Enzymolysis reaction device for preparing black rice protein peptide
By designing the collection components of magnetic connection and sliding slot structure, the inconvenience of use of the collection box in the prior art needs to be manually removed, and convenient material extraction of the Umi protein peptide preparation process is achieved.
Patent Information
- Application Number
- CN202421545617.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-02
- Publication Date
- 2025-07-22
- Estimated Expiration
- 2034-07-02
AI Technical Summary
During the preparation of existing Umi protein peptides, the collection box requires the operator to manually extend it into the body and remove it, which is inconvenient to use.
A collection assembly including a support mechanism, accommodating mechanism and an auxiliary mechanism is designed. Through magnetic connection and sliding slot structure, stable extraction and convenient material extraction of the collection assembly are achieved, and combined with a scraper plate for centralized processing of raw materials.
It improves the stability and convenience of the collection box, and the operator does not need to carry it manually, simplifying the removal process of raw materials.
Smart Images

Figure CN223134464U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of wumi protein peptide preparation, in particular to an enzymatic hydrolysis reaction device for preparing wumi protein peptide. Background Technique
[0002] Wumi has various biological activities, and the active components of sorghum wumi have also been proven to have anti-tumor, antioxidant and other effects, while protein peptide is a high-molecular functional protein. During the preparation of wumi protein peptide, one of the processing steps is to stir and mix the two raw materials to facilitate their full reaction.
[0003] For example, an enzymatic hydrolysis reaction device for producing wumi protein peptide with the application number CN202221900429.2 includes a machine body, a feed inlet, a longitudinal driving motor, a collection box, a limiting frame, a cover door and a transparent glass supervision window. The wumi protein peptide raw materials are poured from the feed inlet, and the rotating shaft rotates with the support rod to fully stir the raw materials. The stirred raw materials will be filtered through a filter screen to filter out unqualified raw materials, and the qualified ones will fall into the collection box. Finally, when the collection box is full, it can be taken out by opening the cover door.
[0004] After the wumi protein peptide raw materials in the above patent are filtered through the filter screen, the qualified raw materials will directly fall into the inner cavity of the collection box for placement. Since the collection box is limit-installed at the upper end of the limiting frame, such a setting results in that when the operator needs to take the collection box, the hand needs to be stretched into the machine body to carry the collection box back and forth, which is inconvenient to use.
[0005] Therefore, we propose an enzymatic hydrolysis reaction device for preparing wumi protein peptide to solve the problems mentioned above. Content of the Utility Model
[0006] The purpose of the utility model is to provide an enzymatic hydrolysis reaction device for preparing wumi protein peptide to solve the problem that when the operator needs to take the collection box, the hand needs to be stretched into the machine body to carry the collection box back and forth, which is inconvenient to use as mentioned in the above background technique.
[0007] To achieve the above purpose, the utility model provides the following technical solution: an enzymatic hydrolysis reaction device for preparing wumi protein peptide, including a reaction body and a stirring assembly fixedly installed in the middle of the upper end of the reaction body. Feeding assemblies are arranged on both sides of the upper end of the reaction body, and a filtering assembly is arranged in the middle of the inner cavity of the reaction body. A collection assembly is slidably installed on the upper end of the inner cavity bottom surface of the reaction body, and the collection assembly is adapted to collect the raw materials filtered by the filtering assembly;
[0008] The collection component includes a support mechanism and a receiving mechanism movably clamped and arranged in the middle of the upper end of the support mechanism. The support mechanism drives the receiving mechanism to be movably installed. An auxiliary mechanism is movably installed in the inner cavity of the receiving mechanism. The receiving mechanism is adapted to place raw materials at the bottom of the inner cavity of the reaction body, and the auxiliary mechanism is adapted to move and process the raw materials.
[0009] Preferably, the reaction body includes a long-shaped frame and cross-shaped card slots opened on both sides of the upper end of the bottom surface of the inner cavity of the long-shaped frame. A circular magnetic slot is opened in the middle of one end of the inner wall of the cross-shaped card slot.
[0010] Preferably, the support mechanism includes a placement block and cross-shaped card blocks fixedly installed on both sides of the lower end of the placement block. A short magnetic column is fixedly installed in the middle of one end of the cross-shaped card block.
[0011] Preferably, an inner embedding groove is opened in the middle of one end of the outer wall of the placement block, a penetration groove is opened in the middle of the upper end of the inner wall of the inner embedding groove, and U-shaped grooves are respectively opened around the inner wall of the placement block.
