Multipurpose tissue protein manufacturing mold
By designing a multi-purpose tissue protein manufacturing mold and using a sliding column structure to achieve fast and accurate demoulding, the problem of cumbersome demoulding in existing molds is solved, production efficiency and equipment utilization are improved, and the needs of multi-variety and small-batch production are met.
Patent Information
- Application Number
- CN202422586061.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-25
- Publication Date
- 2025-10-28
- Estimated Expiration
- 2034-10-25
AI Technical Summary
The existing tissue protein manufacturing mold is cumbersome during the demoulding process and cannot quickly demould the designated position, which increases the difficulty for workers to get started and causes material waste, and reduces production efficiency and equipment utilization.
A multi-purpose tissue protein manufacturing mold is designed. By pressing the first slide post, the second slide post moves toward the third slide post, and then the top plate is ejected, achieving rapid demolding and simplifying the operation process. Different first slide posts can be used to achieve single-pair demolding of designated positions, reducing defective product rates and energy consumption.
It improves production efficiency, reduces labor costs and equipment standby time, ensures product integrity and quality, meets the flexibility requirements of multi-variety and small-batch production, and reduces material waste and energy consumption.
Smart Images

Figure CN223473081U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of tissue protein manufacturing mold technology, specifically relating to a multi-purpose tissue protein manufacturing mold. Background Technology
[0002] Tissue protein manufacturing molds are tools used to produce textured protein products. Their main function is to help protein raw materials form textured protein products with specific structures and shapes through specific processes and shape changes under specific pressure and temperature.
[0003] According to the public announcement (CN220631033U), a fish protein bar mold with convenient demolding is disclosed. This technology discloses that "a mold sleeve is installed on the lower surface of the mold body, a groove is opened on the upper surface of the mold sleeve, a round hole is opened on the side of the inner surface of the mold groove, and protrusions are symmetrically fixedly installed on both sides of the mold body, so as to realize convenient demolding of fish protein bars and prevent the technical effect from affecting the final product".
[0004] Although the design enables convenient demolding of fish protein bars and prevents damage to the final product, the demolding process of the device is rather cumbersome. When demolding a large amount of protein, it is not possible to quickly demold protein at a specific location, which reduces the practicality of the device. In addition, the demolding operation of the device requires training for staff, and the complex demolding process increases the difficulty for staff to learn how to use it.
[0005] To address these issues, a multi-purpose tissue protein manufacturing mold was designed. Utility Model Content
[0006] To address the problems mentioned in the background section, this invention provides a multi-purpose tissue protein manufacturing mold. By pressing the first sliding pillar, the second sliding pillar moves to the third sliding pillar, thereby ejecting the top plate. Demolding is achieved through a simple pressing operation, greatly simplifying the process, reducing the time and labor costs required for demolding, and thus improving overall production efficiency. The design of demolding at a specific location using different first sliding pillars avoids product damage or deformation that might occur with overall demolding. This precise demolding method ensures product integrity and quality, reduces defect rates, and allows for flexible adjustment of the demolding sequence and position during production. This flexibility is particularly important for meeting the needs of multi-variety, small-batch production. The simplified demolding method using the first sliding pillar effectively controls material waste and energy consumption during production. Simultaneously, the rapid demolding process reduces equipment downtime and improves equipment utilization.
[0007] To achieve the above objectives, the present invention provides the following technical solution: a multi-purpose tissue protein manufacturing mold, including a mounting box, and a demolding component disposed on the outer side of the end of the mounting box;
[0008] The demolding assembly includes a shaping box, partitions, and sliding holes. A shaping box is fixedly connected to the outer side of the ends of several mounting boxes. A plurality of partitions are evenly fixedly connected to the inner side of the rectangular groove of the shaping box. A sliding hole is provided on the inner side of the bottom end of the shaping box. A first sliding post and a third sliding post are slidably connected to the inner side of the ends of the mounting boxes. A second sliding post is slidably connected to the inner side of the bottom end of the mounting boxes. A top plate is fixedly connected to the outer side of the end of the third sliding post. The top plate is disposed inside the rectangular groove of the mounting box. The outer side of the end of the third sliding post is slidably connected to the inner side of the sliding hole.
