Germination accelerating device for crop resource seed seedling raising

By combining a flexible temperature-controlled water supply structure with a lifting water and power supply structure, the problem of existing devices being unable to simultaneously spray and soak seeds has been solved, improving space utilization and applicability, and ensuring optimal seed growth under different conditions.

CN121621085APending Publication Date: 2026-03-10ILI KAZAKH AUTONOMOUS PREFECTURE AGRI SCI RES INST
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-12-30
Publication Date
2026-03-10

AI Technical Summary

Technical Problem

Existing seed and seedling cultivation devices for agricultural crops cannot effectively perform seed soaking operations, have low space utilization, and cannot perform spraying and soaking simultaneously, thus limiting their applicability.

Method used

A germination device was designed, comprising a flexible temperature-controlled water supply structure, a stacked seed-carrying structure, and a lifting water and power supply structure. The flexible temperature-controlled water supply structure sprays and soaks the seeds, while wireless temperature and humidity measuring components monitor environmental changes in real time. Combined with the lifting water and power supply structure, the seeds are stacked, improving space utilization.

Benefits of technology

It enables flexible switching between seed spraying and soaking, improving space utilization and applicability, and ensuring optimal seed growth under different environmental conditions.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of seed germination accelerating, in particular to a crop resource seed seedling accelerating device which comprises a box body and further comprises a flexible temperature control water supply structure installed on the box body. The stacking seed loading structure is installed in the box body and comprises a plurality of sets of moisturizing seed loading assemblies, sealing mechanisms are installed on the moisturizing seed loading assemblies, and the moisturizing seed loading assemblies are connected with wireless temperature and humidity measurement assemblies; the lifting water supply and power supply structure is connected with the box body and comprises a first motor, the first motor is connected with a first lead screw, the first lead screw is in threaded connection with a lifting frame, a clamping assembly is installed on the lifting frame, the lifting frame is connected with an inclined spray head, and the lifting frame is connected with an active butt joint elastic assembly. The flexible temperature control water supply structure, the stacking seed carrying structure and the lifting water and power supply structure are matched with one another, so that stacking type seed placement operation is carried out, seed soaking operation and humidity maintaining operation can be selectively carried out, and the applicability is higher.
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Description

Technical Field

[0001] This invention relates to the field of seed germination technology, specifically a germination device for agricultural crop seedling cultivation. Background Technology

[0002] Any measure that can induce bud growth, dormant bud development, and seed germination, or promote these processes to occur earlier, is called germination promotion. Germination promotion is an important measure to ensure that after seeds have absorbed sufficient water, the nutrients in the seeds are rapidly decomposed and transported to supply the growth of the young embryo. In agriculture, seed germination promotion is an important means of ensuring yield. By germinating seeds in a germination device before sowing, the germination rate of seeds is greatly improved, thereby ensuring a bumper harvest of crops.

[0003] Generally, seed germination devices for agricultural crop resources can only spray water on the seeds. However, seed germination sometimes requires soaking the seeds for a period of time. But due to space limitations and leaks in the seed baskets, general devices cannot perform soaking operations, thus limiting their applicability. Furthermore, because space needs to be provided for spraying, the seed baskets often require large gaps, resulting in the baskets not being able to be arranged closely and low space utilization. Summary of the Invention

[0004] The purpose of this invention is to provide a germination device for crop seedling cultivation, so as to solve the problems mentioned in the background art.

[0005] To achieve the above objectives, the present invention provides the following technical solution:

[0006] A seed germination device for agricultural crop resources includes a housing, on which an air valve and a ventilation fan are fixedly connected. A door is installed on the housing, and a control panel is fixedly connected to the door. Multiple sets of support legs are fixedly installed at the bottom of the housing. The device also includes:

[0007] A flexible temperature-controlled water supply structure installed on the enclosure;

[0008] The stacked seeding structure installed inside the box includes multiple sets of moisturizing seeding components stacked in a straight line. The lowest set of moisturizing seeding components is movably connected to the box. A sealing mechanism is installed on the moisturizing seeding component. A wireless temperature and humidity measuring component is movably connected to the moisturizing seeding component. The wireless temperature and humidity measuring component is communicatively connected to the control panel.

