An infant feeding device
Patent Information
- Application Number
- CN202522253491.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-24
- Publication Date
- 2026-09-11
- Estimated Expiration
- 2035-10-24
AI Technical Summary
例如公告号为CN115429111A的中国专利,其公开了一种奶粉冲奶机,其包括有盒体、积水盒、奶粉添加装置和加水装置等,盒盖设于盒体上部,积水盒固定连接在盒体下部,奶粉添加装置设于盒体上部,显然,该奶粉冲奶机仅能够实现奶粉冲泡,而无法实现辅食制备的功能
[0014] Compared with the prior art, the beneficial effects of the embodiments of this application are as follows: by alternately setting the milk powder compartment assembly and the complementary food compartment assembly on the accommodating cavity, this application can realize that the infant feeding device has a first working state and a second working state, that is, the infant feeding device has the functions of preparing milk powder and steaming complementary food, so as to solve the two needs of complementary food and milk preparation in one machine, which can save costs and increase the convenience of user use.
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Figure CN224735068U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of infant feeding equipment technology, and more particularly to an infant feeding device. Background Technology
[0002] Currently, the market offers standalone fully automatic formula makers and standalone baby food makers. Users need to purchase either of these devices to achieve the functions of preparing formula and baby food. For example, Chinese patent CN115429111A discloses a formula maker that includes a box, a water collection box, a formula adding device, and a water adding device. The box lid is located on the upper part of the box, the water collection box is fixedly connected to the lower part of the box, and the formula adding device is located on the upper part of the box. Obviously, this formula maker can only prepare formula and cannot prepare baby food. Utility Model Content
[0003] To address the aforementioned technical problems in the existing technology, this application provides an infant feeding device that has the functions of preparing formula and steaming complementary foods, thus solving both complementary food and formula preparation needs in one machine, saving costs and increasing user convenience.
[0004] This application provides an infant feeding device, including: The body has a connected accommodating cavity and a mixing chamber. The body is provided with a liquid supply channel communicating with the mixing chamber and a gas supply channel communicating with the accommodating cavity. The container assembly includes a milk powder container assembly and a complementary food container assembly alternately disposed on the receiving cavity. The infant feeding device has a first working state in which the milk powder container assembly is disposed on the receiving cavity, and a second working state in which the complementary food container assembly is disposed on the receiving cavity. The heating assembly includes a first heating structure and a second heating structure. The first heating structure is connected to the liquid supply channel and is used to supply heated liquid to the mixing chamber in the first operating state. The second heating structure is connected to the gas supply channel and is used to supply heated gas to the complementary food chamber assembly in the second operating state. The above-mentioned infant feeding device has both formula preparation and complementary food steaming functions, achieving a one-machine solution for both complementary food preparation and formula feeding needs, saving costs and increasing user convenience.
[0005] In some embodiments, the infant feeding device further includes a drive assembly, and the complementary food container assembly includes a stirring element. In the first operating state, the drive assembly is connected to the milk powder container assembly to drive the milk powder container assembly to rotate, causing the powdered food inside to fall into the mixing chamber. In the second operating state, the drive assembly is connected to the stirring element of the complementary food container assembly to drive the stirring element to rotate. Thus, after steaming the complementary food, the drive assembly can be activated to stir the food inside the complementary food container assembly, completing the crushing process and further improving user convenience without the need for additional stirring equipment.
[0006] In some embodiments, the first heating structure includes at least a heating tube; and / or, the second heating structure includes at least a heating plate and a steam chamber, the heating plate being used to heat the steam chamber to generate steam, and the steam supply channel communicating with the steam chamber. The above-described first and second heating structures are simple in structure and can effectively provide hot water to the mixing chamber and high-temperature steam to the supplementary food chamber assembly.
