Agricultural breeding device for monitoring crop growth condition
By using a lifting screw rod system driven by a lifting motor and a sliding frame design, combined with an integrated camera and touch display, the problem of inconvenient spacing and watering of the breeding device is solved, realizing convenient adjustment and precise watering of the breeding device, and improving the convenience and survival rate of breeding.
Patent Information
- Application Number
- CN202520547062.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-26
- Publication Date
- 2026-02-24
- Estimated Expiration
- 2035-03-26
AI Technical Summary
Existing breeding equipment is not convenient for adjusting the spacing vertically to accommodate crops of different heights, and it is also inconvenient for monitoring crop growth, which affects the convenience and survival rate of breeding.
The system employs a lifting screw rod system driven by a lifting motor and a sliding frame design, combined with an integrated camera and touch display, to enable convenient adjustment of the spacing of the breeding device and precise watering at multiple locations. The position of the fixed frame and the breeding box can be adjusted by the lifting screw rod, and the combination of flexible water pipes and a motor-driven nozzle system enables precise monitoring and watering of crops.
The breeding device allows for convenient vertical adjustment of the spacing to accommodate crops of different heights, improving the convenience and survival rate of breeding, and ensuring accurate monitoring of crop growth and timely watering.
Smart Images

Figure CN223929043U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of breeding device technology, specifically to an agricultural breeding device for monitoring crop growth. Background Technology
[0002] Agricultural breeding devices are essential equipment in modern agricultural research and production, used to simulate optimal environmental conditions for seed growth. They support seed germination and growth by precisely controlling parameters such as temperature, humidity, and light. Seed culture boxes feature intelligent control systems, efficient energy management, and precise temperature and humidity control, improving seed germination rates and growth speeds while reducing energy consumption and emissions, thus achieving green production.
[0003] For example, the agricultural device for monitoring crop growth disclosed in patent announcement number CN221237520U relates to the field of agricultural equipment technology and includes: a support frame; a track fixed on the support frame; a sliding table that cooperates with the track; the sliding table is equipped with a drive component for moving the sliding table along the track; and a camera component is mounted on the sliding table. The camera component is used to monitor the growth status of the crop.
[0004] Although this invention enables the use of an agricultural device to monitor crop growth, the track can be arranged along the bamboo shoot growth area, and the drive component moves the slide along the track, allowing the camera component to move to different positions and monitor the bamboo shoots. Only one set of equipment is needed to monitor bamboo shoots in an area, reducing monitoring costs.
[0005] However, the existing breeding devices of this type are not conducive to convenient vertical adjustment of the spacing to accommodate crops of different heights for breeding operations. They are also not convenient for monitoring the growth status of crops, nor for moving the breeding device to multiple positions to accurately water crops. This greatly affects the convenience of picking up and putting away breeding crops and the survival rate of the bred crops. Utility Model Content
[0006] The purpose of this invention is to provide an agricultural breeding device for monitoring crop growth, in order to solve the problems mentioned in the background art, such as the inconvenience of adjusting the spacing of the breeding device vertically to accommodate crops of different heights for breeding operations, the inconvenience of monitoring the growth status of crops, the inconvenience of picking up and placing the breeding crops, the inconvenience of moving the breeding device to multiple positions to accurately water the crops, and the impact on the survival rate of the bred crops.
[0007] To achieve the above objectives, this utility model provides the following technical solution: an agricultural breeding device for monitoring crop growth, comprising a breeding box and a fixing frame. The breeding box contains multiple sets of fixing frames spaced at equal intervals. Each fixing frame has a sliding frame slidably mounted on its top. Each sliding frame has multiple sets of breeding boxes spaced at equal intervals on its top. The breeding box has four sets of equally spaced wheels at its bottom. A connecting frame is mounted on the outer wall of the breeding box. A water tank is mounted on the outer wall of the breeding box on one side of each sliding frame. Each fixing frame has four sets of equally spaced cameras at its bottom.
[0008] Preferably, a lifting frame is installed inside the breeding box on one side of the fixed frame, a support arm is installed on the inner wall of the breeding box above the lifting frame, and a lifting motor is installed on the outer wall of the support arm.
[0009] Preferably, the output end of each lifting motor is equipped with a lifting threaded rod, and the lifting threaded rod extends into the interior of the lifting frame. The surface of the lifting threaded rod inside the lifting frame is fitted with a lifting threaded sleeve, and the lifting threaded sleeve extends into the exterior of the lifting frame. The lifting threaded sleeve is connected to the fixed frame.
