Complementary food machine

CN224723135UActive Publication Date: 2026-09-08SHENZHENSHI LUTEJIACHENG SUPPLYCHAIN MANAGEMENT CO LTD
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Patent Information

Application Number
CN202521601724.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-07-29
Publication Date
2026-09-08
Estimated Expiration
2035-07-29

AI Technical Summary

Technical Problem

[0003]本申请提供一种辅食机,旨在解决现有辅食机无法对食物进行切块,导致辅食制作繁琐的技术问题

Benefits of technology

[0028] According to the above embodiment of the baby food maker, by setting a dicing mechanism, the dicing mechanism can dice the food during the process of putting food into the carrying container. Compared with the technical solution of manually dicing on a cutting board or dicing by an external dicing machine, it simplifies the preparation of baby food and improves the convenience of making baby food.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model is suitable for the technical field of maternal and infant articles, disclose a kind of complementary food machine. Complementary food machine includes bearing container, steam generating device, stirs and cuts component and cutting mechanism, steam generating device is used to heat water to generate water vapor, steam generating device is communicated with the cavity of bearing container, to make water vapor can enter bearing container. Stirring component is located in bearing container, for stirring and cutting food. Cutting mechanism is located in bearing container, and it is above stirring component, cutting mechanism includes truncation cutting component and makes cutting component, truncation cutting component is located above making cutting component, truncation cutting component is used to cut off food, making cutting component is used to cut off food into block. The complementary food machine provided in the present application, by setting cutting mechanism, in the process of putting food into bearing container, cutting mechanism can cut food, simplify complementary food preparation, improve the convenience of making complementary food.
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Description

Technical Field

[0001] This utility model relates to the field of maternal and infant products technology, and in particular to a baby food maker. Background Technology

[0002] During the infant feeding stage, mothers need to prepare complementary foods to feed their babies. The process typically involves first dicing foods such as apples, bananas, carrots, and other fruits and vegetables, then placing the diced food into a food processor, blending, and steaming until cooked. Currently, the main method is to manually dice the food on a cutting board or use a dicing machine, then transfer the diced food into the food processor for blending and steaming, which increases the complexity of complementary food preparation. Utility Model Content

[0003] This application provides a baby food maker, which aims to solve the technical problem that existing baby food makers cannot cut food into pieces, resulting in cumbersome baby food preparation.

[0004] According to a first aspect of this application, one embodiment provides a baby food processor, comprising:

[0005] Carrying container;

[0006] A steam generating device is used to heat water to generate steam. The steam generating device is connected to the cavity of the carrying container so that the steam can enter the carrying container.

[0007] A grinding component, disposed within the carrying container, for grinding food; and,

[0008] A dicing mechanism is disposed within the carrying container and located above the grinding component; the dicing mechanism includes a cutting component and a dicing component, the cutting component being disposed above the dicing component, the cutting component being used to cut the food into pieces, and the dicing component being used to cut the cut food into pieces.

[0009] In one embodiment, the baby food machine further includes a transmission mechanism, which has a locked state and an unlocked state;

[0010] When the transmission mechanism is in the locked state, the transmission mechanism is connected between the pulverizing component and the cutting component, and the rotation of the pulverizing component drives the transmission mechanism and the cutting component to rotate.

[0011] When the transmission mechanism is in the unlocked state, the transmission mechanism is non-transmissionally connected between the pulverizing component and the cutting component.

[0012] In one embodiment, the transmission mechanism includes a transmission locking device, which includes an upper transmission locking engagement member and a lower transmission locking engagement member disposed below the upper transmission locking engagement member;

[0013] The upper drive locking fitting is driven to the cutting assembly, and the lower drive locking fitting is driven to the pulverizing assembly. The upper drive locking fitting and the lower drive locking fitting have a clutch structure, which is used to lock and unlock the upper drive locking fitting and the lower drive locking fitting in the rotation direction of the pulverizing assembly.

[0014] When the upper transmission locking engagement and the lower transmission locking engagement are locked together, the transmission mechanism is in the locked state; when the upper transmission locking engagement and the lower transmission locking engagement are unlocked, the transmission mechanism is in the unlocked state.

[0015] In one embodiment, one of the upper transmission locking fitting and the lower transmission locking fitting is slidably sleeved onto the other in a vertical direction; the clutch structure includes a slider and a groove that are slidably fitted in a vertical direction, and one of the upper transmission locking fitting and the lower transmission locking fitting is provided with the slider and the other is provided with the groove;

[0016] When the slider is slidably positioned within the groove, the lower transmission locking engagement and the upper transmission locking engagement are locked together; when the slider is disengaged from the groove, the lower transmission locking engagement and the upper transmission locking engagement are released from their locked connection.

