Food crushing device

By designing a feeding mechanism with multiple isolated receiving cavities and a gear meshing system in kitchen appliances, the food crushing device can feed ingredients in stages and segments, solving the problem of cumbersome operation in existing technologies and improving the efficiency and quality of food processing.

CN224070265UActive Publication Date: 2026-04-03刘翔高
View PDF 0 Cites 0 Cited by

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-21
Publication Date
2026-04-03

AI Technical Summary

Technical Problem

Existing kitchen appliances are cumbersome to operate when adding various ingredients that require different cooking times, requiring repeated stopping and starting, and users need to constantly monitor the machine's operation.

Method used

A food crushing device was designed, comprising a cup body and a dispensing mechanism. The dispensing mechanism includes a base, a storage box, and a drive mechanism. The storage box has multiple isolated sub-containment cavities. Food is dispensed in stages and segments through gear meshing, and the precise dispensing time of the food is controlled by a circuit board.

Benefits of technology

It enables the separate addition of different ingredients in stages, simplifies the operation process, avoids overheating and burning of ingredients, improves the taste and nutrient retention of food, and reduces the user's operating burden.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN224070265U_ABST
    Figure CN224070265U_ABST
Patent Text Reader

Abstract

The utility model discloses a food crushing device which comprises a cup body, the cup body is provided with a cooking cavity, a crushing mechanism is arranged in the cooking cavity, and the crushing mechanism is used for crushing food materials; the putting mechanism is connected to the cup body, and the putting mechanism comprises a base, a storage box and a driving mechanism; the base is connected with the cup body, and a first feeding port is formed in the base and communicated with the cooking cavity; the storage box is rotationally connected to the base, a containing cavity is formed in the storage box and used for containing food materials, the containing cavity comprises a plurality of sub containing cavities which are isolated from one another, and a first gear is arranged on the storage box in the circumferential direction; the driving mechanism is connected to the cup body, a second gear is arranged on the driving mechanism, the first gear is meshed with the second gear, the driving mechanism is used for driving the second gear to rotate, and the second gear is used for driving the storage box to rotate relative to the base, so that the food materials in the containing cavity enter the cooking cavity through the first feeding opening.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This application belongs to the field of home appliances, specifically relating to a food crushing device. Background Technology

[0002] When cooking food using kitchen appliances such as blenders and soy milk makers, different ingredients require different optimal cooking temperatures and times, necessitating the addition of different ingredients at different times. Currently, the most common method to achieve this is to temporarily stop the machine after its designated cooking time, then turn it on again to add the ingredients, and restart the machine. Adding multiple ingredients with different cooking times requires repeating this process multiple times, which is cumbersome and requires constant monitoring of the machine's operation. Utility Model Content

[0003] This utility model provides a food crushing device to solve the problem of cumbersome operation when adding multiple ingredients with different addition times in existing kitchen appliances.

[0004] To solve the above-mentioned technical problems, this utility model is implemented as follows:

[0005] This utility model embodiment provides a food crushing device, including:

[0006] The cup body has a cooking cavity, and a crushing mechanism is provided inside the cooking cavity for crushing food ingredients;

[0007] The dispensing mechanism is connected to the cup body and includes a base, a storage box, and a driving mechanism. The base is connected to the cup body and has a first inlet that communicates with the cooking cavity. The storage box is rotatably connected to the base and has a receiving cavity for holding the food. The receiving cavity includes multiple isolated sub-receiving cavities. A first gear is arranged circumferentially on the storage box. The driving mechanism is connected to the cup body and has a second gear. The first gear meshes with the second gear, and the driving mechanism drives the second gear to rotate. The second gear drives the storage box to rotate relative to the base, so that the food in the receiving cavity enters the cooking cavity through the first inlet.

[0008] Optionally, the storage box has side walls and a bottom plate, which together form the receiving cavity, and the first gear is disposed on the side of the bottom plate away from the receiving cavity.

[0009] Optionally, the base is provided with a circumferentially rotating groove so that the first gear can rotate in the rotating groove.

[0010] Optionally, the rotating groove is provided with a mounting port, the first gear is partially exposed in the mounting port, the second gear is disposed opposite to the mounting port, and the first gear and the second gear mesh in the mounting port.

[0011] Optionally, the drive mechanism has a drive shaft, and the second gear is sleeved on the drive shaft.

