An automated powder and liquid dual-chamber bag feeding device

By designing an automated powder and liquid dual-chamber bag feeding device, which utilizes conveyor belts and pipelines to achieve automated material transfer, the problem of low efficiency and high labor intensity of manual operation in existing technologies has been solved, thereby improving production efficiency and accuracy.

CN224576902UActive Publication Date: 2026-07-31HUNAN KELUN PHARMA
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
HUNAN KELUN PHARMA
Filing Date
2025-09-19
Publication Date
2026-07-31

AI Technical Summary

Technical Problem

In existing technologies, the raw material conveying method at the preparation station relies on manual operation, which results in low transportation efficiency, poor accuracy, and high labor intensity.

Method used

An automated powder and liquid dual-chamber bag feeding device was designed, including an air blade cleaning station, an alcohol disinfection station, a material weighing station, a vacuum feeding station, and a disperser station. It utilizes conveyor belts and pipelines to achieve automated material transfer, and combines a variable frequency high-pressure blower, alcohol nozzles, a weighing system, and a vacuum feeding system to achieve automated material processing.

Benefits of technology

It improves material handling efficiency, reduces manual labor intensity, avoids the shortcomings of manual transportation, and enhances production efficiency and precision.

✦ Generated by Eureka AI based on patent content.

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Abstract

This utility model relates to the technical field of feeding devices, specifically to an automated powder-liquid dual-chamber bag feeding device, including a first air blade cleaning station, an alcohol disinfection station on one side of the first air blade cleaning station, a second air blade cleaning station on one side of the alcohol disinfection station, a material weighing station on one side of the second air blade cleaning station, and a vacuum feeding station on one side of the material weighing station; a material storage station and a weighing station are connected to one side of the vacuum feeding station via pipes, and a disperser station is connected to one side of the material storage station and the weighing station via pipes; conveyor belts are respectively installed in the first air blade cleaning station, the alcohol disinfection station, and the second air blade cleaning station, and conveyor belts are installed on both sides of the material weighing station; the conveyor belts are used to move the material, which sequentially passes through the first air blade cleaning station, the alcohol disinfection station, the second air blade cleaning station, the material weighing station, the vacuum feeding station, the material storage station, and the weighing station, and finally arrives at the diluent tank of the disperser station.
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Description

Technical Field

[0001] This utility model relates to the field of feeding device technology, specifically to an automated powder and liquid dual-chamber bag feeding device. Background Technology

[0002] In the existing technology, the raw material transfer method at the preparation station involves manually transferring the materials to the unpacking room in the workshop. The operators unpack, clean, and disinfect each bag of material, and then transport each bag of material to the material storage room at the preparation station via a conveyor belt. The operators weigh the raw materials required for each batch and then transfer the raw materials to the mixing room for manual feeding.

[0003] In the preparation of materials, material transportation is a key link in the production process. Traditional material transportation methods mainly rely on manual operation, which has the risks of low transportation efficiency, poor accuracy, high labor intensity, and preparation errors. Utility Model Content

[0004] To address the problems existing in the prior art, the purpose of this utility model is to provide an automated powder and liquid dual-chamber bag feeding device, which solves the problem of low transportation efficiency in the existing technology where the raw material conveying method at the preparation station involves manually transferring materials to the workshop unpacking room.

[0005] An automated powder and liquid dual-chamber bag feeding device includes a first air blade cleaning station, an alcohol disinfection station on one side of the first air blade cleaning station, a second air blade cleaning station on one side of the alcohol disinfection station, a material weighing station on one side of the second air blade cleaning station, and a vacuum feeding station on one side of the material weighing station. A material storage station and a weighing station are connected to one side of the vacuum feeding station via pipes, and a disperser station is connected to one side of the material storage station and the weighing station via pipes. Conveyor belts are installed in the air blade cleaning station 1, alcohol disinfection station, and air blade cleaning station 2, and conveyor belts are installed on both sides of the material weighing station. The conveyor belts are used to move the material. The material passes through the air blade cleaning station 1, alcohol disinfection station, air blade cleaning station 2, material weighing station, vacuum feeding station, material storage station, and weighing station in sequence, and finally arrives at the diluent tank in the disperser station.

