An egg product carrier and egg product processing assembly
Patent Information
- Application Number
- CN202521701459.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-11
- Publication Date
- 2026-09-11
- Estimated Expiration
- 2035-08-11
AI Technical Summary
[0004]有鉴于此,本实用新型的目的在于提供一种蛋制品载具及蛋制品加工组件,以解决现有模具的进料口容易在蛋制品上留下残留痕迹而影响美观以及合模需要人工手动合模导致工作效果低的问题
本实用新型的蛋制品载具及蛋制品加工组件,通过载架一和载架二的开合可便于上模和下模的合模或开模,进而可避免人工手动合模出现的工作效率低的问题,更为方便,并且在牵引机构的作用下能够对上模的柔性进料口进行传动控制其开闭,控制更为准确,提高了工作效率,更为美观,成型质量更高。
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Figure CN224734683U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the technical field of food processing equipment, specifically relating to an egg product carrier and an egg product processing component. Background Technology
[0002] In existing technologies, one method for preparing egg products involves adding egg liquid into the cavity of a molding mold, and then heating and steaming the liquid to solidify it into the desired shape. To facilitate the addition of the egg liquid and demolding, existing technologies often design the molding mold as a box structure with an open-topped trough. The egg liquid is added with the trough opening upwards, and after solidification, the trough opening is turned downwards for demolding. However, this method can only produce block-shaped egg products. For spherical egg products, a molding mold with interchangeable upper and lower molds is typically used. The upper mold has an injection port. Since egg products are usually made in a small size for easy consumption, the molding mold is also relatively small. Consequently, the injection port is often open, making it difficult and costly to implement a valve to control its opening and closing. Furthermore, with an open injection port, residue remains after solidification, forming a pouring gate, resulting in a poor appearance of the egg product.
[0003] Furthermore, the mold closing operation requires manual intervention, resulting in low work efficiency. Summary of the Invention
[0004] In view of this, the purpose of this utility model is to provide an egg product carrier and an egg product processing component to solve the problems that the feed inlet of the existing mold easily leaves residual marks on the egg product, which affects the appearance, and that the mold closing requires manual closing, resulting in low work efficiency.
[0005] To achieve the above objectives, the present invention adopts the following technical solution: On the one hand, an egg product carrier is provided, including a carrier frame one and a carrier frame two that can open and close relative to each other. The carrier frame one is provided with a mounting position one for mounting the upper mold of the egg product mold, and the carrier frame two is provided with a mounting position two for mounting the lower mold of the egg product mold. The carrier is equipped with a traction mechanism, which includes a movable actuating part one and an actuating part two. The actuating part one and the actuating part two are used to connect with the flexible feed port of the upper mold to traction the feed port to undergo flexible deformation and open or close it.
[0006] In possible implementations, the first carrier and the second carrier are rotatably connected to perform a mold closing action that opens and closes relative to each other; or, the first carrier (100) and the second carrier (200) are independent components that can be completely separated from each other. A locking mechanism is provided between the first carrier (100) and the second carrier (200).
[0007] In possible implementations, several mounting positions are arranged side by side, and several mounting positions are arranged side by side accordingly; The first installation position has N rows, and the second installation position has N rows, where N ≥ 1.
[0008] In a possible implementation, the traction mechanism includes a linkage mechanism, in which all moving parts one and all moving parts two are driven and coordinated with the linkage mechanism to move synchronously.
[0009] In a possible implementation, the linkage mechanism includes a linkage rod extending in a parallel direction along the mounting position one, the linkage rod driving all the first and / or all the second motion parts to move synchronously in a manner that rotates about its own axis or moves along its own axis.
[0010] On the other hand, an egg product processing component is also provided, including an egg product carrier and an egg product mold. The egg product mold includes an upper mold and a lower mold that cooperates with the upper mold. When the upper mold and the lower mold are assembled, they form a closed molding cavity. The upper mold is provided with a feeding part made of flexible material, and the feeding part is provided with a feeding port that communicates with the molding cavity. The egg product carrier includes a carrier frame one and a carrier frame two that can open and close relative to each other. The carrier frame one is provided with a mounting position one for mounting the upper mold, and the carrier frame two is provided with a mounting position two for mounting the lower mold. The carrier is equipped with a traction mechanism, which includes a first moving part and a second moving part that move relative to each other. The first moving part and the second moving part are used to connect with the feed inlet so as to cause the feed inlet to undergo flexible deformation to open and close.