[0009] A lifting water supply and power supply structure connected to the housing includes a first motor fixedly connected to the housing, a first lead screw fixedly connected to the output shaft of the first motor, a lifting frame threadedly connected to the first lead screw, a lifting frame slidably connected to the inner wall of the housing, a clamping assembly installed on the lifting frame, an angled nozzle fixedly installed on the lifting frame, the angled nozzle being connected to a flexible temperature-controlled water supply structure, an active docking and tightening assembly installed on the lifting frame, the active docking and tightening assembly being used for docking operations on the sealing mechanism and applying driving torque, and a wireless charging transmitter fixedly connected to the lifting frame.

[0010] As a further improvement of the present invention: the flexible temperature-controlled water supply structure includes a water tank fixedly connected to the housing, a water pump fixedly installed on the water tank, the water inlet of the water pump extending into the water tank, a hose fixedly connected to the water pump and fixedly connected to the inclined nozzle, a heating rod fixedly installed inside the water tank, and a first temperature sensor fixedly connected to the water tank.

[0011] As a further improvement of the present invention: each of the multiple sets of moisturizing seed carrier components includes an outer frame, the outer frame being ferromagnetic, the top of the outer frame having multiple sets of block protrusions, the bottom of the outer frame having a rectangular groove adapted to the shape of the block protrusions, two adjacent sets of outer frames being connected to each other by the block protrusions and the rectangular grooves, wherein the rectangular groove of the bottommost set of outer frames is movably connected to the inner wall of the box, the outer frame having two sets of grooves that cooperate with the clamping components, the outer frame being fixedly connected to a mesh plate, the upper surface of the mesh plate having a moisturizing matrix layer, the moisturizing matrix layer being movably connected to the wireless temperature and humidity measuring components, and a water-guiding and water-storing cavity being provided below the mesh plate, the water-guiding and water-storing cavity being connected to two sets of symmetrically arranged drain outlets.

[0012] As a further improvement of the present invention: the sealing mechanism includes two sets of sealing frames that are slidably connected to the outer frame, and two sets of hexagonal rotating heads are rotatably connected to the outer frame. Each hexagonal rotating head is coaxially fixedly connected to a threaded rod, and the threaded rod is movably connected to the sealing frame.

[0013] As a further improvement of the present invention: the wireless temperature and humidity measuring component includes multiple sets of magnets movably connected to the outer frame, the multiple sets of magnets being fixedly connected to a frame, the frame being fixedly connected to a power storage module, the power storage module being fixedly connected to a wireless charging receiver, the frame being fixedly connected to two sets of humidity sensors, the frame being fixedly connected to a second temperature sensor, both the humidity sensor and the second temperature sensor being movably connected to the moisturizing substrate layer, the frame being fixedly connected to a wireless communication module, the wireless communication module being wirelessly connected to the control panel, and both the humidity sensor and the second temperature sensor being communicatively connected to the wireless communication module.

[0014] As a further improvement of the present invention: the active docking tensioning component includes two sets of second motors symmetrically mounted on the lifting frame. The output shaft of the second motor is fixedly connected to a rectangular sleeve. The rectangular sleeve is slidably connected to a transmission frame. The transmission frame is fixedly connected to a hexagonal sleeve. The transmission frame is rotatably connected to a synchronization frame. The lifting frame is fixedly connected to two sets of first active telescopic rods symmetrically arranged. The first active telescopic rods are fixedly connected to the synchronization frame.

[0015] As a further improvement of the present invention: the clamping assembly includes two sets of active telescopic frames fixedly connected to the lifting frame, and the moving end of the active telescopic frame is fixedly connected to a clamping arm.

[0016] As a further improvement of the present invention: a drainage groove is provided at the bottom of the box body, and the drainage groove is connected to a drain valve that runs through the box body.