[0009] As a preferred embodiment of the multipurpose tissue protein manufacturing mold of this utility model, the outer ends of the two ends of the first spring are fixedly connected to the inner end of the mounting box and the outer end of the third slide column, respectively.
[0010] As a preferred embodiment of the multipurpose tissue protein manufacturing mold of this utility model, the outer sides of the ends of the first slide column and the third slide column are provided with inclined structures, and the outer sides of both ends of the second slide column are provided with inclined structures. The inclined structures on the outer sides of both ends of the second slide column are in contact with the inclined structures on the outer sides of the ends of the first slide column and the inclined structures on the outer sides of the ends of the third slide column, respectively.
[0011] As a preferred embodiment of the multipurpose tissue protein manufacturing mold of this utility model, a button cap is fixedly connected to the outer side of the end of the first sliding column, and the button cap is made of rubber.
[0012] As a preferred embodiment of the multipurpose tissue protein manufacturing mold of this utility model, a nameplate is detachably connected to the upper surface of the top plate.
[0013] As a preferred embodiment of the multipurpose tissue protein manufacturing mold of this utility model, the outer ends of the two ends of the second spring are fixedly connected to the outer ends of the mounting box and the outer ends of the first slide column, respectively.
[0014] As a preferred embodiment of the multipurpose tissue protein manufacturing mold of this utility model, a cover plate is sleeved on the outer side of the end of the shaping box, and an adhesive strip is fixedly connected to the upper surface of the cover plate.
[0015] As a preferred embodiment of the multipurpose tissue protein manufacturing mold of this utility model, a handle is fixedly connected to the upper surface of the cover plate.
[0016] Compared with the prior art, the beneficial effects of this utility model are as follows: This application incorporates a demolding component. By pressing the first sliding column, the second sliding column moves to the third sliding column, thereby ejecting the top plate. Demolding can be achieved through a simple pressing operation, greatly simplifying the operation process, reducing the time and labor costs required for demolding, and thus improving overall production efficiency. The design of demolding at a single designated position through different first sliding columns avoids product damage or deformation that may occur during overall demolding. This precise demolding method ensures product integrity and quality, reduces the defect rate, and allows for single-position demolding. This flexibility means that the demolding sequence and position can be flexibly adjusted as needed during production. This flexibility is particularly important for meeting the production needs of multiple varieties and small batches. The simplification of demolding by pressing the first sliding column effectively controls material waste and energy consumption during the production process. At the same time, the rapid demolding process also reduces equipment downtime and improves equipment utilization. Attached Figure Description
[0017] The accompanying drawings are provided to further illustrate the present invention and form part of the specification. They are used together with the embodiments of the present invention to explain the present invention, but do not constitute a limitation thereof. In the drawings:
[0018] Figure 1 This is a schematic diagram of the overall structure of this utility model;
[0019] Figure 2 This is a schematic diagram of the structure of the shaping box and the partition in this utility model;
[0020] Figure 3 This is a schematic diagram of the structure of the partition plate and sliding hole in this utility model;
[0021] Figure 4 This is a schematic diagram of the mounting box and nameplate in this utility model;
[0022] Figure 5 This is a schematic diagram of the structure of the first spring and the second spring in this utility model;
[0023] Figure 6 This is a schematic diagram of the structure of the cover plate and the rubber strip in this utility model;
[0024] In the picture:
[0025] 1. Mounting box;
[0026] 2. Demolding assembly; 21. Shaping box; 22. Partition; 23. Sliding hole; 24. First sliding pillar; 25. Second sliding pillar; 26. Third sliding pillar; 27. Top plate; 28. First spring; 29. Button cap; 210. Nameplate; 211. Second spring; 212. Cover plate; 213. Adhesive strip; 214. Handle. Detailed Implementation
[0027] 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.
[0028] like Figure 1 As shown;
[0029] A multipurpose tissue protein manufacturing mold, including a mounting box 1.
[0030] In this implementation plan: Although the design can facilitate the demolding of fish protein bars and prevent it from affecting the final product, the demolding process of the above device is relatively cumbersome. When demolding a large amount of protein, it is not possible to quickly demold protein at a specific location, which reduces the practicality of the device. At the same time, the demolding operation of the above device requires training for the staff, and the complex demolding process increases the difficulty for the staff to get started. To solve this technical problem, a demolding component 2 is added on this basis.