[0011] In one possible implementation, the feed inlet is slit-shaped.
[0012] In one possible implementation, the feed port is formed by cutting.
[0013] In one possible implementation, the feed inlet is in a closed state under natural conditions.
[0014] In a possible implementation, the traction mechanism includes a linkage mechanism, in which all moving parts one and all moving parts two are driven and coordinated with the linkage mechanism to move synchronously.
[0015] In a possible implementation, the linkage mechanism includes a linkage rod extending in a parallel direction along the mounting position one, the linkage rod driving all the first and / or all the second motion parts to move synchronously in a manner that rotates about its own axis or moves along its own axis.
[0016] In one possible implementation, the feeding section and the upper mold are integrally formed using a flexible material.
[0017] In one possible implementation, the feed section includes a thickened portion extending axially outward along the feed port, the feed port being formed on the thickened portion.
[0018] In a possible implementation, the feeding section is provided with a traction section one and a traction section two located on two opposite sides of the feeding port. The traction section one is connected to the actuation section one, and the traction section two is connected to the actuation section two.
[0019] In one possible implementation, the cross-section of the traction unit has a T-shaped structure.
[0020] In one possible implementation, the inlet end of the feed port is provided with a guide port.
[0021] In a possible implementation, both the upper mold and the lower mold are provided with a positioning structure one for installation. The positioning structure is a ring structure distributed circumferentially along the mold opening of the upper mold and the lower mold. Both the first installation position and the second installation position are provided with a positioning structure two that cooperates with the positioning structure one.
[0022] Compared with the prior art, the present invention has the following beneficial effects: The egg product carrier and egg product processing components of this utility model facilitate the opening and closing of the upper and lower molds by opening and closing the first and second carrier frames, thereby avoiding the problem of low work efficiency caused by manual mold closing, making it more convenient. Furthermore, under the action of the traction mechanism, the flexible feed port of the upper mold can be controlled to open and close, making the control more accurate, improving work efficiency, making it more aesthetically pleasing, and resulting in higher molding quality.
[0023] Furthermore, the upper and lower molds, which can form a closed molding cavity, ensure that no inlet marks remain on the surface of the molded egg products during the molding process. This results in a more regular and aesthetically pleasing outer surface. The flexible material inlet section allows for flexible deformation control of the inlet opening and closing, and also makes it easier to ensure that there are no obvious inlet marks when the inlet of the molding cavity is closed. This results in no obvious mold marks on the molded egg products, leading to higher molding quality. It also avoids the need for valves to open and close the mold, thus improving work efficiency.
[0024] At the same time, it can also open and close several egg product molds in batches, which greatly improves work efficiency.
[0025] In addition, the feeding part and the main body of the mold are integrally formed from flexible materials. While the main body of the mold can be easily demolded by the traction force, the overall structure is also simpler and more beautiful. Attached Figure Description
[0026] Figure 1 A first-person perspective stereoscopic view of an egg product processing component; Figure 2 for Figure 1 A magnified structural diagram of part A in the middle; Figure 3 A stereoscopic view of an egg product processing component from a second perspective; Figure 4 This is a schematic diagram illustrating the mold opening and closing principle of an egg product processing component. Figure 5 A perspective view of an egg product mold, which is a component of an egg product processing assembly; Figure 6 A top view of an egg product mold, a component of an egg product processing assembly; Figure 7 A cross-sectional view of an egg product mold, which is part of an egg product processing component; Figure 8 A perspective view of the feeding section of an egg product mold in an open state, which is a component for processing egg products; Figure 9 A perspective view of another structure of an egg product processing component; Figure 10 for Figure 9 The diagram shows the locking mechanism in the structure after it has been unlocked.