[0017] Compared with the prior art, the beneficial effects of the present invention are:

[0018] In use, seeds to be germinated are placed into the respective sets of moisture-retaining seed carriers, which are then stacked inside the box. The box door is then closed, and the first motor is activated on the control panel. The first motor drives the first lead screw to rotate, causing the lead screw to move the lifting frame. The lifting frame slides relative to the box. When it is necessary to spray water to moisturize the seeds in a set of moisture-retaining seed carriers, the clamping component clamps the set of moisture-retaining seed carriers above it. Then, driven by the moving lifting frame, the clamping component raises the clamped moisture-retaining seed carrier to provide space for water spraying. The flexible temperature-controlled water supply structure then supplies water to the angled nozzles, and the position of the water sprayed from the angled nozzles is controlled by controlling the water pressure to fully wet the seeds and moisture-retaining seed carriers. The humidity and temperature of the moisture-retaining seed carriers are measured by a wireless temperature and humidity measuring component. The control panel then receives the data wirelessly transmitted by the wireless temperature and humidity measuring component. According to the system, to monitor environmental changes in the seeds in real time, if soaking is required, the active engagement of the tensioning component drives the sealing mechanism to close the moisture-retaining seed carrier component. Then, the first motor drives the first lead screw to rotate, causing the first lead screw to drive the lifting frame to move. The lifting frame slides relative to the housing, and the clamping component clamps a group of moisture-retaining seed carrier components above the ones to be watered. Then, driven by the moving lifting frame, the clamping component lifts the clamped moisture-retaining seed carrier components. Then, the flexible temperature-controlled water supply structure supplies water to the angled nozzles to raise the water level in the moisture-retaining seed carrier components and soak the seeds. The temperature of the moisture-retaining seed carrier components is measured by a wireless temperature and humidity measuring component. Then, the control panel receives the data wirelessly transmitted by the wireless temperature and humidity measuring component to monitor environmental changes in the seeds in real time. And by actively engaging the tensioning component to drive the sealing mechanism, the sealing mechanism is released from the moisture-retaining seed carrier components to allow drainage. This invention utilizes a flexible temperature-controlled water supply structure, a stacked seed-carrying structure, and a lifting water and power supply structure in combination to perform stacked seed placement operations, thereby improving space utilization. Furthermore, this invention can selectively perform seed soaking operations and humidity maintenance operations, making it more versatile. Attached Figure Description

[0019] Figure 1 This is a three-dimensional structural diagram of the present invention.

[0020] Figure 2 This is a schematic diagram of the structure of the present invention.

[0021] Figure 3 This is a schematic diagram of the internal three-dimensional structure of the present invention.

[0022] Figure 4 This is a three-dimensional structural diagram of the interaction between the lifting water supply and power supply structure and the flexible temperature control water supply structure of the present invention.

[0023] Figure 5 For the present inventionFigure 4 A magnified view of a portion of point A in the middle.

[0024] Figure 6 This is a three-dimensional structural diagram of the interaction between the moisturizing seed carrier component, the sealing mechanism, and the wireless temperature and humidity measuring component of the present invention.

[0025] Figure 7 For the present invention Figure 6 A magnified view of a portion of point B in the middle.

[0026] Figure 8 This is a three-dimensional structural diagram of the wireless temperature and humidity measuring component of the present invention.

[0027] Figure 9 This is a three-dimensional structural diagram of the wireless temperature and humidity measuring component from another perspective of the present invention.

[0028] Figure 10 This is a three-dimensional structural diagram of the moisturizing seed carrier component after the moisturizing matrix layer has been removed according to the present invention.

[0029] Figure 11 This is a three-dimensional structural diagram of the outer frame of the present invention.

[0030] In the diagram: 1. Box body; 2. Air valve; 3. Ventilation fan; 4. Box door; 5. Control panel; 6. Flexible temperature-controlled water supply structure; 7. Stacked seed-carrying structure; 8. Humidifying seed-carrying component; 9. Sealing mechanism; 10. Wireless temperature and humidity measuring component; 11. Lifting water supply and power supply structure; 12. First motor; 13. First lead screw; 14. Lifting frame; 15. Clamping component; 16. Angled nozzle; 17. Active docking and tightening component; 18. Wireless charging transmitter; 19. Water tank; 20. Water pump; 21. Hose; 22. Heating rod; 23. First temperature sensor; 24. Outer frame; 25. Block protrusion; 2 6. Rectangular groove; 27. Groove; 28. Mesh plate; 29. ​​Moisturizing substrate layer; 30. Drain outlet; 31. Sealing frame; 32. Hexagonal rotating head; 33. Threaded rod; 34. Magnet; 35. Frame; 36. Energy storage module; 37. Wireless charging receiver; 38. Humidity sensor; 39. Second temperature sensor; 40. Wireless communication module; 41. Second motor; 42. Rectangular sleeve; 43. Transmission frame; 44. Hexagonal sleeve; 45. Synchronization frame; 46. First active telescopic rod; 47. Drainage trough; 48. Sewage valve; 49. Water guiding and storage chamber; 50. Active telescopic frame; 51. Clamping arm. Detailed Implementation

