A food container
By forming an opening at the bottom of the bowl body in the food container and setting up a rotary shaft assembly to tear the sealing membrane, the food ingredients are mixed, and the problems of complex and long processing flow in automatic catering equipment in the prior art are solved, and processing efficiency and food safety are improved.
Patent Information
- Application Number
- CN202010753699.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2020-07-30
- Publication Date
- 2025-05-06
- Estimated Expiration
- 2040-07-30
AI Technical Summary
During the process of food processing in automatic catering equipment, the process of existing food containers is too complicated and the processing time is long. It is necessary to separate the outer bowl body, inner bowl body and lid body for mixing and subsequent processing of the ingredients.
A food container is designed, by forming an opening at the bottom of the inner bowl body and covering the sealing film, and a rotating shaft assembly is provided to tear the sealing film, so that the second food ingredient falls into the storage cavity where the first food ingredient is located, so that the food ingredient mixing is achieved, eliminating the step of dismantling the outer bowl body, the inner bowl body and the lid body.
The process of mixing ingredients is simplified, the number of contact between ingredients and the external environment is reduced, processing time is shortened, and processing efficiency and food safety is improved.
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Figure CN111972932B_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of food mechanical processing, in particular to a food container. Background Art
[0002] With the continuous advancement of science and technology, the food processing industry is gradually developing towards industrialization, industrialization and automation. Among them, the field of automatic food processing machinery is particularly valued. Automatic catering equipment can directly replace manual processing of food ingredients in food containers and improve processing quality. Generally, food containers can only hold one kind of food, so automatic catering equipment can only process one kind of food.
[0003] In order to meet the diverse needs of users, a variety of ingredients are currently placed in food containers for processing. For example, a food container including an outer bowl body, an inner bowl body and a cover body is provided to form at least two accommodating cavities to accommodate different ingredients respectively. However, when the automatic catering equipment processes the ingredients in the food container, the inner bowl body needs to be completely removed from the outer bowl body first, that is, the outer bowl body, the inner bowl body and the cover body need to be separated before the ingredients can be mixed and subsequently processed, which makes the processing process too complicated and the processing time long. Summary of the invention
[0004] The present invention provides a food container to solve the technical problems in the prior art that the process of automatic catering equipment for processing food materials in the food container is too complicated and the processing time is long.
[0005] In order to solve the above technical problems, a technical solution adopted by the present invention is to provide a food container, comprising:
[0006] The outer bowl body is used to form a first accommodating cavity, and the first accommodating cavity is used to accommodate the first food;
[0007] An inner bowl body, used to form a second accommodating cavity, wherein the second accommodating cavity is used to accommodate a second food material, wherein the inner bowl body is disposed in or above the first accommodating cavity, and an opening is formed at the bottom of the inner bowl body, and the opening is covered with a first sealing film;
[0008] A cover body, which is disposed on the outer bowl body or the inner bowl body;
[0009] A rotating shaft assembly is arranged on the inner bowl body or the cover body, and the rotating shaft assembly is connected to the first sealing film through a first connecting member, so that when the rotating shaft assembly rotates, it can drive the first connecting member to tear the first sealing film, so that the second food falls into the first accommodating cavity through the opening and is then mixed with the first food.
[0010] The food container of the present invention comprises an outer bowl body, an inner bowl body arranged in the outer bowl body, and a cover body covered on the outer bowl body or the inner bowl body. An opening is formed at the bottom of the inner bowl body, a first sealing film is covered on the opening, and a rotating shaft assembly is arranged on the inner bowl body or the cover body. The rotating shaft assembly is connected to the first sealing film through a first connecting piece, so that when the rotating shaft assembly rotates, it can drive the first connecting piece to tear the first sealing film, so that the second food in the inner bowl body falls into the outer bowl body through the opening, and then mixes with the first food in the outer bowl body, thereby eliminating the original disassembly process of the outer bowl body, the inner bowl body and the cover body. The process of mixing the food does not require opening the food container, thereby reducing the number of times the food comes into contact with the external environment. The film can be directly torn through the rotating shaft assembly to achieve mixing of the two food ingredients and then subsequent processing, thereby making the processing flow simpler, shortening the processing time, and improving the processing efficiency and food safety. BRIEF DESCRIPTION OF THE DRAWINGS
[0011] In order to more clearly illustrate the technical solutions in the embodiments of the present invention, the following briefly introduces the drawings required for describing the embodiments. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative work, among which:
[0012] Figure 1 It is a schematic diagram of the three-dimensional structure of an embodiment of a food container of the present invention;
[0013] Figure 2 is a schematic cross-sectional view of an embodiment of a food container of the present invention;
[0014] Figure 3 It is a schematic diagram of the explosion structure of an embodiment of a food container of the present invention;
[0015] Figure 4 It is a three-dimensional structural schematic diagram of a fixed shaft and a rotating shaft assembly in one embodiment of a food container of the present invention;
[0016] Figure 5 It is a cross-sectional structural schematic diagram of a fixed shaft and a rotating shaft assembly in one embodiment of a food container of the present invention;
[0017] Figure 6 It is a schematic diagram of the three-dimensional structure of a fixed shaft in one embodiment of a food container of the present invention;
[0018] Figure 7 It is a schematic diagram of the three-dimensional structure of the first sleeve in one embodiment of the food container of the present invention;
[0019] Figure 8 is a schematic diagram of the three-dimensional structure of the second sleeve in one embodiment of the food container of the present invention;
[0020] Fig. 9is a schematic diagram of the three-dimensional structure of a conduit in one embodiment of a food container of the present invention;
[0021] Fig.10 is a schematic diagram of the three-dimensional structure of a conduit in an embodiment of a food container of the present invention;
[0022] Fig.11 is a three-dimensional schematic diagram of a partial structure of an embodiment of a food container of the present invention;
[0023] Fig.12 is a three-dimensional schematic diagram of a partial structure of another embodiment of a food container of the present invention;
[0024] Fig.13 is an exploded schematic diagram of a partial structure of another embodiment of a food container of the present invention;
[0025] Fig.14 yes Fig.13 A partial enlarged schematic diagram of a part of the structure of a food container;