[0027] In the diagram: 01-Egg product mold; 1-Upper mold; 2-Lower mold; 3-Molding cavity; 4-Feeding part; 41-Feeding port; 411-Guide port; 42-Traction part; 43-Thickening part; 5-Positioning structure one; 100-Carrier frame one; 110-Handle; 200-Carrier frame two; 300-Traction mechanism; 310-Linkage rod; 311-Linkage rod one; 312-Linkage rod two; 321-Action part one; 322-Action part two; 330-Drive device; 340-Spring; 400-Rotating shaft; 500-Locking mechanism; 510-Locking tongue; 520-Fastener. Detailed Implementation
[0028] To enable those skilled in the art to better understand the technical solution of this utility model, the present utility model will be further described in detail below with reference to specific embodiments.
[0029] Please refer to Figure 5-8As shown, an embodiment of this application provides an egg product carrier suitable for an egg product mold 01 with a flexible feed inlet 41. The flexible feed inlet 41 can be flexibly deformed under external force due to the material properties of the flexible material. It can be opened and closed through flexible deformation. In the closed state, the egg product mold 01 will not leave a mark of the feed inlet 41 on the outer surface of the egg product during the molding process, which can make the egg product more beautiful and the molding quality higher.
[0030] For the egg product mold 01 mentioned above, please refer to... Figure 1-10 As shown, an egg product carrier according to an embodiment of this application may include a carrier frame 100 and a carrier frame 200 that open and close relative to each other. The carrier frame 100 is provided with a mounting position 1 for mounting the upper mold 1 of the egg product mold 01, and the carrier frame 200 is provided with a mounting position 2 for mounting the lower mold 2 of the egg product mold 01. The carrier frame 100 is provided with a traction mechanism 300, which includes a moving part 321 and a moving part 322 that are relatively movable. The moving part 321 and the moving part 322 are used to connect with the flexible feed port 41 of the upper mold 1 so as to pull the feed port 41 to undergo flexible deformation and open and close it.
[0031] Among them, mounting position one on carrier 100 can facilitate the installation of upper mold 1 of egg product mold 01, and mounting position two on carrier 200 can facilitate the installation of lower mold 2 of egg product mold 01. The upper mold 1 and lower mold 2 can be closed or opened by relative opening and closing of carrier 100 and carrier 200, which can facilitate mechanized mold closing. By configuring an external drive mechanism, carrier 1 and carrier 2 can be automatically opened and closed relative to each other, which can improve work efficiency and avoid the problem of needing manual mold opening and closing, making it more convenient. A traction mechanism 300 is provided on the carrier frame 100. The traction mechanism 300 is used to open and close the flexible feed port 41 of the upper mold 1 of the egg product mold 01 to achieve automatic control. Specifically, the traction mechanism 300 is equipped with two relatively movable moving parts 321 and 322. The moving parts 321 and 322 are connected to both sides of the flexible feed port 41. The relative movement of the two parts can pull the flexible feed port 41 to deform it, thereby enabling opening and closing control. In this way, the traction mechanism can facilitate the automatic control of the opening and closing of the flexible feed port 41 of the egg product mold 01, which is more convenient and faster.
[0032] Through the above technical solution, the opening and closing of carrier 100 and carrier 200 can facilitate the closing or opening of the upper mold 1 and the lower mold 2, thereby avoiding the problem of low work efficiency caused by manual mold closing, which is more convenient. Furthermore, under the action of the traction mechanism 300, the flexible feed port 41 of the upper mold 1 can be controlled by transmission, making the control more accurate, improving work efficiency, making it more aesthetically pleasing, and resulting in higher molding quality.
[0033] In one embodiment, the carrier frame 100 and the carrier frame 200 are rotatably connected to perform a mold closing action with relative opening and closing.
[0034] In this way, the first carrier 100 and the second carrier 200 can be opened and closed by flipping. This flipping method facilitates the addition of materials. That is, when the mold is not closed, there is enough space above the lower mold 2 for the addition of materials. For example, when making sandwich eggs, a material adding device is set directly above the lower mold 2 to put in the filling and egg liquid. After the filling is put in through the material adding device, the first carrier 100 can be closed by flipping. Then, the egg liquid is added by controlling the flexible feed port 41 to open. This completes the material adding operation.