[0006] Furthermore, the air blade cleaning station includes a first mounting frame, a variable frequency high-pressure fan is mounted on the top of the first mounting frame, a conveyor belt is mounted on the bottom of the first mounting frame, a foreign object collection device is mounted below the conveyor belt, and an air blade is mounted on one side of the first mounting frame.

[0007] Furthermore, the alcohol disinfection station includes a second mounting frame, with an alcohol storage device and an alcohol spray nozzle connected to the alcohol storage device at the top of the second mounting frame, and a photoelectric sensing device on one side of the second mounting frame; a conveyor belt is installed at the bottom of the second mounting frame.

[0008] Furthermore, the second air blade cleaning station has the same structure as the first air blade cleaning station.

[0009] Furthermore, the material weighing station includes a conveyor belt weighing system for weighing materials.

[0010] Furthermore, the vacuum feeding station includes a feeding hopper with a feeding hopper cover on one side; an exhaust system is installed on the top of the feeding hopper, with an exhaust valve at the top of the exhaust system and a dust collection system installed inside the feeding hopper at the bottom of the exhaust system; an air vibrator is installed on one side of the feeding hopper, and a material crusher is installed at the bottom of the feeding hopper. A first vacuum feeding pipe is connected to the bottom of the material crusher, and a first vacuum pump is installed on the first vacuum feeding pipe. One end of the first vacuum feeding pipe is connected to the material storage and weighing station.

[0011] Furthermore, the material storage and weighing station includes a material storage bin, a first pneumatic butterfly valve at the top of the material storage bin, a suction device connected to the top of the first pneumatic butterfly valve, the suction device being connected to a first vacuum feeding pipe, a first weighing system on both sides of the material storage bin, a first air vibration device on one side of the material storage bin, a second pneumatic butterfly valve at the bottom of the material storage bin, a vibrating feeding device connected to the bottom of the second pneumatic butterfly valve, a weighing bin at one end of the vibrating feeding device, a second weighing system on both sides of the weighing bin, a second air vibration device on one side of the weighing bin, a second vacuum feeding pipe connected to the bottom of the weighing bin, a second vacuum pump installed on the second vacuum feeding pipe, and the second vacuum feeding pipe being connected to the disperser station via a connecting hose.

[0012] Furthermore, the disperser station includes a disperser, a third pneumatic butterfly valve is installed on the top of the disperser, the top of the third pneumatic butterfly valve is connected to the second vacuum feeding pipe, and the bottom of the second material silo is connected to the diluent tank.

[0013] Beneficial effects: The movement of materials mainly relies on conveyor belts and pipelines, eliminating the need for manual transportation. Compared to manual transportation, conveyor belt and pipeline transportation is more efficient, avoiding the problem of high labor intensity in manual transportation and effectively improving production efficiency. Attached Figure Description

[0014] To more clearly illustrate the technical solutions in the embodiments of this utility model, the drawings used in the specification will be briefly introduced below. Obviously, the drawings described below are only some embodiments recorded in this utility model. For those skilled in the art, other drawings can be obtained based on these drawings.

[0015] Figure 1 This is a schematic diagram of the overall structure in an embodiment of the present utility model; Figure 2This is the first air blade cleaning station in the embodiment of this utility model; Figure 3 This is the alcohol disinfection station in the embodiments of this utility model; Figure 4 This is the second air blade cleaning station in the embodiment of this utility model; Figure 5 This is the material weighing station in the embodiments of this utility model; Figure 6 This is the vacuum loading station in the embodiments of this utility model; Figure 7 This refers to the material storage station and weighing station in the embodiments of this utility model; Figure 8 The dispersing station in this embodiment of the present invention.

