A liquid methionine feed additive device

By designing the feeding, adding, mixing, and cleaning components inside the mixing drum, the problems of feeding and stirring efficiency in the liquid methionine addition device were solved, achieving uniform mixing and efficient discharge, thus improving the quality of feed production.

CN224573669UActive Publication Date: 2026-07-31JINAN ZHONGMU AOLI BIOTECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
JINAN ZHONGMU AOLI BIOTECHNOLOGY CO LTD
Filing Date
2025-07-31
Publication Date
2026-07-31

AI Technical Summary

Technical Problem

Existing liquid methionine feed additive devices have shortcomings in terms of feeding effect and mixing efficiency, resulting in low feed mixing degree and low processing efficiency.

Method used

A device comprising a mixing cylinder, a feed pipe, a discharge pipe, a support component, an addition component, a mixing component, and a cleaning component is designed. Material is added through the feed pipe, liquid methionine is uniformly introduced through the addition component, the mixing component works with a stirring rod to mix the materials, and the cleaning component scrapes the inner wall to improve the mixing effect and discharge rate.

Benefits of technology

It achieves uniform addition and mixing of liquid methionine, improves the mixing degree and processing efficiency of feed, and ensures the output rate and production quality.

✦ Generated by Eureka AI based on patent content.

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Abstract

This utility model relates to the technical field of feed processing equipment, and in particular to a liquid methionine feed additive device, which can achieve uniform liquid addition, resulting in a higher degree of feed mixing, better feed production effect, and guaranteed feed raw material processing efficiency; it includes a mixing cylinder, a feed pipe, a discharge pipe, a support component, an additive component, a mixing component, and a cleaning component. The feed pipe is installed at the top of the mixing cylinder, and the discharge pipe is installed on the lower outer wall of the mixing cylinder. The support component is installed at the bottom of the mixing cylinder, and the additive component is installed on the support component with its output end located inside the mixing cylinder. The mixing component and the cleaning component are installed inside the mixing cylinder.
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Description

Technical Field

[0001] This utility model relates to the technical field of feed processing equipment, and in particular to a liquid methionine feed additive device. Background Technology

[0002] With the continuous development of society and the continuous progress of science, the use of liquid feed is becoming more and more widespread. In the process of feed production and mixing, a variety of additives need to be added. Among them, methionine is an important amino acid and an essential additive in animal feed. Animal feed with added methionine can help animals grow rapidly in a short period of time, saving them about 40% of feed. Existing technology publication number CN207355441U discloses a liquid methionine additive device for feed production, comprising a storage tank and a mixing chamber. Both the storage tank and the mixing chamber have support legs at the bottom. A pump is located at the top of the storage tank, with a first delivery pipe at the pump inlet and a second delivery pipe at the pump outlet. A rotor flow meter is installed inside the second delivery pipe, and a spray pipe is located at one end of the second delivery pipe. An annular mixing chamber is located at the top of the mixing chamber, with one side of the top of the annular mixing chamber connected to the spray pipe. A feed inlet is located on one side of the annular mixing chamber, and several nozzles are located at the bottom of the annular mixing chamber. A motor is located at the top of the mixing chamber, and the motor output shaft passes through the mixing chamber shell and extends into the mixing chamber through a straight rod. A stirring frame is fitted onto the straight rod, and stirring blades are mounted on the stirring frame. A fixing nut is located below the stirring frame on the straight rod. A discharge port is located at the bottom side of the mixing chamber. However, during use, the feeding effect is generally poor, and the processing efficiency during stirring is also average. Utility Model Content

[0003] To solve the above-mentioned technical problems, this utility model provides a liquid methionine feed additive device that can achieve uniform liquid addition, resulting in a higher degree of mixing of feed, better feed production effect, and guaranteed processing efficiency of feed raw materials.

[0004] This utility model discloses a liquid methionine feed additive device, comprising a mixing cylinder, an inlet pipe, an outlet pipe, a support component, an additive component, a mixing component, and a cleaning component. The inlet pipe is installed at the top of the mixing cylinder, and the outlet pipe is installed on the lower outer wall of the mixing cylinder. The support component is installed at the bottom of the mixing cylinder, and the additive component is installed on the support component with its output end located inside the mixing cylinder. The mixing component and the cleaning component are installed inside the mixing cylinder. Material is added to the mixing cylinder through the inlet pipe. The additive component evenly inputs liquid methionine into the mixing cylinder and works in conjunction with the mixing component to uniformly mix the contents of the mixing cylinder, ensuring efficient processing of the feed ingredients. The cleaning component scrapes the inner wall of the mixing cylinder and pushes the feed towards the center, further enhancing the mixing effect, improving feed production quality, and ensuring the discharge rate.