[0035] In the specific implementation process, carrier frame 100 and carrier frame 200 are rotatably connected by a rotating shaft 400. This rotation connects to a drive mechanism such as a drive motor. Under the drive of the drive mechanism, carrier frame 100 can be flipped. This flipping allows the upper mold 1 and lower mold 2 to close, thereby forming the molding cavity 3. Specifically, carrier frame 100 is manually flipped and is equipped with a handle 110.
[0036] In another embodiment, the carrier 100 and the carrier 200 may also be separate, independent components.
[0037] In this embodiment, there is no rotational connection or other constraint relationship between carrier 100 and carrier 200. This constraint relationship mainly refers to the fact that there is no connection relationship when the two are separated during mold opening. For example, when the mold is closed, the two are in a closed state with the upper and lower positions, and when the mold is opened, the two are separated by the relative movement of the upper and lower parts. At this time, the two are not connected.
[0038] Based on any of the above embodiments, a locking mechanism 500 may be provided between the first carrier 100 and the second carrier 200. This locking mechanism is used to ensure that the first carrier 100 and the second carrier 200 can be closed in a relatively fixed state when the mold is closed, so as to avoid relative displacement during the mold forming process, which would cause deformation of the egg product mold and result in deformation of the internal egg product.
[0039] In practical implementation, the locking mechanism 500 can use different locking methods. For example, it can be locked using a latch structure, with a male latch on one of the carrier 100 and the carrier 200, and a female latch on the other, allowing for a latch connection for locking. The latch can also be a snap-fit structure, such as... Figure 9 and Figure 10As shown, a locking tongue 510 is provided on the carrier 100, and a fastener 520 with a locking groove is rotatably provided on the carrier 200. When the fastener 520 is rotated and engaged with the locking tongue 510, locking can be achieved; or, for example, the structure of an existing quick-locking bolt can be used.
[0040] To enable batch processing, several mounting positions are arranged side by side, and several mounting positions are arranged side by side.
[0041] In addition, such as Figure 9 As shown, mounting position one can also be configured with N rows, and mounting position two can be configured with N rows, where N≥1. By setting more rows, egg products can be processed and shaped in larger batches, further improving processing efficiency.
[0042] In this way, many sets of mounting positions can be set on the egg product carrier. Mounting position one and mounting position two of each set of mounting positions can be conveniently installed by the upper mold 1 and the lower mold 2, respectively. This allows for the batch production of egg products and significantly improves work efficiency.
[0043] In the embodiments of this application, the traction mechanism 300 includes a linkage mechanism, and all the first actuating part 321 and all the second actuating part 322 are driven and coordinated with the linkage mechanism to move synchronously.
[0044] The linkage mechanism is used to synchronize the movement of several sets of action parts 321 and 322. This makes it easier to open and close the egg product mold 01 simultaneously when multiple sets are set on the egg product carrier, thus enabling better batch processing operations.
[0045] In some embodiments of the linkage mechanism, the linkage mechanism includes a linkage rod 310 extending in a parallel direction along the mounting position one, the linkage rod 310 driving all the first actuating parts 321 and / or all the second actuating parts 322 to move synchronously in a manner that rotates about its own axis or moves along its own axis.