[0017] In one embodiment, the upper transmission locking fitting is slidably sleeved on the lower transmission locking fitting;

[0018] The upper transmission locking engagement member has a plurality of sliders on its outer periphery, and the plurality of sliders extend in a direction close to the lower transmission locking engagement member. The lower transmission locking engagement member has a plurality of grooves on its outer periphery.

[0019] In one embodiment, the transmission locking device further includes a pressing component connected to the upper transmission locking engagement member and positioned above the cutting assembly.

[0020] In one embodiment, the transmission locking device further includes an elastic element connected between the upper transmission locking engagement member and the lower transmission locking engagement member;

[0021] When the upper transmission locking engagement and the lower transmission locking engagement are locked together, the elastic element is in a compressed state; when the upper transmission locking engagement and the lower transmission locking engagement are released from the locked connection, the elastic element is in a free state.

[0022] In one embodiment, the transmission locking device further includes a limiting component connected between the upper transmission locking member and the lower transmission locking member, for controlling the upper transmission locking member and the lower transmission locking member to not move relative to each other when the transmission mechanism is in the locked state or in the unlocked state.

[0023] In one embodiment, the limiting component includes a first limiting member and a second limiting member, the first limiting member being connected to the upper transmission locking engagement member, and the second limiting member being connected to the lower transmission locking engagement member;

[0024] One of the first limiting member and the second limiting member is provided with a limiting groove and the other is provided with a limiting protrusion. The limiting groove is provided with a locking limiting part and an unlocking limiting part. The limiting protrusion is slidably connected to the limiting groove and can be limited to the locking limiting part and the unlocking limiting part.

[0025] When the limiting protrusion is located at the locking limiting position, the upper transmission locking engagement and the lower transmission locking engagement are locked together and cannot slide relative to each other in the vertical direction; when the limiting protrusion is located at the unlocking limiting position, the upper transmission locking engagement and the lower transmission locking engagement are unlocked and cannot slide relative to each other in the vertical direction.

[0026] In one embodiment, the transmission mechanism further includes a speed reduction transmission component connected between the pulverizing assembly and the transmission locking device.

[0027] In one embodiment, the dicing and cutting assembly includes a support platform and a dicing blade. The support platform is installed inside the support container and has a food passage hole. The dicing blade is detachably connected to the support platform and covers the food passage hole. The transmission mechanism passes through the support platform.

[0028] According to the above embodiment of the baby food maker, by setting a dicing mechanism, the dicing mechanism can dice the food during the process of putting food into the carrying container. Compared with the technical solution of manually dicing on a cutting board or dicing by an external dicing machine, it simplifies the preparation of baby food and improves the convenience of making baby food. Attached Figure Description

[0029] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on the structures shown in these drawings without creative effort.

[0030] Figure 1 This is a front view of the baby food processor provided in this embodiment of the utility model;

[0031] Figure 2 This is a schematic diagram of the steam removal device and cover of the baby food machine provided in this embodiment of the utility model from one perspective;

[0032] Figure 3 This is an exploded view of the steam removal device and cover of the baby food machine provided in this embodiment of the utility model;

[0033] Figure 4 This is a top view of the steam removal device and cover of the baby food machine provided in this embodiment of the utility model;

[0034] Figure 5 yes Figure 4 A cross-sectional view along line AA;

[0035] Figure 6 yes Figure 4 A cross-sectional view along line BB, showing the transmission mechanism in the unlocked state;

[0036] Figure 7 yes Figure 6 A magnified view of a section at point C;

[0037] Figure 8 yes Figure 4 A sectional view along line BB, showing the transmission mechanism in a locked state;

[0038] Figure 9 yes Figure 8 A magnified view of a section at point D;

[0039] Figure 10 This is a diagram showing the state of the transmission locking device provided in this embodiment when the upper transmission locking component and the lower transmission locking component are in the unlocked connection.

[0040] Figure 11 This is a diagram showing the state of the transmission locking device provided in this embodiment when the upper transmission locking fitting and the lower transmission locking fitting are locked together.

[0041] Figure 12 This is an exploded view of the transmission locking device provided in an embodiment of this utility model;

[0042] Figure 13 This is an exploded view of the limiting component provided in this embodiment of the utility model.