[0031] Furthermore:
[0032] like Figures 1 to 6 As shown:
[0033] Based on the above: the demolding assembly 2 includes a shaping box 21, partitions 22, and sliding holes 23. A plurality of mounting boxes 1 are fixedly connected to the outer ends of the shaping box 21. A plurality of partitions 22 are evenly fixedly connected to the inner side of the rectangular groove formed by the shaping box 21. A sliding hole 23 is formed on the inner bottom end of the shaping box 21. A first sliding post 24 and a third sliding post 26 are slidably connected to the inner end of the mounting box 1. A second sliding post 25 is slidably connected to the inner bottom end of the mounting box 1. A top plate 27 is fixedly connected to the outer end of the third sliding post 26. The top plate 27 is disposed inside the rectangular groove formed by the mounting box 1. The outer end of the third sliding post 26 is connected to the sliding hole 23. The inner sliding connection is provided. The outer ends of the first spring 28 are fixedly connected to the inner end of the mounting box 1 and the outer end of the third slide column 26, respectively. The outer ends of the first slide column 24 and the third slide column 26 are provided with inclined structures. The outer ends of the second slide column 25 are provided with inclined structures. The inclined structures on the outer ends of the second slide column 25 are in contact with the inclined structures on the outer ends of the first slide column 24 and the third slide column 26, respectively. The upper surface of the top plate 27 is detachably connected with a nameplate 210. The outer ends of the second spring 211 are fixedly connected to the outer ends of the mounting box 1 and the outer ends of the first slide column 24, respectively.
[0034] In this implementation scheme: When using the device, the user can inject the material that needs to be shaped into the inner side of the shaping box 21. The material can be separated by the partition 22. At the same time, the user can personalize one side of the nameplate 210 by engraving the required shape and pattern on the inner side of one end of the nameplate 210. Then, the device can be left to stand until the tissue protein inside the shaping box 21 is shaped. At this time, the user can push the first sliding column 24. The first sliding column 24 slides downward on the inner side of the end of the mounting box 1, while compressing the second spring 211 and storing elastic potential energy. At this time, under the push of the inclined surface at the end of the first sliding column 24, the second sliding column 25... The inner side of the end of the mounting box 1 slides horizontally. As the second sliding post 25 slides, it pushes one side of the third sliding post 26 through the inclined structure on the outer side of the other end of the second sliding post 25. This causes one side of the third sliding post 26 to slide upwards on the inner side of one end of the mounting box 1, simultaneously compressing the first spring 28. Driven by the upward sliding of the third sliding post 26, the top plate 27 moves upwards inside the shaping box 21. During this upward movement, the tissue protein is pushed upwards from the inner side of the shaping box 21, quickly demolding the tissue protein inside the shaping box 21. At this point, the user can remove the demolded tissue protein. The second spring 211... Under the action of the first spring 28, the first sliding column 24 moves vertically upward, while the third sliding column 26 moves vertically downward, thus restoring the device to its original position. By pressing the first sliding column 24, the second sliding column 25 and the third sliding column 26 move, thereby pushing out the top plate 27. Demolding can be achieved through a simple pressing operation, greatly simplifying the operation process, reducing the time and labor costs required for demolding, and thus improving overall production efficiency. The design of demolding at a specific position by using different first sliding columns 24 avoids product damage or deformation that may occur during overall demolding. This precise demolding method can ensure the integrity and quality of the product and reduce defects. The high yield rate and the ability to demold at a single designated position mean that the demolding sequence and position can be flexibly adjusted as needed during production. This flexibility is particularly important for meeting the production needs of multiple varieties and small batches. The simplification of demolding by pressing the first slide bar 24 effectively controls material waste and energy consumption during the production process. At the same time, the fast demolding process also reduces equipment downtime and improves equipment utilization. Traditional demolding processes may require complex equipment or operating skills, while this design simplifies the demolding process to a simple pressing operation, reducing the skill requirements for operators and making the entire production process simpler and more intuitive.
[0035] Furthermore:
[0036] In an optional embodiment, a button 29 is fixedly connected to the outer side of the end of the first sliding post 24, and the button 29 is made of rubber.