[0046] The linkage rod 310 is used to connect each set of motion parts, and through linkage control, the motion part 1 321 and motion part 2 322 of each set of motion parts can move relative to each other, thereby enabling each set of egg product molds 01 to perform synchronous opening and closing actions. The linkage 310 can be driven in several ways. Firstly, it can be connected to the first actuator 321 and the second actuator 322 via a threaded linkage shaft. The thread structure can be either a forward or reverse thread. In this way, rotation of the linkage 310 can drive relative movement between the first actuator 321 and the second actuator 322. Secondly, the axial movement of the linkage 310 can drive relative movement between either the first actuator 321 or the second actuator 322. In this structure, one linkage 310 can be used to move either the first actuator 321 or the second actuator 322 to achieve relative movement. Alternatively, two linkage 310s can be used, or they can be grouped together. Two or more linkage 310s can be connected to the first actuator 321 and the second actuator 322 respectively, and movement of the two groups of linkage 310 along opposite axes can achieve relative movement between the first actuator 321 and the second actuator 322. Furthermore, to achieve automatic driving of the linkage rod 310, a drive device 330 can be configured to rotate or move the linkage rod 310 axially. Since each set of linkage rods 310 is connected to each set of actuating parts 321 and 322, a drive device 330 can be set between a set of actuating parts 321 and 322. By driving a set of actuating parts 321 and 322 to move relative to each other, each set of actuating parts 321 and 322 connected to it can also be driven synchronously under the transmission action of the linkage rod 310, thus achieving linkage drive. The drive device 330 can be a pusher device with two telescopic ends. The device internally uses gear transmission to mesh with the toothed columns on both sides so that the telescopic ends on both sides move towards each other, thereby achieving the driving of actuating parts 321 and 322. To facilitate more stable transmission and a more compact structure, the linkage rods 310 are arranged in pairs, with two sets in total. For example, the linkage rods 310 in the two sets are linkage rod one 311 and linkage rod two 312. Linkage rod one 311 is connected to actuating part one 321, and linkage rod two 312 is connected to actuating part two 322. Actuating part one 321 and linkage rod two 312 are in sliding engagement, and actuating part two 322 and linkage rod one 311 are in sliding engagement. Linkage rod one 311 and linkage rod two 312 move in opposite directions along the axial direction. This connection and transmission structure makes the structure more compact and the transmission more stable.
[0047] In addition, a spring 340 can be provided to facilitate the reset of the linkage rod 310.
[0048] Please refer to Figure 1-8As shown, embodiments of this application also provide an egg product processing component, including an egg product carrier and an egg product mold 01. The egg product mold 01 includes an upper mold 1 and a lower mold 2 that cooperates with the upper mold 1. When the upper mold 1 and the lower mold 2 are assembled, a closed molding cavity 3 is formed between them. The upper mold 1 is provided with a feeding part 4 made of flexible material, and the feeding part 4 is provided with a feeding port 41 that communicates with the molding cavity 3.
[0049] The egg product carrier is used to mount the egg product mold 01 and drive the egg product mold 01 to open and close. The upper mold 1 and lower mold 2 are components of the egg product mold 01, forming the egg product. When closed, they form a closed molding cavity 3. This closed molding cavity 3 differs from traditional mold cavities with open sprues. The feed inlet 41, made of flexible material, avoids leaving traces on the egg product during molding, resulting in higher molding quality and a more aesthetically pleasing appearance. Specifically, the feed section 4, due to the material properties of the flexible material, can deform flexibly under external force, allowing it to open and close. In the closed state, the molding cavity 3 is a closed structure, and the flexible material also has better conformability, resulting in smaller or less noticeable gaps when closed. The shape of the molding cavity 3 can be set to different shapes according to the different production requirements of the egg product; it can be square, spherical, or egg-shaped, without limitation. The flexible material can be elastic or inelastic.
[0050] In an embodiment of this application, the egg product carrier includes a first carrier frame 100 and a second carrier frame 200 that open and close relative to each other. The first carrier frame 100 is provided with a mounting position 1 for mounting the upper mold 1, and the second carrier frame 200 is provided with a mounting position 2 for mounting the lower mold 2. The first carrier frame 100 is provided with a traction mechanism 300, which includes a first moving part 321 and a second moving part 322 that move relative to each other. The first moving part 321 and the second moving part 322 are used to connect with the feed inlet 41 to traction the feed inlet 41 to undergo flexible deformation and open and close it.
[0051] The upper mold 1 and lower mold 2 can be opened and closed via carrier frame 100 and carrier frame 200, and the flexible feed port 41 of the upper mold 1 can be flexibly deformed via traction mechanism 300, thereby controlling its opening and closing. Through this technical solution, the egg product mold 01 can open and close under the opening and closing action of carrier frame 100 and carrier frame 200. By opening and closing the feed port 41, no or minimal traces of the feed port 41 are left after closing during the molding process, resulting in more aesthetically pleasing egg products and better molding quality.
