Feed production adding device

By combining the driving structure and the auxiliary vibration structure, the quantitative addition of feed additives is realized, which solves the problem of unstable additive addition in the existing technology and improves the automation level of feed production and product quality.

CN223836652UActive Publication Date: 2026-01-27BEIJING JINRUN MUFENG BIOLOGICAL NUTRITION TECH CO LTD
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Patent Information

Application Number
CN202520541695.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-26
Publication Date
2026-01-27
Estimated Expiration
2035-03-26

AI Technical Summary

Technical Problem

The lack of precise quantitative control methods in the current feed production process leads to unstable addition of auxiliary materials, which affects feed quality and nutritional value.

Method used

It adopts a drive structure and an auxiliary vibration structure. The drive motor drives the rotating rod and slider to slide, and the high-frequency vibration prevents clogging and adhesion, so as to achieve quantitative addition.

Benefits of technology

This ensures the accurate addition of auxiliary materials, improves the precision of feed formulation and production efficiency, and enhances product quality stability.

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Abstract

The utility model discloses a feed production adding device. The feed production adding device comprises a driving structure and an auxiliary vibration structure, wherein the driving structure is mounted on one side of a feeding channel and used for enabling a sliding block in the feeding channel to slide back and forth; and the auxiliary vibration structure is mounted on one side of a feeding hopper and the sliding block and used for enabling the feeding hopper and the sliding block to generate high-frequency vibration. The transmission rod pulls the sliding block on the inner side of the feeding channel to slide through the sliding rod, when the feed trough of the sliding block slides to coincide with the first feeding port, feed auxiliary materials in the feeding hopper enter the feed trough of the sliding block through the first feeding port, and after the rotating rod is driven by the driving motor to continuously rotate and the feed trough is full, the feed auxiliary materials are fed into the feeding hopper. And the sliding block slides towards the direction of the second feeding port until the feed trough coincides with the second feeding port below the feed trough, the feed auxiliary materials in the feed trough are guided into the feed processing equipment along the guide groove, quantitative adding and efficient conveying of the feed auxiliary materials are achieved, and therefore the automation degree of feed production and the product quality stability are improved.
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Description

Technical Field

[0001] This utility model relates to the field of feed production technology, and in particular to a feed production additive device. Background Technology

[0002] Feed production and processing refers to the process of processing various raw materials through specific technical methods into products suitable for animal consumption, possessing nutritional value, and promoting animal growth. This process includes multiple stages such as raw material procurement, acceptance, storage, pretreatment, mixing, pelleting, cooling, grading, and packaging. The aim is to ensure, through scientific formulation, that the feed is nutritionally comprehensive and balanced, meeting the nutritional needs of different species and growth stages of animals, while also guaranteeing the hygiene and safety of the feed, thereby promoting the healthy development of animal husbandry.

[0003] In the current feed production process, a common problem with feed additive devices is the lack of precise quantitative control methods when adding auxiliary materials to the feed. This situation makes it difficult for operators to accurately control the amount of auxiliary materials added, resulting in unstable feed ratios. This imprecise addition method not only increases the uncertainty in the production process, but also directly affects the overall quality and nutritional value of the feed. Utility Model Content

[0004] One objective of this invention is to provide a feed production additive device. This invention addresses the issue mentioned in the background that the lack of precise quantitative control methods when adding additives to feed makes it difficult for operators to accurately control the amount of additives added, resulting in unstable feed ratios. This imprecise addition method not only increases the uncertainty in the production process but also directly affects the overall quality and nutritional value of the feed.

[0005] A feed production and addition device according to an embodiment of the present invention includes a drive structure installed on one side of the feed channel for reciprocating sliding of a slider inside the feed channel, and an auxiliary vibration structure installed on one side of the feed hopper and the slider for generating high-frequency vibration of the feed hopper and the slider themselves. The drive structure includes a transmission rod and a slide rod. A groove is provided on the inner side of the feed channel. The slider is slidably connected to the inside of the groove. A slide rail is provided on one side of the groove. The slide rod is fixedly connected to one side of the slider. The slide rod is slidably connected to the inside of the slide rail through the transmission rod. A feed trough is provided through the surface of the slider. The auxiliary vibration structure includes a rotating shaft, a rotating block, and a collision block. The collision block is movably connected to one side of the rotating block through a telescopic component. The rotating block is rotatably connected to the inner side of a fixed plate through the rotating shaft.