[0012] Optionally, each of the sub-containment cavities is provided with a second inlet on the side near the base. When the storage box is rotated so that the second inlet of one of the sub-containment cavities is opposite to the first inlet, the food in the container enters the cooking cavity sequentially through the second inlet and the first inlet.

[0013] Optionally, the storage box is cylindrical in shape, and a plurality of the sub-accommodating cavities are arranged sequentially along the circumference of the storage box.

[0014] Optionally, the food crushing device further includes an assembly circuit board disposed on the cup body and electrically connected to the drive mechanism.

[0015] Optionally, the cup body has an outer wall and an inner wall, the inner wall enclosing the cooking cavity, and a heating mechanism is arranged around the outer wall and the inner wall.

[0016] Optionally, the food crushing device further includes a cover plate, the opening of the cooking chamber having the same size as the opening of the storage box, the cover plate being adapted to the cooking chamber and the storage box, and the cover plate being disposed on the cup body or the storage box.

[0017] This utility model discloses a food crushing device, including a cup for crushing heated food and a feeding mechanism for feeding food. The feeding mechanism includes a base and a storage box that can rotate relative to each other. The storage box has multiple isolated sub-cavities for holding food. The base has a first inlet for feeding food into the cooking cavity of the cup. Food can be fed into each sub-cavity independently. The storage box has a first gear, and the base has a second gear. The first and second gears mesh, and under the action of a drive mechanism, the first and second gears rotate in opposite directions. The storage box also rotates relative to the base, causing each sub-cavity to rotate sequentially above the first inlet, thus enabling the food in each sub-cavity to be fed in stages. Attached Figure Description

[0018] Figure 1 This is a schematic diagram of a food crushing device provided in an embodiment of the present invention;

[0019] Figure 2This is an exploded view of a segmented delivery mechanism provided in an embodiment of this utility model;

[0020] Figure 3 This is a front view of the delivery mechanism provided in this embodiment of the utility model;

[0021] Figure 4 This is a top view of the dispensing mechanism provided in this embodiment of the utility model;

[0022] Figure 5 This is a bottom view of the dispensing mechanism provided in this embodiment of the utility model;

[0023] Figure 6 This is an exploded view of the delivery mechanism provided in this embodiment of the utility model;

[0024] Figure 7 This is a schematic diagram of the dispensing mechanism provided in an embodiment of the present utility model;

[0025] Figure 8 This is a schematic diagram of the dispensing mechanism provided in another embodiment of the present utility model.

[0026] Figure 9 This is a cross-sectional view of the dispensing mechanism provided in an embodiment of this utility model.

[0027] Explanation of reference numerals in the attached figures:

[0028] 100: Food crushing device; 10: Cup body; 11: Cooking chamber; 12: Assembly circuit board; 13: Mounting box; 14: Handle; 15: Spout; 20: Dispensing mechanism; 21: Base; 211: First feed inlet; 212: Bearing; 213: Rotating groove; 214: Mounting port; 215: Connecting part; 216: Snap-fit ​​part; 22: Storage box; 221: Receiving cavity; 2211: Sub-receiving cavity; 222: First gear; 223: Side wall; 224: Bottom plate; 225: Second feed inlet; 23: Drive mechanism; 231: Second gear; 30: Cover plate. Detailed Implementation

[0029] 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, not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those skilled in the art without creative effort are within the protection scope of the present utility model.

[0030] It should be understood that the phrase "one embodiment" or "an embodiment" throughout the specification means that a specific feature, structure, or characteristic related to the embodiment is included in at least one embodiment of the present invention. Therefore, "in one embodiment" or "in an embodiment" appearing throughout the specification do not necessarily refer to the same embodiment. Furthermore, these specific features, structures, or characteristics may be combined in any suitable manner in one or more embodiments.

[0031] This utility model embodiment provides a food crushing device 100, including: a cup body 10, the cup body 10 having a cooking cavity 11, the cooking cavity 11 having a crushing mechanism for crushing food ingredients; a dispensing mechanism 20, the dispensing mechanism 20 being connected to the cup body 10, the dispensing mechanism 20 including a base 21, a storage box 22 and a driving mechanism 23; the base 21 being connected to the cup body 10, the base 21 having a first feeding port 211 communicating with the cooking cavity 11; and the storage box 22 being rotatably connected to the base 21, the storage box 22 having a capacity for holding food ingredients. The cavity 221 is used to hold food. The cavity 221 includes multiple isolated sub-cavities 2211. The storage box 22 is provided with a first gear 222 along the circumferential direction. The drive mechanism 23 is connected to the cup body 10. The drive mechanism 23 is provided with a second gear 231. The first gear 222 meshes with the second gear 231. The drive mechanism 23 is used to drive the second gear 231 to rotate. The second gear 231 is used to drive the storage box 22 to rotate relative to the base 21, so that the food in the cavity 221 enters the cooking cavity 11 through the first feed port 211.