[0016] In the diagram: 1. Air blade cleaning station one; 101. Variable frequency high-pressure fan; 102. Air blade; 103. Foreign object collection device; 2. Alcohol disinfection station; 201. Alcohol storage device; 202. Alcohol spray nozzle; 203. Photoelectric sensor; 3. Air blade cleaning station two; 4. Material weighing station; 401. Conveyor belt weighing system; 402. Shaft and pulley; 5. Vacuum feeding station; 501. Exhaust valve; 502. Exhaust system; 503. Feeding hopper cover; 504. Dust collection system; 505. First vacuum pump; 506. Feeding hopper; 507. Material crusher; 508. First vacuum feeding pipe; 509. Air vibrator; 6. Material storage station and weighing station; 601. Feeder; 602. First pneumatic butterfly valve; 603. First weighing system; 604. Material storage bin; 605. First pneumatic vibration device; 606. Second pneumatic butterfly valve; 607. Vibrating feeding device; 608. Second weighing system; 609. Weighing bin; 610. Second pneumatic vibration device; 611. Second vacuum feeding pipe; 7. Disperser station; 701. Third pneumatic butterfly valve; 702. Disperser; 703. Diluted mixing tank; 9. Conveyor belt. Detailed Implementation

[0017] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, not all embodiments. For ease of explanation, the terms "vertical", "horizontal", "left", "right", "upper", "lower", "inner", "outer", "bottom", etc., used in this specification indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this application.

[0018] It should be noted that the embodiments and features involved in the embodiments of this utility model can be combined with each other without conflict. All other embodiments obtained by those skilled in the art based on the embodiments of this utility model without inventive effort are within the scope of protection of this utility model.

[0019] like Figures 1-8 The illustrated automated powder and liquid dual-chamber bag feeding device includes a first cleaning station 1 with air blades 102, an alcohol disinfection station 2 on one side of the first cleaning station 1 with air blades 102, a second cleaning station 2 with air blades 102 on one side of the second cleaning station 2 with air blades 102, a material weighing station 4 on one side of the material weighing station 4 with a vacuum feeding station 5 on one side of the material weighing station 4; a material storage station and a weighing station 6 are connected to the vacuum feeding station 5 via a pipe, and a disperser station 702 is connected to the material storage station and the weighing station 6 via a pipe. Conveyor belts 9 are installed in cleaning station 1, alcohol disinfection station 2, and cleaning station 2 of air blade 102. Conveyor belts 9 are also installed on both sides of material weighing station 4. The conveyor belts 9 are used to move the material. The material passes through cleaning station 1, alcohol disinfection station 2, cleaning station 2, material weighing station 4, vacuum feeding station 5, material storage station and weighing station 6 in sequence, and finally arrives at the diluent tank 703 of station 7 of disperser 702.

[0020] In this embodiment, the movement of materials mainly relies on the conveyor belt 9 and the pipeline, without the need for manual transportation. Compared with manual transportation, the conveyor belt 9 and the pipeline are more efficient, avoiding the problem of high labor intensity in manual transportation and effectively improving production efficiency.

[0021] The cleaning station 1 of the wind blade 102 includes a first mounting frame, a variable frequency high-pressure fan 101 is installed on the top of the first mounting frame, a conveyor belt 9 is installed at the bottom of the first mounting frame, a foreign object collection device 103 is installed below the conveyor belt 9, and a wind blade 102 is installed on one side of the first mounting frame.

[0022] In this embodiment, the variable frequency high-pressure blower 101 and the air blade 102 are used to clean the material on the conveyor belt 9. The cleaned foreign objects fall into the foreign object collection device 103 for collection and then are processed in a centralized manner.

[0023] The alcohol disinfection station 2 includes a second mounting frame. The top of the second mounting frame is equipped with an alcohol storage device 201 and an alcohol spray nozzle 202 connected to the alcohol storage device 201. A photoelectric sensor 203 is installed on one side of the second mounting frame. A conveyor belt 9 is installed at the bottom of the second mounting frame.

[0024] In this embodiment, the photoelectric sensor 203 is used as a switch to control the alcohol nozzle 202 to spray alcohol or stop spraying alcohol, so as to disinfect the materials with alcohol.

[0025] The second cleaning station of the wind blade 102 has the same structure as the first cleaning station of the wind blade 102.

[0026] In this embodiment, the second cleaning station of the air blade 102 is used to clean and dry materials so that they can be used in subsequent stations.

[0027] The material weighing station 4 includes a conveyor belt type 9 weighing system 401, which is used to weigh materials.