[0006] Preferably, a drive motor is fixedly connected to one side surface of both the feed hopper and the slider via a fixing block, and the rotating shaft is drivenly connected to the output end of the drive motor.

[0007] Preferably, a second inlet is provided through the lower surface of the feeding channel, and a guide groove is fixedly connected to the lower part of the second inlet.

[0008] Preferably, a box cover is fixedly connected to the upper surface of the feeding channel, and a first feeding port is opened through the surface of the box cover, and the feeding hopper is fixedly connected to the upper surface of the first feeding port.

[0009] Preferably, a drive motor is fixedly connected to one side of the feed channel, and a rotating disk is driven to the output end of the drive motor.

[0010] Preferably, one side surface of the rotating disk is rotatably connected to one end of the rotating rod via a first rotating shaft, and the other end of the rotating rod is rotatably connected to one end of the transmission rod via a second rotating shaft.

[0011] Preferably, a limiting block for limiting the movement trajectory of the transmission rod is fixedly connected to one side surface of the feeding channel, and the transmission rod is movably connected to the surface of the limiting block.

[0012] The beneficial effects of this utility model are:

[0013] This invention utilizes a drive structure where a drive motor drives a rotating rod to rotate. The rotating rod pulls a transmission rod to slide on the surface of a limiting block. The transmission rod, through a sliding rod, pulls a slider inside the feed channel. When the feed trough of the slider aligns with the first feed inlet, the feed additives inside the feed hopper enter the feed trough of the slider through the first feed inlet. As the drive motor drives the rotating rod to continue rotating and the feed trough is full, the slider slides towards the second feed inlet until the feed trough aligns with the second feed inlet below. The feed additives in the feed trough are then guided into the feed processing equipment along the guide channel, achieving quantitative addition and efficient conveying of feed additives, thereby improving the automation level of feed production and the stability of product quality.

[0014] This invention utilizes an auxiliary vibration structure. The drive motor of the auxiliary vibration structure on one side of the feed hopper rotates the rotating shaft, which in turn rotates the rotating block. This causes the collision block to rotate at high speed, impacting the side surface of the feed hopper and causing high-frequency vibration within the hopper itself. This prevents feed additives from clogging the internal space of the feed hopper. The auxiliary vibration structure on one side of the feed trough causes the slider itself to vibrate at high frequency, preventing feed additives from adhering to the inner wall surface of the feed trough and causing inaccurate feed additive addition. This ensures the accuracy of feed additive addition, improves the precision of feed formulation, and increases production efficiency. Attached Figure Description

[0015] The accompanying drawings are provided to further illustrate the present invention and form part of the specification. They are used together with the embodiments of the present invention to explain the present invention, but do not constitute a limitation thereof. In the drawings:

[0016] Figure 1 This is a schematic diagram of the structure of a feed production additive device proposed in this utility model;

[0017] Figure 2 This is a schematic diagram of the structure of the box cover in a feed production additive device proposed in this utility model;

[0018] Figure 3 This is a schematic diagram of the internal structure of the feed channel in a feed production additive device proposed in this utility model;

[0019] Figure 4 This is a schematic diagram of the auxiliary vibration structure in a feed production additive device proposed in this utility model;

[0020] In the diagram: 1. Feeding channel; 2. Feeding hopper; 3. Box cover; 4. First feed inlet; 5. Slide chute; 6. Sliding block; 7. Feed trough; 8. Drive structure; 801. Drive motor; 802. Rotating disc; 803. First rotating shaft; 804. Rotating rod; 805. Second rotating shaft; 806. Limiting block; 807. Transmission rod; 808. Sliding rod; 809. Slide rail; 9. Auxiliary vibration structure; 901. Drive motor; 902. Fixing block; 903. Fixing plate; 904. Rotating shaft; 905. Rotating block; 906. Collision block; 10. Second feed inlet; 11. Guide chute. Detailed Implementation

[0021] The present invention will now be described in further detail with reference to the accompanying drawings. These drawings are simplified schematic diagrams, illustrating only the basic structure of the present invention, and therefore only show the components relevant to the present invention.