[0043] Explanation of icon numbers:

[0044] 100. Supporting container; 200. Dicing mechanism; 201. Cutting assembly; 2011. Second rotating shaft; 2012. Cutting blade; 202. Dicing assembly; 2021. Support platform; 2022. Dicing blade; 2023. Food passage hole; 300. Grinding assembly; 301. First rotating shaft; 302. Grinding blade; 400. Steam generator; 500. Transmission mechanism; 501. Transmission locking device; 10. Upper transmission locking fitting; 20. Lower transmission 30. Locking assembly; 31. Clutch structure; 32. Slider; 40. Pressing component; 50. Elastic component; 60. Limiting assembly; 61. First limiting component; 611. Limiting groove; 6111. Locking limiting part; 6112. Unlocking limiting part; 62. Second limiting component; 621. Limiting protrusion; 70. Accommodating cavity; 502. Speed ​​reduction transmission component; 600. Connecting component; 601. Through hole; 700. Food guide tube; 800. Cover; 900. Food channel.

[0045] The realization of the purpose, functional features and advantages of this utility model will be further explained in conjunction with the embodiments and with reference to the accompanying drawings. Detailed Implementation

[0046] 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.

[0047] It should be noted that all directional indicators (such as up, down, left, right, front, back, etc.) in this utility model embodiment are only used to explain the relative positional relationship and movement of each component in a certain specific posture. If the specific posture changes, the directional indicator will also change accordingly.

[0048] It should also be noted that when a component is described as "fixed to" or "set on" another component, it can be directly on the other component or there may be an intervening component present. When a component is described as "connected to" another component, it can be directly connected to the other component or there may be an intervening component present.

[0049] Furthermore, the use of terms such as "first" and "second" in this utility model is for descriptive purposes only and should not be construed as indicating or implying their relative importance or implicitly specifying the number of technical features indicated. Therefore, a feature defined as "first" or "second" may explicitly or implicitly include at least one of that feature. Additionally, the technical solutions of the various embodiments can be combined with each other, but only on the basis of being achievable by those skilled in the art. When the combination of technical solutions is contradictory or impossible to implement, such a combination of technical solutions should be considered non-existent and not within the scope of protection claimed by this utility model.

[0050] like Figures 1 to 5 As shown in the figure, the baby food processor provided in this embodiment includes a carrying container 100, a dicing mechanism 200, a grinding component 300, and a steam generator 400. The carrying container 100 is used to hold food. Both the dicing mechanism 200 and the grinding component 300 are disposed inside the carrying container 100. The dicing mechanism 200 is located above the grinding component 300. The dicing mechanism 200 is used to cut the food into pieces, and the grinding component 300 is used to grind the food, that is, to grind the cut food into pieces. The steam generator 400 is used to heat water to generate steam. The steam generator 400 is connected to the cavity of the carrying container 100 so that steam can enter the carrying container 100 and heat the food inside the carrying container 100. The grinding component 300 is located at the bottom of the cavity of the carrying container 100 and can grind the food inside the cavity of the carrying container 100 by rotation. It should be noted that, in this embodiment, "above" or "below" refers to the position of the bottom of the baby food maker when it is placed on the support platform, and also to the position of the baby food maker when it is in operation.

[0051] By employing the above technical solution, the food can be pulverized through the grinding component 300, which facilitates steaming, cooking, and consumption. A steam generator 400 connected to the carrying container 100 generates steam, which then enters the carrying container 100 and heats the food inside. A dicing mechanism 200 is installed above the grinding component 300. When food enters the carrying container 100, it first passes through the dicing mechanism 200 before reaching the grinding component 300. The dicing mechanism 200 cuts the food into chunks, which are then further pulverized by the grinding component 300, thus aiding in the grinding process. The baby food maker provided in this embodiment, by setting a dicing mechanism 200, can dice the food while it is being placed into the carrying container 100. Compared with the technical solutions of manually dicing on a cutting board or dicing by an external dicing machine, it simplifies the preparation of baby food and improves the convenience of making baby food.

[0052] Please see Figure 2 The dicing mechanism 200 includes a cutting component 201 and a dicing component 202. The cutting component 201 is positioned above the dicing component 202. The cutting component 201 is used to cut the food, and the dicing component 202 is used to cut the cut food into pieces. By using the cutting component 201 to cut the food, the length of the food can be shortened. By using the dicing component 202, the shortened food can be cut into pieces, thus achieving the dicing of food.