[0010] Preferably, a first motor is symmetrically mounted on the bottom end of the sliding frame, and a first threaded rod is mounted on the output end of each of the first motors. A first threaded sleeve is fitted on the surface of each of the first threaded rods, and the first threaded sleeve is connected to the fixed frame.
[0011] Preferably, a longitudinal moving frame is installed at the center of the bottom of each fixed frame, a longitudinal motor is installed on the outer side of each longitudinal moving frame, a longitudinal threaded rod is installed at the output end of each longitudinal motor, a longitudinal threaded sleeve is fitted on the surface of each longitudinal threaded rod, and a transverse moving frame is provided at the bottom of each longitudinal moving frame, and the longitudinal threaded sleeve is connected to the transverse moving frame.
[0012] Preferably, a horizontal motor is installed on the outer side of each of the horizontal moving frames, a horizontal threaded rod is installed at the output end of each of the horizontal motors, a horizontal threaded sleeve is fitted on the surface of each of the horizontal threaded rods, and a flexible water pipe is installed on the outer wall of each of the horizontal threaded sleeves.
[0013] Preferably, each of the transverse threaded sleeves has a nozzle installed at its bottom end, and a flexible water pipe extends into the nozzle; each of the water tanks has a water pump installed at its top end, and the water pump is connected to the flexible water pipe; and each of the water tanks has an inlet valve installed at its bottom end.
[0014] Preferably, a touch display all-in-one machine is installed at the top of the connecting frame, and the output end of the touch display all-in-one machine is electrically connected to the input ends of the lifting motor, the first motor, the longitudinal motor, the transverse motor, the water pump, and the camera.
[0015] Compared with the prior art, the beneficial effects of this utility model are: the breeding device not only realizes the convenient vertical adjustment of the breeding device to adapt to crops of different heights for breeding operations, but also facilitates the monitoring of crop growth status and improves the convenience of picking up and putting away breeding crops. In addition, it facilitates the precise watering of crops by moving the breeding device to multiple positions, and allows manual watering of water-deficient crops in a timely manner through the monitoring screen, thereby improving the survival rate of crop breeding.
[0016] (1) The walking wheels move the breeding device to a suitable position. The lifting motor drives the lifting threaded rod to rotate. The lifting threaded rod drives the lifting threaded sleeve to move inside the lifting frame. The lifting threaded sleeve drives the fixed frame to move. The fixed frame drives the breeding box and sliding frame to move, so as to facilitate the adjustment of the distance between multiple sets of fixed frames. The first motor drives the first threaded rod to rotate. Under the threaded connection between the first threaded rod and the first threaded sleeve, the first threaded rod moves. The first threaded rod drives the sliding frame to move and slide on the surface of the fixed frame, so as to move the sliding frame and the breeding box to the outside of the breeding box. This makes it convenient for the staff to take out and put in the crops inside the breeding box. After placement, the first motor is turned on in reverse to move the sliding frame and the breeding box to the inside of the breeding box. The camera is turned on to monitor the crop growth status. The staff monitors the crop growth status through the touch display all-in-one machine. This realizes the convenient vertical adjustment of the breeding device to adapt to crops of different heights for breeding operations, facilitates the monitoring of crop growth status, and improves the convenience of taking out and putting in the breeding crops.
[0017] (2) The longitudinal motor drives the longitudinal threaded rod to rotate, the longitudinal threaded rod drives the longitudinal threaded sleeve to move, the longitudinal threaded sleeve drives the transverse moving frame, flexible water pipe, nozzle, and transverse threaded sleeve to move, and moves to the area below the crop that needs watering. The transverse motor drives the transverse threaded rod to rotate. With the threaded connection between the transverse threaded rod and the transverse threaded sleeve, the transverse threaded rod drives the transverse threaded sleeve to move, and the transverse threaded sleeve drives the nozzle to move. After moving to the appropriate position, the water pump draws water from the water tank into the flexible water pipe. The flexible water pipe delivers water to the nozzle and discharges it to water the crop. The flexible water pipe uses a flexible hose to prevent tearing and breakage during multi-position movement. This enables precise watering of crops by multi-position movement of the breeding device, facilitates timely watering of water-deficient crops by manual monitoring, and improves the survival rate of crop breeding. Attached Figure Description
[0018] Figure 1 This is a front view structural diagram of the present utility model;
[0019] Figure 2 This is a three-dimensional structural diagram of the present invention;
[0020] Figure 3This is a three-dimensional structural diagram of the touch display all-in-one machine of this utility model;
[0021] Figure 4 This is a three-dimensional structural diagram of the lifting frame of this utility model;
[0022] Figure 5 This is a three-dimensional structural diagram of the first motor of this utility model;
[0023] Figure 6 This is a three-dimensional structural diagram of the longitudinal moving frame of this utility model;
[0024] Figure 7 This is a three-dimensional structural diagram of the first threaded rod of this utility model.