[0022] refer to Figure 1-4A feed production and addition device includes a drive structure 8 installed on one side of a feed channel 1 for reciprocating sliding of a slider 6 inside the feed channel 1, and an auxiliary vibration structure 9 installed on one side of a feed hopper 2 and a slider 6 for generating high-frequency vibrations in the feed hopper 2 and the slider 6. The drive structure 8 includes a transmission rod 807 and a slide rod 808. A groove 5 is formed on the inner side of the feed channel 1, and the slider 6 is slidably connected inside the groove 5. A slide rail 809 is formed on one side of the groove 5. The slide rod 808 is fixedly connected to one side of the slider 6 and slidably connected to the slide rail 809 via the transmission rod 807. A feed trough 7 is formed through the surface of the slider 6. The auxiliary vibration structure 9 includes a rotating shaft 904, a rotating block 905, and a collision block 906. The collision block 906 is movably connected to one side of the rotating block 905 via a telescopic assembly. The rotating block 905 rotates via the rotating shaft 904. The rotating rod 804 is driven by the drive motor 801 of the drive structure 8 to rotate. The rotating rod 804 pulls the transmission rod 807 to slide on the surface of the limit block 806. The transmission rod 807 pulls the slider 6 inside the feed channel 1 through the slide rod 808. When the feed trough 7 of the slider 6 slides to coincide with the first feed port 4, the feed additives inside the feed hopper 2 enter the feed trough 7 of the slider 6 through the first feed port 4. As the drive motor 801 drives the rotating rod 804 to rotate continuously and the feed trough 7 is full, the slider 6 slides towards the second feed port 10 until the feed trough 7 coincides with the second feed port 10 below. The feed additives in the feed trough 7 are guided into the feed processing equipment along the guide groove 11, realizing the quantitative addition and efficient conveying of feed additives, thereby improving the automation level of feed production and the stability of product quality.

[0023] Example 1: A drive motor 901 is fixedly connected to one side surface of both the feed hopper 2 and the slider 6 via a fixing block 902. A rotating shaft 904 is driven by the output end of the drive motor 901. The drive motor 901 of the auxiliary vibration structure 9 on one side of the feed hopper 2 drives the rotating shaft 904 to rotate, which in turn drives the rotating block 905 to rotate, ultimately causing the collision block 906 to rotate at high speed. The collision block 906 impacts the side surface of the feed hopper 2 at high speed, causing the feed hopper 2 itself to vibrate at high frequency, thereby preventing the feed additives from clogging the internal space of the feed hopper 2. The feed trough 7 has one side... The auxiliary vibration structure 9 causes the slider 6 to vibrate at high frequency, thereby preventing feed additives from adhering to the inner wall surface of the feed trough 7 and causing inaccurate feed additive addition. This ensures the accuracy of feed additive addition, improves the precision of feed ratio and production efficiency. The lower surface of the feed channel 1 is provided with a second feed inlet 10, and the lower part of the second feed inlet 10 is fixedly connected to a guide groove 11. The upper surface of the feed channel 1 is fixedly connected to a box cover 3, and the surface of the box cover 3 is provided with a first feed inlet 4. The feed hopper 2 is fixedly connected to the upper surface of the first feed inlet 4.

[0024] Example 2: A drive motor 801 is fixedly connected to one side of the feed channel 1. The output end of the drive motor 801 is connected to a rotating disk 802. One side surface of the rotating disk 802 is rotatably connected to one end of a rotating rod 804 via a first rotating shaft 803. The other end of the rotating rod 804 is rotatably connected to one end of a transmission rod 807 via a second rotating shaft 805. A limiting block 806 is fixedly connected to one side surface of the feed channel 1 to limit the movement trajectory of the transmission rod 807. The transmission rod 807 is movably connected to the surface of the limiting block 806.

