Organic fertilizer processing system

By combining components such as screw, baffle, rotating shaft, spiral blade, and worm gear, the problem of uniform mixing in the organic fertilizer processing system is solved, achieving uniform mixing and crushing of organic fertilizer, and improving the purity and mixing efficiency of organic fertilizer.

CN121846944APending Publication Date: 2026-04-14刘芳
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
刘芳
Filing Date
2023-10-27
Publication Date
2026-04-14

AI Technical Summary

Technical Problem

Existing organic fertilizer processing systems cannot achieve uniform mixing, resulting in uneven processing of organic fertilizer.

Method used

It adopts a combination design of components such as screw, baffle, rotating shaft, spiral blade, worm gear and worm wheel, and realizes uniform mixing and crushing of organic fertilizer through motor drive. Combined with the screening function of double-layer screen plate and follow-up screen plate, it uses vibrating rod to prevent adhesion, flipper for flipping and feeder for feeding.

Benefits of technology

It achieves uniform mixing and crushing of organic fertilizer, improves the purity of organic fertilizer, ensures the uniformity and efficiency of mixing effect, prevents the screening of unmixed materials, and simplifies the operation process.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the field of fertilizer processing equipment, in particular to an organic fertilizer processing system. Comprising a screw rod, the screw rod is rotationally connected with a blocking piece, the blocking piece is slidably connected with a rotating shaft, the rotating shaft is slidably connected with a spiral piece, the spiral piece is fixedly connected to the blocking piece, and the screw rod is in threaded connection in the rotating shaft. Each rotating shaft is fixedly connected with a limiting shaft, the other end of each rotating shaft is fixedly connected with a worm wheel, each worm wheel is in threaded connection with a worm, the two worms are fixedly connected with a box body, the box body is fixedly connected with a driving motor, and the two ends of the driving motor are each slidably connected with a screw rod. An adapter rod is rotationally connected between the two worms, the two ends of the adapter rod are each slidably connected with a pushing block, and a connecting rod is fixedly connected between the two pushing blocks; the uniform stirring capability of the organic fertilizer processing system can be enhanced.
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Description

Technical Field

[0001] This invention relates to the field of fertilizer processing equipment, and more specifically to an organic fertilizer processing system. Background Technology

[0002] An organic fertilizer processing system is a system used to process carbon-containing materials derived from plants or animals, applied to the soil to provide plant nutrition as its main function. It is the widespread use of organic fertilizers that has enabled our agriculture to gradually shift towards pollution-free agriculture, and has allowed more organic foods, fruits, and vegetables to reach our tables. Under the existing technology, the organic fertilizer processing system has the problem of uneven mixing. Therefore, in order to solve the above problem, this application proposes an organic fertilizer processing system that can enhance the uniform mixing ability of the organic fertilizer processing system. Summary of the Invention

[0003] To overcome the shortcomings of the prior art, the present invention provides an organic fertilizer processing system that can enhance the uniform mixing ability of the organic fertilizer processing system.

[0004] The technical solution adopted by this invention to solve its technical problem is:

[0005] An organic fertilizer processing system includes a screw, a baffle plate rotatably connected to the screw, a rotating shaft slidably connected to the baffle plate, a spiral blade slidably connected to the rotating shaft, the spiral blade being fixedly connected to the baffle plate, and the screw threadedly connected to the rotating shaft.

[0006] Each of the aforementioned rotating shafts is fixedly connected to a limiting shaft, and the other end of each rotating shaft is fixedly connected to a worm gear. Each worm gear is threadedly connected to a worm, and a housing is fixedly connected to the two worms. A drive motor is fixedly connected to the housing, and a screw is slidably connected to both ends of the drive motor.

[0007] A transition rod is rotatably connected between the two worm gears, and a push block is slidably connected to both ends of the transition rod. A connecting rod is fixed between the two push blocks. Attached Figure Description

[0008] The present invention will now be described in further detail with reference to the accompanying drawings and specific implementation methods.