[0026] Fig.15 is a schematic diagram of the three-dimensional structure of another embodiment of the food container of the present invention;
[0027] Fig.16 is a schematic cross-sectional view of another embodiment of a food container of the present invention;
[0028] Fig.17 is a schematic diagram of the explosion structure of another embodiment of the food container of the present invention;
[0029] Fig.18 It is a three-dimensional structural schematic diagram of an embodiment of the automatic catering equipment of the present invention;
[0030] Fig.19 It is a three-dimensional schematic diagram of a part of the structure of an embodiment of the automatic catering equipment of the present invention;
[0031] Fig. 20 It is a three-dimensional schematic diagram of a part of the structure of an embodiment of the automatic catering equipment of the present invention;
[0032] Fig.21 It is a three-dimensional schematic diagram of a part of the structure of an embodiment of the automatic catering equipment of the present invention;
[0033] Fig. 22 It is a three-dimensional structural schematic diagram of a positioning mechanism in an embodiment of the automatic catering equipment of the present invention;
[0034] Fig.23 It is a three-dimensional structural schematic diagram of a positioning mechanism in an embodiment of the automatic catering equipment of the present invention;
[0035] Fig.24 It is a schematic diagram of the three-dimensional structure of a water collection tray in one embodiment of the automatic catering equipment of the present invention;
[0036] Fig.25 It is a schematic cross-sectional view of a water collection tray in one embodiment of the automatic catering equipment of the present invention;
[0037] Fig.26 It is a three-dimensional structural schematic diagram of a heating mechanism in an embodiment of the automatic catering equipment of the present invention;
[0038] Fig. 27 It is a schematic diagram of the exploded structure of the heating mechanism in one embodiment of the automatic catering equipment of the present invention;
[0039] Fig.28 It is a three-dimensional structural schematic diagram of a heating mechanism in an embodiment of the automatic catering equipment of the present invention;
[0040] Fig.29 It is a schematic diagram of the three-dimensional structure of the intubation tube in one embodiment of the automatic catering equipment of the present invention;
[0041] Fig.30 It is a three-dimensional structural schematic diagram of a steam processing mechanism in an embodiment of an automatic catering device of the present invention;
[0042] Fig.31 It is a schematic diagram of the explosion structure of the steam treatment mechanism in one embodiment of the automatic catering equipment of the present invention;
[0043] Fig.32 It is a three-dimensional schematic diagram of a partial structure of a steam processing mechanism in an embodiment of an automatic catering device of the present invention;
[0044] Fig.33 is a three-dimensional schematic diagram of a partial structure of a steam processing mechanism in another embodiment of the automatic catering equipment of the present invention;
[0045] Fig.34 It is a three-dimensional structural schematic diagram of an embodiment of the automatic catering equipment of the present invention. DETAILED DESCRIPTION
[0046] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.
[0047] The terms "first" and "second" in this application are only used for descriptive purposes, and cannot be understood as indicating or implying relative importance or implicitly indicating the number of indicated technical features. In the description of this application, the meaning of "multiple" is at least two, such as two, three, etc., unless otherwise clearly and specifically limited. In addition, the terms "including" and "having" and any of their variations are intended to cover non-exclusive inclusions. For example, a process, method, system, product or device that includes a series of steps or units is not limited to the listed steps or units, but optionally also includes steps or units that are not listed, or optionally also includes other steps or units inherent to these processes, methods, products or devices. The term "and / or" is only a kind of association relationship describing associated objects, indicating that three relationships can exist, for example, A and / or B can be represented: A exists alone, A and B exist at the same time, and B exists alone. In addition, the character " / " in this article generally indicates that the associated objects before and after are a kind of "or" relationship.
[0048] See also Figures 1 to 3 The food container 10 of the present invention comprises an outer bowl body 100, an inner bowl body 200, a cover body 300 and a rotating shaft assembly 400. The outer bowl body 100 is used to form a first accommodating cavity 110, and the first accommodating cavity 110 is used to accommodate a first food material; the inner bowl body 200 is used to form a second accommodating cavity 210, and the second accommodating cavity 210 is used to accommodate a second food material, wherein the inner bowl body 200 is disposed in the first accommodating cavity 110 or above the first accommodating cavity 110, and an opening 220 is formed at the bottom of the inner bowl body 200. , the opening 220 is covered with a first sealing film 230; the cover body 300 is covered on the outer bowl body 100 or the inner bowl body 200; the shaft assembly 400 is arranged on the inner bowl body 200 or the cover body 300, and the shaft assembly 400 is connected to the first sealing film 230 through the first connecting member 240, so that when the shaft assembly 400 rotates, it can drive the first connecting member 240 to tear the first sealing film 230, so that the second food falls into the first accommodating cavity 110 through the opening 220, and then mixes with the first food.
[0049] The food container 10 of the present invention comprises an outer bowl body 100, an inner bowl body 200 disposed in the outer bowl body 100, and a cover body 300 covered on the outer bowl body 100 or the inner bowl body 200, by forming an opening 220 at the bottom of the inner bowl body 200, covering the first sealing film 230 on the opening 220, and arranging a rotating shaft assembly 400 on the inner bowl body 200 or the cover body 300, and the rotating shaft assembly 400 is connected to the first sealing film 230 through a first connecting member 240, so that when the rotating shaft assembly 400 rotates, it can drive the first connecting member 240 to tear The first sealing film 230 is opened to allow the second food material in the inner bowl body 200 to fall into the outer bowl body 100 through the opening 220, and then be mixed with the first food material in the outer bowl body 100, thereby eliminating the need for disassembling the original outer bowl body, the inner bowl body and the cover body. The food material mixing process does not require opening the food container 10, thereby reducing the number of times the food material comes into contact with the external environment. The film can be directly torn through the rotating shaft assembly 400 to achieve mixing of the two food materials for subsequent processing, thereby making the processing flow simpler, shortening the processing time, and improving processing efficiency and food safety.
[0050] In this embodiment, the food container 10 is arranged in a circular shape. In other embodiments, the food container 10 can also be arranged in other shapes such as a square or a polygon, which is not limited here.
[0051] In this embodiment, the first ingredient may be rice flour, noodles or the like, and the second ingredient may be side dishes, soup or the like.
[0052] In this embodiment, a groove (not shown in the figure) may be formed on the cover body 300 for containing tableware, sauces, etc., which are sealed in the groove by a sealing film (not shown in the figure).
[0053] In this embodiment, the first sealing film 230 can be covered on the opening 220 by hot-melting. In other embodiments, the first sealing film 230 can also be covered on the opening 220 by other methods such as pasting, which is not limited here.