[0032] like Figures 1-2 As shown, the food crushing device 100 consists of a cup body 10 for crushing and heating food ingredients and a feeding mechanism 20 for feeding food ingredients. The cup body 10 has a cooking chamber 11 with an open top, a crushing mechanism, and a heating mechanism (not shown in the figure). The crushing mechanism includes a stirring blade and a motor. The motor provides power to the stirring blade, enabling it to grind and pulverize the food ingredients. The stirring blade is designed with a multi-angle, multi-layer structure, which can fully grind the food ingredients in different directions and at different levels, ensuring the fineness of the ingredients. Since the feeding mechanism 20 is also provided, the crushing mechanism in this embodiment typically adopts a lower blade design. The stirring blade is located at the bottom of the cooking chamber 11 and mounted on the cup body 10 to avoid conflict with the installation position of the upper feeding mechanism 20. The stirring blade mounted on the cup body 10 can also have a higher rotation speed and power, resulting in finer grinding and a better taste in the prepared food.

[0033] Optionally, the cup body 10 has an outer wall and an inner wall, the inner wall enclosing a cooking cavity 11, and a heating mechanism is arranged around the outer wall and the inner wall.

[0034] The heating mechanism in this embodiment employs a surround heating technology to evenly heat the liquid and ingredients within the cup 10, preventing localized overheating that could lead to scorching. The soy milk cup 10 is made of high-temperature resistant, food-grade material, ensuring safe use and easy cleaning.

[0035] Specifically, the heating mechanism can be heating tubes, with multiple heating tubes arranged around the cooking cavity 11.

[0036] The dispensing mechanism 20 is positioned above the cooking cavity 11, such as... Figures 2-9 As shown, the dispensing mechanism 20 includes a fixed base 21 and a rotatable storage box 22. The storage box 22 mainly serves to hold food ingredients. The base 21 serves two purposes: firstly, it fixes the dispensing mechanism 20 to the cup body 10; secondly, it provides a channel for the food ingredients to enter the cooking cavity 11. In specific applications, such as... Figure 9 As shown, the edge of the base 21 extends a certain height towards the cup body 10 to form a connecting part 215. The size of the connecting part 215 is smaller than the size of the opening of the receiving cavity 221 in the cup body 10, and the connecting part 215 extends into the receiving cavity 221. The edge of the base 21 extends a certain height towards the storage box 22 to form a locking part 216. The size of the locking part 216 is larger than the size of the opening of the receiving cavity 221, and the locking part 216 is locked at the opening of the receiving cavity 221. The connecting part 215 and the locking part 216 make the connection between the base 21 and the cup body 10 more stable. The connecting part 215 can be made of a material with high sliding friction, such as food-grade silicone, to further increase the connection strength between the base 21 and the cup body 10 and avoid problems such as shaking or even falling off caused by the vibration generated by the crushing mechanism 20 during operation.

[0037] The food container and the base 21 are connected by a bearing 212. The transmission bearing 212 is mounted on the base 21, and the storage box 22 is connected to the base 21 via the bearing 212 and rotates around the bearing 212. This reduces friction during rotation, allowing the storage box 22 to rotate smoothly and stably. This separate design not only ensures the stability of the device but also greatly facilitates cleaning after use, effectively preventing food residue and bacterial growth.

[0038] The feeding function of the dispensing mechanism 20 is realized through the first feeding port 211 on the base 21. The first feeding port 211 connects the receiving cavity 221 inside the storage box 22 above with the cooking cavity 11 below. The food in the storage box 22 enters the cooking cavity 11 through the first feeding port 211. The size of the base 21 is the same as the size of the opening at the top of the cooking cavity 11, so as to cover the cup body 10 and seal the cooking cavity 11. The dispensing mechanism 20 and the cup body 10 are detachably connected, which facilitates the cleaning of the inside of the cup body 10 and the dispensing mechanism 20. When the food is relatively simple or multiple food ingredients are cooked under the same conditions and do not need to be dispensed in batches, the dispensing mechanism 20 can be removed. The cup body 10, which has crushing and heating functions, can work independently.