[0005] Preferably, the support component includes multiple legs, an annular plate, and multiple bases. The multiple legs are evenly installed at the bottom of the mixing drum, and the bases are installed at the bottom of the legs. The annular plate is installed on the multiple legs. The bottom of the mixing drum is supported by the multiple legs and bases to ensure stability during operation. At the same time, the annular plate can increase the structural strength between the multiple legs and ensure stability.

[0006] Preferably, the added components include a storage tank, a pump, an infusion pipe, a multi-way pipe, multiple connecting pipes, multiple solenoid valves, an inlet pipe, an inlet tray, and multiple outlet heads. The storage tank is mounted on the top of the annular plate, the pump is mounted on the inner wall of the storage tank, and the input end of the pump is connected to the inside of the storage tank. The bottom of the inlet tray is mounted on the bottom of the mixing cylinder via a support rod. Multiple outlet heads are installed at an angle on the top of the inlet tray. An inlet pipe is installed at the input end of the bottom of the inlet tray. The inlet pipe is installed in the middle of the bottom end of the mixing cylinder, and a multi-way pipe is installed at the input end of the inlet pipe. Multiple connecting pipes are installed on the top, and solenoid valves are installed on the connecting pipes. The output end of the liquid pump is connected to the delivery pipe, and the output end of the delivery pipe is connected to the input end of one of the connecting pipes. When the liquid pump is started, liquid methionine is drawn from the storage tank. The solenoid valve is opened, and the liquid is fed into the multi-port pipe through the delivery pipe and connecting pipe. Then it is fed into the inlet plate through the inlet pipe. The liquid is then output into the mixing drum through multiple outlets. The inclined outlets allow the liquid feed in the mixing drum to flow. The multiple connecting pipes can provide multiple connectors to facilitate the addition of different additives.

[0007] Preferably, the mixing component includes a mixing motor, a rotating shaft, and multiple stirring rods. The mixing motor is installed at the top of the mixing cylinder, and the output end of the mixing motor passes through the top of the mixing cylinder and is connected to the rotating shaft. Multiple stirring rods are installed on the outer wall of the rotating shaft. When the mixing motor is started, it drives the rotating shaft to rotate, which in turn drives the multiple stirring rods to rotate, thereby mixing the liquid feed inside the mixing cylinder. The rotation direction of the rotating shaft is opposite to the flow direction of the liquid feed, which improves the mixing efficiency.

[0008] Preferably, it also includes multiple sealing rings. The bottom of the rotating shaft is rotatably connected to the top of the liquid inlet plate. Multiple sealing rings are installed between the outer wall of the rotating shaft and the liquid inlet plate. A flow channel is opened inside the rotating shaft, and a conveying chamber is opened inside the stirring rod. An output hole communicating with the conveying chamber is opened on the outer wall of the stirring rod. The rotating shaft is rotatably connected to the top of the liquid inlet plate. The sealing rings can ensure the sealing between the rotating shaft and the liquid inlet plate. Liquid methionine enters the flow channel of the rotating shaft, and then enters the conveying chamber of the stirring rod. It is then conveyed into the mixing cylinder through the output hole, so that the liquid methionine is evenly distributed in different positions of the mixing cylinder, ensuring the uniformity of mixing and improving the quality of feed production.

[0009] Preferably, the cleaning components include an mounting ring, a limiting rotating ring, multiple inclined scrapers, a reduction motor, and a drive gear. The mounting ring is installed at the top of the mixing drum, and a limiting rotating groove is formed at the bottom of the mounting ring. The limiting rotating ring is rotatably installed within the limiting rotating groove. An annular toothed groove is formed on the inner wall of the limiting rotating ring. Multiple inclined scrapers are evenly installed at the bottom of the limiting rotating ring, and the inclined scrapers contact the inner wall of the mixing drum. The reduction motor is installed at the top of the mixing drum, and a drive gear is installed at the output end of the reduction motor passing through the top of the mixing drum. The drive gear meshes with the annular toothed groove. Starting the reduction motor drives the drive gear to rotate, which in turn drives the limiting rotating ring to rotate within the limiting rotating groove. This causes the inclined scrapers to rotate within the mixing drum, scraping and cleaning the inner wall of the mixing drum. Simultaneously, it pushes the outer ring of material towards the center, further increasing the mixing effect and ensuring efficient discharge.