[0054] In this embodiment, a hollow fixed shaft 310 is fixedly provided on the cover body 300 along the covering direction of the cover body 300 relative to the outer bowl body 100 or the inner bowl body 200, and the rotating shaft assembly 400 is rotatably connected to the fixed shaft 310 so that the rotating shaft assembly 400 can rotate relative to the cover body 300 around the fixed shaft 310. By providing a fixed shaft 310 fixedly connected to the cover body 300 to cooperate with the rotating shaft assembly 400 to achieve rotation, the problem of poor sealing caused by directly rotatably connecting the rotating shaft assembly 400 to the cover body 300 can be avoided, the entry of external air or water vapor into the food container 10 can be reduced, and food safety can be improved.
[0055] In this embodiment, the peripheral side wall of the inner bowl body 200 forms an avoidance gap 250 protruding into the inner bowl body 200, and at least a portion of the fixed shaft 310 and the rotating shaft assembly 400 are accommodated in the avoidance gap 250. There is no need to set up additional accommodating space to accommodate the fixed shaft 310 and the rotating shaft assembly 400, which can make the structure of the food container 10 more compact.
[0056] In other embodiments, a lug (not shown in the figure) may also be provided on the outer bowl body 100 or the cover body 300 to accommodate the fixed shaft 310 and the rotating shaft assembly 400. The fixed shaft 310 and the rotating shaft assembly 400 are located on the outside of the inner bowl body 200, so as to increase the volume of the second accommodating cavity 210 of the inner bowl body 200 to accommodate more second food.
[0057] See also Figure 4 and Figure 5 In this embodiment, the shaft assembly 400 includes a first sleeve 410, a second sleeve 420 and a catheter 430. The first sleeve 410 is sleeved on the periphery of the fixed shaft 310, the second sleeve 420 and the first sleeve 410 are clamped with each other, and the catheter 430 is inserted and supported on the second sleeve 420 and communicated with the fixed shaft 310, wherein at least one of the first sleeve 410, the second sleeve 420 and the catheter 430 is configured to be rotatable relative to the fixed shaft 310 and connected to the first connecting member 240. The shaft assembly 400 is constituted by arranging the first sleeve 410, the second sleeve 420 and the catheter 430, so that when an external cannula (not shown in the figure) is inserted into the catheter 430, the catheter 430 can be extended and retracted along the axial direction of the catheter 430, which facilitates the matching and positioning between the cannula and the catheter 430.
[0058] Also refer to 6 Fig. 9 In this embodiment, the first sleeve 410 is rotatably disposed on the periphery of the fixed shaft 310, a flange 311 is formed at the bottom of the outer wall of the fixed shaft 310, and a first support platform 411 is formed on the inner wall of the first sleeve 410, and the first support platform 411 is supported on the flange 311; a slot 412 is provided at the bottom of the first sleeve 410, and a buckle 421 is provided at the top of the second sleeve 420, and the slot 412 cooperates with the buckle 421 to connect the first sleeve 410 with the fixed shaft 310. The second sleeve 420 is snap-connected; a through slot 422 is formed on the bottom wall of the second sleeve 420, and a second support platform 431 is formed on the outer wall of the conduit 430. The conduit 430 is inserted into the through slot 422, and the second support platform 431 is supported on the bottom wall outside the through slot 422, so that the conduit 430 can be extended and retracted relative to the second sleeve 420. The conduit 430 is configured to drive the second sleeve 420 and the first sleeve 410 to rotate around the fixed axis 310.
[0059] In other embodiments, a buckle may be provided at the bottom of the first sleeve 410 , and a slot may be provided at the top of the second sleeve 420 , so as to achieve a snap connection between the first sleeve 410 and the second sleeve 420 .
[0060] In other embodiments, the first sleeve 410 and the second sleeve 420 may also be fixedly connected by other means such as magnetism, adhesion, etc., which is not limited here.
[0061] In this embodiment, a limiting groove 423 connected to the through groove 422 is further provided on the bottom wall of the second sleeve 420, and a limiting protrusion 432 is formed on the outer wall of the conduit 430. The limiting protrusion 432 is accommodated in the limiting groove 423 to limit the rotation of the conduit 430 relative to the second sleeve 420.
[0062] See also 5 and Fig.10 In this embodiment, a limiting column 433 is formed on the inner wall of the catheter 430, and the limiting column 433 is located on the side of the second support platform 431 facing the cover body 300, and is used to interfere with the external cannula to drive the shaft assembly 400 to rotate relative to the cover body 300.
[0063] In this embodiment, the number of the limiting posts 433 is at least two, and at least two limiting posts 433 are arranged at intervals along the circumference of the catheter 430 to interfere with the external cannula.
[0064] In this embodiment, the extension length H1 of at least one of the two limit columns 433 along the axial direction of the catheter 430 is greater than the extension length H2 of the other along the axial direction of the catheter 430, so that when the external cannula is inserted into the catheter 430, the limit column 433 has less resistance to the external cannula, thereby facilitating the insertion of the external cannula.
[0065] In this embodiment, a through hole 435 is formed at the bottom of the conduit 430 to allow the heating medium to be transported to the first accommodating chamber 110 through the conduit 430, thereby achieving automatic heating of the first food material and the second food material.
[0066] In this embodiment, the aperture of the through hole 435 can be 0.8 mm to 1 mm, for example, 0.8 mm, 0.9 mm or 1 mm. The number of the through holes 435 is multiple, and the multiple through holes are arranged in a regular polygonal shape, such as a regular hexagon, a regular octagon, etc., which can reduce the whistling sound generated during the transportation of the gaseous heating medium and the noise emitted by bubbles generated by the liquid in the first food and the second food during the heating process.
[0067] In this embodiment, a grille 260 is provided in the inner bowl body 200, and the grille 260 is used to separate the second accommodating chamber 210 into a first part and a second part, wherein the opening 220 is located at the bottom of the first part. The second food includes solid and liquid. The solid is blocked by the grille 260 in the first part of the second accommodating chamber 210, and the liquid is accommodated in the first part and the second part of the second accommodating chamber 210 and can flow through the grille 260. By concentrating the solid in the second food in the first part corresponding to the opening 220, the residual solid can be reduced when the opening 220 is opened and the second food falls into the first accommodating chamber 110.
[0068] In other embodiments, the first connecting member 240 may also be moved without the rotation shaft assembly 400. For example, the food container 10 may further include a pulling member (not shown in the figure). The pulling member is arranged on the cover body 300 and connected to the first connecting member 240, and is used to move relative to the cover body 300 to drive the first connecting member 240 to break the pulling piece 270, thereby tearing open the first sealing film 230.
