Production device of seaweed fish protein small molecule peptide composition
By designing a fully automated production device for seaweed fish protein small molecule peptide compositions, and utilizing an arc-shaped cleaning channel, magnetic transmission, and ultrasonic cleaning, the problem of low efficiency in fish bone cleaning was solved, achieving a highly efficient and safe cleaning process.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- JIANGSU FENGHUA BIOLOGICAL TECH CO LTD
- Filing Date
- 2025-02-20
- Publication Date
- 2026-04-24
AI Technical Summary
In the existing production process of seaweed fish protein small molecule peptide compositions, the efficiency of fish bone cleaning is low, and traditional cleaning equipment cannot meet the requirements.
A production device including a cleaning pipe, a guide rack, an ultrasonic generator, and a spiral conveyor rack was designed. The device achieves fully automated cleaning through an arc-shaped cleaning channel, inner and outer magnetic suction plates, and a gear transmission system. It uses gravity and magnetic transmission to separate materials from water, and combines ultrasonic cleaning to improve cleaning efficiency.
It achieves fully automated fishbone cleaning, avoiding manual intervention, improving cleaning efficiency, and reducing the risk of cuts to the human body.
Smart Images

Figure CN224157426U_ABST
Abstract
Description
Technical Field
[0001] This invention relates to a production apparatus for seaweed and fish protein small molecule peptide compositions. The invention belongs to the field of production apparatus technology, specifically to the technical field of material cleaning apparatus in the production process of seaweed and fish protein small molecule peptide compositions. Background Technology
[0002] Seaweed fish protein and seaweed fish protein water-soluble fertilizer use the same raw materials, namely seaweed and fish. They are generally made through hydrolysis, fermentation and other methods. They not only contain seaweed fish protein, but also other nutrients such as N, P and K, so their nutritional components are richer.
[0003] In order to minimize costs during production, most of them are supported by fish bone residue. Therefore, they need to be cleaned during production. Due to their special structure, most traditional cleaning devices cannot meet the cleaning requirements. Therefore, most of them use relatively simple cleaning structures for semi-automatic cleaning. Although they can be used, the cleaning efficiency is low. In order to solve the above problems, we propose a production device for seaweed fish protein small molecule peptide composition. Utility Model Content
[0004] The technical problem to be solved by this utility model is to overcome the existing defects and provide a production device for seaweed fish protein small molecule peptide composition, thereby solving the problem of low efficiency in the current cleaning of fish bones.
[0005] To achieve the above objectives, this utility model provides the following technical solution:
[0006] A production apparatus for a small molecule peptide composition of seaweed fish protein includes a base, an electrical control box mounted on the side of the base, a cleaning pipe mounted on the surface of the base, a guide rack mounted on the cleaning pipe for discharging the material inside, and an outlet end provided inside the cleaning pipe for receiving the material discharged from the guide rack.
[0007] As a preferred technical solution of this utility model, the cleaning pipe has an arc-shaped cleaning channel inside, and grooves are provided on both sides of the arc-shaped cleaning channel. A feed inlet is installed on the top side of the cleaning pipe, and an inner arc-shaped partition is provided inside the cleaning pipe to semi-enclose the arc-shaped cleaning channel. A discharge outlet is provided on the top side of the inner arc-shaped partition away from the feed inlet.
[0008] As a preferred technical solution of this utility model, the bottom end of the base is provided with a drain port for draining the inside of the arc-shaped cleaning channel. The drain port is sealed by a sealing plate. An installation groove is provided inside the base below the arc-shaped cleaning channel, and an ultrasonic generator is installed inside the installation groove.
[0009] As a preferred technical solution of this utility model, the guide frame includes a screen that is slidably installed inside the arc-shaped cleaning channel. Both sides of the screen are provided with inner magnetic protrusions that can slide inside the chute. The outside of the cleaning tube is equipped with an outer magnetic suction plate that can attract the inner magnetic protrusions, and the bottom ends of the two outer magnetic suction plates are connected by reinforcing ribs.
