Multi-dimensional meteorological data acquisition equipment based on crop climate regionalization

By introducing a mechanical system that automatically covers the sensor and removes dust into the meteorological data acquisition equipment, the problem of dust affecting sensor detection has been solved, thus ensuring the accuracy and reliability of sensor data.

CN121978776AInactive Publication Date: 2026-05-05新疆维吾尔自治区气候中心(新疆环境资源遥感中心)
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
新疆维吾尔自治区气候中心(新疆环境资源遥感中心)
Filing Date
2026-01-26
Publication Date
2026-05-05
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

Existing meteorological data acquisition equipment lacks dust protection structures, resulting in inaccurate sensor data, especially humidity and temperature measurements which are affected by dust and moisture.

Method used

A multi-dimensional meteorological data acquisition device was designed, comprising a pole, a plate, and a filter frame. When the dust concentration reaches a certain value, the device automatically covers the sensor to prevent dust from covering it. The dust is then removed by a ring brush and a compressed air system to ensure the accuracy of the sensor.

Benefits of technology

It effectively prevents dust from covering the sensors, ensuring the detection accuracy of temperature, humidity and air pressure sensors, reducing the frequency of manual cleaning, lowering labor costs and improving data accuracy.

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Abstract

The invention discloses multi-dimensional meteorological data acquisition equipment based on crop climate zoning, and relates to the technical field of meteorological data acquisition equipment.The multi-dimensional meteorological data acquisition equipment comprises a vertical rod, a first connecting ring is installed on the outer side of the vertical rod, a first plate body is installed on the front face of the first connecting ring, and a controller is installed at the bottom of the first plate body; a sensor assembly is arranged at the bottom of the first plate body; third electric telescopic rods are symmetrically installed at the bottom of the first plate body, second push rods are installed at the output ends of the third electric telescopic rods, and a filtering frame is installed at one end of each second push rod and located on the outer side of the corresponding third electric telescopic rod. When a dust sensor detects that the dust concentration reaches a set value, a filter frame is driven by a third electric telescopic rod to move upwards, so that the filter frame moves upwards to cover a communicator, a controller, a temperature sensor, a humidity sensor, an air pressure sensor and the dust sensor at the bottom of a first plate body, and the situation that the detection precision is affected by dust covering is avoided; the accuracy of a detection result is ensured.
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Description

Technical Field

[0001] This invention relates to the field of meteorological data acquisition equipment technology, specifically a multi-dimensional meteorological data acquisition device based on crop climate zoning. Background Technology

[0002] Different crops are planted in different climate zones according to climate zoning. Meteorological data acquisition equipment collects information such as temperature and humidity in crop-growing areas, which helps people study the relationship between regional environmental data and crop growth. The working environment of meteorological data acquisition equipment is diverse. When meteorological data acquisition equipment is covered with dust, the dust absorbs moisture, which can easily affect the accuracy of the humidity test data in the air. It can also affect the measurement of ambient temperature.

[0003] The shortcomings of existing meteorological data acquisition equipment are:

[0004] Prior art CN219065774U discloses a meteorological data acquisition device, which includes a horizontally arranged mounting plate. A data acquisition mechanism for collecting meteorological data is mounted on the upper surface of the mounting plate. Three support columns arranged circumferentially around the axis of the mounting plate are rotatably connected to the lower surface of the mounting plate. The end of each support column away from the mounting plate is slidably connected along its length to an insertion mechanism for insertion into the soil. A rotating rod with the same flip plane as the corresponding support column is rotatably connected to the side of the support column facing the axis of the mounting plate. The end of all rotating rods away from the corresponding support column is rotatably connected to the same collar. A vertical rod is mounted on the lower surface of the mounting plate for the collar to slide on, and a locking mechanism is provided on the vertical rod for locking and fixing the collar. Rollers are mounted on the side of the support columns away from the axis of the mounting plate via a mounting base. This application facilitates the transportation and use of the data acquisition device.