[0007] In some embodiments, the baby food container assembly includes a baby food container body and a baby food cover that is fastened to the opening of the baby food container body. The baby food cover has a venting channel that communicates with the interior of the baby food container body. In the second operating state, the air supply channel is connected to the venting channel to supply air to the baby food container body via the venting channel. Thus, the air supply channel and the interior of the baby food container body are connected through the venting channel on the baby food cover, thereby rapidly providing high-temperature steam to the interior of the baby food container body.
[0008] In some embodiments, the milk powder container assembly includes a fixed milk powder base and a movable milk powder box disposed within the fixed milk powder base. In the first operating state, the drive assembly is connected to the movable milk powder box and drives it to rotate within the fixed milk powder base. A first powder outlet is formed at the bottom of the movable milk powder box. When the movable milk powder box rotates to a preset angle, the first powder outlet communicates with the mixing chamber. Thus, the rotating movable milk powder box within the fixed milk powder base enables the milk powder to be dispensed in a rotating manner. Specifically, when the movable milk powder box rotates to the preset angle, the first powder outlet of the movable milk powder box communicates with the mixing chamber, allowing the powdered milk powder inside the movable milk powder box to be discharged into the mixing chamber.
[0009] In some embodiments, the milk powder container assembly further includes a fixed support bracket, which is mounted inside the fixed milk powder holder and located above the movable milk powder box. The fixed milk powder holder has a second powder outlet communicating with the mixing chamber, and the fixed support bracket is provided with a powder-pushing plate corresponding to the second powder outlet. Thus, the powder-pushing plate ensures that the powdered ingredients in the movable milk powder box can smoothly fall into the mixing chamber, achieving precise powder dispensing.
[0010] In some embodiments, the infant feeding device further includes a control component and a manipulation component. The control component includes a first operating body and a second operating body. The control component is configured to receive a first control command triggered by the first operating body to control the infant feeding device to enter a first operating state, and to receive a second control command triggered by the second operating body to control the infant feeding device to enter a second operating state. Thus, the user can select whether the infant feeding device enters the first or second operating state through the control component, increasing the ease of operation for the user.
[0011] In some embodiments, the infant feeding device further includes a water supply assembly comprising a water tank and a pump body. The inlet of the pump body is connected to the outlet of the water tank via a water outlet pipe. A water quality detection module is provided on the water outlet pipe. The first heating structure and the second heating structure are respectively connected to the outlet of the pump body. Thus, a stable water supply can be achieved to the first and second heating structures via the pump body, and the water quality detection module can ensure the purity of the water, thereby guaranteeing the safety of the prepared food.
[0012] In some embodiments, the upper part of the mixing chamber is connected to the receiving cavity, the lower part of the mixing chamber has a liquid outlet, and the side wall of the mixing chamber has an injection port connected to the liquid supply channel. The above-described mixing chamber structure is simple and reasonable, ensuring a stable liquid supply through the liquid injection mixing chamber and allowing the prepared milk to be directly discharged through the liquid outlet.
[0013] In some embodiments, the infant feeding device further includes an identification component and a control component electrically connected. The identification component generates first identification information when the formula container assembly is disposed on the receiving cavity, and generates second identification information when the complementary food container assembly is disposed on the receiving cavity. The control component receives the first identification information to determine that the infant feeding device has entered a first operating state, and receives the second identification information to determine that the infant feeding device has entered a second operating state. Thus, the identification component can automatically identify whether the formula container assembly or the complementary food container assembly is disposed on the receiving cavity, facilitating the control component to control the infant feeding device in either the first or second operating state accordingly.
[0014] Compared with the prior art, the beneficial effects of the embodiments of this application are as follows: by alternately setting the milk powder compartment assembly and the complementary food compartment assembly on the accommodating cavity, this application can realize that the infant feeding device has a first working state and a second working state, that is, the infant feeding device has the functions of preparing milk powder and steaming complementary food, so as to solve the two needs of complementary food and milk preparation in one machine, which can save costs and increase the convenience of user use. Attached Figure Description
[0015] In drawings that are not necessarily drawn to scale, the same reference numerals may describe similar parts in different views. The drawings generally illustrate various embodiments by way of example rather than limitation and are used, together with the description and claims, to illustrate the disclosed embodiments. Where appropriate, the same reference numerals are used in all drawings to refer to the same or similar parts. Such embodiments are illustrative and not intended to be exhaustive or exclusive embodiments of the apparatus or method.