[0069] See also Fig.11 In the present embodiment, the first connecting member 240 connects the rotating shaft assembly 400 and the first sealing film 230 from the side of the bottom wall of the inner bowl body 200 away from the second accommodating cavity 210, and the first connecting member 240 is connected to the side of the first sealing film 230 away from the rotating shaft assembly 400, so that the first sealing film 230 can be completely torn open and the opening 220 of the inner bowl body 200 can be completely exposed, thereby preventing the second food from remaining in the inner bowl body 200.
[0070] In this embodiment, the first connecting member 240 can be arranged in a strip shape to increase the tensile strength of the first connecting member 240, so that the first connecting member 240 is not easy to break during the pulling process, thereby improving the reliability of the food container 10, wherein the first sealing film 230 and the first connecting member 240 can be integrally formed or fixedly connected by bonding or the like.
[0071] In other embodiments, the first connecting member 240 may also be arranged in a linear shape, which is not limited here.
[0072] In this embodiment, the first connecting member 240 may be made of cotton or PP (Polypropylene) material, which is not limited herein.
[0073] See also Fig.12 and Fig.13In another specific embodiment, the first sealing film 230 may not be directly fixedly connected to the first connecting member 240. Specifically, a break piece 270 is formed together with the bottom edge of the inner bowl body 200. The first sealing film 230 is further fixed on the break piece 270. The break piece 270 is further connected to the first connecting member 240. The first connecting member 240 is configured to break the break piece 270 when subjected to an external force, thereby tearing the first sealing film 230, so that the second food falls into the first accommodating cavity 110 through the opening 220 and mixes with the first food. The original disassembly process of the outer bowl body, the inner bowl body and the cover body is omitted. The process of mixing the food does not require opening the food container 10, reducing the number of times the food comes into contact with the external environment. The film can be directly torn through the rotating shaft assembly 400 to achieve mixing of the two foods and then subsequent processing, making the processing flow simpler, shortening the processing time, and improving processing efficiency and food safety.
[0074] See also Fig.14 In the present embodiment, a thickness reduction area 271 is provided at the connection position between the breakaway piece 270 and the bottom edge of the inner bowl body 200, so that the breakaway piece 270 is disconnected from the bottom edge of the inner bowl body 200 along the thickness reduction area 271, thereby preventing the breakaway piece 270 from being separated from the inner bowl body 200 by external force and causing damage to the inner bowl body 200.
[0075] In this embodiment, the break piece 270 is provided with a first through hole 272 that penetrates the break piece 270 and the first sealing film 230 thereon, and the first connecting member 240 is passed through the first through hole 272 so that the break piece 270 and the first connecting member 240 are relatively fixed, thereby allowing the break piece 270 to move with the first connecting member 240.
[0076] In this embodiment, a first limit block 241 is provided at one end of the first connecting member 240 connected to the first sealing film 230. The first limit block 241 is used to limit the end of the first connecting member 240 connected to the first sealing film 230 to one side of the first through hole 272, so that when the first connecting member 240 is subjected to external force, the first limit block 241 acts on the break piece 270, so that the break piece 270 can be broken.
[0077] In this embodiment, the shaft assembly 400 is connected to the first connecting member 240 for rotating relative to the inner bowl body 200 to drive the first connecting member 240 to break the breaking piece 270 and then tear open the first sealing film 230, thereby achieving automatic film tearing.
[0078] In this embodiment, the rotating shaft assembly 400 is provided with a second through hole 424, and the first connecting member 240 is inserted into the second through hole 424, so that the break piece 270 is relatively fixed to the rotating shaft assembly 400, and the break piece 270 can be rolled up with the rotation of the rotating shaft assembly 400. Specifically, the second through hole 424 can be formed on the second sleeve 420 of the rotating shaft assembly 400. In other embodiments, the second through hole 424 can also be formed on the first sleeve 410 or the conduit 430, which is not limited here.
[0079] In this embodiment, a second limit block 242 is provided at one end of the first connecting member 240 connected to the rotating shaft assembly 400 , and the second limit block 242 is used to limit the end of the first connecting member 240 connected to the rotating shaft assembly 400 to one side of the second through hole 424 .
[0080] In other embodiments, the first connecting member 240 may also be fixedly connected to the break piece 270 or the rotating shaft assembly 400 by winding or the like, which is not limited here.
[0081] See also Figure 1 and Figure 2 Another embodiment of the food container 10 of the present invention includes an outer bowl body 100, an inner bowl body 200, a cover body 300 and a rotating shaft assembly 400, wherein the outer bowl body 100 is used to form a first accommodating cavity 110, and the first accommodating cavity 110 is used to accommodate a first food material; the inner bowl body 200 and the cover body 300 are integrally formed to form a second accommodating cavity 210, and the second accommodating cavity 210 is used to accommodate a second food material, wherein the inner bowl body 200 is arranged in the first accommodating cavity 110 or above the first accommodating cavity 110, and the inner bowl body 200 An opening 220 is formed at the bottom, and the opening 220 is covered with a first sealing film 230; the cover body 300 is covered on the outer bowl body 100; the shaft assembly 400 is arranged on the inner bowl body 200 or the cover body 300, and the shaft assembly 400 is connected to the first sealing film 230 through the first connecting member 240, so that when the shaft assembly 400 rotates, it can drive the first connecting member 240 to tear the first sealing film 230, so that the second food falls into the first accommodating cavity 110 through the opening 220, and then mixes with the first food.
[0082] See also Figures 15 to 17Another embodiment of the food container 10 of the present invention comprises an outer bowl body 100, an inner bowl body 200, a cover body 300 and a rotating shaft assembly 400, wherein the outer bowl body 100 is used to form a first accommodating chamber 110, and the first accommodating chamber 110 is used to accommodate a first food material; the inner bowl body 200 is used to form a second accommodating chamber 210, and the second accommodating chamber 210 is used to accommodate a second food material, wherein the inner bowl body 200 is arranged in the first accommodating chamber 110 or above the first accommodating chamber 110, and an opening (not shown in the figure) is formed at the bottom of the inner bowl body 200, and the opening is covered with a first sealing film (not shown in the figure); the cover body 300 is covered on the outer bowl body 100 or the inner bowl body 200; the rotating shaft assembly 400 is provided The cover body 300 is placed on the rotating shaft assembly 400, which is connected to the first sealing film through the first connecting member 240, so that when the rotating shaft assembly 400 rotates, it can drive the first connecting member 240 to tear the first sealing film, so that the second food material falls into the first accommodating cavity 110 through the opening, and then mixes with the first food material, thereby eliminating the original disassembly process of the outer bowl body, the inner bowl body and the cover body. The food container 10 does not need to be opened during the mixing process, thereby reducing the number of times the food material contacts the external environment. The film can be directly torn through the rotating shaft assembly 400 to achieve mixing of the two food materials and then perform subsequent processing, thereby making the processing flow simpler, shortening the processing time, and improving the processing efficiency and food safety.