[0005] The aforementioned technologies lack dust protection structures on the outer surfaces of their sensors, allowing external dust to easily accumulate. This dust affects the sensors' dust detection data and also absorbs moisture, leading to inaccurate air humidity readings. Therefore, a multi-dimensional meteorological data acquisition device based on crop climate zoning is needed to address this issue and reduce the impact of airborne dust on environmental monitoring data. Summary of the Invention

[0006] One objective of this application is to provide a multi-dimensional meteorological data acquisition device based on crop climate zoning, which can solve the technical problems raised in the prior art.

[0007] To achieve the above objectives, the present invention provides the following technical solution: a multi-dimensional meteorological data acquisition device based on crop climate zoning, comprising a pole, a plate and a filter frame, wherein a connecting ring is installed on the outer side of the pole, the plate is installed on the front of the connecting ring, a controller is installed at the bottom of the plate, and a sensor assembly is provided at the bottom of the plate.

[0008] The bottom of the plate is symmetrically equipped with electric telescopic rods three, which are connected to the controller by electrical signals. A push rod two is installed at the output end of the electric telescopic rod three, and a filter frame is installed at one end of the push rod two, with the filter frame located on the outside of the electric telescopic rod three.

[0009] Preferably, a bolt is installed through one side of the connecting ring, and one end of the bolt passes through one side of the upright.

[0010] Preferably, a waterproof ring is installed at the bottom edge of the plate body.

[0011] Preferably, a second connecting ring is installed on the outer side of the upright, and the second connecting ring is located below the first connecting ring. A second bolt is installed through one side of the second connecting ring, and one end of the second bolt penetrates one side of the upright. A second plate is installed at the bottom of the second connecting ring, and multiple insert rods are symmetrically installed at the bottom of the second plate.

[0012] Preferably, the sensor assembly includes a temperature sensor, a humidity sensor, an air pressure sensor, and a dust sensor. The temperature sensor is installed at the bottom of the first plate and is electrically connected to the controller. The humidity sensor is installed at the bottom of the first plate and is located behind the temperature sensor. The humidity sensor is electrically connected to the controller. The air pressure sensor is installed at the bottom of the first plate and is located behind the humidity sensor. The air pressure sensor is electrically connected to the controller. The dust sensor is installed at the bottom of the first plate and is located behind the air pressure sensor. The dust sensor is electrically connected to the controller.

[0013] Preferably, a communicator is installed at the bottom of the first plate, and the communicator is located in front of the controller, and the communicator is electrically connected to the controller.

[0014] Preferably, an electric telescopic rod is installed at the bottom of the plate body, the electric telescopic rod is electrically connected to the controller, a connecting rod is installed at the output end of the electric telescopic rod, an exhaust pipe is installed at one end of the connecting rod, multiple exhaust holes are opened through the top of the exhaust pipe, and an air inlet pipe is installed at the bottom input end of the exhaust pipe.

[0015] Preferably, a compression box is installed at the bottom of the plate body one, an exhaust pipe two is installed at the right output end of the compression box, a hose is installed at the output end of the exhaust pipe two, and the output end of the hose is connected to the input end of the air intake pipe.

[0016] Preferably, an electric telescopic rod two is installed on the left side of the compression box. The electric telescopic rod two is electrically connected to the controller. A push rod one is installed at the output end of the electric telescopic rod two. One end of the push rod one penetrates the inner wall of the left side of the compression box. A compression plate is installed at one end of the push rod one, and the compression plate is located inside the compression box.

[0017] Preferably, four electric telescopic rods are symmetrically installed on the bottom inner wall of the filter frame, and the four electric telescopic rods are electrically connected to the controller. A push rod three is installed at the output end of the four electric telescopic rods, and one end of the push rod three penetrates the bottom of the filter frame. A connecting rod two is installed at one end of the push rod three, and an annular brush is installed at one end of the connecting rod two. The annular brush is located on the outside of the filter frame.

[0018] Compared with the prior art, the beneficial effects of the present invention are:

[0019] 1. When the dust sensor detects that the dust concentration has reached the set value, the filter frame moves upward under the action of the electric telescopic rod three. This causes the filter frame to move upward and cover the communicator, controller, temperature sensor, humidity sensor, air pressure sensor and dust sensor at the bottom of the plate, so as to avoid dust covering and affecting the detection accuracy and ensure the accuracy of the detection results.

