A creatine monohydrate cloth bin multi-bin linkage feeding device

CN224736771UActive Publication Date: 2026-09-11NINGXIA TAIKANG PHARM CO LTD
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Patent Information

Application Number
CN202521882193.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-09-02
Publication Date
2026-09-11
Estimated Expiration
2035-09-02

AI Technical Summary

Technical Problem

由于6通道色选机6个进口较宽,进入布料仓的物料堆积不能均匀分布到每个落料口,影响色选机的正常运行

Benefits of technology

[0014] 1. In this utility model, the 6-channel color sorter receives creatine monohydrate material in the feed bin and uniformly vulcanizes it into the 6 channels, with the material in each channel falling evenly into the color sorter. Simultaneously, the fluidized material in the feed bin is evenly distributed throughout the bin, preventing excessive accumulation at the bottom of the feed pipe and ensuring no material is present in other areas. This solves the bottleneck that prevents the color sorter from operating normally, ensuring a smooth and rounded material contact surface. The feed bin's sheet metal is polished inside and out, and weld seams are cleaned. Silica material is used to run within the bin, polishing and rounding all details and edges. Anhydrous alcohol is used for cleaning. Before delivery, the bin is cleaned again with anhydrous alcohol. An anti-fall grid is added to the top of the feed bin to prevent accidental entry or falls. A 304 stainless steel cover and silicone pad are added to the feed bin to enhance dustproof functionality. Stainless steel corrugated pipe flexible connections are used instead of non-woven fabric structures. Four vibration motors are added to each feed bin to optimize material flow. To increase the strength of the spiral blades, four welding points are added to each spiral rotation to increase stability.

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Abstract

The utility model relates to a color sorter technical field especially is a kind of monohydrate creatine cloth storehouse multi-position linkage discharging device, including water creatine storehouse, the bottom of water creatine storehouse is fixedly connected with unloading valve vane, the bottom of unloading valve vane is fixedly connected with distributing pipe, the bottom of distributing pipe is fixedly connected with cloth storehouse material level meter, the both ends of distributing pipe are respectively communicated with unloading valve vane and cloth storehouse material level meter, the bottom of cloth storehouse material level meter is fixedly connected with cloth storehouse, the bottom of cloth storehouse is fixedly connected with material flow device, and vibration motor is installed in material flow device;6 passageway color sorter cloth storehouse receives monohydrate creatine material and is evenly vulcanized to 6 passageways, and the material of each passageway is evenly fallen into color sorter. Meanwhile, fluidized material of cloth storehouse is evenly distributed in each position of cloth storehouse, and the phenomenon that the lower part of discharging pipe is excessively high and other positions have no material is prevented, and the bottleneck that color sorter cannot normally operate is solved.
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Description

Technical Field

[0001] This utility model relates to the field of color sorter technology, specifically to a multi-compartment linkage feeding device for monohydrate creatine fabric hopper. Background Technology

[0002] When removing creatine monohydrate impurities from a 6-channel color sorter, the creatine monohydrate material enters the feed bin through a DN125 pipe. The material in the feed bin then enters one of the six feed inlets of the 6-channel color sorter for impurity removal. Because the six inlets of the 6-channel color sorter are relatively wide, the material entering the feed bin cannot be evenly distributed to each discharge port, affecting the normal operation of the color sorter. Therefore, we propose a multi-bin linkage discharge device for the creatine monohydrate feed bin. Utility Model Content

[0003] The purpose of this invention is to provide a multi-compartment linkage discharge device for creatine monohydrate fabric silos, so as to solve the problems mentioned in the background art.

[0004] To achieve the above objectives, this utility model provides the following technical solution:

[0005] A multi-compartment linkage discharge device for a monohydrate creatine fabric silo includes a monohydrate creatine silo. A discharge valve blade is fixedly connected to the bottom of the monohydrate creatine silo. A distribution pipe is fixedly connected to the bottom of the discharge valve blade. A fabric silo level gauge is fixedly connected to the bottom of the distribution pipe. The two ends of the distribution pipe are respectively connected to the discharge valve blade and the fabric silo level gauge. A fabric silo is fixedly connected to the bottom of the fabric silo level gauge. A material flow device is fixedly connected to the bottom of the fabric silo. A vibration motor is installed inside the material flow device. A discharge regulating valve blade is fixedly connected to the bottom of the material flow device.