[0083] In other embodiments, the rotating shaft 400 may also be disposed on the inner bowl body 200 , which is not limited here.
[0084] In this embodiment, the top of the inner bowl body 200 is fixedly connected to the cover body 300, and the inner bowl body 200 is formed with a receiving groove 280 and a through hole 281 connected to the receiving groove 280. The shaft assembly 400 is arranged in the receiving groove 280 perpendicular to the covering direction of the cover body 300 relative to the outer bowl body 100 or the inner bowl body 200, and the first connecting member 240 passes through the through hole 281 to be connected to the shaft assembly 400.
[0085] In this embodiment, an annular base 120 is formed on the inner wall of the outer bowl body 100, and a second sealing film 130 is covered on the annular base 120 to seal the first food. The second sealing film 130 is connected to the rotating shaft assembly 400 through the second connecting member 140, so that when the rotating shaft assembly 400 rotates relative to the inner bowl body 200 or the cover body 300, it can drive the second connecting member 140 to tear the second sealing film 130 to expose the first food, thereby allowing the second food to be mixed with the first food. By providing the second sealing film 130, the first food is further sealed, which is more conducive to the storage of the first food and improves food safety.
[0086] In this embodiment, the shaft assembly 400 includes a shaft 440 and a fixing member 450 . The fixing member 450 is used to fix the shaft 440 on the cover body 300 and is inserted into the receiving groove 280 when the cover body 300 is fixedly connected to the inner bowl body 200 .
[0087] In this embodiment, at least one end of the rotating shaft 440 passes through the cover body 300 and is exposed outside the cover body 300, so that an external device can drive the rotating shaft 440 to rotate without opening the cover body 300, thereby causing the first connecting member 240 and the second connecting member 140 to be rolled up on the rotating shaft 440, thereby achieving mixing of the first food ingredient and the second food ingredient, which is beneficial to the automatic processing of the food ingredients in the food container 10.
[0088] In this embodiment, the food container 10 may further include a one-way member 150 and a fixing member 160. A through hole 170 is provided at the bottom of the outer bowl body 100. The one-way member 150 is provided through the through hole 170 to allow one-way delivery of the heating medium to the first accommodating chamber 110, so as to achieve heating of the first food and the second food, and prevent the first food and the second food from leaking out when not heated. The fixing member 160 is used to fix the one-way member 150 to the through hole 170 to prevent the one-way member 150 from falling off.
[0089] In this embodiment, the one-way member 150 can be made of a flexible material, and can be set in a hemispherical, arc-shaped or pointed shape, etc. A slot is formed on the one-way member 150, and the shape of the slot can be a trident, a cross or a polygonal fork, etc.
[0090] See also Figure 3 , Figures 18 to 20 In one embodiment of the automatic catering equipment 20 of the present invention, the automatic catering equipment 20 is used to process the food container 10, thereby processing the food in the food container 10. In this embodiment, the automatic catering equipment 20 is used to process the food container 10. Figure 3 The corresponding food container 10 is taken as an example for explanation, wherein the specific structure of the food container 10 refers to the above-mentioned embodiment of the food container 10, which will not be repeated here.
[0091] In this embodiment, the automatic catering equipment 20 includes a cabinet 500, a platform 600, a positioning mechanism 700 and a heating mechanism 800. The cabinet 500 forms a accommodating space; the platform 600 is arranged in the accommodating space, and is used to carry a food container 10, and a through hole 320 is arranged on the food container 10; the positioning mechanism 700 is arranged in the accommodating space, and is used to drive the food container 10 to rotate so that the through hole 320 reaches a predetermined position; the heating mechanism 800 includes a plug 810 and a plug transmission mechanism 820, and the plug transmission mechanism 820 is used to drive the plug 810 and the platform 600 to perform relative movement, so that the plug 810 can be inserted into the through hole 320 located at the predetermined position, thereby allowing the heating medium to be injected into the food container 10 through the plug 810, thereby heating the food in the food container 10.
[0092] The automatic catering equipment 20 of the present invention includes a cabinet 500 and a carrier 600, a positioning mechanism 700 and a heating mechanism 800 arranged in the cabinet 500. After the food container 10 carried on the carrier 600 is positioned by the positioning mechanism 700, the insert tube 810 is directly driven by the insert tube transmission mechanism 820 of the heating mechanism 800 to move relative to the carrier 600, so that the insert tube 810 can be inserted into the through hole 320 of the food container 10 located at a predetermined position, thereby allowing a heating medium to be injected into the food container 10 through the insert tube 810, thereby heating the food in the food container 10, simplifying the processing flow, shortening the processing time, and improving the processing efficiency. In addition, the food container 10 does not need to be opened before heating, which can reduce the number of times the food in the food container comes into contact with the external environment, thereby improving food safety.
[0093] In this embodiment, the automatic catering equipment 20 further includes a platform translation mechanism 610, which is used to transmit the platform 600 in a horizontal direction so that the platform 600 extends out of the accommodating space to receive the food container 10, and further transmit the platform 600 in the reverse direction in the horizontal direction so that the food container 10 is returned to the accommodating space with the platform 600.
[0094] In this embodiment, the automatic catering equipment 20 further includes a scanning mechanism (not shown in the figure), which is arranged on the cabinet 500 and is used to scan and authenticate the label (not shown in the figure) on the food container 10. After the scanning mechanism authenticates the label as valid, the platform translation mechanism 610 transmits the platform 600 in the horizontal direction so that the platform 600 extends out of the accommodating space.
[0095] In this embodiment, the identifier may be a QR code or a bar code, etc.
[0096] In this embodiment, the automatic catering equipment 20 further includes a switch button 510, which is arranged on the cabinet 500. After the switch button 510 is pressed, the platform translation mechanism 610 transmits the platform 600 in the reverse direction along the horizontal direction, so that the food container 10 is returned to the accommodating space with the platform 600.
[0097] In this embodiment, the automatic catering equipment 20 further includes a prompt mechanism 520, which is arranged on the cabinet 500 and is used to issue a prompt message after the heating mechanism 800 completes heating of the food. The platform translation mechanism 610 further transmits the platform 600 in a horizontal direction after the switch button 510 is pressed, so that the processed food container 10 extends out of the accommodating space with the platform 600.