[0037] In this implementation scheme, adding a button 29 to the outer side of the end of the first slide column 24 brings multiple benefits. First, the softness and elasticity of the silicone button 29 provide a better feel, making the demolding operation more comfortable for the operator and reducing hand fatigue and discomfort. Second, the button 29 has a certain anti-slip property, which can effectively prevent demolding errors caused by operator sweaty hands or improper operation, thereby ensuring the stability and safety of operation. In addition, the durability and easy cleaning of the silicone button 29 also ensures the comfort and hygiene of long-term use. In short, by adding the button 29, the pressing mechanism not only improves the comfort and operational stability of the operator, but also enhances the user experience and hygiene of the equipment.
[0038] Furthermore:
[0039] In an optional embodiment, a cover plate 212 is fitted on the outer side of the end of the shaping box 21, and an adhesive strip 213 is fixedly connected to the upper surface of the cover plate 212, and a handle 214 is fixedly connected to the upper surface of the cover plate 212.
[0040] In this implementation scheme: the cover plate 212 and the adhesive strip 213 on the lower surface of the cover plate 212 can tightly seal the surface of the shaping box 21, effectively isolating dust, bacteria and other pollutants in the external environment, ensuring the cleanliness of the inside of the shaping box 21, and thus ensuring the hygiene and safety of the product. The material of the adhesive strip 213 usually has good heat preservation and moisture retention properties, which helps to maintain the temperature and humidity inside the mold, providing stable environmental conditions for the manufacture of tissue protein. When the cover plate 212 is closed or opened, the adhesive strip 213 can play a buffering role, reducing the noise generated during operation, creating a more comfortable working environment for operators, reducing wear and damage to the shaping box 21, and extending the service life of the mold.
[0041] Working principle: When using this device, the user can inject the material to be shaped into the inner side of the shaping box 21. The material can be separated by the partition 22. At the same time, the user can personalize one side of the nameplate 210 by engraving the required shape and pattern on the inner side of one end of the nameplate 210. Then, the device can be left to stand until the tissue protein inside the shaping box 21 is shaped. At this time, the user can push the first slide column 24. The first slide column 24 slides downward on the inner side of the end of the mounting box 1, while compressing the second spring 211 and storing elastic potential energy. Then, under the push of the inclined surface at the end of the first slide column 24, the second slide column 25 slides horizontally on the inner side of the end of the mounting box 1. As the second slide column 25 slides, it will pass through the second slide column 211. The inclined structure on the outer side of the other end of column 25 pushes one side of the third sliding column 26, causing one side of the third sliding column 26 to slide upward on the inner side of one end of the mounting box 1. At the same time, the first spring 28 is compressed. Driven by the upward sliding of the third sliding column 26, the top plate 27 moves upward inside the shaping box 21. During the upward movement of the shaping box 21, the tissue protein is pushed upward from the inner side of the shaping box 21, which can quickly demold the tissue protein inside the shaping box 21. At this time, the user can take out the demolded tissue protein. Under the action of the second spring 211 and the first spring 28, the first sliding column 24 moves vertically upward, while the third sliding column 26 moves vertically downward, thereby restoring the device. By pressing the first sliding column 24, the second sliding column 25 is driven. The third sliding column 26 moves, pushing out the top plate 27. Demolding is achieved with a simple pressing operation, greatly simplifying the process and reducing the time and labor costs required for demolding, thereby improving overall production efficiency. The design of demolding at a single, designated position using different first sliding columns 24 avoids product damage or deformation that might occur with overall demolding. This precise demolding method ensures product integrity and quality, reduces defect rates, and allows for individual demolding at a designated position. This flexibility means that the demolding sequence and position can be flexibly adjusted as needed during production. This flexibility is particularly important for meeting the needs of multi-variety, small-batch production. The simplified demolding method using the first sliding column 24 reduces material waste during the production process. Costs and energy consumption are effectively controlled. Simultaneously, the rapid demolding process reduces equipment downtime and improves equipment utilization. Traditional demolding processes may require complex equipment or operational skills, while this design simplifies the demolding process to a simple pressing operation, reducing the skill requirements