[0006] As a preferred embodiment of this utility model, the bottom of the unloading regulating valve blade is fixedly connected to the color sorter inlet, the bottom of the color sorter inlet is fixedly connected to the color sorter, and the bottom of the color sorter is fixedly connected to the color sorter outlet.

[0007] As a preferred embodiment of this utility model, the water skeletal acid silo, unloading valve blade, distribution pipe, material distribution silo level gauge, material distribution silo, material flow device, unloading regulating valve blade, color sorter inlet, color sorter, color sorter outlet and vibration motor are provided in two sets, and the two sets of water skeletal acid silo, unloading valve blade, distribution pipe, material distribution silo level gauge, material distribution silo, material flow device, unloading regulating valve blade, color sorter inlet, color sorter, color sorter outlet and vibration motor are positioned opposite each other.

[0008] As a preferred embodiment of this utility model, the water-soluble acid silo is conical in shape and made of stainless steel.

[0009] As a preferred embodiment of this utility model, the unloading valve blade and the distribution pipe are inclinedly arranged at the bottom of the water-soluble acid silo, and the distribution pipe extends into the material level gauge of the material distribution silo.

[0010] As a preferred embodiment of this utility model, the fabric bin is cylindrical in shape and made of stainless steel.

[0011] As a preferred embodiment of this utility model, the feed inlet of the color sorter is connected to the color sorter, and the feed inlet of the color sorter is located at the top center of the color sorter.

[0012] As a preferred embodiment of this utility model, the unloading regulating valve blade and the unloading valve blade are made of the same material.

[0013] Compared with the prior art, the beneficial effects of this utility model are:

[0014] 1. In this utility model, the 6-channel color sorter receives creatine monohydrate material in the feed bin and uniformly vulcanizes it into the 6 channels, with the material in each channel falling evenly into the color sorter. Simultaneously, the fluidized material in the feed bin is evenly distributed throughout the bin, preventing excessive accumulation at the bottom of the feed pipe and ensuring no material is present in other areas. This solves the bottleneck that prevents the color sorter from operating normally, ensuring a smooth and rounded material contact surface. The feed bin's sheet metal is polished inside and out, and weld seams are cleaned. Silica material is used to run within the bin, polishing and rounding all details and edges. Anhydrous alcohol is used for cleaning. Before delivery, the bin is cleaned again with anhydrous alcohol. An anti-fall grid is added to the top of the feed bin to prevent accidental entry or falls. A 304 stainless steel cover and silicone pad are added to the feed bin to enhance dustproof functionality. Stainless steel corrugated pipe flexible connections are used instead of non-woven fabric structures. Four vibration motors are added to each feed bin to optimize material flow. To increase the strength of the spiral blades, four welding points are added to each spiral rotation to increase stability.

[0015] 2. In this utility model, an oiling and maintenance window has been added to the internally installed bearing housing, making maintenance more convenient. The number of blades of the unloading valve has been increased from three to six. The blade width has been increased. For the case of a full hopper, a full hopper level sensor has been added, and an alarm light has been installed to provide options for the automatic control of upstream equipment (a full hopper signal output point is reserved). A special type of discharge valve blade is installed at the six material discharge ports of the material distribution hopper to meet the requirements of uniform material distribution. Attached Figure Description

[0016] Figure 1 This is a front view structural diagram of the present invention;

[0017] Figure 2 This is a side view of the structure of this utility model;

[0018] Figure 3 This is a schematic diagram of the system control of this utility model.

[0019] In the diagram: 1. Water-soluble acid silo; 2. Discharge valve blade; 3. Distribution pipe; 4. Material level gauge for distribution silo; 5. Distribution silo; 6. Material flow device; 7. Discharge regulating valve blade; 8. Color sorter inlet; 9. Color sorter; 10. Color sorter outlet; 11. Vibration motor. Detailed Implementation

[0020] The technical solutions of the present utility model will be clearly and completely described below with reference to the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. All other embodiments obtained by those skilled in the art based on the embodiments of the present utility model without creative effort are within the protection scope of the present utility model.