[0052] Please refer to Figure 5-8As shown, in one embodiment, the feed inlet 41 is a slit-shaped inlet.
[0053] In this way, the seam-type feed inlet 41 can have a tight fit after closing, which further helps to prevent the traces of feed inlet 41 from remaining on the outer surface of the egg product, making it more beautiful and with higher molding quality.
[0054] Furthermore, the feed inlet 41 is formed by cutting.
[0055] In this way, the feed inlet 41 formed by cutting can have a smaller gap when closed, making the residual traces of the feed inlet 41 less noticeable after the egg product is formed.
[0056] Preferably, the feed inlet 41 is in a closed state in its natural state. The feed inlet 41, which is in a closed state in its natural state, can be opened by applying an external force and can be restored to a closed state after the external force is removed. This also makes it more convenient to open and close by utilizing the material properties of the flexible material of the feed part 4.
[0057] Specifically, flexible materials can be made of food-grade rubber or silicone.
[0058] To facilitate demolding, the feeding section 4 and the upper mold 1 are integrally formed using a flexible material. By integrally forming the feeding section 4 and the upper mold 1, the deformation generated when the feeding section 4 is subjected to external force can also cause the main body of the upper mold 1 to deform, causing the inner wall of the molding cavity 3 to gradually separate from the outer surface of the egg product, thereby facilitating demolding and improving demolding efficiency.
[0059] In an embodiment of this application, the feeding section 4 includes a thickened section 43 extending axially outward along the feeding port 41, and the feeding port 41 is formed on the thickened section 43.
[0060] The thickened portion 43 can increase the wall thickness of the feed portion 4 or the feed port 41, giving it a longer length in the axial direction and a certain thickness in the thickness direction. This allows the feed portion 4 to have a smaller range of deformation when it opens and closes, and thus it can close more tightly in its natural state, avoiding the problem of misalignment caused by excessive movement, which would affect the molding quality.
[0061] In order to facilitate the control of the opening and closing of the feed inlet 41 of the feed section 4, the feed section 4 is provided with a traction part 42 located on the side of the feed inlet 41. The traction part 42 pulls the feed section 4 to deform it so as to open and close the feed inlet 41.
[0062] In this way, the feeding section 4 can undergo flexible deformation by being pulled by the traction section 42, thereby controlling the opening and closing of the feeding port 41.
[0063] Preferably, the traction part 42 has a T-shaped cross-section. The T-shaped structure of the traction part 42 facilitates engagement with either the first actuating part 321 or the second actuating part 322 of the traction mechanism 300, allowing for easier opening and closing under the pulling action of the traction mechanism 300. Of course, the traction part 42 can also employ other structures or connection methods to connect with the traction mechanism 300; the specific configuration can be selected according to actual needs and is not limited.
[0064] In the specific implementation process, the inlet end of the feed port 41 is provided with a guide port 411. The guide port 411 facilitates the insertion of the liquid injection nozzle and can play a good guiding role.
[0065] To facilitate the forming of egg products by the egg product mold 01 in conjunction with external mechanisms, both the upper mold 1 and the lower mold 2 are provided with a positioning structure 5 for installation. This positioning structure is a ring-shaped structure distributed circumferentially along the mold opening of the upper mold 1 and the lower mold 2. Both mounting positions 1 and 2 are provided with a second positioning structure that mates with the positioning structure 5. The second positioning structure facilitates the mating of the positioning structure 5 on the upper mold 1 and the lower mold 2, allowing for relatively stable installation on the egg product carrier. Specifically, this ring-shaped structure can be configured with a ring-shaped positioning groove or a ring-shaped positioning protrusion.
[0066] In one application scenario, the egg product mold 01 can be used to make stuffed eggs. In the prior art, the mold for stuffed eggs includes an upper mold 1 and a lower mold 2. Because the injection port of the upper mold 1 is designed as an open structure, the mold can only be in a vertical state during the steaming process. Therefore, to keep the filling in the center, the only way to fix the filling is to set needles on the inner wall of the mold, which will lead to the problem of pinholes. However, the feeding port 41 of the mold in this application is closable, so that the mold can be flipped during the steaming process. By rotating, the filling is centered, thus completely removing the needles, solving the problem of pinholes, and ensuring that the egg product mold 01 has a smooth and continuous surface.