[0028] In this embodiment, the conveyor belt type 9 weighing system 401 is the prior art. The conveyor belt type 9 weighing system 401 is equipped with a conveyor belt, which is driven by axle wheel 402.

[0029] The vacuum feeding station 5 includes a feeding bin 506, with a feeding bin cover 503 on one side; an exhaust system 502 is installed on the top of the feeding bin 506, with an exhaust valve 501 on the top of the exhaust system 502, and a dust collection system 504 installed inside the feeding bin 506 at the bottom of the exhaust system 502; an air vibrator 509 is installed on one side of the feeding bin 506, and a material crusher 507 is installed at the bottom of the feeding bin 506. A first vacuum feeding pipe 508 is connected to the bottom of the material crusher 507, and a first vacuum pump 505 is installed on the first vacuum feeding pipe 508. One end of the first vacuum feeding pipe 508 is connected to the material storage and weighing station.

[0030] In this embodiment, the feed bin 506 cover 503 is opened, and the conveyor belt 9 on one side of the conveyor belt 9 type weighing system 401 feeds the material into the feed bin 506. The feed bin 506 cover 503 is then closed. The air vibrator 509 vibrates, and the material in the feed bin 506 moves downward. The material crusher 507 crushes the material, and the first vacuum pump 505 is started. The crushed material enters the first vacuum feeding pipe 508. After the exhaust valve 501 is opened, the exhaust system 502 realizes the exchange of air inside and outside the feed bin 506. The dust collection system 504 is used to prevent external dust from entering and contaminating the material.

[0031] The material storage and weighing station includes a material storage bin 604. A first pneumatic butterfly valve 602 is installed at the top of the material storage bin 604, and a suction device 601 is connected to the top of the first pneumatic butterfly valve 602. The suction device 601 is connected to a first vacuum feeding pipe 508. A first weighing system 603 is installed on both sides of the material storage bin 604. A first air vibration device 605 is installed on one side of the material storage bin 604. A second pneumatic butterfly valve 606 is installed at the bottom of the material storage bin 604. The bottom of the moving butterfly valve 606 is connected to a vibrating feeding device 607. One end of the vibrating feeding device 607 is connected to a weighing chamber 609. A second weighing system 608 is provided on both sides of the weighing chamber 609. A second air vibration device 610 is provided on one side of the weighing chamber 609. A second vacuum feeding pipe 611 is connected to the bottom of the weighing chamber 609. A second vacuum pump is provided on the second vacuum feeding pipe 611. The second vacuum feeding pipe 611 is connected to the station 7 of the disperser 702 through a connecting hose.

[0032] In this embodiment, the suction device 601 is used to draw material from the first vacuum feeding pipe 508 into the suction device 601. The material in the suction device 601 passes through the first pneumatic butterfly valve 602 and enters the material storage bin 604. The first weighing system 603 is used to weigh the material in the material storage bin 604 and display the weight of the material in real time. The first air vibration device 605 vibrates, and the material moves downward through the second pneumatic butterfly valve 606 into the vibrating feeding device 607. The vibrating feeding device 607 moves the material into the weighing bin 609. The second weighing system 608 weighs the material and displays the weight of the material in real time. The second air vibration device 610 is pneumatic, and the material enters the second vacuum feeding pipe 611. The second vacuum pump on the second vacuum feeding pipe 611 is started to draw in the material. The material feeding speed is increased or decreased by the changes in the material on the second weighing system 608.

[0033] The disperser 702 station 7 includes a disperser 702. A third pneumatic butterfly valve 701 is installed on the top of the disperser 702. The top of the third pneumatic butterfly valve 701 is connected to the second vacuum feeding pipe 611, and the bottom of the second material bin is connected to the diluent tank 703.

[0034] In this embodiment, the disperser 702 is used to disperse materials, and the dilution tank 703 is used to prepare drugs.

[0035] Although preferred embodiments of the present invention have been described, those skilled in the art, upon learning the basic inventive concept, can make other changes and modifications to these embodiments. Therefore, the appended claims are intended to be interpreted as including both the preferred embodiments and all changes and modifications falling within the scope of the present invention. Clearly, those skilled in the art can make various alterations and modifications to the present invention without departing from its spirit and scope. Thus, if such modifications and modifications fall within the scope of the claims of the present invention and their equivalents, the present invention also intends to include such modifications and modifications.