[0031] The technical solution of the present invention will be further described in detail below with reference to specific embodiments.

[0032] Example 1, see Figures 1-11As shown, a seed germination device for crop resources includes a housing 1, on which an air valve 2 and an exhaust fan 3 are fixedly connected. Opening the air valve 2 and starting the exhaust fan 3 ventilates the housing 1. A door 4 is installed on the housing 1, and a control panel 5 is fixedly connected to the door 4. Multiple sets of support legs are fixedly installed at the bottom of the housing 1. The device also includes:

[0033] Flexible temperature-controlled water supply structure 6 installed on housing 1;

[0034] A stacked seeding structure 7 is installed inside the housing 1. The stacked seeding structure 7 includes multiple sets of moisture-retaining seeding components 8 stacked in a straight line. The moisture-retaining seeding components 8 are used to carry seeds and provide moist environmental conditions for the seeds. The lowest set of moisture-retaining seeding components 8 is movably connected to the housing 1. A sealing mechanism 9 is installed on the moisture-retaining seeding components 8. A wireless temperature and humidity measuring component 10 is movably connected to the moisture-retaining seeding components 8. The wireless temperature and humidity measuring component 10 is communicatively connected to the control panel 5.

[0035] A lifting water supply and power supply structure 11 connected to the housing 1 includes a first motor 12 fixedly connected to the housing 1. The output shaft of the first motor 12 is fixedly connected to a first lead screw 13. The first lead screw 13 is threadedly connected to a lifting frame 14. The lifting frame 14 is slidably connected to the inner wall of the housing 1. A clamping assembly 15 is installed on the lifting frame 14. An angled nozzle 16 is fixedly installed on the lifting frame 14. The angled nozzle 16 is connected to a flexible temperature-controlled water supply structure 6. An active docking and tightening assembly 17 is installed on the lifting frame 14. The active docking and tightening assembly 17 is used to dock with the sealing mechanism 9 and apply driving torque. A wireless charging transmitter 18 is fixedly connected to the lifting frame 14.

[0036] In use, the seeds to be germinated are placed into each set of moisturizing seed-carrying components 8, and then the sets of moisturizing seed-carrying components 8 are stacked in the box 1. The box door 4 is then closed, and the first motor 12 is started on the control panel 5. The first motor 12 drives the first lead screw 13 to rotate, which in turn drives the lifting frame 14 to move. The lifting frame 14 slides relative to the box 1. When it is necessary to spray water to moisturize the seeds in a set of moisturizing seed-carrying components 8, the clamping component 15 clamps the set of moisturizing seed-carrying components 8 above the set of moisturizing seed-carrying components 8. The system is held in place, and then, driven by the moving lifting frame 14, the clamping component 15 lifts the clamped moisture-retaining seed carrier component 8 to provide space for water spraying. The flexible temperature-controlled water supply structure 6 then supplies water to the angled nozzles 16, and controls the position of the water sprayed from the angled nozzles 16 by controlling the water pressure to fully wet the seeds and the moisture-retaining seed carrier component 8. The wireless temperature and humidity measuring component 10 measures the humidity and temperature of the moisture-retaining seed carrier component 8. The control panel 5 then receives the data wirelessly transmitted by the wireless temperature and humidity measuring component 10 to monitor the seeds in real time. If environmental changes necessitate seed soaking, the active engagement tensioning component 17 drives the sealing mechanism 9 to seal the moisture-retaining seed-carrying component 8. Then, the first motor 12 drives the first lead screw 13 to rotate, causing the lead screw 13 to move the lifting frame 14. The lifting frame 14 slides relative to the housing 1, and the clamping component 15 clamps a group of moisture-retaining seed-carrying components 8 above the ones to be watered. Then, driven by the moving lifting frame 14, the clamping component 15 lifts the clamped moisture-retaining seed-carrying components 8. Finally, the flexible temperature-controlled water supply structure 6 sprays water at an angle. The head 16 supplies water to raise the water level in the moisture-retaining seed carrier component 8 and soak the seeds. By controlling the water supply time, the water level is ensured to be higher than the seeds. The temperature of the moisture-retaining seed carrier component 8 is measured by the wireless temperature and humidity measuring component 10. The control panel 5 then receives data wirelessly transmitted from the wireless temperature and humidity measuring component 10 to monitor environmental changes in the seeds in real time. The sealing mechanism 9 is released by the active docking and loosening component 17 to allow drainage from the moisture-retaining seed carrier component 8. This invention utilizes a flexible temperature-controlled water supply structure 6, a stacked seed carrier structure 7, and a lifting water and power supply structure 11 in a coordinated manner to perform stacked seed placement, improving space utilization. Furthermore, this invention can selectively perform seed soaking and humidity maintenance operations, making it more versatile.