[0025] In use, firstly, the drive motor 801 starts, driving the rotating rod 804 to rotate via the rotating disk 802 and the first rotating shaft 803. The rotating rod 804 is then connected to the transmission rod 807 via the second rotating shaft 805, causing the transmission rod 807 to slide telescopically on the surface of the limiting block 806. The transmission rod 807 is connected to the slider 6 via the sliding rod 808, thus pushing the slider 6 to slide back and forth in the sliding groove 5. When the feed trough 7 on the slider 6 slides to coincide with the first feed inlet 4, the feed and auxiliary materials in the feed hopper 2 enter the feed trough 7 through the first feed inlet 4. At the same time, the drive motor 901 on the side of the feed hopper 2 drives the rotating shaft 904, causing the rotating block 905 and the collision block 906 to... The high-speed rotation of the collision block 906 causes the feed hopper 2 to vibrate at high speed, preventing feed additives from adhering or clogging inside the feed hopper 2. At the same time, the auxiliary vibration structure 9 on the side surface of the slider 6 causes the slider 6 to vibrate, making the feed additives more evenly distributed in the feed trough 7. After the feed trough 7 is full, the slider 6 continues to slide until it coincides with the second feed inlet 10. The feed additives are then introduced into the feed processing equipment along the guide groove 11. At the same time, the auxiliary vibration structure 9 on one side of the slider 6 causes the slider 6 to vibrate, preventing the feed additives from adhering to the inner wall of the feed trough 7. Subsequently, quantitative addition and efficient conveying are completed, ensuring the automation level of feed production and the stability of product quality.

[0026] The above description is only a preferred embodiment of the present utility model, but the protection scope of the present utility model is not limited thereto. Any equivalent substitutions or changes made by those skilled in the art within the technical scope disclosed in the present utility model, based on the technical solution and the inventive concept of the present utility model, should be included within the protection scope of the present utility model.

Claims

1. A feed production additive device, characterized in that, The system includes a drive structure (8) installed on one side of the feed channel (1) for reciprocating sliding of the slider (6) inside the feed channel (1), and an auxiliary vibration structure (9) installed on one side of the feed hopper (2) and the slider (6) for generating high-frequency vibrations in themselves. The drive structure (8) includes a transmission rod (807) and a slide rod (808). A groove (5) is provided on the inner side of the feed channel (1), and the slider (6) is slidably connected inside the groove (5). A slide rail (809) is provided on one side of the groove (5). The slide rod (808) is fixedly connected to one side of the slider (6). The slide rod (808) is slidably connected to the inside of the slide rail (809) through the transmission rod (807). The surface of the slider (6) is provided with a feed trough (7). The auxiliary vibration structure (9) includes a rotating shaft (904), a rotating block (905), and a collision block (906). The collision block (906) is movably connected to one side of the rotating block (905) through a telescopic component. The rotating block (905) is rotatably connected to the inside of the fixed plate (903) through the rotating shaft (904).

2. The feed production additive device according to claim 1, characterized in that, The feed hopper (2) and the slider (6) are both fixedly connected to a drive motor (901) by a fixing block (902) on one side surface, and the rotating shaft (904) is connected to the output end of the drive motor (901).

3. The feed production additive device according to claim 1, characterized in that, The lower inner surface of the feeding channel (1) is provided with a second feeding port (10), and a guide groove (11) is fixedly connected to the lower part of the second feeding port (10).

4. The feed production additive device according to claim 1, characterized in that, The upper surface of the feeding channel (1) is fixedly connected to a box cover (3), and the surface of the box cover (3) is provided with a first feeding port (4). The feeding hopper (2) is fixedly connected to the upper surface of the first feeding port (4).

5. The feed production additive device according to claim 1, characterized in that, A drive motor (801) is fixedly connected to one side of the feed channel (1), and a rotating disk (802) is driven to the output end of the drive motor (801).

6. The feed production additive device according to claim 5, characterized in that, One side surface of the rotating disk (802) is rotatably connected to one end of the rotating rod (804) via a first rotating shaft (803), and the other end of the rotating rod (804) is rotatably connected to one end of the transmission rod (807) via a second rotating shaft (805).

7. The feed production additive device according to claim 1, characterized in that, A limiting block (806) for limiting the movement trajectory of the transmission rod (807) is fixedly connected to one side surface of the feeding channel (1), and the transmission rod (807) is movably connected to the surface of the limiting block (806).