[0098] In this embodiment, the prompt mechanism 520 may be an indicator light, which can provide prompts through light.
[0099] In other embodiments, the prompt mechanism 520 may also be a display screen or a buzzer, etc., which may provide prompts through graphics, text or sound, and is not limited here.
[0100] In other embodiments, the automatic catering equipment 20 may further include a sensor (not shown in the figure), which is arranged on the carrier 600. After the carrier translation mechanism 610 extends out of the accommodating space and the sensor senses that the food container 10 is placed on the carrier 600 or the food container 10 is taken away from the carrier 600, the carrier 600 is transmitted in the reverse direction in the horizontal direction so that the carrier 600 is returned to the accommodating space.
[0101] See also Figure 3 , Fig.19 , Figure 21 to Figure 23 In this embodiment, the carrier 600 includes a carrier body 620 and a turntable 630 rotatably supported on the carrier body 620, the turntable 630 is used to carry the food container 10, and the food container 10 is provided with a through hole 320 and a limit portion 330; the positioning mechanism 700 includes a rotation drive mechanism 710 and a limit baffle 720, the rotation drive mechanism 710 is connected to the turntable 630, and is used to drive the turntable 630 to drive the food container 10 to rotate, the limit baffle 720 is arranged on the periphery of the food container 10, and is used to abut against the limit portion 330 of the food container 10 after the through hole 320 reaches a predetermined position, so that the through hole 320 remains in the predetermined position, and the positioning accuracy of the food container 10 is high, which is conducive to the subsequent automatic processing of the food container.
[0102] In this embodiment, the positioning mechanism 700 further includes a first sensor 730 for sensing the food container 10 . After the first sensor 730 senses that the food container 10 is placed on the turntable 630 , the rotation driving mechanism 710 starts to drive the turntable 630 to rotate.
[0103] In this embodiment, the positioning mechanism 700 may further include a second sensor 740, which is further used to sense the rotation angle of the turntable 630. The rotation drive mechanism 710 stops driving the turntable 630 to rotate after the second sensor 740 senses the preset rotation angle of the turntable 630. For example, the preset rotation angle is 360°, and a sensing member 631 is provided on the turntable 630. Before the plate 630 rotates, the sensing member 631 corresponds to the second sensor 740. After the turntable 630 starts to rotate, when the second sensor 740 senses the sensing member 631, the turntable 630 rotates 360° and stops rotating.
[0104] In this embodiment, the preset angle is greater than the rotation angle required for the through hole 320 to rotate to a predetermined position. The food container 10 is configured to be able to slide relative to the turntable 630 while the limit portion 330 abuts against the limit baffle 720 and the rotation drive mechanism 710 continues to drive the turntable 630 to rotate, thereby eliminating the need to directly measure the rotation angle of the turntable 630 and requiring lower accuracy.
[0105] In other embodiments, the positioning mechanism 700 may further include a second sensor (not shown in the figure). After the second sensor senses that the limiting portion 330 of the food container 10 is abutting against the limiting baffle 720, the rotating drive mechanism 710 stops driving the turntable 630 to rotate, thereby reducing the friction between the food container 10 and the turntable 630, thereby reducing the wear of the food container 10 and the turntable 630, which is beneficial to increasing the service life of the automatic catering equipment 20.
[0106] In this embodiment, the rotation drive mechanism 710 includes a first gear 711 connected to and coaxially arranged with the turntable 630, a second gear 712 meshing with the first gear 711, and a rotation drive member 713 connected to the second gear 712. The rotation drive member 713 drives the second gear 712 to rotate, thereby being able to drive the turntable 630 to rotate through the first gear 711.
[0107] In this embodiment, the positioning mechanism 700 may further include a limit plate 750, which is arranged above the turntable 630. The limit plate 750 is used to press the food container 10 on the turntable 630 to prevent the cover 300 of the food container 10 from being pulled out when the tube 810 is pulled out of the food container 10.
[0108] In this embodiment, the end of the limiting plate 750 is arranged in an inclined surface, and the limiting plate 750 is used to abut against the food container 10 carried on the platform 600 when the platform translation mechanism 610 transmits the platform 600 in a direction horizontally approaching the limiting plate 750 .
[0109] See also Fig.24 and Fig.25 In the present embodiment, the carrier 600 may further include a water collection tray 640, which is disposed on the turntable 630. The food container 10 is carried on the water collection tray 640. The water collection tray 640 is used to collect water overflowing from the food container 10, thereby preventing the water overflowing from the food container 10 from flowing into the automatic catering equipment 20, thereby keeping the accommodating space dry and preventing bacteria from growing, which is beneficial to further improving food safety and extending the service life of the automatic catering equipment 20.
[0110] In this embodiment, the water collection tray 640 includes a bottom plate 641 and an annular side plate 642, which together form a collection chamber. A protrusion 643 is provided on the bottom plate 641, and the food container 10 is supported on the protrusion 643 so that the bottom of the food container 10 is spaced apart from the bottom plate 641 to leave space for accommodating water overflowing from the food container 10.
[0111] In this embodiment, a positioning recess (not shown in the figure) for accommodating the protrusion 643 may be provided at the bottom of the food container 10, and the water collection tray 640 is configured to allow the user to remove the water collection tray 640 from the turntable 630 by grabbing the protrusion 643, so that the accumulated water in the water collection tray 640 can be cleaned, which is beneficial to ensuring that the accommodating space in the automatic catering equipment 20 is dry, not easy to breed bacteria, and making food safety higher.
[0112] In this embodiment, the cross section of the protrusion 643 along the vertical direction of the main surface of the bottom plate 641 is arranged in an I-shape, which is convenient for users to grasp.
[0113] In this embodiment, the height D1 of the protrusion 643 in the vertical direction along the main surface of the bottom plate 641 is greater than the height D2 of the annular side plate 642 in the vertical direction along the main surface of the bottom plate 641, so that when the food container 10 is carried on the protrusion 643, the bottom of the food container 10 and the annular side plate 642 are spaced apart, so that water overflowing from the food container 10 can flow into the collection chamber along the annular side plate 642.
[0114] In this embodiment, the turntable 630 is concavely arranged to form a receiving cavity, and the water collection tray 640 and at least a portion of the food container 10 are arranged in the receiving cavity, so that the overall matching structure of the turntable 630, the water collection tray 640 and the food container 10 is more stable.