[0037] In one embodiment, the flexible temperature-controlled water supply structure 6 includes a water tank 19 fixedly connected to the housing 1. A water pump 20 is fixedly installed on the water tank 19, with its inlet extending into the water tank 19. The water pump 20 is fixedly connected to a hose 21 fixedly connected to an angled nozzle 16. A heating rod 22 is fixedly installed inside the water tank 19, and a first temperature sensor 23 is fixedly connected to the water tank 19. The water pump 20 draws water from the water tank 19 and supplies it to the angled nozzle 16 through the hose 21. The heating rod 22 heats the water in the water tank 19, and the first temperature sensor 23 measures the temperature of the water tank 19 in real time. By controlling the water pressure output by the water pump 20, the landing point of the water jet from the angled nozzle 16 is controlled.

[0038] In one embodiment, each of the multiple sets of moisturizing seed carrier components 8 includes an outer frame 24. The outer frame 24 is ferromagnetic, and the top of the outer frame 24 is provided with multiple sets of block-shaped protrusions 25. The bottom of the outer frame 24 is provided with a rectangular groove 26 that matches the shape of the block-shaped protrusions 25. Adjacent sets of outer frames 24 are connected to each other by the block-shaped protrusions 25 and the rectangular groove 26. The rectangular groove 26 of the lowermost set of outer frames 24 is movably connected to the inner wall of the housing 1. The outer frame 24 is provided with a clamping component 15 that cooperates with it. Two sets of grooves 27 are provided. The outer frame 24 is fixedly connected to a mesh plate 28. A moisturizing matrix layer 29 is provided on the upper surface of the mesh plate 28. The moisturizing matrix layer 29 can be a soilless matrix or a mixed medium. The moisturizing matrix layer 29 is movably connected to the wireless temperature and humidity measuring component 10. A water guiding and storage cavity 49 is provided below the mesh plate 28 and is opened in the outer frame 24. The water guiding and storage cavity 49 has a hollow structure. The water guiding and storage cavity 49 is connected to two sets of symmetrically arranged drain outlets 30, which are respectively located on both sides of the outer frame 24. The mesh plate 28 is used to filter water and intercept seeds. When the drain outlet 30 is not blocked, the water sprayed on the seeds flows to the moisturizing substrate layer 29. Then the water passes through the moisturizing substrate layer 29 and the mesh plate 28 and finally flows out of the drain outlet 30. If the drain outlet 30 is closed by the sealing mechanism 9, the water cannot flow out of the drain outlet 30. Then the water level continues to rise and submerges the seeds placed on the moisturizing substrate layer 29. The block protrusion 25 is connected to the rectangular groove 26 to maintain the stability of the stacked moisturizing seed carrier components 8. The groove 27 provides space for the clamping component 15.