for operators and making the entire production process simpler and more intuitive. Adding a press cap 29 to the outer end of the first slide column 24 offers multiple benefits. First, the softness and elasticity of the silicone press cap 29 provide a better feel, making demolding operations more comfortable for operators and reducing hand fatigue and discomfort. Second, the press cap 29 has a certain anti-slip property, effectively preventing demolding errors caused by sweaty hands or improper operation.This ensures operational stability and safety. Furthermore, the durability and ease of cleaning of the silicone cap 29 ensures long-term comfort and hygiene. In short, by adding the cap 29, the pressing mechanism not only improves operator comfort and operational stability but also enhances the user experience and hygiene of the equipment. The cover plate 212 and the adhesive strip 213 on its lower surface tightly seal the surface of the shaping box 21, effectively isolating it from dust, bacteria, and other contaminants in the external environment, ensuring the cleanliness of the inside of the shaping box 21, and thus ensuring the hygiene and safety of the product. The material of the adhesive strip 213 typically has good heat and moisture retention properties, helping to maintain the temperature and humidity inside the mold, providing stable environmental conditions for the manufacture of tissue proteins. When the cover plate 212 is closed or opened, the adhesive strip 213 acts as a buffer, reducing operational noise, creating a more comfortable working environment for operators, reducing wear and damage to the shaping box 21, and extending the service life of the mold.
[0042] Finally, it should be noted that the above description is merely a preferred embodiment of this utility model and is not intended to limit the utility model. Although the utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this utility model should be included within the protection scope of this utility model.
Claims
1. A multi-purpose tissue protein manufacturing mold, comprising a mounting box (1), characterized in that: It also includes a demolding assembly (2) disposed on the outer side of the end of the mounting box (1); The demolding assembly (2) includes a shaping box (21), partitions (22) and sliding holes (23). The shaping box (21) is fixedly connected to the outer side of the end of several mounting boxes (1). Several partitions (22) are evenly fixedly connected to the inner side of the rectangular groove of the shaping box (21). The sliding hole (23) is opened on the inner side of the bottom end of the shaping box (21). The first sliding column (24) and the third sliding column (26) are slidably connected to the inner side of the end of the mounting box (1). The second sliding column (25) is slidably connected to the inner side of the bottom end of the mounting box (1). The top plate (27) is fixedly connected to the outer side of the end of the third sliding column (26). The top plate (27) is located inside the rectangular groove of the mounting box (1). The outer side of the end of the third sliding column (26) is slidably connected to the inner side of the sliding hole (23).
2. The multipurpose tissue protein manufacturing mold according to claim 1, characterized in that: The outer ends of the first spring (28) are fixedly connected to the inner end of the mounting box (1) and the outer end of the third slide (26), respectively.
3. The multipurpose tissue protein manufacturing mold according to claim 1, characterized in that: The first sliding column (24) and the third sliding column (26) are provided with inclined structures on the outer side of their ends. The second sliding column (25) is provided with inclined structures on the outer side of both ends. The inclined structures on the outer side of both ends of the second sliding column (25) are in contact with the inclined structures on the outer side of the end of the first sliding column (24) and the inclined structures on the outer side of the end of the third sliding column (26), respectively.
4. The multipurpose tissue protein manufacturing mold according to claim 1, characterized in that: A button (29) is fixedly connected to the outer side of the end of the first sliding column (24), and the button (29) is made of rubber.
5. The multipurpose tissue protein manufacturing mold according to claim 1, characterized in that: A nameplate (210) is detachably connected to the upper surface of the top plate (27).
6. The multipurpose tissue protein manufacturing mold according to claim 1, characterized in that: The outer ends of the second spring (211) are fixedly connected to the outer ends of the mounting box (1) and the outer ends of the first slide (24), respectively.
7. The multipurpose tissue protein manufacturing mold according to claim 1, characterized in that: The shaping box (21) is fitted with a cover plate (212) on the outer side of its end, and an adhesive strip (213) is fixedly connected to the upper surface of the cover plate (212).
8. The multipurpose tissue protein manufacturing mold according to claim 7, characterized in that: A handle (214) is fixedly connected to the upper surface of the cover plate (212).
Citation Information
Patent Citations
Fish protein bar mold convenient to demold
CN220631033U