[0025] In the diagram: 1. Breeding box; 2. Fixing frame; 3. Breeding box; 4. Wheels; 5. Connecting frame; 6. Touch screen display all-in-one machine; 7. Water tank; 8. Lifting motor; 9. Lifting threaded rod; 10. Lifting frame; 11. Lifting threaded sleeve; 12. Sliding frame; 13. First threaded rod; 14. First motor; 15. First threaded sleeve; 16. Longitudinal motor; 17. Longitudinal moving frame; 18. Longitudinal threaded rod; 19. Longitudinal threaded sleeve; 20. Lateral moving frame; 21. Lateral threaded rod; 22. Flexible water pipe; 23. Lateral threaded sleeve; 24. Nozzle; 25. Camera; 26. Water pump; 27. Inlet valve; 28. Lateral motor; 29. Support arm. Detailed Implementation
[0026] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. All other embodiments obtained by those skilled in the art based on the embodiments of the present utility model without creative effort are within the scope of protection of the present utility model.
[0027] Please see Figure 1-7This utility model provides an embodiment of an agricultural breeding device for monitoring crop growth, comprising a breeding box 1 and a fixed frame 2. Multiple sets of fixed frames 2 are installed inside the breeding box 1 at equal intervals. A sliding frame 12 is slidably mounted on the top of each fixed frame 2. Multiple sets of breeding boxes 3 are installed on the top of each sliding frame 12 at equal intervals. Four sets of walking wheels 4 are installed at equal intervals at the bottom of the breeding box 1. A connecting frame 5 is installed on the outer wall of the breeding box 1. A water tank 7 is installed on the outer wall of the breeding box 1 on one side of the sliding frame 12. Four sets of cameras 25 are installed at equal intervals at the bottom of each fixed frame 2. A lifting frame 10 is installed inside the breeding box 1 on one side of the fixed frame 2. Above the lifting frame 10... Support arms 29 are installed on the inner wall of the breeding box 1. Lifting motors 8 are installed on the outer wall of the support arms 29. Lifting threaded rods 9 are installed at the output end of the lifting motors 8. The lifting threaded rods 9 extend into the interior of the lifting frame 10. Lifting threaded sleeves 11 are fitted on the surface of the lifting threaded rods 9 inside the lifting frame 10. The lifting threaded sleeves 11 extend into the exterior of the lifting frame 10 and are connected to the fixed frame 2. First motors 14 are symmetrically installed at the bottom of the sliding frame 12. First threaded rods 13 are installed at the output end of the first motors 14. First threaded sleeves 15 are fitted on the surface of the first threaded rods 13 and are connected to the fixed frame 2.
[0028] The breeding device is moved to a suitable position using the walking wheels 4. The lifting motor 8 is then turned on. Supported by the support arm 29, the lifting motor 8 drives the lifting threaded rod 9 to rotate. With the threaded connection between the lifting threaded rod 9 and the lifting threaded sleeve 11, the lifting threaded rod 9 drives the lifting threaded sleeve 11 to move inside the lifting frame 10. The lifting threaded sleeve 11 drives the fixed frame 2 to move, and the fixed frame 2 drives the breeding box 3 and the sliding frame 12 to move, facilitating the adjustment of the distance between multiple sets of fixed frames 2 to facilitate the breeding of crops at different heights. After moving to a suitable position, the first motor 14 is turned on. Supported by the sliding frame 12, the first motor 14 drives the first threaded rod 13 to rotate. The first threaded rod 13 and the first threaded sleeve 11... The threaded connection of 5 drives the first threaded rod 13 to move, and the first threaded rod 13 drives the sliding frame 12 to move and slide on the surface of the fixed frame 2, so as to move the sliding frame 12 and the breeding box 3 to the outside of the breeding box 1, which makes it convenient for the staff to take out and put in the crops inside the breeding box 3. After the placement is completed, the first motor 14 is turned on in reverse to move the sliding frame 12 and the breeding box 3 to the inside of the breeding box 1. The camera 25 is turned on to monitor the growth status of the crops. The staff monitors the growth status of the crops through the touch display all-in-one machine 6. The breeding device can be conveniently adjusted up and down to accommodate crops of different heights for breeding operations, which facilitates the monitoring of the growth status of crops and improves the convenience of taking out and putting in the breeding crops.