[0053] In this embodiment, the cutting directions of the cutting component 201 and the dicing component 202 intersect, and preferably, their cutting directions are perpendicular. In this embodiment, the cutting component 201 cuts the food horizontally, while the dicing component 202 cuts the food vertically. In practical applications, the food moves vertically from top to bottom. During this movement, the cutting component 201 cuts the food horizontally, and the dicing component 202 cuts the cut food into pieces vertically. It should be noted that when the dicing component 202 cuts the food, the food moves, but the dicing component 202 remains stationary.

[0054] Please see Figure 3 The baby food processor also includes a transmission mechanism 500, which has a locked state and an unlocked state. When the transmission mechanism 500 is in the locked state, it is connected to the grinding component 300 and the cutting component 201, and the rotation of the grinding component 300 drives the transmission mechanism 500 and the cutting component 201 to rotate. When the transmission mechanism 500 is in the unlocked state, it is not connected to the grinding component 300 and the cutting component 201. That is, when the transmission mechanism 500 is in the locked state, the rotation of the grinding component 300 drives the transmission mechanism 500 and the cutting component 201 to rotate, meaning that the cutting component 201 and the grinding component 300 can work simultaneously. When the transmission mechanism 500 is in the unlocked state, the rotation of the grinding component 300 cannot drive the transmission mechanism 500 and the cutting component 201 to rotate; when the grinding component 300 is working, the cutting component 201 is not working.

[0055] In practical applications, when the food is hard, such as carrots or apples, it's not easy to directly crush the whole food using the grinding component 300. Usually, it's diced first, then crushed. In this case, the transmission mechanism 500 can be locked, allowing the cutting component 201 and the grinding component 300 to work simultaneously. Combined with the dicing component 202, the hard food can be diced first and then crushed. When the food is soft, similar to meat, it doesn't need to be diced and can be crushed directly. In this case, the transmission mechanism 500 can be unlocked, allowing the grinding component 300 to work while the cutting component 201 remains inactive. After the food is placed in the container 100, the grinding component 300 can be used directly to crush it.

[0056] By adopting the above technical solution, a transmission mechanism 500 and a driving device can be set to drive the grinding component 300 and the cutting component 201 to rotate. Furthermore, the transmission mechanism 500 has a locked state and an unlocked state, allowing selection of whether to dice the ingredients depending on their type. This allows for the addition of both diced and non-diced foods to the baby food processor.

[0057] It is understood that in other embodiments, the baby food machine may not have a transmission mechanism 500. When this technical solution is adopted, two driving devices can be set, one driving device drives the grinding component 300 to rotate, and the other driving device drives the cutting component 201 to rotate.

[0058] Please see Figures 5 to 11 The transmission mechanism 500 includes a transmission locking device 501, which comprises an upper transmission locking fitting 10 and a lower transmission locking fitting 20 located below the upper transmission locking fitting 10. The upper transmission locking fitting 10 is tractively connected to the cutting assembly 201, and the lower transmission locking fitting 20 is tractively connected to the grinding assembly 300. A clutch structure 30 is provided between the upper transmission locking fitting 10 and the lower transmission locking fitting 20 for locking and unlocking the upper transmission locking fitting 10 and the lower transmission locking fitting 20 in the rotational direction of the grinding assembly 300. When the upper transmission locking fitting 10 and the lower transmission locking fitting 20 are locked, the transmission mechanism 500 is in a locked state; when the upper transmission locking fitting 10 and the lower transmission locking fitting 20 are unlocked, the transmission mechanism 500 is in an unlocked state.

[0059] The upper transmission locking fitting 10 is connected to the cutting assembly 201, and its rotation drives the cutting assembly 201 to rotate. Similarly, the lower transmission locking fitting 20 is connected to the grinding assembly 300, and its rotation drives the lower transmission locking fitting 20. In specific applications, when the upper and lower transmission locking fittings 10 and 20 are locked together, the rotation of the lower fitting 20 drives the upper fitting 10. Therefore, the rotation of the grinding assembly 300 drives the cutting assembly 201 to rotate, thus placing the transmission mechanism 500 in a locked state, connecting the grinding assembly 300 and the cutting assembly 201. When the upper and lower transmission locking fittings 10 and 20 are released from their locked state, the rotation of the lower fitting 20 cannot drive the upper fitting 10, and the cutting assembly 201 does not rotate while the grinding assembly 300 rotates.