[0010] Preferably, it also includes multiple sets of mixing rods, with multiple mixing rods installed on the inner wall of the inclined scraper; the inclined scraper rotates in the opposite direction to the rotating shaft, and the rotation of the inclined scraper drives the mixing rods to rotate at the same time, which work together with 28 to mix the feed, improve the mixing efficiency and improve the processing efficiency.

[0011] Preferably, it also includes two rings, which are installed at the bottom of the inclined scraper; the rings connect the bottoms of multiple inclined scrapers to increase structural strength and ensure stability during rotation.

[0012] Compared with the prior art, the beneficial effects of this utility model are as follows: materials are added into the mixing cylinder through the feed pipe, and the adding component evenly inputs liquid methionine into the mixing cylinder. It can cooperate with the mixing component to evenly mix the inside of the mixing cylinder, ensuring the processing efficiency of feed raw materials. The cleaning component can scrape the inner wall of the mixing cylinder and push the feed towards the center, further increasing the mixing effect, improving the quality of feed production, and ensuring the discharge rate. Attached Figure Description

[0013] Figure 1 This is a schematic diagram of the structure of this utility model; Figure 2 This is a front view structural diagram of the present invention; Figure 3 This is a schematic diagram of the lower three-dimensional structure of this utility model; Figure 4 This is a front cross-sectional structural diagram of the present invention; Figure 5 This is a schematic diagram of the upper cross-sectional structure of this utility model; The following are labels in the attached diagram: 1. Mixing cylinder; 2. Feed pipe; 3. Discharge pipe; 4. Support leg; 5. Annular plate; 6. Storage tank; 7. Pump; 8. Delivery pipe; 9. Multi-port pipe; 10. Connecting pipe; 11. Solenoid valve; 12. Inlet pipe; 13. Inlet tray; 14. Discharge head; 15. Base; 16. Mixing motor; 17. Rotating shaft; 18. Stirring rod; 19. Sealing ring; 20. Mounting ring; 21. Limiting rotating ring; 22. Inclined scraper; 23. Gear motor; 24. Drive gear; 25. Mixing rod; 26. Circular ring. Detailed Implementation

[0014] 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.