[0016] Figure 1 This is a cross-sectional view of an infant feeding device according to an embodiment of this application. The cavity shown in the figure does not contain a milk powder container assembly or a complementary food container assembly. Figure 2 This is a cross-sectional view of an infant feeding device according to an embodiment of this application. The container shown in the figure contains a milk powder container assembly. Figure 3 This is a cross-sectional view of an infant feeding device according to an embodiment of this application. The cavity shown in the figure contains a supplementary food container assembly. Figure 4 This is a cross-sectional view of the food preparation compartment assembly of the infant feeding device according to an embodiment of this application; Figure 5 This is an exploded view of the supplementary food compartment assembly of the infant feeding device according to an embodiment of this application; Figure 6 This is a cross-sectional view of the milk powder compartment assembly of the infant feeding device according to an embodiment of this application; Figure 7 This is an exploded view of the milk powder compartment assembly of the infant feeding device according to an embodiment of this application; Figure 8 This is a partial structural schematic diagram of the milk powder container assembly of the infant feeding device according to an embodiment of this application; Figure 9 This is a schematic diagram of the mixing chamber of the infant feeding device according to an embodiment of this application.
[0017] The components indicated by the reference numerals in the figure: 1. Body; 11. Receptacle; 12. Mixing Chamber; 13. Injection Port; 14. Air Supply Channel; 15. Injection Port; 2. Milk Powder Compartment Assembly; 21. Fixed Milk Powder Holder; 22. Movable Milk Powder Box; 23. First Powder Outlet; 24. Fixed Bracket; 25. Second Powder Outlet; 26. Powder Pusher Plate; 27. Milk Powder Cover; 28. Sealing Ring; 3. Baby Food Compartment Assembly; 31. Stirring Component; 32. Baby Food Compartment Body; 33. Baby Food Cover; 34. Air Guidance Channel; 4. First Heating Structure; 5. Second Heating Structure; 51. Steam Chamber; 6. Drive Assembly; 7. Water Tank; 8. Pump Body. Detailed Implementation
[0018] To enable those skilled in the art to better understand the technical solution of this utility model, the present utility model will be described in detail below with reference to the accompanying drawings and specific embodiments.
[0019] This application provides an infant feeding device. For example... Figures 1 to 3 As shown, the infant feeding device includes a body 1, a chamber assembly, and a heating assembly. The body 1 has a connected receiving cavity 11 and a mixing chamber 12. The body 1 contains a liquid supply channel communicating with the mixing chamber 12 and a gas supply channel 14 communicating with the receiving cavity 11. The chamber assembly includes a milk powder chamber assembly 2 and a complementary food chamber assembly 3 alternately arranged on the receiving cavity 11. The infant feeding device has a first operating state where the milk powder chamber assembly 2 is located on the receiving cavity 11, and a second operating state where the complementary food chamber assembly 3 is located on the receiving cavity 11. The heating assembly includes a first heating structure 4 and a second heating structure 5. The first heating structure 4 communicates with the liquid supply channel and is used to supply heated liquid to the mixing chamber 12 in the first operating state. The second heating structure 5 communicates with the gas supply channel 14 and is used to supply heated gas to the complementary food chamber assembly 3 in the second operating state.
[0020] like Figures 1 to 3 As shown, Figure 1 The cavity 11 shown in the figure does not contain the milk powder container assembly 2 and the baby food container assembly 3. Figure 2 The cavity 11 shown in the figure contains a milk powder container assembly 2. Figure 3 The cavity 11 shown in the figure is equipped with a supplementary feeding container assembly 3. Figure 3 The direction indicated by the middle arrow is the direction of gas flow.