[0060] In one embodiment, one of the upper transmission locking fitting 10 and the lower transmission locking fitting 20 is slidably sleeved onto the other in a vertical direction. The clutch structure 30 includes a slider 31 and a groove 32 that are slidably engaged in a vertical direction. One of the upper transmission locking fitting 10 and the lower transmission locking fitting 20 is provided with the slider 31, and the other is provided with the groove 32. When the slider 31 is slidably disposed in the groove 32, the lower transmission locking fitting 20 and the upper transmission locking fitting 10 are locked together; when the slider 31 disengages from the groove 32, the lower transmission locking fitting 20 and the upper transmission locking fitting 10 are released from the locked connection. This design has a simple structure.

[0061] In practical applications, when the added food is a hard ingredient, one of the upper transmission locking fitting 10 and the lower transmission locking fitting 20 can be driven to slide vertically toward the other. Correspondingly, the slider 31 slides within the groove 32. The lower transmission locking fitting 20 and the upper transmission locking fitting 10 are locked together in the rotational direction of the grinding assembly 300. The rotation of the grinding assembly 300 can drive the cutting assembly 201 to rotate, thereby achieving the dicing of hard ingredients. When the added food is a soft ingredient similar to meat, one of the upper transmission locking fitting 10 and the lower transmission locking fitting 20 can be driven to slide vertically away from the other. Correspondingly, the slider 31 disengages from the groove 32, and the lower transmission locking fitting 20 and the upper transmission locking fitting 10 are released from their locking connection in the rotational direction of the grinding assembly 300. The rotation of the grinding assembly 300 cannot drive the cutting assembly 201 to rotate.

[0062] Please see Figure 12In this embodiment, the upper transmission locking fitting 10 is slidably sleeved on the lower transmission locking fitting 20. The outer periphery of the upper transmission locking fitting 10 is provided with multiple sliders 31, which extend in a direction close to the lower transmission locking fitting 20. The outer periphery of the lower transmission locking fitting 20 is provided with multiple sliding grooves 32. The multiple sliders 31 are arranged at equal intervals along the circumference of the upper transmission locking fitting 10, and the multiple sliding grooves 32 are arranged at equal intervals along the circumference of the lower transmission locking fitting 20.

[0063] In specific applications, the upper transmission locking engagement 10 can be driven to slide vertically to the lower transmission locking engagement 20, so that the slider 31 can slide in the groove 32, and the upper transmission locking engagement 10 can be driven to slide vertically away from the lower transmission locking engagement 20, so that the lower slider 31 can disengage from the groove 32.

[0064] Please see Figure 5 and Figure 12 The transmission locking device 501 also includes a pressing member 40, which is connected to the upper transmission locking fitting 10 and is higher than the cutting assembly 201. When the transmission mechanism 500 is switched between a locked state and an unlocked state, the state switch of the transmission mechanism 500 can be achieved by pressing the pressing member 40. The pressing member 40 is positioned higher than the cutting assembly 201, making it less likely to come into contact with the cutting assembly 201 when pressing the pressing member 40, and facilitating pressing the pressing member 40.

[0065] In practical applications, when the transmission mechanism 500 is switched from the unlocked state to the locked state, the pressing component 40 can be pressed down for a long time. The pressing component 40 moves downward, causing the upper transmission locking engagement 10 to move downward. The upper transmission locking engagement 10 gradually moves closer to the lower transmission locking engagement 20, and the slider 31 slides into the slide groove 32, realizing the locking connection between the upper transmission locking engagement 10 and the lower transmission locking engagement 20. When the transmission mechanism 500 is switched from the locked state to the unlocked state, the pressing component 40 can be pressed briefly. Under the action of the following elastic force, the upper transmission locking engagement 10 moves upward, and the upper transmission locking engagement 10 gradually moves away from the lower transmission locking engagement 20. The slider 31 disengages from the slide groove 32, releasing the locking connection between the upper transmission locking engagement 10 and the lower transmission locking engagement 20.

[0066] Please see Figure 12The transmission locking device 501 also includes an elastic element 50, which is connected between the upper transmission locking fitting 10 and the lower transmission locking fitting 20. When the upper transmission locking fitting 10 and the lower transmission locking fitting 20 are locked together, the elastic element 50 is in a compressed state; when the upper transmission locking fitting 10 and the lower transmission locking fitting 20 are released from the locked connection, the elastic element 50 is in a free state. When the elastic element 50 is in the compressed state, it provides elastic force to the upper transmission locking fitting 10 to drive the upper transmission locking fitting 10 to move upward.

[0067] In one embodiment, multiple elastic elements 50 may be provided, and the multiple elastic elements 50 are evenly distributed between the upper transmission locking engagement 10 and the lower transmission locking engagement 20 to ensure the balance of the upper transmission locking engagement 10. In this embodiment, two elastic elements 50 are provided.

