Combined earthworm protein filtering equipment
By designing a combined earthworm protein filtration device, dynamic stirring and graded filtration are achieved by using a motor-driven stirring paddle and multi-layer filter cartridges. This solves the problems of insufficient stirring and single filter cartridges in traditional equipment, improves filtration efficiency and product purity, and simplifies operation and maintenance.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-23
- Publication Date
- 2026-04-07
AI Technical Summary
Traditional earthworm protein filtration equipment suffers from insufficient mixing, resulting in poor material dispersion and affecting filtration efficiency. Furthermore, the simple filter cartridge design cannot achieve multi-stage filtration, making it difficult to meet high purity requirements.
A combined earthworm protein filtration device was designed. The device uses a motor to drive the stirring paddle and a belt to drive the gears, causing the first filter cartridge to rotate in the opposite direction. The two filter cartridges (the first filter cartridge and the second filter cartridge) are combined to achieve dynamic stirring and graded filtration. The second filter cartridge has a smaller and denser pore size. The motor is electrically connected to the controller for unified management of the equipment operation.
It improves the dispersibility and filtration efficiency of materials, enhances the purity of the final product, simplifies the operation and maintenance of the equipment, reduces maintenance time and energy consumption, and extends the service life of the equipment.
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Figure CN224086231U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to filter equipment technical field especially relates to a combined earthworm protein filter equipment. BACKGROUND
[0002] Earthworm protein is a kind of bioactive substance extracted from earthworm, and it has received extensive attention because of its various pharmacological effects such as anticoagulation, blood pressure reduction and tissue repair promotion. As an important natural medicinal material, it has a wide application prospect in the field of medicine and health products. However, the extraction process of earthworm protein needs to go through multiple steps, including dissolution, filtration, concentration, etc., among which the filtration step is particularly critical. Efficient filtration not only ensures the quality of the final product, but also effectively removes impurities and improves product purity.
[0003] Traditional earthworm protein filter equipment usually has some technical problems, such as insufficient stirring leading to poor material dispersion, affecting subsequent filtration efficiency, or single filter cartridge design, unable to achieve multi-stage filtration, difficult to meet the requirements of high purity. These problems directly affect the production efficiency and product quality. Especially during the processing, if the material cannot be fully stirred, it will lead to slow filtration speed or even block the filter screen, increasing maintenance cost and time consumption.
[0004] Therefore, it is necessary to design a combined earthworm protein filter equipment to solve the above technical problems. UTILITY MODEL CONTENT
[0005] In order to overcome the shortcomings of traditional earthworm protein filter equipment, such as insufficient stirring leading to poor material dispersion, affecting subsequent filtration efficiency, or single filter cartridge design, unable to achieve multi-stage filtration, the utility model provides a combined earthworm protein filter equipment.
[0006] The technical solution of this utility model is: a combined earthworm protein filtration device, including a support, a cleaning tank, a sealing cover, a feed pipe, a controller, a motor, a stirring paddle, a belt, a mounting column, a gear, a first filter cylinder, and a second filter cylinder. The cleaning tank is fixedly connected to the support. The lower part of the cleaning tank is funnel-shaped. The top of the cleaning tank is snapped with a sealing cover. The top two sides of the sealing cover are symmetrically arranged and connected to the feed pipe. The controller is set at the left end of the front side of the support. A motor with its output shaft pointing downward is installed at the center of the top of the sealing cover. A stirring paddle is fixedly connected to the output shaft of the motor. The stirring paddle is located in the center of the inside of the cleaning tank. A mounting column is rotatably connected to the front side of the top of the sealing cover. The upper part of the stirring paddle is connected to the mounting column through belt drive. A gear is fixedly connected to the mounting column. The first filter cylinder is rotatably connected to the bottom of the cleaning tank. A ring of gear teeth is provided on the upper periphery of the first filter cylinder. The gear teeth mesh with the gear, so that the two rotate in opposite directions. The second filter cylinder is nested inside the first filter cylinder. The filter pore diameter of the second filter cylinder is smaller than that of the first filter cylinder, and the filter pores are more densely distributed. The motor and the controller are electrically connected.
