Albumin peptide extraction device
By using a PLC controller and motor in conjunction with a flow sensor and solenoid valve, precise quantitative feeding and cleaning of the inner wall of the enzymatic hydrolysis tank were achieved in the albumin peptide extraction device, solving the problem of uneven enzymatic hydrolysis reaction and improving product quality and yield.
Patent Information
- Application Number
- CN202520320041.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-26
- Publication Date
- 2026-02-03
- Estimated Expiration
- 2035-02-26
AI Technical Summary
Existing albumin peptide extraction devices require manual control of enzyme feeding, which leads to uneven enzymatic hydrolysis reactions, affecting product quality and yield.
The system employs a PLC controller, flow sensor, and solenoid valve in conjunction with a motor body and a one-way screw to achieve precise quantitative feeding, and cleans the inner wall of the enzymatic hydrolysis tank through a stirring motor and scraper assembly.
This achieved uniformity in the enzymatic hydrolysis reaction, improved product quality and yield, and also enhanced the cleanliness of the inner wall of the enzymatic hydrolysis tank.
Smart Images

Figure CN223866675U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of albumin peptide extraction technology, and in particular to an albumin peptide extraction device. Background Technology
[0002] The extraction of albumin peptides typically involves converting large albumin molecules into small peptide molecules from raw materials containing albumin using specific enzymatic hydrolysis techniques.
[0003] As disclosed in announcement number CN220951831U, an albumin peptide extraction device includes an enzymatic hydrolysis tank. A quantitative addition mechanism is correspondingly installed at the top of the enzymatic hydrolysis tank. The quantitative addition mechanism includes a set of lifting components and several sets of quantitative components arranged side-by-side. Each set of quantitative components includes a quantitative container, a piston rod, a piston, a discharge port, and a feed port. The lifting components include a lifting rod and a lifting driver that can move left and right. The bottom of the lifting rod is movably connected to the piston rod of each set of quantitative components, and the top of the lifting rod is connected to the lifting driver. In summary, during the albumin peptide extraction process of this utility model, precise and quantitative extraction and addition can be performed using different quantitative containers, achieving precise control of multiple enzymes simultaneously. Multiple quantitative containers use the same set of lifting components, reducing equipment costs and minimizing equipment space occupation, making it suitable for batch extraction of albumin peptides in a workshop.
[0004] This patent can reduce equipment costs and space requirements. However, existing devices require manual opening of the metering tank to control the feeding of various enzymes during albumin peptide extraction. Manual feeding cannot achieve precise control, which can easily lead to uneven enzymatic reactions and affect the quality and yield of the final product.
[0005] Therefore, we propose a novel albumin peptide extraction device. Utility Model Content
[0006] The purpose of this invention is to solve the problem that in existing devices for albumin peptide extraction, the quantitative tank needs to be manually opened to control the feeding of multiple enzymes. However, manual feeding cannot achieve precise control, which can easily lead to uneven enzymatic hydrolysis and affect the quality and yield of the final product.
[0007] To achieve the above objectives, the present invention adopts the following technical solution: an albumin peptide extraction device, comprising a base, a movable feeding assembly connected to one side surface of the base, the movable feeding assembly comprising an enzymatic hydrolysis tank, a feed inlet connected to the front end surface of the enzymatic hydrolysis tank, a feed port connected to the rear end surface of the enzymatic hydrolysis tank, a connecting frame connected to the rear end surface of the base, a horizontal plate connected to the top of the connecting frame, a PLC controller connected to the front surface of the connecting frame, a one-way screw disposed inside the horizontal plate, the two ends of the one-way screw being respectively connected to the output end of a motor body and a bearing, three sets of moving blocks equidistantly connected to the surface of the one-way screw, each set of moving blocks having a threaded hole inside, a metering tank connected to the bottom of the moving blocks, a flow sensor connected to the bottom of the metering tank, and a solenoid valve connected to the bottom of the flow sensor.
[0008] Furthermore, the motor body is electrically connected to an external power source via a control switch, and the output end of the motor body is fixedly connected to the one-way screw.
[0009] Furthermore, the one-way screw is threadedly connected to the moving block through a threaded hole, and the one-way screw is threadedly connected to the bearing.
[0010] Furthermore, the position and size of the solenoid valve are matched with the position and size of the feed inlet.
[0011] Furthermore, a stirring and cleaning assembly is provided at the top center of the enzymatic hydrolysis tank. The stirring and cleaning assembly includes a stirring motor, and the output end of the stirring motor is connected to a stirring rod.
[0012] Furthermore, slots are provided inside both sides of the stirring rod, and springs are installed inside the slots. A push plate is connected to one side of the spring, and a top rod is connected to one side of the push plate. A scraper is connected to the outer surface of the top rod. A centrifuge tank is connected to one side of the bottom of the enzymatic hydrolysis tank through a pipe.