[0039] Furthermore, the dispensing mechanism 20 in this embodiment can realize the separate dispensing of different ingredients. The accommodating cavity 221 in the storage box 22 is separated into multiple sub-accommodating cavities 2211 by a partition for holding different ingredients. The bottom area of ​​each sub-accommodating cavity 2211 is at least equal to the size of the first feeding port 211. As the storage box 22 rotates, each sub-accommodating cavity 2211 rotates to the top of the first feeding port 211 in sequence, and the placed ingredients enter the cooking cavity 11 in sequence for crushing and heating, thus realizing the separate dispensing of ingredients. The food crushing device 100 also has a built-in control program and circuit. Users can set the feeding time of each sub-containment chamber 2211 on the operation panel, put the ingredients into the storage box 22 in sequence, and then start the device. After the set time is reached, the drive mechanism 23 controls the storage box 22 to rotate, so that each sub-containment chamber 2211 rotates to the top of the first feed port 211 in sequence at the set time. The ingredients are then fed into the cooking chamber 11 in the lower cup body 10 through the first feed port 211, realizing the precise feeding of different ingredients in batches and at different times.

[0040] Preferably, the part where the dispensing mechanism 20 and the cup body 10 are connected is not completely aligned. The cup body 10 is provided with a protruding spout 15 for pouring out the food inside the cup body 10. Soy milk, juice, rice paste and other foods made in the cooking cavity 11 can be poured out from the spout 15 without removing the dispensing mechanism 20, making it more convenient to use and preventing users from being scalded by the hot outer shell of the dispensing mechanism 20 or the steam gushing out of the cooking cavity 11 when pouring out soy milk.

[0041] In some alternative embodiments, the food crushing device 100 also includes a cover plate 30, the opening of the cooking chamber 11 having the same size as the opening of the storage box 22, the cover plate 30 being adapted to the cooking chamber 11 and the storage box 22, and the cover plate 30 being disposed on the cup body 10 or the storage box 22.

[0042] The cover plate 30 is used to seal the inside of the food crushing device 100. The cover plate 30 can be used to cover the cooking cavity 11 of the cup body 10 or the storage box 22. In both working modes, where the dispensing mechanism 20 is set on the cup body 10 and the cup body 10 works alone, the same cover plate 30 can achieve the sealing of the inside of the food crushing device 100.

[0043] In some alternative embodiments, the storage box 22 is cylindrical in shape, and a plurality of sub-receiving cavities 2211 are arranged sequentially along the circumference of the storage box 22.

[0044] The cylindrical shape facilitates rotation. The sub-cavities 2211 are arranged sequentially around the circumference of the circular storage box 22. As the storage box 22 rotates, the positional relationship between each sub-cavity 2211 and the first feed inlet 211 changes, allowing ingredients to be added to each sub-cavity 2211 in sequence. The sub-cavities 2211 can be set to the same size, so that users can intuitively judge the proportions of various ingredients when adding granular ingredients such as beans and grains.

[0045] In some embodiments, such as Figure 4 and Figure 8 As shown, each of the sub-cavities 2211 on the storage box 22 is numbered sequentially according to the rotation direction of the storage box 22 to indicate the order in which ingredients should be placed in each sub-cavity 2211. Scales can also be marked on the storage box 22, eliminating the need for users to weigh the ingredients separately, making it more convenient to use. Users can place ingredients into each sub-cavity 2211 sequentially according to their type, quantity, and other needs.

[0046] In terms of drive, a first gear 222 is fixedly connected to the storage box 22. The first gear 222 is coaxially arranged with the storage box 22 so that the first gear 222 and the storage box 22 rotate synchronously. A drive mechanism 23 and a second gear 231 connected to the drive mechanism 23 are fixed on the cup body 10. The first gear 222 and the second gear 231 mesh. The drive mechanism 23 drives the first gear 222 to rotate through the second gear 231, thereby driving the storage box 22 to rotate at any angle from 0° to 360° in a clockwise or counterclockwise direction. When the storage box 22 rotates to the designated position, one of the sub-cavities 2211 of the storage box 22 rotates to the top of the first feed inlet 211, and the food placed therein can smoothly enter the cooking cavity 11 below through the first feed inlet 211, completing the operation of adding specific food at a specific time.