[0068] In one embodiment, the transmission locking device 501 further includes a limiting component 60, which is connected between the upper transmission locking engagement 10 and the lower transmission locking engagement 20. The limiting component 60 is used to prevent relative movement between the upper transmission locking engagement 10 and the lower transmission locking engagement 20 when the transmission mechanism 500 is in a locked or unlocked state. This allows the transmission mechanism 500 to remain in either a locked or unlocked state. Specifically, the limiting component 60 is used to prevent relative movement between the upper transmission locking engagement 10 and the lower transmission locking engagement 20 in the vertical direction when the transmission mechanism 500 is in a locked or unlocked state.

[0069] Please see Figures 6 to 9 , Figure 13 The limiting component 60 includes a first limiting member 61 and a second limiting member 62. The first limiting member 61 is connected to the upper transmission locking engagement member 10, and the second limiting member 62 is connected to the lower transmission locking engagement member 20. One of the first limiting member 61 and the second limiting member 62 is provided with a limiting groove 611, and the other is provided with a limiting protrusion 621. The limiting groove 611 is provided with a locking limiting portion 6111 and an unlocking limiting portion 6112. The limiting protrusion 621 is slidably connected to the limiting groove 6111 and can be limited to the locking limiting portion 6111 and the unlocking limiting portion 6112. When the limiting protrusion 621 is positioned at the locking limiting portion 6111, the upper transmission locking engagement 10 and the lower transmission locking engagement 20 are locked together and cannot slide relative to each other in the vertical direction; when the limiting protrusion 621 is positioned at the unlocking limiting portion 6112, the upper transmission locking engagement 10 and the lower transmission locking engagement 20 are unlocked and cannot slide relative to each other in the vertical direction. In other words, when the transmission mechanism 500 is in the locked state, the limiting protrusion 621 is positioned at the locking limiting portion 6111; when the transmission mechanism 500 is in the unlocked state, the limiting protrusion 621 is positioned at the unlocking limiting portion 6112.

[0070] In specific applications, when the transmission mechanism 500 is switched from the unlocked state to the locked state, pressing the pressing component 40 causes the limiting protrusion 621 to move out of the unlocking limiting part 6112. Continuing to press the pressing component 40 causes it to move downwards, driving the upper transmission locking engagement 10 and the first limiting component 61 to move downwards. The upper transmission locking engagement 10 moves downwards, gradually approaching the lower transmission locking engagement 20, causing the slider 31 to slide into the groove 32. The first limiting component 61 moves downwards, causing the limiting protrusion 621 to slide towards the locking limiting part 6111. When the limiting protrusion 621 reaches the locking limiting part 6111, it is limited to the locking limiting part 6111, the upper transmission locking engagement 10 stops moving, the slider 31 is located in the groove 32, and the upper transmission locking engagement 10 and the lower transmission locking engagement 20 are locked together and cannot slide relative to each other in the vertical direction.

[0071] When the transmission mechanism 500 is switched from the locked state to the unlocked state, the pressing component 40 is pressed briefly. The limiting protrusion 621 moves out from the locking limiting part 6111. The upper transmission locking engagement 10 moves upward under the action of the elastic force, and drives the first limiting part 61 to move upward. The upper transmission locking engagement 10 moves upward and gradually moves away from the lower transmission locking engagement 20, so that the slider 31 gradually disengages from the slide groove 32. The first limiting part 61 moves upward and causes the limiting protrusion 621 to slide towards the unlocking limiting part 6112. When the limiting protrusion 621 slides to the unlocking limiting part 6112, it is limited to the unlocking limiting part 6112. The upper transmission locking engagement 10 stops moving, the slider 31 completely disengages from the slide groove 32, the locking connection between the upper transmission locking engagement 10 and the lower transmission locking engagement 20 is released, and they cannot slide relative to each other in the vertical direction.

[0072] In this embodiment, the limiting groove 611 is disposed on the first limiting member 61, and the limiting protrusion 621 is disposed on the second limiting member 62. It can be understood that in other embodiments, the limiting groove 611 may also be disposed on the second limiting member 62, and the limiting protrusion 621 may also be disposed on the first limiting member 61.

[0073] In one embodiment, the locking limit portion 6111 is located above the unlocking limit portion 6112, and the locking limit portion 6111 and the unlocking limit portion 6112 are arranged in a vertical direction. It can be understood that in other embodiments, the locking limit portion 6111 and the unlocking limit portion 6112 may not be arranged in a vertical direction.