[0007] In one embodiment, a safety door is also included, which is hinged to the front of the cleaning bucket.
[0008] In one embodiment, a heating element is also included, and a compartment is provided inside the cleaning tub, in which the heating element is installed, and the heating element is electrically connected to the controller.
[0009] In one embodiment, a partition is also included, and a cleaning port is provided on the inner wall of the interlayer corresponding to the safety door of the cleaning bucket, with the partition being slidably connected to the cleaning port in a closed manner.
[0010] In one embodiment, the system further includes a collection chamber, a discharge pipe, and a first water pump. The bottom of the cleaning tank is connected to a collection chamber, and the front of the collection chamber is connected to a discharge pipe. The first water pump is mounted on the discharge pipe and is electrically connected to the controller.
[0011] In one embodiment, a second water pump is also included, which is installed between the feed pipes on both sides and is electrically connected to the controller.
[0012] The beneficial effects are: 1. This utility model uses a motor to drive the stirring paddle and uses belt transmission to drive the gear on the mounting column to rotate the first filter cartridge in the opposite direction, realizing dynamic stirring and filtration of materials in the cleaning tank, which helps to increase the relative movement of materials, improve the dispersion and filtration efficiency of materials, and at the same time, the fine filtration pore size of the second filter cartridge improves the purity of the final product.
[0013] 2. This utility model, by incorporating a safety door on the front of the cleaning tank and a corresponding cleaning port, facilitates the loading, unloading, removal of residues, and routine maintenance of the equipment. This design simplifies operation and reduces the time and labor required for maintenance.
[0014] 3. This utility model effectively avoids the pollution problem caused by liquid residue by setting a discharge pipe at the bottom of the liquid collection tank and installing a first water pump for rapid extraction of liquid, thus achieving the effect of environmental protection and energy saving. At the same time, the reasonable design helps to reduce energy consumption. Attached Figure Description
[0015] Figure 1 This is a schematic diagram of the structure of this utility model.
[0016] Figure 2 This is a partial cross-sectional view of the components of this utility model, including the bracket, cleaning bucket, and sealing cap.
[0017] Figure 3 This is a partial cross-sectional view of the components of this utility model, including the feed pipe, controller, and partition.
[0018] Figure 4 This is a partial cross-sectional view of the components of this utility model, including the heating tube, partition, and collection chamber. The components are labeled as follows: 1-support, 2-cleaning bucket, 3-sealing cover, 4-discharge pipe, 5-controller, 6-motor, 7-stirring paddle, 8-mounting column, 81-belt, 9-gear, 10-first filter cartridge, 11-second filter cartridge, 12-safety door, 13-heating tube, 14-partition, 15-collection chamber, 16-discharge pipe, 17-first water pump, 18-second water pump. Detailed Implementation
[0019] The present invention will be further described below with reference to the embodiments shown in the accompanying drawings.