[0047] It should be noted that although the dispensing mechanism 20 in this embodiment can automatically rotate and dispense food through the drive mechanism 23 and the built-in program, it does not preclude the user from manually rotating the storage box 22 to dispense food. Both drive methods can be implemented simultaneously.

[0048] In some alternative embodiments, the storage box 22 has a side wall 223 and a bottom plate 224, which together form a receiving cavity 221. The first gear 222 is disposed on the side of the bottom plate 224 away from the receiving cavity 221. A rotating groove 213 is provided on the base 21 along the circumferential direction to allow the first gear 222 to rotate in the rotating groove 213.

[0049] In this embodiment, the first gear 222 is disposed at the bottom of the storage box 22 and is disposed around the edge of the base plate 224. The outer edge of the first gear 222 does not extend beyond the outer edge of the base plate 224. Correspondingly, the base plate 224 of the storage box 22 is in contact with the base 21. A recessed rotating groove 213 is provided on the base 21 at a position opposite to the first gear 222 to accommodate the first gear 222 protruding from the surface of the base plate 224 and to provide space for the first gear 222 to rotate.

[0050] The outer edge of the first gear 222 is flush with the outer edge of the base plate 224. Since the storage box 22 and the base 21 are the same size, the rotating groove 213 is also set along the edge of the base 21. The outer edge of the rotating groove 213 matches the base plate 224 and side wall 223 of the storage box 22 above. This ensures the connection strength between the storage box 22 and the base 21, as well as the flatness and aesthetics of the appearance, without affecting the rotation of the storage box 22.

[0051] In some embodiments, the first gear 222 may also be disposed on the side wall 223 and arranged around the side wall 223 of the storage box 22. Understandably, in this case, the first gear 222 will inevitably protrude from the side wall 223 of the storage box 22. A protective structure may be provided on the storage box 22 to enclose the first gear 222 and prevent the first gear 222 from being exposed when the storage box 22 rotates, thereby affecting the rotation of the storage box 22.

[0052] Additionally, in some alternative embodiments, such as Figure 2 As shown, the rotating groove 213 is provided with a mounting port 214. The first gear 222 is partially exposed in the mounting port 214, and the second gear 231 is arranged opposite to the mounting port 214. The first gear 222 and the second gear 231 mesh in the mounting port 214.

[0053] The rotating groove 213 is provided with an installation port 214, so that the first gear 222 located in the rotating groove 213 is partially exposed in the installation port 214. The part of the first gear 222 exposed in the installation port 214 is used to contact and mesh with the second gear 231 provided on the cup body 10, so that the storage box 22 rotates under the driving action of the driving mechanism 23.

[0054] In some alternative embodiments, the drive mechanism 23 has a drive shaft, and the second gear 231 is fitted onto the drive shaft.

[0055] In this embodiment, the drive mechanism 23 is a rotary motor, and the second gear 231 is sleeved on the rotating shaft of the rotary motor to transmit the rotational motion of the rotary motor to the storage box 22.

[0056] In practical applications, the cup body 10 is also equipped with a mounting box 13 to house the drive mechanism 23 and the second gear 231. The mounting box 13 can be opened, facilitating maintenance personnel to inspect and replace the drive mechanism 23 and the second gear 231. The mounting box 13 can be located on the upper end of the handle 14 of the cup body 10, using the handle 14 to support the mounting box 13. The drive mechanism 23 is located on the cup body 10, making it easier to connect electrically to the assembly circuit board 12 on the cup body 10. The connection lines are located inside the cup body 10, transmitting control signals from the assembly circuit board 12 to the drive mechanism 23 and supplying power to the drive mechanism 23. All circuits and electrical devices are integrated on the cup body 10, eliminating the need for additional accessories for the dispensing mechanism 20. The structure is relatively simple, and the installation and removal of the dispensing mechanism 20 only involves mechanical connections, not electrical connections, making it easy for users to operate.

[0057] Correspondingly, the mounting box 13 has an opening on the side near the second gear 231, with the second gear 231 exposed in the opening to contact and engage with the first gear 222. When installing the dispensing mechanism 20 on the cup body 10, align the mounting port 214 of the base 21 with the opening of the mounting box 13. The first gear 222 inside the mounting port 214 is opposite to the second gear 231 inside the mounting box 13. After fixing the base 21, rotating the storage box 22 will automatically engage the first gear 222 and the second gear 231 on the storage box 22, completing the installation of the dispensing mechanism 20.

