Spiral crystal choline scattering device

The use of a spiral-type choline crystal dispersing device for dispersing, homogenizing, and pulverizing has solved the problem of long processing time in existing devices, enabling rapid crushing and uniform feeding of block crystals, thus improving the production efficiency and practicality of the equipment.

CN224271276UActive Publication Date: 2026-05-26SHANDONG AOKETE FEED ADDITIVES CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
SHANDONG AOKETE FEED ADDITIVES CO LTD
Filing Date
2025-04-25
Publication Date
2026-05-26

AI Technical Summary

Technical Problem

Existing choline chloride powder production equipment has long processing time and slow material storage rate, which affects the efficiency of equipment use.

Method used

The crystal choline spiral dispersing device includes a dispersing, homogenizing and crushing device. The dispersing device breaks up the blocky crystals, the homogenizing device evenly feeds out the crystals, and the crushing device crushes them, thereby improving production efficiency.

Benefits of technology

This improved the production efficiency and practicality of the equipment, enabling rapid crushing and uniform feeding of block crystals, and enhancing the processing efficiency of the equipment.

✦ Generated by Eureka AI based on patent content.

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    Figure CN224271276U_ABST
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Abstract

The utility model relates to the technical field of crystal choline processing, in particular to a spiral crystal choline scattering device, which is characterized in that blocky crystal raw materials are crushed and scattered through a scattering device, the scattered crystal raw materials are uniformly sent to a crushing device through a refining device, and scattered crystals are crushed through the crushing device, so that the crystal choline is obtained. The production efficiency of the device and the practicability of the device are improved; comprising a scattering device, a material uniformizing device and a smashing device, the material uniformizing device is installed on the scattering device, and the smashing device is installed on the scattering device.
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Description

Technical Field

[0001] This utility model relates to the technical field of crystal choline processing, and in particular to a spiral dispersing device for crystal choline. Background Technology

[0002] Choline chloride, also known as choline chloride or 2-hydroxyethyltrimethylammonium chloride, should be stored at a temperature not lower than -12 degrees Celsius to avoid crystallization and blockage of pipes. It is also a plant photosynthesis promoter with a significant effect on increasing yield. It can be used to increase the yield of corn, sugarcane, sweet potato, potato, radish, onion, cotton, tobacco, vegetables, grapes, mangoes, etc., with stable effects under different climatic and ecological conditions. For root crops and other underground crops, applying it 2 to 3 times per acre during the early swelling stage yields significant increases. It can also regulate the growth of ornamental plants such as azaleas, poinsettias, geraniums, and hibiscus, and help prevent lodging in wheat, barley, and oats. Choline chloride powder should be stored in silos using dehumidification equipment to prevent moisture absorption.

[0003] The existing Chinese utility model patent with application number CN201721367467.5 relates to a device for producing choline chloride powder, including a machine body, a box, a base plate, a motor, a pulley, a producing rod, and a fixing body, which can effectively improve the quality of choline chloride powder, thereby effectively improving the effect of using choline chloride powder.

[0004] However, in actual use, the above-mentioned device requires a long processing time and has a slow material storage rate, which affects the efficiency of the equipment. Utility Model Content

[0005] To solve the above-mentioned technical problems, this utility model provides a spiral-type crystalline choline dispersing device that uses a dispersing device to crush and disperse lumpy crystalline raw materials, a uniform feeding device to evenly feed the dispersed crystalline raw materials to a crushing device, and a crushing device to crush the dispersed crystals, thereby completing the equipment processing and improving the production efficiency and practicality of the device.

[0006] This utility model discloses a spiral-type crystalline choline dispersing device, comprising a dispersing device, a uniform feeding device, and a crushing device. The uniform feeding device is installed on the dispersing device, and the crushing device is installed on the dispersing device. The dispersing device crushes and disperses the lumpy crystalline raw material, and the uniform feeding device evenly feeds the dispersed crystalline raw material to the crushing device. The crushing device crushes the dispersed crystals, thereby completing the equipment processing and improving the production efficiency and practicality of the device.

[0007] Preferably, the dispersing device includes a feeding hopper, a processing bin, a crushing bin, a support frame, a crushing roller, and crushing protrusions. The top opening of the feeding hopper is larger than the bottom opening. The processing bin is connected to the bottom of the feeding hopper, and the crushing bin is connected to the bottom of the processing bin. A support frame is installed at the bottom of the crushing bin. A crushing roller is horizontally installed in the upper part of the feeding hopper. A drive motor is installed on the side of the feeding hopper and connected to the crushing roller. Multiple sets of crushing protrusions are provided on the side of the crushing roller. The crystal blocks are placed inside the feeding hopper to facilitate the addition of materials. The multiple sets of crushing protrusions on the rotating crushing roller quickly crush the crystal blocks, improving the practicality of the device.