[0010] As a preferred technical solution of this utility model, a gear one is installed on the surface of the outer magnetic suction plate away from the cleaning tube, a bidirectional motor is installed at the top of the cleaning tube, and an installation shaft is connected to the output shaft of the bidirectional motor through a coupling. A gear two is sleeved on the outside of the installation shaft, and the gear two meshes with the gear one. A pulley one is installed at the end of the installation shaft.
[0011] As a preferred embodiment of this utility model, the discharge end includes a V-shaped receiving hopper disposed inside the cleaning pipe. Both ends of the V-shaped receiving hopper are disposed outside the cleaning pipe and connected to the top of the base. A passageway for reinforcing ribs to pass through is provided between the V-shaped receiving hopper and the cleaning pipe. A guide trough is installed at the bottom of the inside of the V-shaped receiving hopper. A spiral conveyor frame is installed inside the guide trough. The shaft inside the spiral conveyor frame passes through and extends to the outside of the guide trough and is connected to a second pulley. The second pulley is connected to the first pulley via a belt. A discharge port is provided on one side of the V-shaped receiving hopper at the position corresponding to the guide trough.
[0012] As a preferred embodiment of this utility model, filter screens are installed on the V-shaped receiving hoppers on both sides of the material guide trough, and a liquid guide trough is provided inside the V-shaped receiving hopper at the position corresponding to the filter screen. A drain outlet is provided on the other side of the V-shaped receiving hopper at the position corresponding to the liquid guide trough.
[0013] Compared with the prior art, the beneficial effects of this utility model are: during the cleaning process, the cleaning operation is carried out inside the cleaning tube, and then the cleaned material is discharged through the guide frame. Under the action of gravity, the material can fall into the discharge end, thus enabling fully automatic material cleaning operation, meeting the cleaning needs of fish bones, basically eliminating the need for manual intervention in the cleaning process, and effectively preventing fish bones from causing scratches to the human body. Attached Figure Description
[0014] Figure 1 This is a three-dimensional structural diagram of the present invention;
[0015] Figure 2 This is a three-dimensional side view of the present invention;
[0016] Figure 3 This is a schematic diagram of the second cross-sectional structure of the present invention;
[0017] Figure 4 This is a schematic diagram of the first cross-sectional structure of the present invention;
[0018] Figure 5 This is a partial enlarged view of end A1 of this utility model;
[0019] 1-Base; 11-Drainage port; 12-Sealing plate; 13-Mounting groove; 14-Ultrasonic generator; 2-Cleaning pipe; 21-Arc-shaped cleaning channel; 22-Inlet; 23-Inner arc-shaped partition; 24-Outlet 1; 25-Slide chute; 3-Guide frame; 31-Screen; 32-Inner magnetic protrusion; 33-Outer magnetic suction plate; 34-Reinforcing rib; 35-Gear 1; 36-Bidirectional motor; 37-Mounting shaft; 38-Gear 2; 39-Pulley 1; 4-Outlet end; 41-V-shaped receiving hopper; 42-Filter screen; 43-Guide chute; 44-Liquid guide chute; 45-Drainage port; 46-Baffle; 47-Spiral conveyor frame; 48-Pulley 2; 49-Belt; 410-Outlet 2; 5-Electrical control box. Detailed Implementation
[0020] 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, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0021] Please see Figure 1-5 This utility model provides a technical solution:
[0022] A production apparatus for a small molecule peptide composition of seaweed fish protein includes a base 1, an electrical control box 5 installed on the side of the base 1, a cleaning pipe 2 installed on the surface of the base 1, a guide rack 3 installed on the cleaning pipe 2 to discharge the material inside, and a discharge end 4 provided inside the cleaning pipe 2 to receive the material discharged from the guide rack 3.