[0029] A longitudinal moving frame 17 is installed at the center of the bottom of each fixed frame 2. A longitudinal motor 16 is installed on the outer side of each longitudinal moving frame 17. A longitudinal threaded rod 18 is installed at the output end of each longitudinal motor 16. A longitudinal threaded sleeve 19 is fitted onto the surface of each longitudinal threaded rod 18. A transverse moving frame 20 is provided at the bottom of each longitudinal moving frame 17, and the longitudinal threaded sleeve 19 is connected to the transverse moving frame 20. A transverse motor 28 is installed on the outer side of each transverse moving frame 20. A transverse threaded rod 21 is installed at the output end of each transverse motor 28. A threaded sleeve 19 is fitted onto the surface of each transverse threaded rod 21. A horizontal threaded sleeve 23 is provided, and a flexible water pipe 22 is installed on the outer wall of the horizontal threaded sleeve 23. A nozzle 24 is installed at the bottom of the horizontal threaded sleeve 23, and the flexible water pipe 22 extends into the interior of the nozzle 24. A water pump 26 is installed at the top of the water tank 7, and the water pump 26 is connected to the flexible water pipe 22. A water inlet valve 27 is installed at the bottom of the water tank 7. A touch display all-in-one machine 6 is installed at the top of the connecting frame 5. The output end of the touch display all-in-one machine 6 is electrically connected to the input end of the lifting motor 8, the first motor 14, the longitudinal motor 16, the horizontal motor 28, the water pump 26, and the camera 25.
[0030] When the operator observes the display screen of the touch screen all-in-one machine 6 and detects that the crops need watering, the vertical motor 16 is activated. Supported by the vertical moving frame 17, the vertical motor 16 drives the vertical threaded rod 18 to rotate. With the threaded connection between the vertical threaded rod 18 and the vertical threaded sleeve 19, the vertical threaded rod 18 drives the vertical threaded sleeve 19 to move. The vertical threaded sleeve 19 then drives the horizontal moving frame 20, the flexible water pipe 22, the nozzle 24, and the horizontal threaded sleeve 23 to move. When they reach the area below the crops that need watering, the horizontal motor 28 is activated. Supported by the horizontal moving frame 20, the horizontal motor 28 drives the horizontal threaded rod 21 to rotate. With the threaded connection between the horizontal threaded rod 21 and the horizontal threaded sleeve 23, the vertical threaded rod 18 drives the vertical threaded sleeve 19 to move. With the threaded connection of the threaded sleeve 23, the transverse threaded rod 21 drives the transverse threaded sleeve 23 to move, and the transverse threaded sleeve 23 drives the nozzle 24 to move. After moving to the appropriate position, the water pump 26 is turned on. With the support of the water tank 7, the water pump 26 draws water from the water tank 7 into the flexible water pipe 22. The flexible water pipe 22 delivers the water to the nozzle 24 and discharges it from the nozzle 24 to irrigate the crops. The flexible water pipe 22 uses a flexible hose to prevent tearing and breakage during multi-position movement. This enables precise irrigation of crops by moving the breeding device in multiple positions, facilitating timely irrigation of water-deficient crops by manual monitoring and improving the survival rate of crop breeding.
[0031] In this embodiment, the breeding device is first moved to a suitable position using the wheels 4. The lifting motor 8 drives the lifting threaded rod 9 to rotate, which in turn moves the lifting threaded sleeve 11 inside the lifting frame 10. The lifting threaded sleeve 11 then moves the fixed frame 2, which in turn moves the breeding box 3 and the sliding frame 12. This allows for easy adjustment of the distance between multiple fixed frames 2, facilitating the breeding of crops at different heights. After reaching the suitable position, the first motor 14 drives the first threaded rod 13 to rotate. The first threaded rod 13 moves under the threaded connection with the first threaded sleeve 15, causing it to slide. The first threaded rod 13 then moves the sliding frame 12, which slides on the surface of the fixed frame 2, moving the sliding frame 12 and the breeding box 3 to the outside of the breeding box 1. This facilitates the placement and removal of crops from inside the breeding box 3 by staff. After placement, the first motor 14 is turned on in reverse, moving the sliding frame 12 and the breeding box 3 back inside the breeding box 1. The camera 25 is then turned on to monitor the crop growth. The operator monitors crop growth via a touch-screen display unit 6. When the operator observes the display screen and detects that the crop needs watering, the longitudinal motor 16 drives the longitudinal threaded rod 18 to rotate. The longitudinal threaded rod 18 then moves the longitudinal threaded sleeve 19, which in turn moves the transverse moving frame 20, flexible water pipe 22, nozzle 24, and transverse threaded sleeve 23. The system moves to a position below the crop requiring watering. Supported by the transverse moving frame 20, the transverse motor 28 drives the transverse threaded rod 21 to rotate. The transverse threaded rod 21 then moves the transverse threaded sleeve 23, which in turn moves the nozzle 24. Once the system reaches the appropriate position, the water pump 26 is activated. Supported by the water tank 7, the water pump 26 draws water from the tank into the flexible water pipe 22. The flexible water pipe 22 then delivers the water to the nozzle 24, from which it is discharged, watering the crop. The flexible water pipe 22 uses a flexible hose to prevent tearing or breakage during multiple movements, thus completing the operation of the breeding device.