[0115] See also Figure 26 to Figure 28 In this embodiment, the cannula transmission mechanism 820 includes a cannula translation mechanism 830 and a cannula rotation mechanism 840. The cannula translation mechanism 830 is used to translate the cannula 810 so that the cannula 810 is inserted into the through hole 320 and docked with the shaft assembly 400 of the food container 10. The cannula rotation mechanism 840 is used to drive the cannula 810 to drive the shaft assembly 400 to rotate synchronously. The cannula 810 is further used to inject heating medium into the food container 10.
[0116] In this embodiment, the through hole 320 is arranged on the cover body 300 of the food container 10, and the fixed shaft 310 of the food container 10 is fixed in the through hole 320. The conduit 430 of the rotating shaft assembly 400 is used to receive the insert tube 810 and drive the first sleeve 410 and the second sleeve 420 of the rotating shaft assembly 400 to rotate synchronously with the insert tube 810. The conduit 430 is further used to guide the heating medium input from the insert tube 810 into the first accommodating chamber 110.
[0117] See also Fig.10 and Fig.29 In this embodiment, a first limiting column 811 is formed on the outer wall of the insertion tube 810, and the first limiting column 811 can interfere with the second limiting column 433 of the catheter 430 to drive the catheter 430 to rotate.
[0118] In this embodiment, an inclined surface 434 is formed on the top of the second limiting column 433, so that when the cannula 810 is inserted into the catheter 430, the first limiting column 811 can slide along the inclined surface 434 into between two adjacent second limiting columns 433, thereby interfering with the second limiting columns 433.
[0119] In this embodiment, the cannula rotation mechanism 840 is used to drive the cannula 810 to swing back and forth at a predetermined angle during the process of the cannula translation mechanism 830 transmitting the cannula 810 to insert into the catheter 430, so that the first limit column 811 and the second limit column 433 are staggered with each other, so that the first limit column 811 can interfere with the second limit column 433, thereby improving reliability.
[0120] See also Figure 1 and Figure 3 The through hole 320 is covered with a second sealing film 340, and the end of the insertion tube 810 is set in a pointed shape to pierce the second sealing film 340. By setting the second sealing film 340, the interior of the food container 10 can be further isolated from the outside air, which is beneficial to the preservation of food.
[0121] See also Figure 26 to Figure 28In this embodiment, the cannula translation mechanism 830 includes a base plate 831, a slide rail 832 and a vertical driving member 833 respectively arranged on the base plate 831, and a slider 834 slidably arranged on the slide rail 832. The cannula 810 is connected to the slider 834 through a connecting plate 835, and the vertical driving member 833 drives the connecting plate 835 to slide in the vertical direction.
[0122] In other embodiments, the cannula 810 may also be driven vertically by other driving members such as a cylinder, which is not limited here.
[0123] In this embodiment, an upper limit sensor 836 and a lower limit sensor 837 are provided on the base plate 831, and a positioning member 838 is provided on the connecting plate 835. When the upper limit sensor 836 senses the positioning member 838, the vertical driving member 833 no longer drives the connecting plate 835 to rise, and when the lower limit sensor 837 senses the positioning member 838, the vertical driving member 833 no longer drives the connecting plate 835 to descend, thereby realizing the positioning of the cannula 810 in the vertical direction.
[0124] In other embodiments, the upper limit sensor 836 and the lower limit sensor 837 may also be arranged on the connecting plate 835, and the positioning member 838 is correspondingly arranged on the base plate 831, which is not limited here.
[0125] In this embodiment, the cannula rotation mechanism 840 includes a first gear 841 connected to the cannula 810 and coaxially arranged, a second gear 842 meshing with the first gear 841, and a rotating drive member 843 connected to the second gear 842. The rotating drive member 843 drives the second gear 842 to rotate, thereby being able to drive the cannula 810 to rotate through the first gear 841.
[0126] See also Fig.19 In this embodiment, the heating medium may be water vapor, and the automatic catering equipment 20 may further include a steam generator 530, which is connected to the insert pipe 810 via a rotary joint 531. The steam generator 530 is used to generate water vapor, which is transported to the food container 10 via the rotary joint 531 and the insert pipe 810.
[0127] In this embodiment, the automatic catering equipment 20 may further include a water pump 532 , which is connected to the steam generator 530 and is used to supply water to the steam generator 530 .
[0128] In other embodiments, the heating medium may also be other heating media such as hot water, which is not limited here.
[0129] See also Figure 30 to Figure 32In this embodiment, the automatic catering equipment 20 may further include a steam processing mechanism 900 , at least part of which is disposed in the accommodating space for condensing and recovering the water vapor overflowing from the food container 10 .
[0130] In this embodiment, the steam processing mechanism 900 includes a fan 910, an air duct 920 and a condensation recovery mechanism 930. The fan 910 is arranged in the accommodating space and is used to suck the water vapor in the accommodating space; the air duct 920 is connected to the fan 910 and is used to send the water vapor sucked by the fan 910 out of the accommodating space through the ventilation port 541 of the cabinet 500; the condensation recovery mechanism 930 is used to condense the water vapor sent out of the accommodating space and recover it to the accommodating space, so as to keep the accommodating space dry and avoid the breeding of bacteria, which is beneficial to improving food safety and extending the service life of the automatic catering equipment 20.
[0131] In this embodiment, the condensation recovery mechanism 930 includes a condensation plate 931, which is arranged on the outside of the cabinet 500 and corresponds to the vent 541, and is used to cooperate with the cabinet 500 to form a condensation chamber, thereby condensing the water vapor output from the vent 541 to form condensed water, and further guiding the condensed water back to the accommodating space through the first guide port 542 on the cabinet 500.
[0132] In this embodiment, the condensation recovery mechanism 930 may further include a guide plate 932, which is arranged on the inner side of the cabinet 500, and the guide plate 932 is formed with a first guide groove (not marked in the figure) corresponding to the first guide port 542, and the bottom of the guide plate 932 is further provided with a guide pipe 933 connected to the first guide groove, so that the condensed water can flow back to the accommodating space through the first guide port 542, the first guide groove and the guide pipe 933.
[0133] In this embodiment, a second guide groove 543 corresponding to the guide pipe 933 and a water collecting groove 544 connected to the second guide groove 543 are formed on the bottom plate of the cabinet 500. The water collecting groove 544 is sunken so that the condensed water returning through the second guide groove 543 can be collected in the water collecting groove 544.