[0021] The aforementioned accommodating cavity 11 can be located above the mixing chamber 12. When the milk powder container assembly 2 is located on the accommodating cavity 11, the powdered ingredients in the milk powder container assembly 2 can fall into the mixing chamber 12. The first heating structure 4 provides heated liquid to the mixing chamber 12 to realize the brewing of powdered ingredients and realize the function of brewing milk powder.
[0022] Both the milk powder container component 2 and the complementary food container component 3 can be detachably installed within the receiving cavity 11, such as through a snap-fit connection, allowing users to easily install one of them into the receiving cavity 11 as needed. Specifically, when users need to prepare milk powder, they can install the milk powder container component 2 in the receiving cavity 11; when users need to steam complementary foods, they can install the complementary food container component 3 in the receiving cavity 11.
[0023] The first heating structure 4 and the second heating structure 5 described above can be understood as operating independently. In the first operating state, only the first heating structure 4 operates, providing heated liquid to the mixing chamber 12 to prepare the formula. In the second operating state, only the second heating structure 5 operates, providing heated gas to the food preparation chamber 3 to steam the food.
[0024] This application enables the infant feeding device to have a first working state and a second working state by alternately setting the milk powder compartment component 2 and the complementary food compartment component 3 on the receiving cavity 11. That is, the infant feeding device has the functions of preparing milk powder and steaming complementary food, so as to solve the two needs of complementary food and milk preparation in one machine, which can save costs and increase the convenience of use for users.
[0025] In some embodiments, such as Figures 1 to 3 As shown, the infant feeding device also includes a drive assembly 6, and the supplementary food container assembly 3 includes a stirring element 31. In the first working state, the drive assembly 6 is connected to the milk powder container assembly 2 and is used to drive the milk powder container assembly 2 to rotate so that the powdered food inside falls into the mixing container 12. In the second working state, the drive assembly 6 is connected to the stirring element 31 of the supplementary food container assembly 3 and is used to drive the stirring element 31 to rotate.
[0026] In this way, after steaming the complementary food, the ingredients in the complementary food container 3 can be stirred by activating the drive component 6, and the ingredients in the complementary food container 3 can be crushed, which further improves the user's convenience and eliminates the need for additional stirring equipment.
[0027] The aforementioned stirring component 31 may include multiple stirring blades. After the supplementary food container assembly 3 is placed on the receiving cavity 11, the stirring component 31 can be directly connected to the output shaft of the drive assembly 6, thereby rotating under the drive of the output shaft. The drive assembly 6 may be configured as a drive motor.
[0028] The powdered ingredients in the milk powder container 2 can fall into the mixing chamber 12 as the milk powder container 2 rotates, rather than falling into the mixing chamber 12 after the milk powder container 2 is placed on the receiving cavity 11, thus achieving precise control over the powder falling. Specifically, when the milk powder container 2 rotates to a preset angle, the powdered ingredients fall directly into the mixing chamber 12 under the action of gravity.
[0029] In some embodiments, such as Figures 1 to 3 As shown, the first heating structure 4 includes at least a heating tube; and / or, the second heating structure 5 includes at least a heating plate and a steam chamber 51, the heating plate being used to heat the steam chamber to generate steam, and the steam supply channel 14 communicating with the steam chamber 51. The above-mentioned first heating structure 4 and second heating structure 5 have simple structures and can effectively provide hot water to the mixing chamber 12 and high-temperature steam to the supplementary food chamber assembly 3.
[0030] like Figure 3 As shown, the steam chamber 51 can contain a liquid that can be heated to generate steam. After the heating plate is working, steam can be generated in the steam chamber 51. The continuously generated steam will enter the food preparation container 3 through the gas supply channel 14, thereby steaming the food in the food preparation container 3.