[0008] Preferably, the material leveling device includes bidirectional spiral blades, an upper guide plate, and a drive motor. The bidirectional spiral blades are horizontally installed in the lower part of the feeding hopper, and the drive motor is installed on the side of the feeding hopper. The output end of the drive motor is connected to the bidirectional spiral blades. A set of upper guide plates is set at the front and back of the middle of the crushing chamber. The upper guide plates guide and transport the material broken up by the dispersing device, so that the broken material falls completely onto the bidirectional spiral blades. The drive motor is turned on to transmit power to the bidirectional spiral blades, causing the bidirectional spiral blades to rotate. The rotating bidirectional spiral blades transport the falling crystal fragments evenly to both sides, so that the material falls evenly onto all parts of the crushing device, improving the practicality of the device.

[0009] Preferably, the crushing device includes a dual-output reducer, a motor, crushing rollers, and a lower guide plate. Two sets of crushing rollers are horizontally installed inside the crushing chamber. A set of lower guide plates is respectively installed on the left and right sides of the bottom of the processing chamber. A dual-output reducer is installed on the side of the feeding hopper. A motor is installed on the dual-output reducer. The two output ends of the dual-output reducer are respectively connected to the two sets of crushing rollers. The material falling from the bidirectional spiral blades is guided secondary by the lower guide plate, so that the material falls evenly between the two sets of crushing rollers. The motor is turned on and transmits power to the two sets of crushing rollers through the dual-output reducer, driving the two sets of crushing rollers to rotate. The rotating two sets of crushing rollers work together to compress the crystal fragments into powder, which improves the practicality of the device.

[0010] Preferably, the device also includes a rotating shaft seat, a receiving plate, a rectangular hole, and support springs. A horizontal discharge hole is provided at the lower rear end face of the lower guide plate. A set of receiving plates is installed on the rear end face of the bottom inner side of the lower guide plate through the rotating shaft seat. A rectangular hole is provided on the lower end face of the lower guide plate. Multiple sets of support springs are installed on the lower end face of the receiving plate. The lower part of the support springs is connected to the upper end face of the support frame. The front part of the receiving plate is tilted upward at a certain angle when stationary. The receiving plate receives the falling material, and the multiple sets of support springs cause the receiving plate to vibrate when receiving the material, which facilitates the discharge of the material and improves the practicality of the device.

[0011] Preferably, it also includes a vibrating motor, which is installed on the lower end face of the receiving plate; by turning on the vibrating motor, power is transmitted to the receiving plate to drive the receiving plate to vibrate, thereby increasing the vibration amplitude of the receiving plate itself, accelerating the falling rate of the material on the receiving plate, and improving the practicality of the device.

[0012] Preferably, it also includes protective edges, with protective edges provided on the left, right and front edges of the upper end face of the receiving plate; the protective edges limit and intercept the material falling onto the receiving plate, preventing the material from falling from the edge of the receiving plate to the bottom of the crushing chamber, thus affecting the normal discharge rate of the material and improving the practicality of the device.

[0013] Compared with the prior art, the beneficial effects of this utility model are as follows: the lumpy crystalline raw material is crushed and dispersed by the dispersing device, and the dispersed crystalline raw material is evenly fed to the crushing device by the uniform feeding device, and the dispersed crystal is crushed by the crushing device, thereby completing the equipment processing, improving the production efficiency and practicality of the device. Attached Figure Description

[0014] Figure 1 This is a schematic diagram of the isometric structure of this utility model;

[0015] Figure 2 This is a first cross-sectional structural diagram of the present invention;

[0016] Figure 3 This is a schematic diagram of the second cross-sectional structure of this utility model;

[0017] Figure 4 This is a schematic diagram of the third cross-sectional structure of this utility model;

[0018] The following are labels in the attached diagram: 1. Feed hopper; 2. Processing bin; 3. Crushing bin; 4. Support frame; 5. Crushing roller; 6. Crushing protrusion; 7. Bidirectional spiral blade; 8. Upper guide plate; 9. Drive motor; 10. Dual output reducer; 11. Motor; 12. Crushing roller; 13. Lower guide plate; 14. Rotary shaft seat; 15. Support plate; 16. Rectangular hole; 17. Support spring; 18. Vibration motor; 19. Protective edge. Detailed Implementation

[0019] To facilitate understanding of this utility model, a more complete description will be given below with reference to the accompanying drawings. This utility model can be implemented in many different forms and is not limited to the embodiments described herein. Rather, these embodiments are provided to make the disclosure of this utility model more thorough and complete.