[0015] like Figures 1 to 5As shown, a feed pipe 2 is installed at the top of the mixing cylinder 1, a discharge pipe 3 is installed on the lower outer wall of the mixing cylinder 1, multiple support legs 4 are evenly installed at the bottom of the mixing cylinder 1, and a base 15 is installed at the bottom of the support legs 4. An annular plate 5 is installed on the multiple support legs 4, a liquid storage tank 6 is installed at the top of the annular plate 5, a liquid pump 7 is installed on the inner wall of the liquid storage tank 6, and the input end of the liquid pump 7 is connected to the inside of the liquid storage tank 6. The bottom of the liquid inlet plate 13 is installed at the bottom of the mixing cylinder 1 through a support rod, and multiple support legs are installed at an angle on the top of the liquid inlet plate 13. A liquid outlet 14 is provided. A liquid inlet pipe 12 is installed at the bottom input end of the liquid inlet tray 13. The liquid inlet pipe 12 is installed in the middle of the bottom end of the mixing cylinder 1. A multi-port pipe 9 is installed at the input end of the liquid inlet pipe 12. Multiple connecting pipes 10 are installed on the multi-port pipe 9. A solenoid valve 11 is installed on each connecting pipe 10. The output end of the liquid pump 7 is connected to a delivery pipe 8. The output end of the delivery pipe 8 is connected to the input end of one of the connecting pipes 10. A mixing motor 16 is installed at the top of the mixing cylinder 1. The output end of the mixing motor 16 passes through the mixing cylinder. A rotating shaft 17 is installed at the top of the mixing cylinder 1. Multiple stirring rods 18 are installed on the outer wall of the rotating shaft 17. The bottom of the rotating shaft 17 is rotatably connected to the top of the liquid inlet plate 13. Multiple sealing rings 19 are installed between the outer wall of the rotating shaft 17 and the liquid inlet plate 13. A flow channel is opened inside the rotating shaft 17. A conveying chamber is opened inside the stirring rods 18. An output hole communicating with the conveying chamber is opened on the outer wall of the stirring rods 18. An installation ring 20 is installed at the top of the mixing cylinder 1. A limiting rotating groove is opened at the bottom of the installation ring 20. A limiting rotating ring 21 is also provided. The limiting ring 21 is rotatably installed in the limiting groove. The inner wall of the limiting ring 21 is provided with an annular toothed groove. Multiple inclined scrapers 22 are evenly installed at the bottom of the limiting ring 21. The inclined scrapers 22 are in contact with the inner wall of the mixing cylinder 1. The reduction motor 23 is installed at the top of the mixing cylinder 1. The output end of the reduction motor 23 passes through the top of the mixing cylinder 1 and is equipped with a drive gear 24. The drive gear 24 meshes with the annular toothed groove. Multiple mixing rods 25 are installed on the inner wall of the inclined scraper 22. Two rings 26 are installed at the bottom of the inclined scraper 22. The bottom of the mixing drum 1 is supported by multiple legs 4 and a base 15 to ensure stability during operation. The annular plate 5 increases the structural strength between the legs 4, further ensuring stability. The pump 7 is activated to extract liquid methionine from the storage tank 6. The solenoid valve 11 is opened, and the liquid is fed into the multi-port pipe 9 via the delivery pipe 8 and connecting pipe 10, then into the inlet plate 13 via the inlet pipe 12. The liquid is then output into the mixing drum 1 through multiple outlets 14. The inclined outlets 14 allow the liquid feed in the mixing drum 1 to flow. The multiple connecting pipes 10 provide multiple connectors for adding different additives. The mixing motor 16 is activated to drive the rotating shaft 17, which in turn drives multiple stirring rods 18 to stir and mix the liquid feed inside the mixing drum 1. The rotation direction of the rotating shaft 17 is opposite to the flow direction of the liquid feed, improving mixing efficiency. The rotating shaft 17 is rotatably connected to the top of the inlet plate 13, and the sealing ring 19 ensures the rotation... The sealing between shaft 17 and inlet plate 13 ensures that liquid methionine enters the flow channel of shaft 17 and then the conveying chamber of stirring rod 18. It is then conveyed into mixing cylinder 1 through the output hole, ensuring that the liquid methionine is evenly distributed in different positions within mixing cylinder 1, guaranteeing uniform mixing and improving feed production quality. The starting reduction motor 23 drives the drive gear 24 to rotate, which in turn drives the limiting rotating ring 21 to rotate within the limiting rotating groove. This causes the inclined scraper 22 to rotate within mixing cylinder 1, scraping and cleaning the inner wall of mixing cylinder 1. Simultaneously, it pushes the outer ring material towards the center, further enhancing the mixing effect and ensuring discharge efficiency. The inclined scraper 22 rotates in the opposite direction to shaft 17, simultaneously driving the mixing rod 25 to rotate, which, in conjunction with 28, mixes the feed, improving mixing efficiency and processing efficiency. A ring 26 connects the bottoms of multiple inclined scrapers 22, increasing structural strength and ensuring stability during rotation.

[0016] like Figures 1 to 5As shown, this utility model discloses a liquid methionine feed additive device. During operation, multiple legs 4 and a base 15 support the bottom of the mixing cylinder 1, ensuring stability during operation. Simultaneously, the annular plate 5 increases the structural strength between the multiple legs 4. Material is added into the mixing cylinder 1 through the feed pipe 2. The liquid pump 7 is activated to extract liquid methionine from the storage tank 6. The solenoid valve 11 is opened, and the liquid is fed into the multi-port pipe 9 through the delivery pipe 8 and connecting pipe 10, then into the inlet plate 13 through the inlet pipe 12. The liquid is then output into the mixing cylinder 1 through multiple outlets 14. The inclined outlets 14 allow the liquid feed in the mixing cylinder 1 to flow. Multiple connecting pipes 10 provide multiple connectors for adding different additives. The mixing motor 16 is activated, driving the rotating shaft 17 to rotate, which in turn drives multiple... The stirring rod 18 rotates to stir and mix the liquid feed inside the mixing drum 1. The rotation direction of the rotating shaft 17 is opposite to the flow direction of the liquid feed. The rotating shaft 17 is rotatably connected to the top of the liquid inlet plate 13. The sealing ring 19 can ensure the sealing between the rotating shaft 17 and the liquid inlet plate 13. Liquid methionine enters the flow channel of the rotating shaft 17 and then enters the conveying chamber of the stirring rod 18. It is then conveyed into the mixing drum 1 through the output hole, so that the liquid methionine is evenly distributed in different positions of the mixing drum 1 to ensure the uniformity of mixing. The reduction motor 23 is started to drive the drive gear 24 to rotate. The drive gear 24 drives the limiting rotating ring 21 to rotate in the limiting rotating groove, so that the inclined scraper 22 rotates in the mixing drum 1 to scrape and clean the inner wall of the mixing drum 1. At the same time, it pushes the outer ring material to the middle to further increase the stirring and mixing effect.