[0039] In one embodiment, the sealing mechanism 9 includes two sets of sealing frames 31 slidably connected to the outer frame 24. The outer frame 24 is rotatably connected to two sets of hexagonal rotating heads 32. Each hexagonal rotating head 32 is coaxially fixedly connected to a threaded rod 33, which is movably connected to the sealing frame 31. The sealing mechanism 9 drives the hexagonal rotating heads 32 to rotate, causing the threaded rod 33 to rotate. The rotating threaded rod 33 drives the sealing frame 31 to move relative to the outer frame 24, and the sealing frame 31 blocks the drain outlet 30, preventing water from flowing directly out of the drain outlet 30.

[0040] In one embodiment, the wireless temperature and humidity measuring component 10 includes multiple sets of magnets 34 movably connected to the outer frame 24. The multiple sets of magnets 34 are fixedly connected to a frame 35. The frame 35 is fixedly connected to a power storage module 36. The power storage module 36 is fixedly connected to a wireless charging receiver 37. The frame 35 is fixedly connected to two sets of humidity sensors 38. The frame 35 is fixedly connected to a second temperature sensor 39. Both the humidity sensor 38 and the second temperature sensor 39 are movably connected to the moisturizing substrate layer 29. The frame 35 is fixedly connected to a wireless communication module 40. The wireless communication module 40 is wirelessly connected to the control panel 5. Both the humidity sensor 38 and the second temperature sensor 39 are communicatively connected to the wireless communication module 40. The outer frame 24 is magnetically attracted by magnet 34 to prevent the wireless temperature and humidity measuring component 10 from detaching from the outer frame under the impact of water flow. The humidity sensor 38 and the second temperature sensor 39 are used to measure the humidity and temperature of the moisturizing matrix layer 29, respectively. The wireless charging receiver 37 is used to receive the electrical energy transmitted by the wireless charging transmitter 18 and store the electrical energy in the energy storage module 36 to power the humidity sensor 38, the second temperature sensor 39, and the wireless communication module 40.

[0041] In one embodiment, the active docking and tightening assembly 17 includes two sets of second motors 41 symmetrically mounted on the lifting frame 14. The output shafts of the second motors 41 are fixedly connected to rectangular sleeves 42. The rectangular sleeves 42 are slidably connected to a transmission frame 43. The transmission frame 43 is fixedly connected to a hexagonal sleeve 44. The transmission frame 43 is rotatably connected to a synchronization frame 45. The lifting frame 14 is fixedly connected to two sets of symmetrically arranged first active telescopic rods 46, which are fixedly connected to the synchronization frame 45. The first active telescopic rods 46 drive the synchronization frame 45 to move, which in turn drives the transmission frame 43 to move, causing the hexagonal sleeve 44 to dock with the hexagonal rotating head 32. Then, the second motors 41 drive the rectangular sleeves 42 to rotate, which in turn drives the transmission frame 43 to rotate, causing the hexagonal sleeve 44 to drive the hexagonal rotating head 32 to rotate, thereby adjusting the position of the sealing frame 31.

[0042] In one embodiment, the clamping assembly 15 includes two sets of actively telescopic frames 50 fixedly connected to the lifting frame 14, and clamping arms 51 are fixedly connected to the moving ends of the actively telescopic frames 50. The clamping arms 51 are used to clamp the groove 27 under the drive of the actively telescopic frames 50.

[0043] Example 2, based on Example 1, see [link / reference] Figures 1-3 The bottom of the housing 1 is provided with a drainage trough 47, which is connected to a drain valve 48 that runs through the housing 1. By opening the drain valve 48, the sewage collected in the drainage trough 47 is discharged from the housing 1.

[0044] Although embodiments of the invention have been shown and described, those skilled in the art will understand that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the invention.