[0020] Example: A combined earthworm protein filtration device, such as Figures 1-4As shown, the system includes a support frame 1, a cleaning tank 2, a sealing cover 3, a discharge pipe 4, a controller 5, a motor 6, a stirring paddle 7, a belt 81, a mounting column 8, a gear 9, a first filter cartridge 10, and a second filter cartridge 11. The cleaning tank 2 is bolted to the support frame 1. The lower part of the cleaning tank 2 is funnel-shaped. The sealing cover 3 is snap-fitted to the top of the cleaning tank 2. The top of the sealing cover 3 has symmetrically arranged and connected to the discharge pipe 4 on both sides for conveying materials into the cleaning tank 2. The controller 5 is located at the front left end of the support frame 1 for controlling the operation of the equipment. A motor 6 with its output shaft pointing downwards is mounted at the center of the top of the sealing cover 3. A stirring paddle 7 is welded to the output shaft of the motor 6. The stirring paddle 7 is located in the center inside the cleaning tank 2. A mounting column 8 is rotatably connected to the front of the top of the sealing cover 3. The upper part of the stirring paddle 7 is connected to the mounting column 8 via a belt 81 for power transmission. A gear 9 is welded to the mounting column 8. The bottom of the cleaning tank 2 is also rotatably connected to the first filter cartridge 10. The first filter cartridge 10 has a complete ring of teeth on the outside, which mesh with the gear 9, so that the two rotate in opposite directions. The first filter cartridge 10 is nested inside the second filter cartridge 11. The filter pore diameter of the second filter cartridge 11 is smaller than that of the first filter cartridge 10, and the filter pores are more densely distributed. By setting filter cartridges with different pore sizes and densities, the effect of graded filtration can be achieved. The first filter cartridge 10 is mainly used for preliminary filtration, which can remove larger particles of impurities or sediments, while the second filter cartridge 11 further performs fine filtration on the material after preliminary filtration, capturing finer particles and ensuring the purity of the final product. The design of two filter cartridges can effectively reduce the workload of a single filter cartridge, especially for materials containing a lot of fine particles. It avoids the problem of frequent cleaning or replacement of a single filter cartridge due to rapid clogging, thereby extending the service life of the entire filtration system. The motor 6 is electrically connected to the controller 5.
[0021] The operator first feeds the processed earthworm protein material into the cleaning tank 2 through the discharge pipes 4 on both sides of the top of the sealing cap 3. The sealing cap 3 is installed on the top of the cleaning tank 2 using a snap-fit method to ensure the system's airtightness. Next, the equipment is started by the controller 5. The motor 6 located in the center of the sealing cap 3 drives the stirring paddle 7 to rotate and fully stir the material in the tank. The upper part of the stirring paddle 7 is connected to the mounting column 8 via a belt 81, so that the mounting column 8 can rotate synchronously. The gear 9 on the mounting column 8 meshes with the teeth of the outer ring of the first filter cartridge 10, causing the first filter cartridge 10 to rotate in the opposite direction. The first filter cartridge 10 contains a second filter cartridge 11. Because the filter pores of the second filter cartridge 11 are smaller and more densely distributed, the material can be efficiently separated into solid and liquid parts after stirring. The filtered liquid flows into the collection chamber 15 at the bottom of the cleaning tank 2. After filtration, it can be discharged through the discharge pipe 16 connected to the front of the collection chamber 15. The discharge pipe 16 is equipped with a first water pump 17, which can quickly extract the liquid from the collection chamber 15.
[0022] like Figures 1-3 As shown, it also includes a safety door 12, a heating tube 13, a partition 14, a liquid collection chamber 15, a discharge pipe 16, a first water pump 17, and a second water pump 18. The safety door 12 is hinged to the front of the cleaning tank 2 for easy maintenance and inspection. A double-layer is provided inside the cleaning tank 2, and a heating tube 13 is installed in the double-layer to heat the material in the tank when needed. A cleaning port is provided on the inner wall of the double-layer corresponding to the safety door 12 in the cleaning tank 2. A partition 14 is connected to the cleaning port in a closed sliding manner to facilitate the cleaning of residues. A liquid collection chamber 15 is connected to the bottom of the cleaning tank 2. A discharge pipe 16 is connected to the front of the liquid collection chamber 15. A first water pump 17 is installed on the discharge pipe 16 to quickly extract the liquid in the liquid collection chamber 15. A second water pump 18 is installed between the discharge pipes 4 on both sides to control the speed or pressure of the material entering the cleaning tank 2. The heating tube 13, the first water pump 17, and the second water pump 18 are all electrically connected to the controller 5.