Claims
1. An agricultural breeding device for monitoring crop growth, characterized in that: The system includes a breeding box (1) and a fixing frame (2). The breeding box (1) is equipped with multiple sets of fixing frames (2) at equal intervals. Each fixing frame (2) has a sliding frame (12) slidably mounted on its top. Each sliding frame (12) has multiple sets of breeding boxes (3) at equal intervals mounted on its top. The breeding box (1) has four sets of walking wheels (4) at equal intervals mounted on its bottom. The breeding box (1) has a connecting frame (5) mounted on its outer wall. Each side of the outer wall of the breeding box (1) on the sliding frame (12) has a water tank (7) mounted on its outer wall. Each fixing frame (2) has four sets of cameras (25) at equal intervals mounted on its bottom.
2. The agricultural breeding device for monitoring crop growth status according to claim 1, characterized in that: A lifting frame (10) is installed inside the breeding box (1) on one side of the fixed frame (2). A support arm (29) is installed on the inner wall of the breeding box (1) above the lifting frame (10). A lifting motor (8) is installed on the outer wall of the support arm (29).
3. An agricultural breeding device for monitoring crop growth according to claim 2, characterized in that: The output end of each lifting motor (8) is equipped with a lifting threaded rod (9), and the lifting threaded rod (9) extends into the interior of the lifting frame (10). The surface of the lifting threaded rod (9) inside the lifting frame (10) is fitted with a lifting threaded sleeve (11), and the lifting threaded sleeve (11) extends into the exterior of the lifting frame (10), and the lifting threaded sleeve (11) is connected to the fixed frame (2).
4. The agricultural breeding device for monitoring crop growth status according to claim 1, characterized in that: The bottom end of the sliding frame (12) is symmetrically equipped with a first motor (14), and the output end of the first motor (14) is equipped with a first threaded rod (13). The surface of the first threaded rod (13) is fitted with a first threaded sleeve (15), and the first threaded sleeve (15) is connected to the fixed frame (2).
5. An agricultural breeding device for monitoring crop growth according to claim 1, characterized in that: A longitudinal moving frame (17) is installed at the center of the bottom of each fixed frame (2). A longitudinal motor (16) is installed on the outer side of each longitudinal moving frame (17). A longitudinal threaded rod (18) is installed at the output end of each longitudinal motor (16). A longitudinal threaded sleeve (19) is fitted on the surface of each longitudinal threaded rod (18). A transverse moving frame (20) is provided at the bottom of each longitudinal moving frame (17), and the longitudinal threaded sleeve (19) is connected to the transverse moving frame (20).
6. An agricultural breeding device for monitoring crop growth according to claim 5, characterized in that: A horizontal motor (28) is installed on the outer side of each of the horizontal moving frames (20). A horizontal threaded rod (21) is installed at the output end of each of the horizontal motors (28). A horizontal threaded sleeve (23) is fitted on the surface of each horizontal threaded rod (21). A flexible water pipe (22) is installed on the outer wall of each horizontal threaded sleeve (23).
7. An agricultural breeding device for monitoring crop growth according to claim 6, characterized in that: The bottom end of each transverse threaded sleeve (23) is equipped with a nozzle (24), and the flexible water pipe (22) extends into the interior of the nozzle (24). The top of each water tank (7) is equipped with a water pump (26), and the water pump (26) is connected to the flexible water pipe (22). The bottom end of each water tank (7) is equipped with a water inlet valve (27).
8. An agricultural breeding device for monitoring crop growth according to claim 1, characterized in that: The top of the connecting frame (5) is equipped with a touch display all-in-one machine (6), and the output end of the touch display all-in-one machine (6) is electrically connected to the input end of the lifting motor (8), the first motor (14), the longitudinal motor (16), the transverse motor (28), the water pump (26), and the camera (25).
Citation Information
Patent Citations
Agricultural device for monitoring crop growth condition
CN221237520U