[0012] Preferably, the receiving mechanism includes a hollow corresponding block and limit blocks respectively fixedly installed around the outer wall of the hollow corresponding block. Card slots are opened at the upper ends of both sides of the inner wall of the hollow corresponding block.
[0013] Preferably, the auxiliary mechanism includes a scraping plate and a handle fixedly installed on one side of the upper end of the outer wall of the scraping plate. Insertion blocks are fixedly installed in the middle of both ends of the outer wall of the scraping plate, and rollers are movably installed at the upper ends of the insertion blocks through movable shafts.
[0014] Compared with the prior art, the beneficial effects of the present utility model are:
[0015] 1. After a certain amount of raw materials are collected in the inner cavity of the hollow corresponding block, pull the inner embedding groove to drive the placement block to move, so that the cross-shaped card blocks on both sides of the lower end of the placement block slide and are installed in the inner cavity of the cross-shaped card slot. Then, the placement block drives the hollow corresponding block to be pulled out from the lower end of the inner cavity of the reaction body. After the raw materials in the inner cavity of the hollow corresponding block are processed, by sliding the cross-shaped card blocks on both sides of the lower end of the placement block into the inner cavity of the cross-shaped card slot again and continuously pushing the placement block, the short magnetic column at one end of the cross-shaped card block is magnetically connected to the inner cavity of the circular magnetic slot for magnetic fixation to complete the limit setting of the placement block, improve the stability of the placement block driving the hollow corresponding block to receive materials, and facilitate the operator to take the raw materials.
[0016] 2. By pulling the handle to drive the scraping plate to move in the inner cavity of the hollow corresponding block, the raw materials scattered in the inner cavity of the hollow corresponding block are moved to one side, facilitating the operator to centrally process the raw materials. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 It is a schematic three-dimensional structure diagram of the whole of the present utility model;
[0018] Figure 2 Schematic three-dimensional structure diagram of the reaction body and the support mechanism of the present utility model;
[0019] Figure 3 Schematic three-dimensional structure diagram of the accommodating mechanism of the present utility model;
[0020] Figure 4 Schematic three-dimensional structure diagram of the auxiliary mechanism of the present utility model.
[0021] In the figure: 1. Reaction body; 11. Long frame; 12. Cross card slot; 13. Circular magnetic slot; 2. Stirring assembly; 3. Feeding assembly; 4. Filtering assembly; 5. Collection assembly; 51. Support mechanism; 511. Placement block; 512. Cross card block; 513. Short magnetic column; 514. Embedded groove; 515. Penetrating groove; 516. U-shaped groove; 52. Accommodating mechanism; 521. Hollow corresponding block; 522. Limiting block; 523. Card slot; 53. Auxiliary mechanism; 531. Scraping plate; 532. Handle; 533. Insertion block; 534. Roller. Specific embodiments
[0022] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without making creative efforts shall fall within the protection scope of the present utility model.
[0023] Embodiment 1: Please refer to Figures 1 - 3 , a device for enzymatic hydrolysis reaction for preparing black rice protein peptide, including a reaction body 1 and a stirring assembly 2 fixedly installed in the middle of the upper end of the reaction body 1. Feeding assemblies 3 are arranged on both sides of the upper end of the reaction body 1. A filtering assembly 4 is arranged in the middle of the inner cavity of the reaction body 1. A collection assembly 5 is slidably installed on the upper end of the inner cavity bottom surface of the reaction body 1. The collection assembly 5 is adapted to collect the raw materials filtered by the filtering assembly 4.
[0024] The collection assembly 5 includes a support mechanism 51 and an accommodating mechanism 52 movably clamped and arranged in the middle of the upper end of the support mechanism 51. The support mechanism 51 drives the accommodating mechanism 52 to be movably installed. An auxiliary mechanism 53 is movably installed in the inner cavity of the accommodating mechanism 52. The accommodating mechanism 52 is adapted to place the raw materials at the bottom of the inner cavity of the reaction body 1, and the auxiliary mechanism 53 is adapted to move and process the raw materials.
[0025] The reaction body 1 includes a long frame 11 and cross card slots 12 opened on both sides of the upper end of the inner cavity bottom surface of the long frame 11. A circular magnetic slot 13 is opened in the middle of one end of the inner wall of the cross card slot 12.