[0067] In the actual molding process, the egg product processing component can be placed in a steam cooking space. The egg product processing component rotates in this space, causing the egg liquid and filling to roll and flow in the egg product mold 01. The rolling flow keeps the filling in a good center position, thus avoiding the need to set positioning pins in the mold, which is more convenient.
[0068] The above are merely preferred embodiments of this utility model. It should be noted that the above preferred embodiments should not be considered as limitations on this utility model, and the scope of protection of this utility model should be determined by the scope defined in the claims. For those skilled in the art, several improvements and modifications can be made without departing from the spirit and scope of this utility model, and these improvements and modifications should also be considered within the scope of protection of this utility model.
Claims
1. A carrier for egg products, characterized in that, It includes a carrier frame one (100) and a carrier frame two (200) that perform relative opening and closing actions. The carrier frame one (100) is provided with a mounting position one for mounting the upper mold (1) of the egg product mold (01), and the carrier frame two (200) is provided with a mounting position two for mounting the lower mold (2) of the egg product mold (01). The carrier frame (100) is provided with a traction mechanism (300). The traction mechanism (300) includes a relatively movable action part (321) and an action part (322). The action part (321) and the action part (322) are used to connect with the flexible feed port (41) of the upper mold (1) so as to cause the feed port (41) to undergo flexible deformation and open or close.
2. The egg product carrier as described in claim 1, characterized in that, The first carrier (100) and the second carrier (200) are rotatably connected to perform a mold closing action of opening and closing relative to each other; or, the first carrier (100) and the second carrier (200) are independent components that can be completely separated from each other. A locking mechanism is provided between the first carrier (100) and the second carrier (200).
3. The egg product carrier as described in claim 1, characterized in that, Several installation positions are arranged side by side, and several installation positions are arranged side by side accordingly; The first installation position has N rows, and the second installation position has N rows, where N ≥ 1.
4. The egg product carrier as described in claim 3, characterized in that, The traction mechanism (300) includes a linkage mechanism, and all the first actuating part (321) and all the second actuating part (322) are driven and coordinated with the linkage mechanism to move synchronously.
5. The egg product carrier as described in claim 4, characterized in that, The linkage mechanism includes a linkage rod (310) extending in a parallel direction along the mounting position one. The linkage rod (310) drives all the first action part (321) and / or all the second action part (322) to move synchronously by rotating about its own axis or moving along its own axis.
6. An egg product processing assembly characterized by, The product includes an egg product carrier and an egg product mold (01). The egg product mold (01) includes an upper mold (1) and a lower mold (2) that cooperates with the upper mold (1). When the upper mold (1) and the lower mold (2) are assembled, they form a closed molding cavity (3). The upper mold (1) is provided with a feeding part (4) made of flexible material. The feeding part (4) is provided with a feeding port (41) that communicates with the molding cavity (3). The egg product carrier includes a carrier frame one (100) and a carrier frame two (200) that can open and close relative to each other. The carrier frame one (100) is provided with a mounting position one for mounting the upper mold (1), and the carrier frame two (200) is provided with a mounting position two for mounting the lower mold (2). The carrier (100) is provided with a traction mechanism (300), which includes a first moving part (321) and a second moving part (322) that move relative to each other. The first moving part (321) and the second moving part (322) are used to connect with the feed inlet (41) to cause the feed inlet (41) to undergo flexible deformation and open or close.
7. An egg product processing assembly as claimed in claim 6 wherein, The feed inlet (41) is slit-shaped.
8. An egg product processing assembly as claimed in claim 6 wherein, The feed inlet (41) is formed by cutting.
9. An egg product processing assembly as claimed in claim 6 wherein, The feed inlet (41) is in a closed state under normal conditions.
10. The egg product processing component as described in claim 6, characterized in that, The traction mechanism (300) includes a linkage mechanism, and all the first actuating part (321) and all the second actuating part (322) are driven and coordinated with the linkage mechanism to move synchronously.