[0020] 2. This invention uses an electric telescopic rod four to drive a push rod three to move up and down, which in turn drives a connecting rod two to move up and down, thereby driving a ring brush to move up and down to clean the dust on the outer surface of the filter frame. This prevents dust from clogging the holes on the outer surface of the filter frame, preventing external heat and moisture from entering the filter frame. This allows the temperature and humidity sensors to detect temperature and humidity normally, and the dust on the outside of the filter frame is more likely to fall to the ground, reducing the frequency of manual cleaning of dust that is difficult to fall off.

[0021] 3. In this invention, the electric telescopic rod 2 drives the push rod 1 to move to the right, which in turn drives the compression plate to move to the right. The compression plate compresses the air inside the compression box and causes the compressed air to be discharged from the exhaust pipe 2 into the hose. Then, the compressed air enters the intake pipe through the hose, and then enters the exhaust pipe 1. The compressed air inside the exhaust pipe 1 is then discharged through the exhaust port. Then, the electric telescopic rod 1 works to drive the connecting rod 1 and the exhaust pipe 1 to move left and right, so that the compressed air discharged from the exhaust port blows the dust on the surface of the temperature sensor, humidity sensor, air pressure sensor and dust sensor back and forth, ensuring the accuracy of the detection data of the temperature sensor, humidity sensor, air pressure sensor and dust sensor. Attached Figure Description

[0022] Figure 1 This is a perspective view of the present invention;

[0023] Figure 2 This is a schematic diagram of the structure of the upright, connecting ring one, and plate two of the present invention;

[0024] Figure 3 This is a front sectional view of the plate body of the present invention;

[0025] Figure 4 This is a schematic diagram of the bottom structure of the plate body of the present invention;

[0026] Figure 5 This is a schematic diagram of the filter frame structure of the present invention;

[0027] Figure 6 This is a schematic diagram of the annular brush structure of the present invention.

[0028] In the diagram: 1. Upright pole; 2. Connecting ring 1; 3. Bolt 1; 4. Plate 1; 5. Waterproof ring; 6. Controller; 7. Communicator; 8. Temperature sensor; 9. Humidity sensor; 10. Barometric pressure sensor; 11. Electric telescopic pole 1; 12. Connecting rod 1; 13. Exhaust pipe 1; 14. Exhaust port; 15. Inlet pipe; 16. Compression box; 17. Exhaust pipe 2; 18. Hose; 19. Electric telescopic pole 2; 20. Push rod 1; 21. Compression plate; 22. Electric telescopic pole 3; 23. Push rod 2; 24. Filter frame; 25. Electric telescopic pole 4; 26. Push rod 3; 27. Connecting rod 2; 28. Annular brush; 29. ​​Connecting ring 2; 30. Bolt 2; 31. Plate 2; 32. Insert rod; 33. Dust sensor. Detailed Implementation

[0029] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0030] In the description of this invention, it should be noted that the terms "upper," "lower," "inner," "outer," "front end," "rear end," "both ends," "one end," and "the other end," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are used only for the convenience of describing this invention and for simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this invention. Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance.

[0031] In the description of this invention, it should be noted that, unless otherwise explicitly specified and limited, the terms "installed," "equipped with," "connected," etc., should be interpreted broadly. For example, "connection" can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be a direct connection or an indirect connection through an intermediate medium; it can be a connection within two components. Those skilled in the art can understand the specific meaning of the above terms in this invention according to the specific circumstances.