[0017] The liquid methionine feed additive device of this utility model, including the pump 7, solenoid valve 11, mixing motor 16 and geared motor 23, is commercially available. Technical personnel in this industry only need to install and operate it according to the accompanying instruction manual, without requiring any creative work from those skilled in the art.

[0018] 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 liquid methionine feed supplementing device, characterized by, The system includes a mixing cylinder (1), a feed pipe (2), a discharge pipe (3), a support component, an additive component, a mixing component, and a cleaning component. The feed pipe (2) is installed at the top of the mixing cylinder (1), and the discharge pipe (3) is installed on the lower outer wall of the mixing cylinder (1). The support component is installed at the bottom of the mixing cylinder (1), and the additive component is installed on the support component with its output end located inside the mixing cylinder (1). The mixing component is installed inside the mixing cylinder (1), and the cleaning component is installed inside the mixing cylinder (1). The support component includes multiple legs (4), an annular plate (5), and multiple bases (15). The multiple legs (4) are evenly installed at the bottom of the mixing cylinder (1), and the bases (15) are installed at the bottom of the legs (4). The annular plate (5) is installed on the multiple legs (4). The additive component includes a storage tank (6), a pump (7), an infusion pipe (8), a multi-port pipe (9), multiple connecting pipes (10), and multiple electrical components. A solenoid valve (11), an inlet pipe (12), an inlet plate (13), and multiple outlet heads (14) are provided. A storage tank (6) is installed on the top of an annular plate (5). A pump (7) is installed on the inner wall of the storage tank (6). The input end of the pump (7) is connected to the inside of the storage tank (6). The bottom of the inlet plate (13) is installed at the bottom of the mixing cylinder (1) by a support rod. Multiple outlet heads (14) are installed at an angle on the top of the inlet plate (13). An inlet pipe (12) is installed at the bottom input end of the inlet plate (13). The inlet pipe (12) is installed in the middle of the bottom end of the mixing cylinder (1). A multi-port pipe (9) is installed at the input end of the inlet pipe (12). Multiple connecting pipes (10) are installed on the multi-port pipe (9). A solenoid valve (11) is installed on the connecting pipe (10). The output end of the pump (7) is connected to a delivery pipe (8). The output end of the delivery pipe (8) is connected to the input end of one of the connecting pipes (10).

2. A liquid methionine feed supplementing device as claimed in claim 1, characterized in that The mixing components include a mixing motor (16), a rotating shaft (17), and multiple stirring rods (18). The mixing motor (16) is installed at the top of the mixing cylinder (1). The output end of the mixing motor (16) passes through the top of the mixing cylinder (1) and is installed on the rotating shaft (17). Multiple stirring rods (18) are installed on the outer wall of the rotating shaft (17).

3. A liquid methionine feed supplementing device as claimed in claim 2, characterized in that It also includes multiple sealing rings (19), the bottom of the rotating shaft (17) is rotatably connected to the top of the liquid inlet plate (13), multiple sealing rings (19) are installed between the outer wall of the rotating shaft (17) and the liquid inlet plate (13), a flow channel is opened inside the rotating shaft (17), a conveying chamber is opened inside the stirring rod (18), and an output hole communicating with the conveying chamber is opened on the outer wall of the stirring rod (18).

4. The liquid methionine feed supplement apparatus of claim 1, wherein, The cleaning components include a mounting ring (20), a limiting rotating ring (21), multiple inclined scrapers (22), a reduction motor (23), and a drive gear (24). The mounting ring (20) is installed at the top inside the mixing cylinder (1). A limiting rotating groove is opened at the bottom of the mounting ring (20). The limiting rotating ring (21) is rotatably installed in the limiting rotating groove. An annular tooth groove is opened on the inner wall of the limiting rotating ring (21). Multiple inclined scrapers (22) are evenly installed at the bottom of the limiting rotating ring (21). The inclined scrapers (22) are in contact with the inner wall of the mixing cylinder (1). The reduction motor (23) is installed at the top of the mixing cylinder (1). The output end of the reduction motor (23) passes through the top of the mixing cylinder (1) and is equipped with a drive gear (24). The drive gear (24) meshes with the annular tooth groove.

5. A liquid methionine feed supplementing device as claimed in claim 4, characterized in that It also includes multiple sets of mixing rods (25), and multiple mixing rods (25) are installed on the inner wall of the inclined scraper (22).

6. A liquid methionine feed additive dispensing device as claimed in claim 4, wherein, It also includes two rings (26) installed at the bottom of the inclined scraper (22).