[0058] In some alternative embodiments, each sub-cavity 2211 is provided with a second inlet 225 on the side near the base 21. When the storage box 22 is rotated so that the second inlet 225 of one of the sub-cavities 2211 is opposite to the first inlet 211, the food in the cavities 221 enters the cooking cavity 11 in sequence through the second inlet 225 and the first inlet 211.

[0059] With the first gear 222 located at the bottom of the storage box 22, the bottom of the storage box 22 must have a base plate 224 to support the first gear 222. It cannot be an open design. The base plate 224 also has a second feeding port 225, aligned with the first feeding port 211, establishing a channel between the receiving cavity 221 and the cooking cavity 11. Each sub-receiving cavity 2211 has at least one second feeding port 225. When the sub-receiving cavity 2211 rotates until the second feeding port 225 is opposite to the first feeding port 211, the food placed inside falls into the cooking cavity 11 sequentially through the second feeding port 225 and the first feeding port 211. Since the base plate 224 also has the first gear 222, the second feeding port 225 must be positioned away from the first gear 222 to prevent food from falling into the first gear 222 and interfering with its rotation.

[0060] Furthermore, the bottom plate 224 is an inclined plate, tilted towards the second feed port 225, so that the ingredients in the receiving cavity 221 slide into the second feed port 225 under the action of gravity.

[0061] In some alternative embodiments, the food crushing device 100 also includes an assembly circuit board 12 disposed on the cup body 10 and electrically connected to the drive mechanism 23.

[0062] The assembly circuit board 12 is the control core of the food crushing device 100 in this embodiment, responsible for controlling and monitoring the overall function of the food crushing device 100. The surface of the assembly circuit board 12 is equipped with a digital tube and indicator lights for displaying the working status of the food crushing device 100, as well as buttons for inputting commands. Through an internally preset program, the assembly circuit board 12 precisely controls the start, stop, forward and reverse rotation, and rotation angle of the drive mechanism 23 according to the needs of different food processing procedures. For example, when making a specific beverage, the assembly circuit board 12 can, according to a preset time and sequence, first control the drive mechanism 23 to rotate the storage box 22 by a certain angle, aligning the second inlet 225 of the sub-accommodating cavity 2211 containing a specific ingredient with the first inlet 211 on the base 21, and then adding the first ingredient. After a period of time, the drive mechanism 23 is rotated again to add another ingredient. This precise control method enables the orderly addition of different ingredients at different times.

[0063] This utility model discloses a food crushing device 100, including a cup body 10 for crushing heated food and a feeding mechanism 20 for feeding food. The feeding mechanism 20 includes a base 21 and a storage box 22 that can rotate relative to each other. The storage box 22 has multiple isolated sub-cavities 2211 for holding food. The base 21 has a first feed inlet 211 for feeding food into the cooking cavity 11 of the cup body 10. Food in each sub-cavity 2211 can be fed independently. The storage box 22 has a first gear 222, and the base 21 has a second gear 231. The first gear 222 and the second gear 231 mesh. Under the action of the driving mechanism 23, the first gear 222 and the second gear 231 rotate in opposite directions, and the storage box 22 also rotates relative to the base 21, causing each sub-cavity 2211 to rotate sequentially above the first feed inlet 211, realizing the segmented feeding of food in each sub-cavity 2211.

[0064] This time-segmented approach allows different ingredients to be processed at their optimal times. For example, ingredients that require softening before crushing and mixing can be added first, followed by other temperature-sensitive ingredients after a period of heating. This effectively prevents food from burning at the bottom, as different ingredients are heated at different times, reducing the risk of localized overheating. Furthermore, processing ingredients according to their specific characteristics at different stages enhances the food's texture. For instance, nuts can be added later to maintain their crunchy texture and create a richer flavor profile compared to other ingredients processed earlier. Precise timing ensures that ingredients are processed at the stage where nutrients are least likely to be lost, maximizing nutrient retention and releasing the full nutritional value of the food.

[0065] It is understandable that the food crushing device 100 in this utility model includes various kitchen appliances such as soy milk makers, blenders, and food processors that have crushing and heating functions.