Claims

1. A kind of crop resource seed seedling germination device, including box, the box is fixedly connected with air valve and air exchange fan, box is equipped with box door, the box door is fixedly connected with control panel, the bottom of the box is fixedly installed with multiple groups of supporting leg, it is characterized in that, Also include: Flexible temperature control water supply structure mounted on the box; Stacked seed loading structure mounted in the box, the stacked seed loading structure includes a plurality of groups of moisture retaining seed loading assemblies arranged in a straight line, the lowermost group of moisture retaining seed loading assemblies in the plurality of groups of moisture retaining seed loading assemblies is movably connected with the box, a sealing mechanism is mounted on the moisture retaining seed loading assembly, a wireless temperature and humidity measuring assembly is movably connected with the moisture retaining seed loading assembly, and the wireless temperature and humidity measuring assembly is in communication connection with the control panel; Lifting water supply and power supply structure connected with the box, the lifting water supply and power supply structure includes a first motor fixedly connected with the box, a first screw rod fixedly connected with the output shaft of the first motor, a lifting frame threadedly connected with the first screw rod, the lifting frame being in sliding connection with the inner wall of the box, a clamping assembly mounted on the lifting frame, an inclined spray head fixedly mounted on the lifting frame, the inclined spray head being connected with the flexible temperature control water supply structure, a main active docking tension assembly mounted on the lifting frame, the main active docking tension assembly being used for docking operation and applying driving torque to the sealing mechanism, and a wireless charging transmitter fixedly connected with the lifting frame.

2. The seed germination device for crop resource seedling raising according to claim 1, characterized in that, The flexible temperature control water supply structure includes a water tank fixedly connected with the box, a water pump fixedly mounted on the water tank, a water inlet end of the water pump extending into the water tank, a heating rod fixedly mounted in the water tank, and a first temperature sensor fixedly connected with the water tank.

3. The seed germination device for crop resource seedling raising according to claim 1, characterized in that, Each of the plurality of moisture retaining seed loading assemblies includes an outer frame body having ferromagnetic properties, a plurality of block-shaped protrusions arranged on the top of the outer frame body, a rectangular groove arranged on the bottom of the outer frame body and matched with the shape of the block-shaped protrusions, and two recesses arranged on the outer frame body and matched with the clamping assembly, the outer frame body being movably connected with the inner wall of the box through the rectangular groove of the lowermost outer frame body, the outer frame body being fixedly connected with a mesh plate, a moisture retaining substrate layer arranged on the upper end surface of the mesh plate, the moisture retaining substrate layer being movably connected with the wireless temperature and humidity measuring assembly, a water guide and storage cavity arranged below the mesh plate, and two symmetrically arranged drainage openings in communication with the water guide and storage cavity.

4. The seed germination device for crop resource seedling raising according to claim 3, characterized in that, The sealing mechanism includes two sealing frames in sliding connection with the outer frame body, and two hexagonal rotating heads rotatably connected with the outer frame body and coaxially fixedly connected with threaded rods, the threaded rods being movably connected with the sealing frames.

5. The seed germination device for crop resource seedling raising according to claim 3, characterized in that, The wireless temperature and humidity measuring assembly includes a plurality of magnets movably connected with the outer frame body, a group of frame bodies fixedly connected with the plurality of magnets, a power storage module fixedly connected with the frame bodies, a wireless charging receiver fixedly connected with the power storage module, two humidity sensors fixedly connected with the frame bodies, a second temperature sensor fixedly connected with the frame bodies, the humidity sensors and the second temperature sensor being movably connected with the moisture retaining substrate layer, a wireless communication module fixedly connected with the frame bodies, the wireless communication module being in wireless communication connection with the control panel, and the humidity sensors and the second temperature sensor being in communication connection with the wireless communication module.

6. The seed germination device for crop resource seedling raising according to claim 1, characterized in that, The active docking tension assembly comprises two groups of second motors symmetrically mounted on the lifting frame, the output shaft of the second motor is fixedly connected with a rectangular sleeve, the rectangular sleeve is slidably connected with a transmission frame, the transmission frame is fixedly connected with a hexagonal sleeve, the transmission frame is rotatably connected with a synchronous frame, the lifting frame is fixedly connected with two groups of first active telescopic rods symmetrically arranged, and the first active telescopic rods are fixedly connected with the synchronous frame.

7. The seed germination device for crop resource seedling raising according to claim 1, characterized in that, The clamping assembly comprises two groups of active telescopic frames fixedly connected with the lifting frame, and the moving end of the active telescopic frame is fixedly connected with a clamping arm.

8. The seed germination device for crop resource seedling raising according to claim 1, characterized in that, A drainage groove is arranged in the bottom of the box body, and a drain valve penetrating through the box body is connected with the drainage groove.