[0021] For examples, please refer to Figures 1-3 This utility model provides a technical solution:

[0022] A multi-compartment linkage discharge device for a monohydrate creatine fabric silo includes a monohydrate creatine silo 1. A discharge valve blade 2 is fixedly connected to the bottom of the monohydrate creatine silo 1. A distribution pipe 3 is fixedly connected to the bottom of the discharge valve blade 2. A fabric silo level gauge 4 is fixedly connected to the bottom of the distribution pipe 3. The two ends of the distribution pipe 3 are respectively connected to the discharge valve blade 2 and the fabric silo level gauge 4. A fabric silo 5 is fixedly connected to the bottom of the fabric silo level gauge 4. A material flow device 6 is fixedly connected to the bottom of the fabric silo 5. A vibration motor 11 is installed inside the material flow device 6. A discharge regulating valve blade 7 is fixedly connected to the bottom of the material flow device 6.

[0023] In this embodiment, as Figure 2 As shown, the bottom of the unloading regulating valve blade 7 is fixedly connected to the color sorter inlet 8, the bottom of the color sorter inlet 8 is fixedly connected to the color sorter 9, and the bottom of the color sorter 9 is fixedly connected to the color sorter outlet 10. The water skeletal acid silo 1, unloading valve blade 2, distribution pipe 3, material distribution silo level gauge 4, material distribution silo 5, material flow device 6, unloading regulating valve blade 7, color sorter inlet 8, color sorter 9, color sorter outlet 10 and vibration motor 11 are arranged in two sets, and the two sets of water skeletal acid silo 1, unloading valve blade 2, distribution pipe 3, material distribution silo level gauge 4, material distribution silo 5, material flow device 6, unloading regulating valve blade 7, color sorter inlet 8, color sorter 9, color sorter outlet 10 and vibration motor 11 are positioned opposite each other.

[0024] The 6-channel color sorter receives creatine monohydrate material in its feed hopper, which is then uniformly vulcanized into all six channels, allowing the material to fall evenly into the sorter. Simultaneously, the fluidized material in the feed hopper is evenly distributed throughout, preventing excessive accumulation at the bottom of the feed pipe and ensuring no material is left in other areas. This addresses a bottleneck that prevents the color sorter from operating normally and guarantees a smooth and rounded material contact surface: the feed hopper's sheet metal is polished inside and out, and weld seams are cleaned; silica material is used to polish and round all edges; anhydrous alcohol is used for cleaning; and the feed hopper is cleaned again with anhydrous alcohol before delivery. An anti-fall grid is added to the top of the feed hopper to prevent accidental entry or falls. A 304 stainless steel cover and silicone pad are added to the feed hopper to enhance dust prevention. Stainless steel corrugated pipes are used for flexible connections instead of non-woven fabric structures. Four vibration motors are added to each feed hopper to optimize material flow. To increase the strength of the spiral blades, four welding points are added to each spiral rotation for increased stability.

[0025] In this embodiment, as Figure 3 As shown, the water skin acid silo 1 is conical in shape and made of stainless steel. The discharge valve blade 2 and the distribution pipe 3 are inclinedly arranged at the bottom of the water skin acid silo 1. The distribution pipe 3 extends into the material level gauge 4 of the material distribution silo. The material distribution silo 5 is cylindrical in shape and made of stainless steel. The color sorter inlet 8 is connected to the color sorter 9. The color sorter inlet 8 is located at the top center of the color sorter 9. The discharge regulating valve blade 7 and the discharge valve blade 2 are made of the same material.

[0026] Among these improvements, the internal bearing housing has been modified with an added lubrication and maintenance window, making maintenance more convenient. The number of blades on the unloading valve has been increased from three to six, and the blade width has been increased. In case of a full hopper, a full hopper level sensor has been added, along with an alarm light, providing options for automatic control of upstream equipment (with a reserved full hopper signal output point). A special type of discharge valve blade has been installed at the six material discharge ports of the material distribution hopper to meet the requirements for uniform material distribution.