[0032] Please see Figure 1 , Figure 2 , Figure 3 and Figure 4 This invention provides an embodiment of a multi-dimensional meteorological data acquisition device based on crop climate zoning, comprising a pole 1, a plate 4, and a filter frame 24. A connecting ring 2 is installed on the outer side of the pole 1, and a bolt 3 is installed through one side of the connecting ring 2, with one end of the bolt 3 penetrating one side of the pole 1. The plate 4 is installed on the front of the connecting ring 2, and a waterproof ring 5 is installed at the bottom edge of the plate 4. A controller 6 is installed at the bottom of the plate 4, and a sensor assembly is provided at the bottom of the plate 4. The sensor assembly includes a temperature sensor 8, a humidity sensor 9, a barometric pressure sensor 10, and a dust sensor 33. The temperature sensor 8 is installed at the bottom of the plate 4, and the temperature sensor... Temperature sensor 8 is electrically connected to controller 6. Humidity sensor 9 is installed at the bottom of board 4 and is located behind temperature sensor 8. Humidity sensor 9 is electrically connected to controller 6. Barometric pressure sensor 10 is installed at the bottom of board 4 and is located behind humidity sensor 9. Barometric pressure sensor 10 is electrically connected to controller 6. Dust sensor 33 is installed at the bottom of board 4 and is located behind barometric pressure sensor 10. Dust sensor 33 is electrically connected to controller 6. Communicator 7 is installed at the bottom of board 4 and is located in front of controller 6. Communicator 7 is electrically connected to controller 6.

[0033] Furthermore, the upright 1 provides support for the plate 4, the connecting ring 2 connects the upright 1 and the plate 4, and the bolt 3, by rotating and inserting into the hole on the outside of the upright 1, can fix the upright 1 and the connecting ring 2, ensuring the stability of the connection between the upright 1 and the connecting ring 2. The plate 4 provides installation positions for the temperature sensor 8, humidity sensor 9, and barometric pressure sensor 10. The waterproof ring 5 prevents water on the plate 4 from flowing to the bottom of the plate 4. The temperature sensor 8 is used to detect the temperature of the crop's climate zone and then transmit the temperature information to the controller 6. The humidity sensor 9 is used to detect the temperature of the crop. The humidity of the climate zone is measured and then transmitted to the controller 6. The air pressure sensor 10 is used to detect the air pressure of the crop climate zone and then transmits the air pressure information to the controller 6. The dust sensor 33 is used to detect the dust concentration of the crop climate zone. The controller 6 receives signals from the temperature sensor 8, humidity sensor 9, air pressure sensor 10 and dust sensor 33, and summarizes the temperature signal, humidity signal, air pressure signal and dust signal and transmits them to the remote terminal through the communicator 7, so that people can observe the environmental data of the crop climate zone. At the same time, the controller 6 integrates a timing module for timing.

[0034] Please see Figure 1 , Figure 3 and Figure 5 An embodiment of the present invention provides a multi-dimensional meteorological data acquisition device based on crop climate zoning. An electric telescopic rod 22 is symmetrically installed on the bottom of the plate 4, and the electric telescopic rod 22 is electrically connected to the controller 6. A push rod 23 is installed at the output end of the electric telescopic rod 22, and a filter frame 24 is installed at one end of the push rod 23, and the filter frame 24 is located on the outside of the electric telescopic rod 22.

[0035] Furthermore, when the dust sensor 33 detects that the dust concentration has reached the set value, the controller 6 controls the electric telescopic rod 22 to move the push rod 23 upward, which in turn moves the filter frame 24 upward. This causes the filter frame 24 to move upward and cover the communicator 7, controller 6, temperature sensor 8, humidity sensor 9, air pressure sensor 10, and dust sensor 33 at the bottom of the plate 4, preventing dust from covering them. After the filter frame 24 moves upward and covers the temperature sensor 8, the timing module inside the controller 6 starts timing. When the timing reaches the set value, the controller 6 again controls the electric telescopic rod 22 to move the filter frame 24 downward.

[0036] Please see Figure 1 and Figure 2An embodiment of the present invention provides a multi-dimensional meteorological data acquisition device based on crop climate zoning. A connecting ring 29 is installed on the outer side of the pole 1, and the connecting ring 29 is located below the connecting ring 2. A bolt 30 is installed through one side of the connecting ring 29, and one end of the bolt 30 penetrates one side of the pole 1. A plate 31 is installed at the bottom of the connecting ring 29, and multiple insert rods 32 are symmetrically installed at the bottom of the plate 31.