[0020] Example 1

[0021] Figure 1 , Figure 2 , Figure 3, Figure 4 As shown, the material leveling device is installed on the material dispersing device, and the crushing device is installed on the material dispersing device;

[0022] First, the crystal blocks are placed inside the feeding hopper 1. The multiple sets of crushing protrusions 6 on the rotating crushing roller 5 are used to quickly crush the crystal blocks. Then, the material dispersed by the dispersing device is guided and transported by the upper guide plate 8, so that the dispersed material falls completely onto the bidirectional spiral blades 7. The drive motor 9 is turned on to transmit power to the bidirectional spiral blades 7 and drive them to rotate. The rotating bidirectional spiral blades 7 transport the falling crystal fragments evenly to both sides. Then, the material falling from the bidirectional spiral blades 7 is guided a second time by the lower guide plate 13, so that the material falls evenly between the two sets of crushing rollers 12. The motor 11 is turned on to transmit power to the two sets of crushing rollers 12 through the dual output reducer 10 and drive them to rotate. The two sets of crushing rollers 12 work together to squeeze the crystal fragments into powder. Then, the vibration motor 18 is turned on to transmit power to the receiving plate 15 and drive it to vibrate, thereby increasing the vibration amplitude of the receiving plate 15 and accelerating the falling rate of the material on the receiving plate 15.

[0023] The dispersing device includes a feeding hopper 1, a processing chamber 2, a crushing chamber 3, a support frame 4, a crushing roller 5, and crushing protrusions 6. The top opening size of the feeding hopper 1 is larger than the bottom size of the feeding hopper 1. The lower part of the feeding hopper 1 is connected to the processing chamber 2, and the lower part of the processing chamber 2 is connected to the crushing chamber 3. The bottom of the crushing chamber 3 is equipped with the support frame 4. The crushing roller 5 is horizontally installed in the upper part of the feeding hopper 1. A drive motor is installed on the side of the feeding hopper 1 and is connected to the crushing roller 5. Multiple sets of crushing protrusions 6 are provided on the side of the crushing roller 5.

[0024] The material equalization device includes a bidirectional spiral blade 7, an upper guide plate 8 and a drive motor 9. The bidirectional spiral blade 7 is horizontally installed in the lower part of the feeding hopper 1, and the drive motor 9 is installed on the side of the feeding hopper 1. The output end of the drive motor 9 is connected to the bidirectional spiral blade 7. A set of upper guide plates 8 are respectively set in the front and back of the middle part of the crushing chamber 3.

[0025] The crushing device includes a dual-output reducer 10, a motor 11, crushing rollers 12 and a lower guide plate 13. Two sets of crushing rollers 12 are horizontally installed in the crushing chamber 3. A set of lower guide plates 13 are respectively set on the left and right sides of the bottom of the processing chamber 2. A dual-output reducer 10 is installed on the side of the feeding hopper 1. A dual-output reducer 10 is installed on the dual-output reducer 10. A motor 11 is installed on the dual-output reducer 10. The two output ends of the dual-output reducer 10 are respectively connected to the two sets of crushing rollers 12.

[0026] It also includes a rotating shaft seat 14, a receiving plate 15, a rectangular hole 16, and a support spring 17. A horizontal discharge hole is provided at the lower rear end face of the lower guide plate 13. A set of receiving plates 15 is installed at the rear end face of the bottom inner side of the lower guide plate 13 through the rotating shaft seat 14. A rectangular hole 16 is provided on the lower end face of the lower guide plate 13. Multiple sets of support springs 17 are installed on the lower end face of the receiving plate 15. The lower part of the support spring 17 is connected to the upper end face of the support frame 4. The front part of the receiving plate 15 is tilted upward at a certain angle when it is stationary.

[0027] It also includes a vibration motor 18, which is installed on the lower end face of the receiving plate 15;

[0028] It also includes protective edges 19. Protective edges 19 are provided on the left, right and front edges of the upper end face of the receiving plate 15. The blocky crystal raw material is crushed and dispersed by the dispersing device. The dispersed crystal raw material is evenly fed to the crushing device by the material leveling device. The crushing device crushes the dispersed crystal, thereby completing the equipment processing and improving the production efficiency and practicality of the equipment.