[0009] Figure 1 This is a schematic diagram of the organic fertilizer processing system in this invention;

[0010] Figure 2 This is a schematic diagram of the spiral blade in this invention;

[0011] Figure 3 This is a schematic diagram of the worm gear structure in this invention;

[0012] Figure 4 This is a schematic diagram of the connecting rod in this invention;

[0013] Figure 5 This is a schematic diagram of the double-layer sieve plate in this invention;

[0014] Figure 6 This is a schematic diagram of the knob structure in this invention;

[0015] Figure 7 This is a schematic diagram of the structure of the follower sieve plate in this invention;

[0016] Figure 8 This is a schematic diagram of the structure of the vibration rod in this invention;

[0017] Figure 9 This is a schematic diagram of the feeder in this invention;

[0018] Figure 10 This is a schematic diagram of the flipper in this invention. Detailed Implementation

[0019] Through observation Figures 1 to 10 An exemplary working process for achieving uniform mixing, as shown in the figure, is as follows:

[0020] An organic fertilizer processing system includes a screw 24, two baffles 27 rotatably connected to the screw 24, each shaft 26 slidably connected to a baffle 27, each spiral blade 25 slidably connected to a shaft 26, and a spiral blade 25 fixedly connected to each baffle 27. Each screw (24) is threaded into a shaft (26). After the organic fertilizer processing system is installed and put into use, the motor 06 is started to rotate, which drives the screw 24 slidably connected to it to move. As the screw 24 moves, it pushes the baffles 27 rotatably connected to it to move. The baffle 27 moves within the rotating shaft 26. As the baffle 27 moves, the threaded baffle 25 fixed to it also moves. Simultaneously, when the screw 24 moves, the rotating shaft 26 threaded to it will rotate. As the rotating shaft 26 rotates, the baffle 27 slidably connected within it will rotate. When the baffle 27 rotates, the spiral baffle 25 fixed to it will rotate. At this time, the spiral baffle 25 will rotate and move on the rotating shaft 26. When organic fertilizer is injected into the box 04, with the start of the drive motor 06, the spiral baffle 25 will stir the injected organic fertilizer, thereby achieving a uniform stirring effect.

[0021] Through observation Figures 1 to 10 An exemplary working process for autonomous power generation, as shown in the diagram, is as follows:

[0022] Each limiting shaft 05 is fixedly connected to one of the rotating shafts 26, each worm gear 08 is fixedly connected to the other end of the rotating shaft 26, and each worm 09 is threadedly connected to one of the worm gears 08. Two housings 04 are respectively fixedly connected to the two worm gears 09, and a drive motor 06 is fixedly connected to the housing 04. Two screws 24 are respectively slidably connected to both ends of the drive motor 06. After the organic fertilizer processing system is installed and put into use, the drive motor 06 is started, which drives the screws 24 slidably connected at both ends to move. At the same time, it drives the rotating shaft 26 rotatably connected to the screws 24 to rotate, causing the worm gear 08 fixedly connected to it to rotate. When the worm gear 08 rotates, the screws 09 threadedly connected to it will rotate on the housing 04, providing power for the subsequent working device of the organic fertilizer processing system. As the organic fertilizer is injected, the two spiral blades 25 work to stir the organic fertilizer and crush the impurities mixed in with the organic fertilizer, thereby achieving the effect of self-powered operation.

[0023] Through observation Figures 1 to 10 An exemplary working process for obtaining the connection based on the content shown in the figure is as follows:

[0024] A connecting rod 14 is rotatably connected between the two worm gears 09, and two push blocks 15 are slidably connected to both ends of the connecting rod 14. A connecting rod 16 is fixed between the two push blocks 15. After the organic fertilizer processing system is installed and put into use, when the drive motor 06 is started, it drives the rotating shaft 26 to rotate, which in turn drives the worm wheel 08 fixed on it to rotate, which in turn drives the screw 09 meshed on the worm wheel 08 to rotate. When the worm gear 09 rotates, it drives the connecting rod 14 fixed on it to rotate. When the connecting rod 14 rotates at the upper and lower ends, the two ends of the connecting rod 14 slide within the two push blocks 15. When the connecting rod 14 rotates at the left and right ends of the worm gear 09, the connecting rod 14 will push the slidably connected push block 15 to rotate. When the push block 15 rotates, the connecting rod 16 fixed on it will move, so that the connecting rod 16 can achieve reciprocating motion, thereby achieving the connection effect.