[0134] See also Fig.33 In other embodiments, an extension portion 934 may be formed on the guide plate 932, and the end of the extension portion 934 extends to the second guide groove 543, so that the condensed water can flow back into the accommodating space through the first guide port 542, the first guide groove and the extension portion 934.
[0135] See also Figure 30 to Figure 32 , Fig.34In this embodiment, the bottom plate is further formed with a second guide port 545 located at the bottom of the water collecting tank 544, and the automatic catering equipment 20 further includes a water collecting box 550, which is arranged at the bottom of the cabinet 500 and corresponds to the second guide port 545, for collecting condensed water flowing out through the second guide port 545.
[0136] In this embodiment, a slide groove 560 is further provided on the bottom plate, and the water collecting box 550 is slidably provided on the slide groove 560, so that the water collecting box 550 can be pulled out relative to the bottom plate, so as to facilitate the processing of the collected condensed water.
[0137] The above description is only an implementation mode of the present invention, and does not limit the patent scope of the present invention. Any equivalent structure or equivalent process transformation made by using the contents of the present invention specification and drawings, or directly or indirectly applied in other related technical fields, are also included in the patent protection scope of the present invention.
Claims
1. A food container, characterized in that: include: The outer bowl body is used to form a first accommodating cavity, and the first accommodating cavity is used to accommodate the first food; An inner bowl body, used to form a second accommodating cavity, wherein the second accommodating cavity is used to accommodate a second food material, wherein the inner bowl body is disposed in or above the first accommodating cavity, and an opening is formed at the bottom of the inner bowl body, and the opening is covered with a first sealing film; A cover body, which is disposed on the outer bowl body or the inner bowl body; a rotating shaft assembly, arranged on the inner bowl body or the cover body, the rotating shaft assembly being connected to the first sealing film through a first connecting member, so that when the rotating shaft assembly rotates, the first connecting member can be driven to tear the first sealing film, so that the second food material falls into the first accommodating cavity through the opening, and then is mixed with the first food material; the first connecting member is arranged in a strip shape or a line shape; Wherein, a hollow fixed shaft is fixedly arranged on the cover body along the covering direction of the cover body relative to the outer bowl body or the inner bowl body, and the rotating shaft assembly is rotatably connected with the fixed shaft so that the rotating shaft assembly can rotate around the fixed shaft relative to the cover body; the peripheral side wall of the inner bowl body forms an avoidance notch protruding toward the inside of the inner bowl body, and at least part of the fixed shaft and the rotating shaft assembly are accommodated in the avoidance notch, or the fixed shaft and the rotating shaft assembly are arranged on the outside of the inner bowl body, and a lug is arranged on the outer bowl body or the cover body to accommodate the fixed shaft and the rotating shaft assembly; the first connecting member connects the rotating shaft assembly and the first sealing membrane from the side of the bottom wall of the inner bowl body away from the second accommodating cavity; Alternatively, the top of the inner bowl body is fixedly connected to the cover body, the inner bowl body is formed with a receiving groove and a through hole connected to the receiving groove, the rotating shaft assembly is arranged in the receiving groove perpendicular to the covering direction of the cover body relative to the outer bowl body or the inner bowl body, the first connecting member passes through the through hole to be connected to the rotating shaft assembly, the inner side wall of the outer bowl body is formed with an annular base, and the annular base is covered with a second sealing film to seal the first food.
2. The food container according to claim 1, characterized in that The rotating shaft assembly includes a first sleeve, a second sleeve and a catheter, the first sleeve is sleeved on the periphery of the fixed shaft, the second sleeve and the first sleeve are clamped together, the catheter is inserted and supported on the second sleeve and is connected to the fixed shaft, wherein at least one of the first sleeve, the second sleeve and the catheter is configured to be rotatable relative to the fixed shaft and connected to the first connecting member.
3. The food container according to claim 2, characterized in that The first sleeve is rotatably arranged on the periphery of the fixed shaft, a flange is formed at the bottom of the outer side wall of the fixed shaft, a first support platform is formed on the inner side wall of the first sleeve, and the first support platform is supported on the flange; a card slot is provided on one of the bottom of the first sleeve and the top of the second sleeve, and a buckle is provided on the other, and the card slot cooperates with the buckle to engage and connect the first sleeve and the second sleeve; a through groove is formed on the bottom wall of the second sleeve, a second support platform is formed on the outer side wall of the conduit, the conduit is penetrated by the through groove, and the second support platform is supported on the bottom wall of the periphery of the through groove, and the conduit is configured to drive the second sleeve and the first sleeve to rotate around the fixed shaft.
4. The food container according to claim 3, characterized in that The bottom wall is further provided with a limiting groove connected with the through groove, and the outer side wall of the conduit is formed with a limiting protrusion, which is accommodated in the limiting groove to limit the conduit from rotating relative to the second sleeve.
5. The food container according to claim 4, characterized in that A limiting column is formed on the inner side wall of the catheter. The limiting column is located on the side of the second support platform facing the cover body and is used to interfere with the external cannula to drive the rotating shaft assembly to rotate relative to the cover body.
6. The food container according to claim 2, characterized in that A through hole is formed at the bottom of the conduit to allow heating medium to be transported to the first accommodating chamber through the conduit.
7. The food container according to claim 1, characterized in that A grille is provided in the inner bowl body, and the grille is used to separate the second accommodating cavity into a first part and a second part, wherein the opening is located at the bottom of the first part, and the second food material includes solid matter and liquid matter, and the solid matter is blocked by the grille in the first part of the second accommodating cavity, and the liquid matter is accommodated in the first part and the second part of the second accommodating cavity and can flow through the grille.
8. The food container according to claim 1, characterized in that The second sealing film is connected to the rotating shaft assembly through a second connecting member, so that when the rotating shaft assembly rotates relative to the inner bowl body or the cover body, it can drive the second connecting member to tear the second sealing film to expose the first food, thereby allowing the second food to be mixed with the first food.
9. The food container according to claim 8, characterized in that The rotating shaft assembly includes a rotating shaft and a fixing member, wherein the fixing member is used to fix the rotating shaft on the cover body and is inserted into the accommodating groove when the cover body is fixedly connected to the inner bowl body.
10. The food container according to claim 1, characterized in that The food container further comprises a one-way member, a through hole is arranged at the bottom of the outer bowl body, and the one-way member is arranged to penetrate the through hole to allow one-way delivery of the heating medium to the first accommodating cavity.
Citation Information
Patent Citations
Food container
CN213464622U