[0023] The cleaning pipe 2 has an arc-shaped cleaning channel 21 inside, and grooves 25 are provided on both sides of the arc-shaped cleaning channel 21. A feed inlet 22 is installed on the top side of the cleaning pipe 2. An inner arc-shaped baffle 23 is provided inside the cleaning pipe 2 to semi-enclose the arc-shaped cleaning channel 21. A discharge outlet 24 is provided on the top side of the inner arc-shaped baffle 23 away from the feed inlet 22. The discharge outlet 24... Figure 4 The structure is designed such that a baffle is installed below the feed inlet 22 to prevent the material from falling directly into the V-shaped hopper 41. Water and materials for cleaning are added into the arc-shaped cleaning channel 21 through the feed inlet 22, while the ultrasonic generator 14 is activated to clean the material.
[0024] The bottom of the base 1 is provided with a drain port 11 for draining the inside of the arc-shaped cleaning channel 21. After a certain period of use, the inside of the arc-shaped cleaning channel 21 is cleaned by opening the sealing plate 12. The drain port 11 is sealed by the sealing plate 12. An installation groove 13 is provided inside the base 1 below the arc-shaped cleaning channel 21. An ultrasonic generator 14 is installed inside the installation groove 13.
[0025] The guide frame 3 includes a screen 31 that is slidably installed inside the arc-shaped cleaning channel 21. Both sides of the screen 31 are provided with inner magnetic protrusions 32 that can slide inside the chute 25. The outside of the cleaning pipe 2 is equipped with an outer magnetic suction plate 33 that can attract the inner magnetic protrusions 32. The bottom ends of the two outer magnetic suction plates 33 are connected by reinforcing ribs 34. Thus, when the outer magnetic suction plate 33 moves, it can drive the inner magnetic protrusions 32 to move under the action of magnetic force, thereby driving the screen 31 to move, thereby separating the cleaned material from the water.
[0026] A gear 35 is mounted on the surface of the outer magnetic suction plate 33 away from the cleaning pipe 2. A bidirectional motor 36 is mounted at the top of the cleaning pipe 2. Each output shaft of the bidirectional motor 36 is connected to a mounting shaft 37 via a coupling. A gear 38 is sleeved on the outside of the mounting shaft 37, meshing with gear 35. A pulley 39 is mounted at the end of the mounting shaft 37. When the bidirectional motor 36 operates, the outer magnetic suction plate 33 rotates along the end of the cleaning pipe 2 under the transmission of gears 38 and 35. As the screen 31 rotates... Figure 4 For example, the material is rotated clockwise to ensure that the material in the feed inlet 22 can smoothly enter the arc-shaped cleaning channel 21 and perform the cleaning operation smoothly.
[0027] The discharge end 4 includes a V-shaped hopper 41 disposed inside the cleaning pipe 2. Both ends of the V-shaped hopper 41 are disposed outside the cleaning pipe 2 and connected to the top of the base 1. A passageway for the reinforcing rib 34 to pass through is provided between the V-shaped hopper 41 and the cleaning pipe 2. A guide trough 43 is installed at the bottom of the inside of the V-shaped hopper 41. A screw conveyor frame 47 is installed inside the guide trough 43. The shaft inside the screw conveyor frame 47 passes through and extends to the outside of the guide trough 43 and is connected to a second pulley 48. The second pulley 48 is connected to the first pulley 39 via a belt 49. A discharge port 410 is provided on one side of the V-shaped hopper 41 at the position corresponding to the guide trough 43. Thus, when the mounting shaft 37 rotates, the screw conveyor frame 47 can be driven to rotate under the transmission of the first pulley 39, the second pulley 48 and the belt 49, thereby performing the material discharge operation.
[0028] Filter screens 42 are installed on the V-shaped hoppers 41 on both sides of the feed chute 43, which facilitates the drying of the falling material. A liquid guide trough 44 is provided inside the V-shaped hopper 41 at the position corresponding to the filter screen 42. A drain outlet 45 is opened on the other side of the V-shaped hopper 41 at the position corresponding to the liquid guide trough 44, which facilitates the discharge of the flowing water. During daily cleaning, water can be continuously added to the feed inlet 22, so that water overflows from the discharge outlet 24 for rinsing.