[0037] Furthermore, the connecting ring 29 serves to connect the upright 1 and the plate 31. The bolt 30, by rotating and inserting into the hole on the outside of the upright 1, can ensure the stability of the connection between the upright 1 and the connecting ring 29. The plate 31 is buried in the ground, so that the whole device can stand on the ground. The insertion rod 32, by inserting into the ground, can further ensure the stability of the upright 1 standing on the ground.

[0038] Please see Figure 1 , Figure 3 and Figure 4 One embodiment of the present invention provides a multi-dimensional meteorological data acquisition device based on crop climate zoning. An electric telescopic rod 11 is installed at the bottom of the plate 4. The electric telescopic rod 11 is electrically connected to a controller 6. A connecting rod 12 is installed at the output end of the electric telescopic rod 11. An exhaust pipe 13 is installed at one end of the connecting rod 12. Multiple exhaust holes 14 are opened through the top of the exhaust pipe 13. An air inlet pipe 15 is installed at the bottom input end of the exhaust pipe 13. A compression box 16 is installed at the bottom of the plate 4. An exhaust pipe 17 is installed on the right output end of the compression box 16. A hose 18 is installed on the output end of the exhaust pipe 17, and the output end of the hose 18 is connected to the input end of the intake pipe 15. An electric telescopic rod 19 is installed on the left side of the compression box 16. The electric telescopic rod 19 is electrically connected to the controller 6. A push rod 20 is installed on the output end of the electric telescopic rod 19. One end of the push rod 20 penetrates the left inner wall of the compression box 16. A compression plate 21 is installed on one end of the push rod 20, and the compression plate 21 is located inside the compression box 16.

[0039] Furthermore, the staff sends a signal to the communicator 7 via a remote terminal. Then, the controller 6 controls the electric telescopic rod 19 to work according to the signal received by the communicator 7. The electric telescopic rod 19 drives the push rod 20 to move to the right, which in turn drives the compression plate 21 to move to the right. The compression plate 21 compresses the air inside the compression box 16 and discharges the compressed air from the exhaust pipe 17 into the hose 18. Then, the compressed air enters the intake pipe 15 through the hose 18, and then enters the exhaust pipe 13. The compressed air inside the exhaust pipe 13 is then discharged through the exhaust port 14. Then, the controller 6 controls the electric telescopic rod 11 to work, which drives the connecting rod 12 and the exhaust pipe 13 to move left and right. This causes the compressed air discharged from the exhaust port 14 to blow the dust on the surface of the temperature sensor 8, humidity sensor 9, air pressure sensor 10 and dust sensor 33 back and forth.

[0040] Please see Figure 1 , Figure 3 , Figure 5 and Figure 6 One embodiment of the present invention provides a multi-dimensional meteorological data acquisition device based on crop climate zoning. A four-pole electric telescopic rod 25 is symmetrically installed on the bottom inner wall of the filter frame 24, and the four-pole electric telescopic rod 25 is electrically connected to the controller 6. A push rod 26 is installed at the output end of the four-pole electric telescopic rod 25, and one end of the push rod 26 penetrates the bottom of the filter frame 24. A connecting rod 27 is installed at one end of the push rod 26, and an annular brush 28 is installed at one end of the connecting rod 27, with the annular brush 28 located on the outside of the filter frame 24.

[0041] Furthermore, when the dust sensor 33 detects that the dust concentration has reached the set value, the filter frame 24 moves upward under the action of the electric telescopic rod 22. Then, the controller 6 controls the electric telescopic rod 25 to work, which drives the push rod 26 to move up and down, thereby driving the connecting rod 27 to move up and down. This causes the annular brush 28 to move up and down to clean the dust on the outer surface of the filter frame 24, preventing dust from clogging the holes on the outer surface of the filter frame 24 and preventing external heat and moisture from entering the filter frame 24. This allows the temperature sensor 8 and humidity sensor 9 to detect temperature and humidity normally. Moreover, the dust on the outside of the filter frame 24 is more likely to fall to the ground, reducing the frequency of manual cleaning of dust that is difficult to fall. The small amount of dust inside the filter frame 24 only requires short-term cleaning by personnel, which greatly reduces labor costs.