[0025] Through observation Figures 1 to 10 An exemplary workflow for filtering based on the content shown in the figure is as follows:

[0026] The double-layer sieve plate 17 is rotatably connected to the connecting rod 16, and the double-layer sieve plate 17 is slidably connected inside the housing 04. After the organic fertilizer processing system is installed and put into use, the drive motor 06 is started, which drives the worm gear 09 to rotate. When the worm gear 09 rotates, it will drive the connected connecting rod 16 to reciprocate, thereby driving the double-layer sieve plate 17 rotatably connected to the connecting rod 16 to reciprocate within the housing 04. When the follower sieve plate 18 is not locked with the double-layer sieve plate 17, the follower sieve plate 17 will be in a relative sliding state with the double-layer sieve plate 17. As the double-layer sieve plate 17 reciprocates, the sieve holes on the double-layer sieve plate 17 will reciprocate and communicate with the sieve holes on the follower sieve plate 18, so that the added organic fertilizer is continuously screened down, and at the same time, impurities that are not crushed by the spiral blade 25 can be screened out, making the organic fertilizer processing purer, thereby achieving the screening effect.

[0027] Through observation Figures 1 to 10 An exemplary working process for closure, based on the content shown in the figure, is as follows:

[0028] The follower screen plate 18 is slidably connected inside the double-layer screen plate 17, and the knob 19 is rotatably connected to one end of the double-layer screen plate 17. After the organic fertilizer processing system is installed and put into use, when the connecting rod 16 reciprocates, the double-layer screen plate 17 rotatably connected to it also reciprocates. The knob 19 is rotatably connected to the double-layer screen plate 17, and the follower screen plate 18 is slidably connected inside the double-layer screen plate 17. When the double-layer screen plate 17 and the follower screen plate 18 are locked, the double-layer screen plate 17 and the follower screen plate 18 form a whole, so that the through hole on the follower screen plate 18 is not connected to the through hole of the double-layer screen plate 17, which can isolate the inside of the box 04 from the external environment and prevent the organic fertilizer that has just been injected into the box 04 from being screened out without being stirred, thereby achieving a sealing effect.

[0029] Through observation Figures 1 to 10 The exemplary working process of the card lock can be derived from the content shown in the figure:

[0030] The clamping plate 21 is fixed to the following screen plate 18, the clamping post 20 is slidably connected to the clamping plate 21, and the knob 19 is fixed to the clamping post 20. When the organic fertilizer processing system is installed and put into use, when the drive motor 06 is started, it will drive the screw 09 to rotate, thereby driving the connected connecting rod 16 to reciprocate, and then driving the double-layer screen plate 17 rotatably connected to it to reciprocate. When the spiral blade 25 has finished stirring, and the processed organic fertilizer needs to be sent out, the knob 19 connected to the double-layer screen plate 17 is rotated. When the knob 19 is rotated, the clamping post 20 fixed at its lower end will separate from the clamping plate 21 slidably connected to it, separating the double-layer screen plate 17 from the following screen plate 18, so that the double-layer screen plate 17 and the following screen plate 18 can slide relative to each other. When the organic fertilizer processing system is in the stirring state, the knob 19 needs to be set to the locking state to achieve the locking effect.

[0031] Through observation Figures 1 to 10 An exemplary working process for obtaining vibration based on the content shown in the figure is as follows:

[0032] The vibrating rod 22 is rotatably connected to the housing 04, and the adapter shaft 23 is connected to the vibrating rod 22 via a belt. One of the worm gears 09 is connected to the adapter shaft 23 via a belt. When the organic fertilizer processing system is installed and put into use, when the drive motor 06 is started, it will drive the screw 09 to rotate. As the screw 09 rotates, it will drive the adapter shaft 23 connected to it via a belt to rotate. When the adapter shaft 23 rotates, it will drive the vibrating rod 22 connected to it via a belt to rotate, so that the protrusion of the vibrating rod 22 makes intermittent contact with the double-layer screen plate 17, so that the protrusion circulates and touches the double-layer screen plate 17, thereby achieving the vibration effect, so that the organic fertilizer adhering to the double-layer screen plate 17 can be detached, preventing the subsequent output of organic fertilizer from being hindered.