[0029] 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 production apparatus for a small molecule peptide composition of seaweed fish protein, comprising a base (1), wherein an electrical control box (5) is mounted on the side of the base (1), characterized in that: A cleaning pipe (2) is installed on the surface of the base (1). A guide frame (3) is installed on the cleaning pipe (2) to discharge the material inside. An outlet end (4) is provided inside the cleaning pipe (2) to receive the material discharged by the guide frame (3).
2. The production apparatus for a seaweed fish protein small molecule peptide composition according to claim 1, characterized in that: The cleaning pipe (2) has an arc-shaped cleaning channel (21) inside. Both sides of the arc-shaped cleaning channel (21) have grooves (25). The top side of the cleaning pipe (2) has a feed inlet (22). The cleaning pipe (2) has an inner arc-shaped partition (23) that partially encloses the arc-shaped cleaning channel (21). The top of the inner arc-shaped partition (23) has a discharge outlet (24) on the side away from the feed inlet (22).
3. The production apparatus for a seaweed fish protein small molecule peptide composition according to claim 2, characterized in that: The bottom end of the base (1) is provided with a drain port (11) for draining the inside of the arc-shaped cleaning channel (21). The drain port (11) is sealed by a sealing plate (12). An installation groove (13) is provided inside the base (1) below the arc-shaped cleaning channel (21). An ultrasonic generator (14) is installed inside the installation groove (13).
4. The production apparatus for a seaweed fish protein small molecule peptide composition according to claim 2, characterized in that: The guide frame (3) includes a screen (31) that is slidably installed inside the arc-shaped cleaning channel (21). Both sides of the screen (31) are provided with inner magnetic protrusions (32) that can slide inside the chute (25). The outside of the cleaning tube (2) is equipped with an outer magnetic suction plate (33) that can attract the inner magnetic protrusions (32), and the bottom ends of the two outer magnetic suction plates (33) are connected by reinforcing ribs (34).
5. The production apparatus for a seaweed fish protein small molecule peptide composition according to claim 4, characterized in that: Gear 1 (35) is installed on the surface of the outer magnetic suction plate (33) away from the cleaning tube (2). A bidirectional motor (36) is installed at the top of the cleaning tube (2). The output shaft of the bidirectional motor (36) is connected to the mounting shaft (37) by a coupling. Gear 2 (38) is sleeved on the outside of the mounting shaft (37). Gear 2 (38) meshes with gear 1 (35). A pulley 1 (39) is installed at the end of the mounting shaft (37).
6. The production apparatus for a seaweed fish protein small molecule peptide composition according to claim 1, characterized in that: The discharge end (4) includes a V-shaped receiving hopper (41) set in the inner cavity of the cleaning pipe (2). Both ends of the V-shaped receiving hopper (41) are set outside the cleaning pipe (2) and connected to the top of the base (1). A passage for the reinforcing rib (34) to pass through is provided between the V-shaped receiving hopper (41) and the cleaning pipe (2). A guide groove (43) is installed at the bottom of the inner end of the V-shaped receiving hopper (41). A spiral conveyor frame (47) is installed inside the guide groove (43). The shaft inside the spiral conveyor frame (47) passes through and extends to the outside of the guide groove (43) and is connected to a second pulley (48). The second pulley (48) is connected to the first pulley (39) through a belt (49). A discharge port (410) is opened on one side of the V-shaped receiving hopper (41) at the position corresponding to the guide groove (43).
7. The production apparatus for a seaweed fish protein small molecule peptide composition according to claim 6, characterized in that: A filter screen (42) is installed on the V-shaped receiving hopper (41) on both sides of the feed trough (43). A liquid guiding trough (44) is provided inside the V-shaped receiving hopper (41) at the position corresponding to the filter screen (42). A drain outlet (45) is opened on the other side of the V-shaped receiving hopper (41) at the position corresponding to the liquid guiding trough (44).