[0066] It should be noted that the various embodiments in this specification are described in a progressive manner, with each embodiment focusing on the differences from other embodiments. The same or similar parts between the various embodiments can be referred to each other.

[0067] Although alternative embodiments of the present invention have been described, those skilled in the art, upon learning the basic inventive concept, can make further changes and modifications to these embodiments. Therefore, the appended claims are intended to be interpreted as including the alternative embodiments as well as all changes and modifications falling within the scope of the present invention.

[0068] Finally, it should be noted that in this document, relational terms such as "first" and "second" are used merely to distinguish one entity from another, and do not necessarily require or imply any such actual relationship or order between these entities. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that an article or terminal device that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such an article or terminal device. Without further limitations, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the article or terminal device that includes that element.

[0069] The technical solution provided by this utility model has been described in detail above. Specific examples have been used to illustrate the principle and implementation of this utility model. At the same time, for those skilled in the art, there will be changes in the specific implementation and application scope based on the principle and implementation of this utility model. Therefore, the content of this specification should not be construed as a limitation of this utility model.

Claims

1. A food breaking device (100), characterized in that, The application relates to a food processor, which comprises a cup body (10) with a cooking cavity (11) provided with a crushing mechanism for crushing food materials; a feeding mechanism (20) connected to the cup body (10) and comprising a base (21), a storage box (22) and a driving mechanism (23); the base (21) is connected to the cup body (10) and is provided with a first feeding port (211) communicating with the cooking cavity (11); the storage box (22) is rotationally connected to the base (21) and has a containing cavity (221) for containing the food materials; the containing cavity (221) comprises a plurality of sub-containing cavities (2211) (221) isolated from each other; the storage box (22) is provided with a first gear (222) along the circumference; the driving mechanism (23) is connected to the cup body (10) and is provided with a second gear (231); the first gear (222) is engaged with the second gear (231); the driving mechanism (23) is used for driving the second gear (231) to rotate; the second gear (231) drives the storage box (22) to rotate relative to the base (21) so that the food materials in the containing cavity (221) enter the cooking cavity (11) through the first feeding port (211). The storage box (22) has a side wall (223) and a bottom plate (224) which enclose the containing cavity (221); the first gear (222) is arranged on the side of the bottom plate (224) away from the containing cavity (221). The base (21) is provided with a rotating groove (213) along the circumference so that the first gear (222) rotates in the rotating groove (213).

2. The food breaking device (100) according to claim 1, characterized in that The rotating groove (213) is provided with a mounting port (214); the first gear (222) is partially exposed to the mounting port (214); the second gear (231) is arranged opposite to the mounting port (214); the first gear (222) and the second gear (231) are engaged in the mounting port (214).

3. The food breaking device (100) according to claim 2, characterized in that, The driving mechanism (23) has a driving shaft; the second gear (231) is sleeved on the driving shaft.

4. The food breaking device (100) according to claim 3, characterized in that Each sub-containing cavity (2211) (221) is provided with a second feeding port (225) on the side close to the base (21); when the storage box (22) is rotated to the position where the second feeding port (225) of one of the sub-containing cavities (2211) (221) is opposite to the first feeding port (211), the food materials in the containing cavity (221) enter the cooking cavity (11) through the second feeding port (225) and the first feeding port (211) in sequence.

5. The food breaking device (100) according to claim 1, characterized in that, ​ 6. The food breaking device (100) according to claim 1, characterized in that ​ 7. The food breaking device (100) according to claim 1, characterized in that, The shape of the storage box (22) is cylindrical, and a plurality of sub-containment cavities (2211) (221) are sequentially arranged along the circumference of the storage box (22).

8. The food breaking device (100) according to claim 1, characterized in that, The food crushing device (100) further comprises an assembled circuit board (12), which is arranged on the cup body (10) and electrically connected with the driving mechanism (23).

9. The food breaking device (100) according to claim 1, characterized in that, The cup body (10) has an outer wall and an inner wall, the inner wall is surrounded to form the cooking cavity (11), and a heating mechanism is arranged between the outer wall and the inner wall.

10. The food breaking device (100) according to claim 1, characterized in that, The food crushing device (100) further comprises a cover plate (30), the opening of the cooking cavity (11) and the opening of the storage box (22) have the same size, the cover plate (30) is matched with the cooking cavity (11) and the storage box (22), and the cover plate (30) is arranged on the cup body (10) or the storage box (22).