[0023] To facilitate the cleaning of residues, the operator can open the safety door 12 and remove the partition 14 to access the interior of the cleaning tank 2. Then, a high-pressure water gun can be used to rinse and remove residues from the first filter cartridge 10 and the second filter cartridge 11, maintaining the cleanliness and hygiene of the equipment. Furthermore, if necessary, the material can be heated via the heating pipe 13 in the inner layer of the cleaning tank 2 to improve the filtration efficiency of certain materials or enhance the quality of the final product. The entire process is centrally managed by the controller 5, ensuring coordinated operation of all components. A second water pump 18 is installed between the two feed pipes 4 on both sides to regulate the speed or pressure of material entering the cleaning tank 2, adapting to the processing needs of different batches of material and achieving optimal filtration results. This not only improves production efficiency but also ensures consistent product quality.
[0024] The above description is merely an embodiment of this utility model and is not intended to limit the scope of this utility model. All equivalent substitutions made within the principles of this utility model should be included within the protection scope of this utility model. Contents not described in detail in this utility model are existing technologies known to those skilled in the art.
Claims
1. A combined earthworm protein filtration device, characterized in that: The system includes a bracket (1), a cleaning tank (2), a sealing cap (3), a discharge pipe (4), a controller (5), a motor (6), a stirring paddle (7), a belt (81), a mounting column (8), a gear (9), a first filter cartridge (10), and a second filter cartridge (11). The cleaning tank (2) is fixedly connected to the bracket (1). The lower part of the cleaning tank (2) is funnel-shaped. The top of the cleaning tank (2) is snapped with a sealing cap (3). The top of the sealing cap (3) is symmetrically arranged on both sides and connected to the discharge pipe (4). The controller (5) is located on the left front side of the bracket (1). An output shaft downward electric motor is installed at the center of the top of the sealing cap (3). A stirring paddle (7) is fixedly connected to the output shaft of the motor (6). The stirring paddle (7) is located in the center inside the cleaning bucket (2). A mounting column (8) is rotatably connected to the front side of the top inside the sealing cover (3). The upper part of the stirring paddle (7) is connected to the mounting column (8) by a belt (81). A gear (9) is fixedly connected to the mounting column (8). A first filter cartridge (10) is rotatably connected to the bottom inside the cleaning bucket (2). A ring of gear teeth is provided on the upper outer periphery of the first filter cartridge (10). The gear teeth mesh with the gear (9) so that the two rotate in opposite directions. A second filter cartridge (11) is nested inside the first filter cartridge (10). The filter pores of the second filter cartridge (11) are smaller than those of the first filter cartridge (10), and the filter pores are more densely distributed. The motor (6) is electrically connected to the controller (5).
2. The combined earthworm protein filtration device as described in claim 1, characterized in that: It also includes a safety door (12), which is hinged to the front of the cleaning bucket (2).
3. The combined earthworm protein filtration device as described in claim 2, characterized in that: It also includes a heating tube (13), and a double layer is provided inside the cleaning bucket (2), in which the heating tube (13) is installed, and the heating tube (13) is electrically connected to the controller (5).
4. The combined earthworm protein filtration device as described in claim 3, characterized in that: It also includes a partition (14), and a cleaning port is provided on the inner wall of the interlayer corresponding to the safety door (12) of the cleaning bucket (2), and the partition (14) is connected in a closed sliding manner at the cleaning port.
5. The combined earthworm protein filtration device as described in claim 4, characterized in that: It also includes a liquid collection chamber (15), a discharge pipe (16) and a first water pump (17). The bottom of the cleaning tank (2) is connected to a liquid collection chamber (15), and the front side of the liquid collection chamber (15) is connected to a discharge pipe (16). The first water pump (17) is installed on the discharge pipe (16) and is electrically connected to the controller (5).
6. The combined earthworm protein filtration device as described in claim 5, characterized in that: It also includes a second water pump (18), which is installed between the feed pipes (4) on both sides and is electrically connected to the controller (5).