[0033] Through observation Figures 1 to 10 An exemplary feeding process can be derived from the content shown in the figure:

[0034] The feeding box 01 is fixed to the box body 04. The conveyor belt 03 is rotatably connected to the feeding box 01. One of the worm gears 09 is connected to the conveyor belt 03 via a belt. The gear 10 is meshed with the conveyor belt 03. The feeder 02 is meshed with the other end of the gear 10. When the organic fertilizer processing system is installed and put into use, when the drive motor 06 is started, the screw 09 connected to it rotates, which in turn drives the conveyor belt 03 connected to it via a belt to rotate. When the conveyor belt 03 rotates, it will drive the gear 10 meshed with it to rotate, which will cause the feeder 02 meshed with it at the other end to rotate. When the organic fertilizer is injected into the feeding box 01, the conveyor belt 03 rotates, which will carry the organic fertilizer to the front of the feeder 02. At the same time, the feeder 02 will rotate, so that the organic fertilizer enters the box body 04, thereby achieving the feeding effect.

[0035] Through observation Figures 1 to 10 An exemplary working process for flipping, based on the content shown in the figure, is as follows:

[0036] The flipper 12 is slidably connected inside the housing 04, the internal threaded sleeve 13 is rotatably connected inside the flipper 12, and the threaded rod 11 is threadedly connected inside the internal threaded sleeve 13. One end of the threaded rod 11 is connected inside the rotating motor 06. When the organic fertilizer processing system is installed and put into use, when the organic fertilizer entering it needs to be flipped, the driving motor 06 needs to be started to drive the threaded rod 11 connected to it to rotate. As the threaded rod 11 rotates, the internal threaded sleeve 13 connected to it moves. When the internal threaded sleeve 13 moves, the flipper 12 connected to it will move, and then the threaded rod 11 will rotate in the opposite direction, so that the flipper 12 will reciprocate, thereby achieving the flipping effect.

Claims

1. An organic fertilizer processing system, characterized in that: It includes a screw (24), each screw (24) is rotatably connected to a baffle (27), each baffle (27) is slidably connected to a rotating shaft (26), each rotating shaft (26) is slidably connected to a spiral blade (25), each spiral blade (25) is fixedly connected to a baffle (27), and each screw (24) is threaded into a rotating shaft (26).

2. The organic fertilizer processing system according to claim 1, characterized in that: Each of the aforementioned rotating shafts (26) is fixedly connected to a limiting shaft (05), and each of the other ends of each rotating shaft (26) is fixedly connected to a worm gear (08). Each worm gear (08) is threadedly connected to a worm (09), and a housing (04) is fixedly connected to the two worms (09). A drive motor (06) is fixedly connected to the housing (04), and a screw (24) is slidably connected to both ends of the drive motor (06).

3. The organic fertilizer processing system according to claim 2, characterized in that: A transition rod (14) is rotatably connected between the two worm gears (09), and a push block (15) is slidably connected to both ends of the transition rod (14). A connecting rod (16) is fixed between the two push blocks (15).

4. The organic fertilizer processing system according to claim 3, characterized in that: A double-layer sieve plate (17) is rotatably connected to the connecting rod (16), and the double-layer sieve plate (17) is slidably connected inside the box (04).

5. An organic fertilizer processing system according to claim 4, characterized in that: The double-layer sieve plate (17) is slidably connected to a follower sieve plate (18), and a knob (19) is rotatably connected to one end of the double-layer sieve plate (17).

6. The organic fertilizer processing system according to claim 5, characterized in that: A clamping plate (21) is fixedly connected to the follower screen (18), and a clamping post (20) is slidably connected to the clamping plate (21). A knob (19) is fixedly connected to the clamping post (20).

7. An organic fertilizer processing system according to claim 4, characterized in that: A vibration rod (22) is rotatably connected to the housing (04). The vibration rod (22) is connected to a transition shaft (23) via a belt. The transition shaft (23) is connected to one of the worm gears (09) via a belt.

8. An organic fertilizer processing system according to claim 7, characterized in that: A material injection box (01) is fixedly connected to the box body (04). A conveyor belt (03) is rotatably connected to the material injection box (01). The conveyor belt (03) is connected to one of the worm gears (09) via a belt. A gear (10) is meshed on the conveyor belt (03). A feeder (02) is meshed on the other end of the gear (10).

9. An organic fertilizer processing system according to claim 8, characterized in that: The housing (04) is slidably connected to a flipper (12), and the flipper (12) is rotatably connected to an internal threaded sleeve (13). The internal threaded sleeve (13) is internally threaded to a threaded rod (11), and one end of the threaded rod (11) is connected to a rotating motor (06).

10. An organic fertilizer processing system according to claim 9, characterized in that: The sieve holes of the double-layer sieve plate (17) are in misaligned contact with the sieve holes of the follow-up sieve plate (18).