing block 5; the annular fixing block 5 is slidably installed in the first slide groove 7 through the fourth slider 39; and three supporting feet 6 are rotatably provided on the annular fixing block 5.
[0043] This embodiment is further configured as follows: a third slider 37 is provided on the fixed block 36, a fourth slide groove 35 is provided on the second support block 29, the fixed block 36 is slidably installed in the fourth slide groove 35 through the third slider 37, and a pair of second grooves 38 are provided on the fixed block 36, and the second grooves 38 match the second slots 34.
[0044] This embodiment is further configured such that a second screw rod 13 is screwed into the first support column 4, a second handle 12 is provided at one end of the second screw rod 13, and a rubber plate 24 is provided at the other end of the second screw rod 13, and the rubber plate 24 is movably provided on the second support column 23;
[0045] The second handle 12 is driven to rotate, which drives the second screw rod 13 to rotate, so that the rubber plate 24 is pressed against the second support column 23 to fix the second support column 23 .
[0046] Embodiment: When the detection device is installed, the annular fixing block 5 is driven to move so that the supporting feet 6 are in the same horizontal plane to support the detection device. The annular fixing block 5 is driven to rotate so that the fourth slider 39 is moved into the fixing groove 8 to fix the fourth slider 39. The fixing block 36 is driven to rotate so that the second groove 38 is moved to the top of the second slot 34. The solar panel 3 is inserted into the second slot 34 through the second insert block 33, and then the solar panel 3 is installed on the second support block 29. The solar panel 3 is installed in an insert installation manner and does not require the use of tools, which reduces the installation of the solar panel 3. The installation time is shortened, thereby improving the installation efficiency of the detection device. The driving fixing block 36 is driven to rotate so that the second groove 38 is away from the second slot 34, which is used to fix the second plug-in block 33, thereby fixing the solar panel 3 on the detection device. The main body 1 is installed on the first mounting block 19 through the second mounting block 21. The second slider 22 is driven to move, and the first plug-in block 31 is driven to move into the first slot 30. The second mounting block 21 can be fixed on the first mounting block 19, thereby fixing the main body 1 on the detection device. The splicing installation method can reduce the installation time of the detection device, thereby The installation efficiency of the detection device is improved. The observation box 15 is slidably installed in the third slide groove 32 through the first slider 14, which can facilitate the staff to install the observation box 15, thereby improving the installation efficiency of the detection device. When the detection device is in use, the second support column 23 is movably arranged in the first support column 4. By adjusting the position of the second support column 23, the height of the main body 1 can be adjusted, which can facilitate the detection device to collect meteorological information at different heights, thereby improving the wide application of the detection device. The first handle 9 is driven to rotate, the first bevel gear 26 is controlled to rotate, and the second bevel gear 27 is driven to rotate. The first screw rod 10 is controlled to rotate, so that the first support block 25 is raised and lowered, and the mounting frame 16 is raised and lowered, thereby raising and lowering the observation box 15. The position of the observation box 15 can be adjusted according to the height of the staff, so that the staff can more comfortably view the meteorological data in the observation box 15, thereby improving the wide application of the detection device. The driving motor 28 is driven to rotate, drive the second support block 29 to rotate, so that the second plug block 33 is rotated, and the support rod 2 is driven to rotate, thereby rotating the solar panel 3. The orientation of the solar panel 3 can be adjusted according to the position of the sun, thereby improving the working efficiency of the solar panel 3.
[0047] Although the embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and variations may be made to these embodiments without departing from the principles and spirit of the present invention, and the scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A lightweight meteorological element detection device, comprising a main body (1), a solar panel (3) and a first support column (4), characterized in that: A second support column (23) is movably provided in the first support column (4), an annular fixed block (5) is movably provided on the first support column (4), a fourth slider (39) is provided in the annular fixed block (5), a motor (28) is provided in the second support column (23), a second support block (29) is provided on the driving end of the motor (28), the second support block (29) is rotatably mounted on the second support column (23), a pair of support rods (2) are provided on the solar panel (3), a pair of the support rods (2) are respectively provided with a second plug block (33), and a pair of second slots ( 34), the solar panel (3) is inserted into the second slot (34) through the second plug block (33), a fixed block (36) is movably provided on the fourth slider (39), a second connecting column (20) is provided on the upper wall surface of the fixed block (36), a first mounting block (19) is provided on the upper wall surface of the second connecting column (20), a first connecting column (17) is provided on the main body (1), a second mounting block (21) is provided on the lower wall surface of the first connecting column (17), the second mounting block (21) is movably provided on the first mounting block (19), and a fixing mechanism is provided on the first mounting block (19).
2. A lightweight meteorological element detection device according to claim 1, characterized in that: The fixing mechanism comprises a pair of first plug-in blocks (31), the pair of first plug-in blocks (31) are movably arranged in the first mounting block (19), the first mounting block (19) is provided with a pair of second slide grooves (18), the pair of first plug-in blocks (31) are respectively provided with second sliders (22), the second sliders (22) are slidably arranged in the second slide grooves (18), the second mounting block (21) is provided with a pair of first slots (30), and the first plug-in blocks (31) are movably arranged in the first slots (30).
3. A lightweight meteorological element detection device according to claim 2, characterized in that: A first groove (11) is provided on the first support column (4), a first screw rod (10) is rotatably provided in the first groove (11), a first handle (9) is rotatably provided on the first support column (4), a first bevel gear (26) is provided on the first handle (9), a second bevel gear (27) is provided on the first screw rod (10), the first bevel gear (26) and the second bevel gear (27) are meshed with each other, a first support block (25) is slidably provided in the first groove (11), and the first screw rod (10) is screwed into the first support block (25).
4. A lightweight meteorological element detection device according to claim 3, characterized in that: The first support block (25) is provided with a mounting frame (16), an observation box (15) is movably provided on the mounting frame (16), a pair of first sliders (14) are provided on the observation box (15), a pair of third slide grooves (32) are provided on the mounting frame (16), and the observation box (15) is slidably installed in the third slide grooves (32) through the first sliders (14).
5. A lightweight meteorological element detection device according to claim 4, characterized in that: A first slide groove (7) is provided on the first support column (4), a fixing groove (8) is provided on the first support column (4) and located on one side of the first slide groove (7), the annular fixing block (5) is slidably installed in the first slide groove (7) through the fourth slider (39), and three supporting legs (6) are rotatably provided on the annular fixing block (5).
6. A lightweight meteorological element detection device according to claim 5, characterized in that: The fixed block (36) is provided with a third slider (37), the second support block (29) is provided with a fourth slide groove (35), the fixed block (36) is slidably installed in the fourth slide groove (35) through the third slider (37), and the fixed block (36) is provided with a pair of second grooves (38), and the second grooves (38) match the second slot (34).
7. A lightweight meteorological element detection device according to claim 6, characterized in that: A second screw rod (13) is screwed into the first support column (4), a second handle (12) is provided at one end of the second screw rod (13), and a rubber plate (24) is provided at the other end of the second screw rod (13), and the rubber plate (24) is movably provided on the second support column (23).
Citation Information
Patent Citations
Weather station
CN215932179U