[0026] The support mechanism 51 includes a placement block 511 and cross-shaped clamping blocks 512 fixedly installed on both sides of the lower end of the placement block 511. In the middle of one end of the cross-shaped clamping block 512, a short magnetic column 513 is fixedly installed. The cross-shaped clamping block 512 is movably installed in the inner cavity of the cross-shaped clamping groove 12, and the short magnetic column 513 is magnetically connected in the inner cavity of the circular magnetic groove 13.
[0027] In the middle of one end of the outer wall of the placement block 511, an embedded groove 514 is provided. In the middle of the upper end of the inner wall of the embedded groove 514, a penetrating groove 515 is provided. U-shaped grooves 516 are respectively provided around the inner wall of the placement block 511. The penetrating groove 515 is adapted to pull the embedded groove 514 to drive the placement block 511 to be slidably installed at the lower end of the inner cavity of the long frame 11.
[0028] The accommodating mechanism 52 includes a hollow corresponding block 521 and limiting blocks 522 fixedly installed around the outer wall of the hollow corresponding block 521. On both sides of the upper end of the inner wall of the hollow corresponding block 521, clamping grooves 523 are provided. The hollow corresponding block 521 drives the limiting blocks 522 to be movably installed in the inner cavities of the placement block 511 and the U-shaped groove 516, and the U-shaped groove 516 improves the placement stability of the hollow corresponding block 521.
[0029] In this embodiment: After the raw material of black rice protein peptide passes through the filtering component 4, the qualified raw material will directly fall into the inner cavity of the hollow corresponding block 521 for placement. When a certain amount of raw material is collected in the inner cavity of the hollow corresponding block 521, the operator can pull the embedded groove 514 to drive the placement block 511 to move, so that the cross-shaped clamping blocks 512 on both sides of the lower end of the placement block 511 are slidably installed in the inner cavity of the cross-shaped clamping groove 12. Furthermore, the placement block 511 drives the hollow corresponding block 521 to be pulled out from the lower end of the inner cavity of the reaction body 1. After the raw material in the inner cavity of the hollow corresponding block 521 is processed, by sliding the cross-shaped clamping blocks 512 on both sides of the lower end of the placement block 511 into the inner cavity of the cross-shaped clamping groove 12 again and continuously pushing the placement block 511, the short magnetic column 513 at one end of the cross-shaped clamping block 512 is magnetically connected to the inner cavity of the circular magnetic groove 13 for magnetic fixation, so as to complete the limiting setting of the placement block 511 and improve the stability of the placement block 511 driving the hollow corresponding block 521 to receive materials. At the same time, the operator can pull the placement block 511 halfway from the lower end of the inner cavity of the reaction body 1 and directly take out the hollow corresponding block 521 from the inner cavity of the placement block 511, which is convenient to use.
[0030] Embodiment 2: This embodiment is an improvement made on the basis of Embodiment 1. Specifically, please refer to Figure 4 , the auxiliary mechanism 53 includes a scraping plate 531 and a handle 532 fixedly installed on one side of the upper end of the outer wall of the scraping plate 531. The handle 532 drives the scraping plate 531 to be movably installed in the inner cavity of the hollow corresponding block 521.
[0031] At the middle parts of both ends of the outer wall of the scraping plate 531, insertion blocks 533 are fixedly installed. At the upper ends of the insertion blocks 533, rollers 534 are movably installed through movable shafts. The rollers 534 are used to reduce the frictional force when the insertion blocks 533 are slidably installed in the inner cavity of the card slot 523.
[0032] In this embodiment: When the operator processes the raw materials in the inner cavity of the hollow corresponding block 521, the scraping plate 531 can be driven to move in the inner cavity of the hollow corresponding block 521 by pulling the handle 532, so as to move the scattered raw materials in the inner cavity of the hollow corresponding block 521 to one side, facilitating the operator to centrally process the raw materials.