[0013] Compared with the prior art, the advantages and positive effects of this utility model are as follows:
[0014] 1. In this utility model, the quantitative amount of material feeding for each group of enzymatic hydrolysis tanks can be accurately set through the PLC controller. With the help of flow sensors and solenoid valves, the purpose of accurate feeding is achieved. Furthermore, the motor body can operate different enzymatic hydrolysis tanks to move to the inlet position for feeding, avoiding the problem of uneven enzymatic hydrolysis reaction that is difficult to achieve with manual feeding, thus improving product quality and yield.
[0015] 2. In this invention, the inner wall can be cleaned by a scraper while stirring, so as to prevent the material from adsorbing, accumulating or sticking on the inner wall, thus improving the cleanliness of the inner wall of the enzymatic hydrolysis tank. Attached Figure Description
[0016] Figure 1 This invention provides a three-dimensional structural schematic diagram of an albumin peptide extraction device;
[0017] Figure 2 This invention provides a partial exploded structural diagram of an albumin peptide extraction device.
[0018] Figure 3 This invention provides a schematic cross-sectional view of the enzymatic hydrolysis tank in an albumin peptide extraction device.
[0019] Figure 4 for Figure 3 Enlarged structural diagram at point A in the middle.
[0020] Legend: 1. Base; 2. Moving feeding assembly; 201. Enzymatic hydrolysis tank; 202. Feed inlet; 203. Feed port; 204. Connecting frame; 205. PLC controller; 206. Horizontal plate; 207. One-way screw; 208. Motor; 209. Bearing; 210. Moving block; 211. Threaded hole; 212. Metering tank; 213. Flow sensor; 214. Solenoid valve; 3. Stirring and cleaning assembly; 301. Stirring motor; 302. Stirring rod; 303. Slot; 304. Spring; 305. Push plate; 306. Top rod; 307. Scraper; 4. Centrifuge tank. Detailed Implementation
[0021] To better understand the above-mentioned objectives, features, and advantages of this utility model, the present utility model will be further described below with reference to the accompanying drawings and embodiments. It should be noted that, unless otherwise specified, the embodiments and features described in these embodiments can be combined with each other.
[0022] Many specific details are set forth in the following description in order to provide a full understanding of the present invention. However, the present invention may also be implemented in other ways different from those described herein. Therefore, the present invention is not limited to the specific embodiments disclosed in the following specification.
[0023] Example 1, as Figure 1 - Figure 3As shown, this utility model provides an albumin peptide extraction device, including a base 1. A movable feeding assembly 2 is connected to one side surface of the base 1. The movable feeding assembly 2 includes an enzymatic hydrolysis tank 201. A feed inlet 202 is connected to the front end surface of the enzymatic hydrolysis tank 201, and a feed outlet 203 is connected to the rear end surface of the enzymatic hydrolysis tank 201. A connecting frame 204 is connected to the rear end surface of the base 1. A horizontal plate 206 is connected to the top of the connecting frame 204. A PLC controller 205 is connected to the front surface of the connecting frame 204. A one-way screw 207 is provided inside the horizontal plate 206. The two ends of the one-way screw 207 are respectively connected to the output end of the motor body 208 and the bearing 209. The surface of the one-way screw 207, etc. There are three sets of moving blocks 210 connected to each other. Each set of moving blocks 210 has a threaded hole 211 inside. A metering tank 212 is connected to the bottom of the moving block 210. A flow sensor 213 is connected to the bottom of the metering tank 212. A solenoid valve 214 is connected to the bottom of the flow sensor 213. The motor body 208 is electrically connected to an external power supply through a control switch. The output end of the motor body 208 is fixedly connected to a one-way screw 207. The one-way screw 207 is threadedly connected to the moving block 210 through the threaded hole 211. The one-way screw 207 is threadedly connected to the bearing 209. The position and size of the solenoid valve 214 match the position and size of the feed inlet 203.
[0024] The overall effect of Embodiment 1 is that, during albumin peptide extraction, the PLC controller 205 can be set according to the situation. When it is necessary to add enzyme from a certain set of quantitative tanks 212 to the enzymatic hydrolysis tank 201, the PLC controller 205 can be turned on. The PLC controller 205 will turn on the motor body 208 according to the preset, so that the motor body 208 can drive the one-way screw 207 to rotate. At the same time, the one-way screw 207 will also rotate through the threaded hole 211 and the moving block 210, so that the three sets of moving blocks 210 simultaneously drive the three sets of quantitative tanks 212 to move. When the required quantitative tank 212 moves... When the enzyme reaches directly above the inlet 203, the motor body 208 will stop rotating, and the solenoid valve 214 will automatically open. When the solenoid valve 214 opens, the enzyme in the metering tank 212 is added into the inlet 203. The amount added can be monitored in real time by the flow sensor 213. When the set amount is added, the flow sensor 213 will send an electrical signal to the PLC controller 205, so that the PLC controller 205 can control the solenoid valve 214 to close and stop feeding. This avoids the problem of uneven enzymatic hydrolysis caused by manual feeding, which cannot achieve precise control and improves product quality and yield.