[0027] The working process of this utility model is as follows: When the multi-compartment linkage discharge device for creatine monohydrate silos designed in this scheme is in operation, creatine monohydrate crystals are transported to creatine monohydrate silo 1 via an upstream conveying device. The silo level is controlled by the upstream equipment. The silo mainly balances the incoming and outgoing materials to meet the needs of continuous and stable operation. The crystalline materials in creatine monohydrate silo 1 enter the A / B positions of the discharge valve blades 2 through the discharge port, then enter the A / B positions of the distribution pipe 3, and finally enter the A / B positions of the distribution silo 5. The A / B level of the distribution silo 5 is captured by the A / B position of the distribution silo level gauge 4 and fed back to the control system. By adjusting the A / B position of the discharge valve blades 2, the speed of the A / B position of the discharge valve blades 2 is automatically adjusted to control the amount of material entering the A / B position of the distribution silo 5. The special structure of the A / B position of the discharge valve blades 2 allows for adjustment down to the kilogram level, fully meeting the requirements. The material is evenly distributed. The material entering the A / B of the material hopper 5 is evenly distributed to the A / B inlets of the six specially structured discharge regulating valve blades 7 through the A / B of the special structured material flow device 6. The main function of the A / B of the material flow device 6 is to evenly distribute the creatine monohydrate material to the six discharge ports, avoiding material accumulation that would affect the color sorter 9 and cause uneven material distribution, thus affecting the color sorting effect and output. The A / B of the discharge regulating valve blades 6 is adjusted by the control center to meet the normal production of the color sorter 9. After passing through the A / B of the special structured discharge regulating valve blades 7, the creatine monohydrate material evenly enters the color sorter inlet 8. After entering the A / B of the color sorter inlet 8, the creatine monohydrate material enters the A / B of the color sorter 9. After color sorting, the good product is discharged through the A / B of the color sorter discharge port 10.

[0028] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A multi-compartment linkage discharge device for creatine monohydrate fabric silos, comprising a creatine monohydrate silo (1), characterized in that: The bottom of the water skin acid silo (1) is fixedly connected to a discharge valve blade (2), the bottom of the discharge valve blade (2) is fixedly connected to a distribution pipe (3), the bottom of the distribution pipe (3) is fixedly connected to a material distribution silo level gauge (4), the two ends of the distribution pipe (3) are respectively connected to the discharge valve blade (2) and the material distribution silo level gauge (4), the bottom of the material distribution silo level gauge (4) is fixedly connected to a material distribution silo (5), the bottom of the material distribution silo (5) is fixedly connected to a material flow device (6), a vibration motor (11) is installed in the material flow device (6), and the bottom of the material flow device (6) is fixedly connected to a discharge regulating valve blade (7).

2. The multi-compartment linkage feeding device for creatine monohydrate fabric silos according to claim 1, characterized in that, The bottom of the unloading regulating valve blade (7) is fixedly connected to the color sorter inlet (8), the bottom of the color sorter inlet (8) is fixedly connected to the color sorter (9), and the bottom of the color sorter (9) is fixedly connected to the color sorter outlet (10).

3. The creatine monohydrate dispensing bin multi-bin linked dispensing device of claim 1, wherein, The water saccharide silo (1), unloading valve blade (2), distribution pipe (3), material distribution silo level gauge (4), material distribution silo (5), material flow device (6), unloading regulating valve blade (7), color sorter inlet (8), color sorter (9), color sorter outlet (10) and vibration motor (11) are provided in two sets, and the two sets of water saccharide silo (1), unloading valve blade (2), distribution pipe (3), material distribution silo level gauge (4), material distribution silo (5), material flow device (6), unloading regulating valve blade (7), color sorter inlet (8), color sorter (9), color sorter outlet (10) and vibration motor (11) are positioned opposite each other.

4. The multi-compartment linkage feeding device for creatine monohydrate fabric silos according to claim 1, characterized in that, The water-soluble acid silo (1) is conical in shape and is made of stainless steel.

5. The creatine monohydrate dispensing bin multi-bin linked dispensing device of claim 1, wherein, The unloading valve blade (2) and the distribution pipe (3) are inclinedly arranged at the bottom of the water-soluble acid silo (1), and the distribution pipe (3) extends into the material level gauge (4) of the material distribution silo.

6. The multi-compartment linkage feeding device for creatine monohydrate fabric silos according to claim 1, characterized in that, The fabric bin (5) is cylindrical in shape and is made of stainless steel.

7. The creatine monohydrate dispensing bin multi-bin linked dispensing device of claim 2, wherein, The color sorter inlet (8) is connected to the color sorter (9), and the color sorter inlet (8) is located at the top center of the color sorter (9).

8. The creatine monohydrate dispensing bin multi-bin linked dispensing device of claim 1, wherein, The unloading regulating valve blade (7) and the unloading valve blade (2) are made of the same material.