[0074] In one embodiment, multiple elastic elements 50 are arranged at equal intervals around the limiting assembly 60. This improves the balance of the upper transmission locking engagement 10 when it moves vertically. In this embodiment, two elastic elements 50 are respectively disposed on opposite sides of the limiting assembly 60.

[0075] In one embodiment, the upper transmission locking engagement 10 and the lower transmission locking engagement 20 enclose a receiving cavity 70, and the elastic member 50 and the limiting component 60 are both disposed in the receiving cavity 70. In this way, the integration of the transmission locking device 501 can be improved.

[0076] Please see Figure 6 and Figure 7 The transmission mechanism 500 also includes a reduction gear 502, which is connected between the crushing assembly 300 and the transmission locking device 501. By providing the reduction gear 502, the rotational speed of the cutting assembly 201 can be reduced. In specific applications, the reduction gear 502 is connected between the crushing assembly 300 and the lower transmission locking fitting 20.

[0077] Please see Figure 3 , Figure 6 and Figure 7 The pulverizing assembly 300 includes a first rotating shaft 301 and pulverizing blades 302. The pulverizing blades 302 are connected circumferentially to the first rotating shaft 301. The first rotating shaft 301 is used to connect a drive device, which drives the first rotating shaft 301 to rotate, thereby driving the pulverizing blades 302 to rotate. A reduction transmission component 502 is connected between the first rotating shaft 301 and the lower transmission locking engagement component 20.

[0078] Please see Figure 3 , Figure 5 and Figure 7 The cutting assembly 201 includes a second rotating shaft 2011 and a cutting blade 2012. The cutting blade 2012 is connected to the second rotating shaft 2011 in the circumferential direction. The second rotating shaft 2011 is connected to the upper transmission locking fitting 10.

[0079] Please see Figure 3 and Figure 5 The dicing and cutting assembly 202 includes a support platform 2021 and a dicing blade 2022. The support platform 2021 is installed inside the support container 100 and is provided with a food passage hole 2023. The dicing blade 2022 is detachably connected to the support platform 2021 and covers the food passage hole 2023. The transmission mechanism 500 passes through the support platform 2021.

[0080] The support platform 2021 facilitates the installation of the dicing blade 2022. A food passage hole 2023 is provided in the support platform 2021 to allow food to pass through and enter the bottom of the container 100 cavity. The dicing blade 2022 covers the food passage hole 2023, allowing the food to be cut by the blade before entering the bottom of the container 100 cavity. The dicing blade 2022 is detachably connected to the support platform 2021. When the food to be placed is not intended to be diced, the dicing blade 2022 can be removed, allowing the food to pass directly through the food passage hole 2023 into the bottom of the container 100 cavity, thus ensuring that the dicing blade 2022 does not interfere with the placement of such food. A transmission mechanism 500 is provided through the support platform 2021, facilitating the connection of the cutting assembly 201 to the transmission mechanism 500 and positioning it above the dicing cutting assembly 202.

[0081] In one embodiment, please refer to Figure 5 The baby food processor also includes a connector 600, which connects the transmission mechanism 500 and the inner wall of the carrying container 100. By providing the connector 600, the installation stability of the transmission mechanism 500 can be improved. In this embodiment, the connector 600 is a plate-like structure, located below the support platform 2021. To facilitate food entering the bottom of the cavity of the carrying container 100, the connector 600 has a through hole 601 corresponding to the food passage hole 2023 for food to pass through.

[0082] In one embodiment, please refer to Figure 5 The baby food maker also includes a food guide tube 700, which is located between the support platform 2021 and the connector 600 and connects the food passage hole 2023 and the through hole 601, and is used to guide the food when it enters the cavity of the support container 100.

[0083] In one embodiment, please refer to Figure 1 The baby food maker also includes a lid 800, which covers the container 100. The lid 800 is also provided with a food passage 900. In practical applications, food enters the container 100 through the food passage 900.

[0084] The above description is only a preferred embodiment of the present utility model and does not limit the patent scope of the present utility model. All equivalent structural transformations made under the inventive concept of the present utility model using the contents of the present utility model specification and drawings, or direct / indirect applications in other related technical fields, are included within the patent protection scope of the present utility model.

Claims

1. A complementary food machine characterized by, include: Carrying container; A steam generating device is used to heat water to generate steam. The steam generating device is connected to the cavity of the carrying container so that the steam can enter the carrying container. A grinding component, disposed within the carrying container, is used to grind food; as well as, A dicing mechanism is disposed within the carrying container and located above the grinding component; the dicing mechanism includes a cutting component and a dicing component, the cutting component being disposed above the dicing component, the cutting component being used to cut the food into pieces, and the dicing component being used to cut the cut food into pieces.