[0025] Example 2, as Figure 1 and Figure 4As shown, a stirring and cleaning assembly 3 is provided at the top center of the enzymatic hydrolysis tank 201. The stirring and cleaning assembly 3 includes a stirring motor 301. The output end of the stirring motor 301 is connected to a stirring rod 302. Both sides of the stirring rod 302 are provided with slots 303. A spring 304 is provided inside the slots 303. A push plate 305 is connected to one side of the spring 304. A top rod 306 is connected to one side of the push plate 305. A scraper 307 is connected to the outer surface of the top rod 306. A centrifuge tank 4 is connected to one side bottom of the enzymatic hydrolysis tank 201 through a pipe.
[0026] The effect achieved by the entire embodiment 2 is that when the stirring motor 301 is turned on and the stirring rod 302 stirs the inner wall of the enzymatic hydrolysis tank 201, the spring 304 will push the push plate 305 with its own elastic force, so that the push plate 305 can push the scraper 307 outward through the top rod 306, so that the scraper 307 can stick tightly to the inner wall of the enzymatic hydrolysis tank 201 and achieve the cleaning effect of the inner wall.
[0027] Working principle: The PLC controller 205 can accurately set the quantitative amount of material to be fed into each group of enzymatic hydrolysis tanks 201. With the help of the flow sensor 213 and the solenoid valve 214, the purpose of accurate feeding is achieved. The motor body 208 can operate different enzymatic hydrolysis tanks 201 to move to the position of the inlet 203 for feeding, avoiding the problem of uneven enzymatic hydrolysis reaction that cannot be accurately controlled by manual feeding. This improves the quality and yield of the product. While stirring, the scraper 307 can be used to clean the inner wall to prevent the material from adsorbing, accumulating or sticking on the inner wall, thus improving the cleanliness of the inner wall of the enzymatic hydrolysis tank 201.
[0028] The above are merely preferred embodiments of this utility model and are not intended to limit the utility model in any other way. Any person skilled in the art may make changes or modifications to the above-disclosed technical content to create equivalent embodiments for application in other fields. However, any simple modifications, equivalent changes, and modifications made to the above embodiments based on the technical essence of this utility model without departing from the technical solution of this utility model shall still fall within the protection scope of this utility model.
Claims
1. An albumin peptide extraction device, comprising a base (1), characterized in that: A movable feeding assembly (2) is connected to one side surface of the base (1); The mobile feeding assembly (2) includes an enzymatic hydrolysis tank (201), with a feed inlet (202) connected to the front end surface of the enzymatic hydrolysis tank (201) and a feed outlet (203) connected to the rear end surface of the enzymatic hydrolysis tank (201). A connecting frame (204) is connected to the rear end surface of the base (1), and a horizontal plate (206) is connected to the top of the connecting frame (204). A PLC controller (205) is connected to the front surface of the connecting frame (204), and a one-way screw (207) is provided inside the horizontal plate (206). The one-way screw (207) is connected to the output end of the motor body (208) and the bearing (209) at both ends respectively. Three sets of moving blocks (210) are equidistantly connected to the surface of the one-way screw (207). Each set of moving blocks (210) has a threaded hole (211) inside. A metering bucket (212) is connected to the bottom of the moving block (210). A flow sensor (213) is connected to the bottom of the metering bucket (212). A solenoid valve (214) is connected to the bottom of the flow sensor (213).
2. The albumin peptide extraction apparatus according to claim 1, characterized in that: The motor body (208) is electrically connected to an external power source via a control switch, and the output end of the motor body (208) is fixedly connected to the one-way screw (207).
3. The albumin peptide extraction apparatus according to claim 2, characterized in that: The one-way screw (207) is threadedly connected to the moving block (210) through the threaded hole (211), and the one-way screw (207) is threadedly connected to the bearing (209).
4. The albumin peptide extraction apparatus according to claim 3, characterized in that: The position and size of the solenoid valve (214) are matched with the position and size of the feed inlet (203).
5. The albumin peptide extraction apparatus according to claim 1, characterized in that: A stirring and cleaning assembly (3) is provided at the top center of the enzymatic hydrolysis tank (201). The stirring and cleaning assembly (3) includes a stirring motor (301), and the output end of the stirring motor (301) is connected to a stirring rod (302).
6. The albumin peptide extraction apparatus according to claim 5, characterized in that: The stirring rod (302) has slots (303) on both sides. A spring (304) is installed inside the slot (303). A push plate (305) is connected to one side of the spring (304). A top rod (306) is connected to one side of the push plate (305). A scraper (307) is connected to the outer surface of the top rod (306). A centrifuge tank (4) is connected to one side bottom of the enzymatic hydrolysis tank (201) through a pipe.
Citation Information
Patent Citations
A kind of albumin peptide extraction device
CN220951831U