[0033] Working principle: After the raw materials of the black rice protein peptide pass through the filtering assembly 4, the qualified raw materials will directly fall into the inner cavity of the hollow corresponding block 521 for placement. Pull the inner embedded groove 514 to drive the placement block 511 to move, so that the cross-shaped clamping blocks 512 on both sides of the lower end of the placement block 511 are slidably installed in the inner cavity of the cross-shaped card slot 12. Then, the placement block 511 drives the hollow corresponding block 521 to be pulled out from the lower end of the inner cavity of the reaction body 1, or pull the placement block 511 half from the lower end of the inner cavity of the reaction body 1, and take out the hollow corresponding block 521 from the inner cavity of the placement block 511. When processing the raw materials in the inner cavity of the hollow corresponding block 521, the scraping plate 531 can be driven to move in the inner cavity of the hollow corresponding block 521 by pulling the handle 532, moving the scattered raw materials in the inner cavity of the hollow corresponding block 521 to one side, facilitating the operator to centrally process the raw materials. After the raw materials in the inner cavity of the hollow corresponding block 521 are processed, continuously push the placement block 511, so that the short magnetic column 513 at one end of the cross-shaped clamping block 512 is magnetically connected to the inner cavity of the circular magnetic groove 13 to complete the limit setting of the placement block 511.
[0034] Among them, the structures and working principles of the stirring assembly and the filtering assembly are the same as those of the longitudinal driving motor, the transverse driving motor, the connecting block, the inclined plate, the rotating rod, the connecting piece, the support rod, the rotating shaft and the filter net in the publication number CN218262338U, and will not be elaborated here.
[0035] Although the present utility model has been described in detail with reference to the foregoing embodiments, for those skilled in the art, they can still modify the technical solutions recorded in the foregoing embodiments, or perform equivalent replacements on some of the technical features. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present utility model shall be included in the protection scope of the present utility model.
Claims
1. An enzymatic hydrolysis reaction device for preparing black rice protein peptides, comprising a reaction body (1) and a stirring assembly (2) fixedly installed in the middle of the upper end of the reaction body (1). Feeding assemblies (3) are arranged on both sides of the upper end of the reaction body (1), and a filtering assembly (4) is arranged in the middle of the inner cavity of the reaction body (1), characterized in that: A collection assembly (5) is slidably mounted at the upper end of the inner cavity bottom surface of the reaction body (1), and the collection assembly (5) is adapted to collect the raw materials filtered by the filtration assembly (4); The collection assembly (5) includes a support mechanism (51) and a receiving mechanism (52) movably and snap-fitted in the middle of the upper end of the support mechanism (51). The support mechanism (51) drives the receiving mechanism (52) to be movably mounted. An auxiliary mechanism (53) is movably mounted in the inner cavity of the receiving mechanism (52). The receiving mechanism (52) is adapted to place the raw materials at the bottom of the inner cavity of the reaction body (1), and the auxiliary mechanism (53) is adapted to move the raw materials for processing.
2. The enzymatic hydrolysis reaction device for preparing black rice protein peptides according to claim 1, wherein: The reaction body (1) includes a long frame (11) and cross-shaped card slots (12) opened on both sides of the upper end of the inner cavity bottom surface of the long frame (11). A circular magnetic slot (13) is opened in the middle of one end of the inner wall of the cross-shaped card slot (12).
3. An enzymatic hydrolysis reaction device for preparing black rice protein peptides according to claim 1, characterized in that: The support mechanism (51) includes a placement block (511) and cross-shaped card blocks (512) fixedly mounted on both sides of the lower end of the placement block (511). A short magnetic column (513) is fixedly mounted in the middle of one end of the cross-shaped card block (512).
4. An enzymatic hydrolysis reaction device for preparing black rice protein peptides according to claim 3, characterized in that: An inner embedding slot (514) is opened in the middle of one end of the outer wall of the placement block (511). A penetration slot (515) is opened in the middle of the upper end of the inner wall of the inner embedding slot (514). U-shaped slots (516) are respectively opened around the inner wall of the placement block (511).
5. An enzymatic hydrolysis reaction device for preparing black rice protein peptides according to claim 1, characterized in that: The receiving mechanism (52) includes a hollow corresponding block (521) and limit blocks (522) respectively fixedly mounted around the outer wall of the hollow corresponding block (521). Card slots (523) are opened at the upper ends of both sides of the inner wall of the hollow corresponding block (521).
6. The enzymatic hydrolysis reaction device for preparing black rice protein peptides according to claim 1, characterized in that: The auxiliary mechanism (53) includes a scraping plate (531) and a handle (532) fixedly mounted on one side of the upper end of the outer wall of the scraping plate (531). Insertion blocks (533) are fixedly mounted in the middle of both ends of the outer wall of the scraping plate (531). A roller (534) is movably mounted at the upper end of the insertion block (533) through a movable shaft.
Citation Information
Patent Citations
Enzymolysis reaction device for producing black rice protein peptide
CN218262338U