[0042] Working Principle: Before using the multi-dimensional meteorological data acquisition equipment based on crop climate zoning, it is necessary to check whether there are any problems affecting its use. The second plate 31 is buried in the ground, allowing the entire device to stand upright. The insertion rod 32 further ensures the stability of the upright rod 1 on the ground by inserting it into the ground. Temperature sensor 8 is used to detect the temperature of the crop climate zone, humidity sensor 9 is used to detect the humidity of the crop climate zone, air pressure sensor 10 is used to detect the air pressure of the crop climate zone, and dust sensor 33 is used to detect the dust concentration of the crop climate zone. The controller 6 receives data from temperature sensor 8 and humidity sensor 9. 9. The signals from the air pressure sensor 10 and the dust sensor 33 are simultaneously collected, and the temperature, humidity, air pressure, and dust signals are transmitted to the remote terminal via the communicator 7. This facilitates the observation of environmental data in the crop climate zone. When the dust sensor 33 detects that the dust concentration has reached the set value, the filter frame 24 moves upward under the action of the electric telescopic rod 22. This causes the filter frame 24 to move upward and cover the communicator 7, controller 6, temperature sensor 8, humidity sensor 9, air pressure sensor 10, and dust sensor 33 at the bottom of the plate 4, preventing dust from covering them. Then, the controller 6 controls the electric telescopic rod 25 to work again, driving the push rod 26. The vertical movement of the connecting rod 27 causes the annular brush 28 to move up and down, cleaning the dust on the outer surface of the filter frame 24. This prevents dust from clogging the holes on the outer surface of the filter frame 24, thus preventing external heat and moisture from entering the filter frame 24. This allows the temperature sensor 8 and humidity sensor 9 to detect temperature and humidity normally. Then, the operator sends a signal to the communicator 7 via a remote terminal. The controller 6 then controls the electric telescopic rod 19 to work based on the signal received by the communicator 7. The electric telescopic rod 19 drives the push rod 20 to move to the right, which in turn moves the compression plate 21 to the right. The compression plate 21 compresses the air inside the compression box 16 and... Compressed air is discharged from exhaust pipe 17 and enters hose 18. Then, the compressed air enters intake pipe 15 through hose 18, and then enters exhaust pipe 13. The compressed air inside exhaust pipe 13 is then discharged through exhaust port 14. Next, controller 6 controls electric telescopic rod 11 to move connecting rod 12 and exhaust pipe 13 left and right. This causes the compressed air discharged from exhaust port 14 to blow the dust on the surfaces of temperature sensor 8, humidity sensor 9, air pressure sensor 10, and dust sensor 33 back and forth, ensuring the accuracy of the data detected by temperature sensor 8, humidity sensor 9, air pressure sensor 10, and dust sensor 33.

[0043] It will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above, and that the invention can be implemented in other specific forms without departing from its spirit or essential characteristics. Therefore, the embodiments should be considered in all respects as exemplary and non-limiting, and the scope of the invention is defined by the appended claims rather than the foregoing description. Thus, all variations falling within the meaning and scope of equivalents of the claims are intended to be included within the present invention, and no reference numerals in the claims should be construed as limiting the rights involved.

Claims

1. A multi-dimensional meteorological data acquisition device based on crop climate zoning, characterized in that: It includes a pole (1), a plate (4) and a filter frame (24). A connecting ring (2) is installed on the outside of the pole (1). The plate (4) is installed on the front of the connecting ring (2). A controller (6) is installed on the bottom of the plate (4). A sensor assembly is provided on the bottom of the plate (4). The bottom of the plate (4) is symmetrically equipped with an electric telescopic rod (22), and the electric telescopic rod (22) is electrically connected to the controller (6). The output end of the electric telescopic rod (22) is equipped with a push rod (23), and a filter frame (24) is installed at one end of the push rod (23), and the filter frame (24) is located outside the electric telescopic rod (22).