Claims

1. A powder-liquid dual chamber bag automatic feeding device, characterized in that, The system includes a first air blade cleaning station, an alcohol disinfection station on one side of the first air blade cleaning station, a second air blade cleaning station on one side of the alcohol disinfection station, a material weighing station on one side of the second air blade cleaning station, and a vacuum feeding station on one side of the material weighing station. A material storage station and a weighing station are connected to one side of the vacuum feeding station via pipes, and a disperser station is connected to one side of the material storage station and the weighing station via pipes. Conveyor belts are installed in the air blade cleaning station 1, alcohol disinfection station, and air blade cleaning station 2, and conveyor belts are installed on both sides of the material weighing station. The conveyor belts are used to move the material. The material passes through the air blade cleaning station 1, alcohol disinfection station, air blade cleaning station 2, material weighing station, vacuum feeding station, material storage station, and weighing station in sequence, and finally arrives at the diluent tank in the disperser station.

2. The automated powder-liquid dual-chamber bag feeding device according to claim 1, characterized in that, The air blade cleaning station includes a first mounting frame, a variable frequency high-pressure fan mounted on the top of the first mounting frame, a conveyor belt mounted on the bottom of the first mounting frame, a foreign object collection device mounted below the conveyor belt, and an air blade mounted on one side of the first mounting frame.

3. The automated powder-liquid dual-chamber bag feeding device according to claim 1, characterized in that, The alcohol disinfection station includes a second mounting frame, with an alcohol storage device and an alcohol spray nozzle connected to the alcohol storage device on the top of the second mounting frame, and a photoelectric sensor on one side of the second mounting frame; a conveyor belt is installed at the bottom of the second mounting frame.

4. The automated powder-liquid dual-chamber bag feeding device according to claim 1, characterized in that, The second air blade cleaning station has the same structure as the first air blade cleaning station.

5. The automated powder-liquid dual-chamber bag feeding device according to claim 1, characterized in that, The material weighing station includes a conveyor belt weighing system for weighing materials.

6. The automated powder-liquid dual-chamber bag feeding device according to claim 1, characterized in that, The vacuum feeding station includes a feeding hopper with a feeding hopper cover on one side; an exhaust system is installed on the top of the feeding hopper, with an exhaust valve at the top of the exhaust system and a dust collection system installed inside the feeding hopper at the bottom of the exhaust system; an air vibrator is installed on one side of the feeding hopper, and a material crusher is installed at the bottom of the feeding hopper. A first vacuum feeding pipe is connected to the bottom of the material crusher, and a first vacuum pump is installed on the first vacuum feeding pipe. One end of the first vacuum feeding pipe is connected to the material storage and weighing station.

7. The automated powder-liquid dual-chamber bag feeding device according to claim 6, characterized in that, The material storage and weighing station includes a material storage bin. A first pneumatic butterfly valve is installed at the top of the material storage bin, and a feeder is connected to the top of the first pneumatic butterfly valve. The feeder is connected to a first vacuum feeding pipe. A first weighing system is installed on both sides of the material storage bin. A first air vibration device is installed on one side of the material storage bin. A second pneumatic butterfly valve is installed at the bottom of the material storage bin, and a vibrating feeding device is connected to the bottom of the second pneumatic butterfly valve. One end of the vibrating feeding device is connected to a weighing bin. A second weighing system is installed on both sides of the weighing bin, and a second air vibration device is installed on one side of the weighing bin. A second vacuum feeding pipe is connected to the bottom of the weighing bin, and a second vacuum pump is installed on the second vacuum feeding pipe. The second vacuum feeding pipe is connected to the disperser station through a connecting hose.

8. An automated powder-liquid dual-chamber bag feeding device according to any one of claims 1-7, characterized in that, The disperser station includes a disperser, a third pneumatic butterfly valve is installed on the top of the disperser, the top of the third pneumatic butterfly valve is connected to the second vacuum feeding pipe, and the bottom of the second material silo is connected to the diluent tank.