[0029] like Figures 1 to 4 As shown, this utility model discloses a spiral dispersing device for choline crystals. During operation, crystal blocks are first placed into the feeding hopper 1. Multiple sets of crushing protrusions 6 on the rotating crushing roller 5 rapidly crush the crystal blocks. Then, the material dispersed by the upper guide plate 8 is guided and transported, ensuring that the dispersed material completely falls onto the bidirectional spiral blades 7. The drive motor 9 is then activated, transmitting power to the bidirectional spiral blades 7, causing them to rotate. The rotating bidirectional spiral blades 7 evenly transport the falling crystal fragments to both sides. Then, the material falling from the bidirectional spiral blades 7 is guided a second time by the lower guide plate 13, so that the material falls evenly between the two sets of crushing rollers 12. The motor 11 is turned on and the power is transmitted to the two sets of crushing rollers 12 through the dual output reducer 10, which drives the two sets of crushing rollers 12 to rotate. The two sets of crushing rollers 12 work together to squeeze the crystal fragments into powder. Then, the vibration motor 18 is turned on and the power is transmitted to the receiving plate 15 to drive the receiving plate 15 to vibrate, thereby increasing the vibration amplitude of the receiving plate 15 itself and accelerating the falling rate of the material on the receiving plate 15.

[0030] The drive motor 9, motor 11, dual-output reducer 10, and vibration motor 18 of the crystal choline spiral dispersing device of this utility model are commercially available. Technical personnel in this industry only need to install and operate them according to the accompanying instruction manual, without requiring any creative work from those skilled in the art.

[0031] The above description is only a preferred embodiment of the present utility model. It should be noted that for those skilled in the art, several improvements and modifications can be made without departing from the technical principles of the present utility model, and these improvements and modifications should also be considered within the protection scope of the present utility model.

Claims

1. A crystalline choline screw disintegrating device; characterized by, It includes a dispersing device, a leveling device, and a crushing device. The leveling device is installed on the dispersing device, and the crushing device is installed on the dispersing device. The dispersing device includes a feeding hopper (1), a processing chamber (2), a crushing chamber (3), a support frame (4), a crushing roller (5), and a crushing protrusion (6). The top opening size of the feeding hopper (1) is larger than the bottom size of the feeding hopper (1). The lower part of the feeding hopper (1) is connected to the processing chamber (2), and the lower part of the processing chamber (2) is connected to the crushing chamber (3). The bottom of the crushing chamber (3) is equipped with a support frame (4). The upper part of the feeding hopper (1) is horizontally equipped with a... The crushing roller (5) and the feeding hopper (1) are equipped with a drive motor. The drive motor is connected to the crushing roller (5). The crushing roller (5) has multiple sets of crushing protrusions (6) on its side. The material equalization device includes bidirectional spiral blades (7), an upper guide plate (8) and a drive motor (9). The lower part of the feeding hopper (1) is horizontally equipped with bidirectional spiral blades (7). The side of the feeding hopper (1) is equipped with a drive motor (9). The output end of the drive motor (9) is connected to the bidirectional spiral blades (7). The crushing chamber (3) has a set of upper guide plates (8) at the front and back of the middle.

2. A crystalline choline screw-type breaking device as claimed in claim 1, characterized in that, The crushing device includes a dual-output reducer (10), a motor (11), crushing rollers (12) and a lower guide plate (13). Two sets of crushing rollers (12) are horizontally installed in the crushing chamber (3). A set of lower guide plates (13) is set on the bottom left and right of the processing chamber (2). A dual-output reducer (10) is installed on the side of the feeding hopper (1). A dual-output reducer (10) is installed on the dual-output reducer (10). A motor (11) is installed on the dual-output reducer (10). The two output ends of the dual-output reducer (10) are connected to the two sets of crushing rollers (12) respectively.

3. The spiral-type dispersing device for crystalline choline as described in claim 2, characterized in that, It also includes a rotating shaft seat (14), a receiving plate (15), a rectangular hole (16) and a support spring (17). A horizontal discharge hole is provided at the lower rear end face of the lower guide plate (13). A set of receiving plates (15) is installed at the rear end of the bottom end face of the lower guide plate (13) through the rotating shaft seat (14). A rectangular hole (16) is provided on the lower end face of the lower guide plate (13). Multiple sets of support springs (17) are installed on the lower end face of the receiving plate (15). The lower part of the support spring (17) is connected to the upper end face of the support frame (4). The front part of the receiving plate (15) is tilted upward at a certain angle when it is stationary.

4. The spiral-type dispersing device for crystalline choline as described in claim 3, characterized in that, It also includes a vibration motor (18), which is installed on the lower end face of the receiving plate (15).

5. The spiral-type dispersing device for crystalline choline as described in claim 4, characterized in that, It also includes protective edges (19), and protective edges (19) are provided on the left, right and front edges of the upper end face of the receiving plate (15).