2. The multi-dimensional meteorological data acquisition device based on crop climate zoning according to claim 1, characterized in that: One side of the connecting ring (2) is fitted with a bolt (3), and one end of the bolt (3) passes through one side of the upright (1).

3. The multi-dimensional meteorological data acquisition device based on crop climate zoning according to claim 1, characterized in that: A waterproof ring (5) is installed at the bottom edge of the plate (4).

4. The multi-dimensional meteorological data acquisition device based on crop climate zoning according to claim 1, characterized in that: A connecting ring 2 (29) is installed on the outside of the upright (1), and the connecting ring 2 (29) is located below the connecting ring 1 (2). A bolt 2 (30) is installed through one side of the connecting ring 2 (29), and one end of the bolt 2 (30) penetrates one side of the upright (1). A plate 2 (31) is installed at the bottom of the connecting ring 2 (29), and multiple insert rods (32) are symmetrically installed at the bottom of the plate 2 (31).

5. The multi-dimensional meteorological data acquisition device based on crop climate zoning according to claim 1, characterized in that: The sensor assembly includes a temperature sensor (8), a humidity sensor (9), a pressure sensor (10), and a dust sensor (33). The temperature sensor (8) is installed at the bottom of the first plate (4) and is electrically connected to the controller (6). The humidity sensor (9) is installed at the bottom of the first plate (4) and is located behind the temperature sensor (8). The humidity sensor (9) is electrically connected to the controller (6). The pressure sensor (10) is installed at the bottom of the first plate (4) and is located behind the humidity sensor (9). The pressure sensor (10) is electrically connected to the controller (6). The dust sensor (33) is installed at the bottom of the first plate (4) and is located behind the pressure sensor (10). The dust sensor (33) is electrically connected to the controller (6).

6. The multi-dimensional meteorological data acquisition device based on crop climate zoning according to claim 1, characterized in that: A communicator (7) is installed at the bottom of the plate (4), and the communicator (7) is located in front of the controller (6). The communicator (7) is electrically connected to the controller (6).

7. The multi-dimensional meteorological data acquisition device based on crop climate zoning according to claim 1, characterized in that: The bottom of the plate (4) is equipped with an electric telescopic rod (11), which is electrically connected to the controller (6). The output end of the electric telescopic rod (11) is equipped with a connecting rod (12), and one end of the connecting rod (12) is equipped with an exhaust pipe (13). The top of the exhaust pipe (13) is provided with multiple exhaust holes (14), and the bottom input end of the exhaust pipe (13) is equipped with an air inlet pipe (15).

8. The multi-dimensional meteorological data acquisition device based on crop climate zoning according to claim 7, characterized in that: A compression box (16) is installed at the bottom of the plate (4). An exhaust pipe (17) is installed at the right output end of the compression box (16). A hose (18) is installed at the output end of the exhaust pipe (17), and the output end of the hose (18) is connected to the input end of the air intake pipe (15).

9. A multi-dimensional meteorological data acquisition device based on crop climate zoning according to claim 8, characterized in that: An electric telescopic rod 2 (19) is installed on the left side of the compression box (16). The electric telescopic rod 2 (19) is electrically connected to the controller (6). A push rod 1 (20) is installed at the output end of the electric telescopic rod 2 (19). One end of the push rod 1 (20) penetrates the inner wall of the left side of the compression box (16). A compression plate (21) is installed at one end of the push rod 1 (20). The compression plate (21) is located inside the compression box (16).

10. A multi-dimensional meteorological data acquisition device based on crop climate zoning according to claim 1, characterized in that: The bottom inner wall of the filter frame (24) is symmetrically equipped with electric telescopic rods four (25), and the electric telescopic rods four (25) are electrically connected to the controller (6). The output end of the electric telescopic rods four (25) is equipped with push rods three (26), and one end of push rods three (26) penetrates the bottom of the filter frame (24). One end of push rods three (26) is equipped with connecting rods two (27), and one end of connecting rods two (27) is equipped with an annular brush (28), and the annular brush (28) is located on the outside of the filter frame (24).

Citation Information

Patent Citations

  • Meteorological data acquisition equipment

    CN219065774U