2. The complementary food machine according to claim 1, wherein The baby food maker also includes a transmission mechanism, which has a locked state and an unlocked state; When the transmission mechanism is in the locked state, the transmission mechanism is connected between the pulverizing component and the cutting component, and the rotation of the pulverizing component drives the transmission mechanism and the cutting component to rotate. When the transmission mechanism is in the unlocked state, the transmission mechanism is non-transmissionally connected between the pulverizing component and the cutting component.

3. The complementary food machine according to claim 2, wherein The transmission mechanism includes a transmission locking device, which includes an upper transmission locking fitting and a lower transmission locking fitting disposed below the upper transmission locking fitting. The upper drive locking fitting is driven to the cutting assembly, and the lower drive locking fitting is driven to the pulverizing assembly. The upper drive locking fitting and the lower drive locking fitting have a clutch structure, which is used to lock and unlock the upper drive locking fitting and the lower drive locking fitting in the rotation direction of the pulverizing assembly. When the upper transmission locking engagement and the lower transmission locking engagement are locked together, the transmission mechanism is in the locked state; When the upper transmission locking engagement and the lower transmission locking engagement are released from their locking connection, the transmission mechanism is in the unlocked state.

4. The complementary food machine according to claim 3, wherein One of the upper transmission locking fitting and the lower transmission locking fitting is slidably sleeved onto the other in the vertical direction; the clutch structure includes a slider and a groove that are slidably fitted in the vertical direction, and one of the upper transmission locking fitting and the lower transmission locking fitting is provided with the slider and the other is provided with the groove; When the slider is slidably positioned within the groove, the lower transmission locking engagement and the upper transmission locking engagement are locked together; when the slider is disengaged from the groove, the lower transmission locking engagement and the upper transmission locking engagement are released from their locked connection.

5. The complementary food machine according to claim 4, wherein The upper transmission locking fitting is slidably sleeved on the lower transmission locking fitting; The upper transmission locking engagement member has a plurality of sliders on its outer periphery, and the plurality of sliders extend in a direction close to the lower transmission locking engagement member. The lower transmission locking engagement member has a plurality of grooves on its outer periphery.

6. The complementary food machine according to claim 5, wherein The transmission locking device further includes a pressing component, which is connected to the upper transmission locking fitting and is higher than the cutting assembly.

7. The complementary food machine according to claim 3, wherein The transmission locking device further includes an elastic element, which is connected between the upper transmission locking fitting and the lower transmission locking fitting; When the upper transmission locking engagement and the lower transmission locking engagement are locked together, the elastic element is in a compressed state; When the upper transmission locking engagement and the lower transmission locking engagement are released from their locking connection, the elastic element is in its natural state.

8. The complementary food machine according to claim 3, wherein The transmission locking device further includes a limiting component, which is connected between the upper transmission locking component and the lower transmission locking component. The limiting component is used to control the upper transmission locking component and the lower transmission locking component to prevent relative movement when the transmission mechanism is in the locked state or in the unlocked state.

9. The complementary food machine according to claim 8, wherein The limiting component includes a first limiting member and a second limiting member, the first limiting member being connected to the upper transmission locking engagement member, and the second limiting member being connected to the lower transmission locking engagement member; One of the first limiting member and the second limiting member is provided with a limiting groove and the other is provided with a limiting protrusion. The limiting groove is provided with a locking limiting part and an unlocking limiting part. The limiting protrusion is slidably connected to the limiting groove and can be limited to the locking limiting part and the unlocking limiting part. When the limiting protrusion is located at the locking limiting position, the upper transmission locking engagement and the lower transmission locking engagement are locked together and cannot slide relative to each other in the vertical direction; when the limiting protrusion is located at the unlocking limiting position, the upper transmission locking engagement and the lower transmission locking engagement are unlocked and cannot slide relative to each other in the vertical direction.

10. The complementary food machine according to any one of claims 3 to 9, characterized in that, The transmission mechanism also includes a speed reduction transmission component, which is connected between the pulverizing assembly and the transmission locking device.

11. The complementary food machine according to any one of claims 2 to 9, characterized in that, The dicing and cutting assembly includes a support platform and a dicing blade. The support platform is installed inside the support container and has a food passage hole. The dicing blade is detachably connected to the support platform and covers the food passage hole. The transmission mechanism passes through the support platform.