[0031] In some embodiments, such as Figures 3 to 5 As shown, the baby food container assembly 3 includes a baby food container body 32 and a baby food cover 33 that is fastened to the open part of the baby food container body 32. An air guide channel 34 is formed inside the baby food cover 33 and communicates with the inside of the baby food container body 32. In the second working state, the air supply channel 14 is connected to the air guide channel 34 so as to supply air to the baby food container body 32 through the air guide channel 34.
[0032] In this way, the air supply channel 14 can be connected to the inside of the baby food compartment 32 through the air guide channel 34 on the baby food cover 33, thereby quickly providing high-temperature steam to the inside of the baby food compartment 32.
[0033] The aforementioned baby food cover 33 can be detachably installed at the upper opening of the baby food compartment 32.
[0034] In the second working state, the air guide channel 34 is aligned and installed with the air supply channel 14, thereby realizing the connection between the air supply channel 14 and the air guide channel 34.
[0035] In some embodiments, such as Figure 2 , Figures 6 to 8 As shown, the milk powder container assembly 2 includes a fixed milk powder base 21 and a movable milk powder box 22 disposed within the fixed milk powder base 21. The drive assembly 6 is connected to the movable milk powder box 22 in the first working state and is used to drive the movable milk powder box 22 to rotate within the fixed milk powder base 21. A first powder outlet 23 is formed at the bottom of the movable milk powder box 22. When the movable milk powder box 22 rotates to a preset angle, the first powder outlet 23 is connected to the mixing chamber 12.
[0036] In this way, the powder can be dispensed by rotating the movable powder box 22 within the fixed powder holder 21. That is, when the movable powder box 22 rotates to a preset angle, the first powder outlet 23 of the movable powder box 22 will connect with the mixing chamber 12, and the powdered ingredients in the movable powder box 22 will be discharged into the mixing chamber 12.
[0037] The aforementioned movable milk powder box 22 is used to hold powdered ingredients, and the fixed milk powder holder 21 is used to achieve stable installation of the movable milk powder box 22.
[0038] The bottom of the aforementioned movable milk powder box 22 may have a connection hole, and the movable milk powder box 22 is connected to the output shaft of the drive assembly 6 through the connection hole, so that the drive assembly 6 can drive the movable milk powder box 22 to rotate.
[0039] The aforementioned preset angle can be understood as the angle between the first powder outlet 23 and the mixing chamber 12, which are set vertically and vertically. There can be multiple first powder outlets 23, and powder can be dispensed by setting one of the first powder outlets 23 vertically and vertically to the mixing chamber 12.
[0040] In some embodiments, such as Figure 2 , Figures 6 to 8As shown, the milk powder container assembly 2 also includes a fixed bracket 24, which is mounted inside the fixed milk powder base 21 and located above the movable milk powder box 22. The fixed milk powder base 21 has a second powder outlet 25 that communicates with the mixing chamber 12, and the fixed bracket 24 is provided with a powder pushing plate 26 corresponding to the second powder outlet 25.
[0041] In this way, the powdered ingredients in the active milk powder box 22 can be smoothly dropped into the mixing chamber 12 by the powder pusher plate 26, thus achieving precise powder dispensing.
[0042] The aforementioned milk powder container assembly 2 also includes a milk powder container body, a milk powder cover 27, and a sealing ring 28. The milk powder cover 27 is sealed to the upper opening of the milk powder container body through the sealing ring 28. The movable milk powder box 22 is rotatably disposed in the milk powder container body. The milk powder cover 27 can limit the rotation of the movable milk powder box 22 and prevent the movable milk powder box 22 from rotating out of the milk powder container body.
[0043] In some embodiments, the infant feeding device further includes a control component (not shown) and a control component (not shown). The control component includes a first operating body and a second operating body. The control component is configured to receive a first control command generated by the first operating body to control the infant feeding device to enter a first working state, and is also configured to receive a second control command generated by the second operating body to control the infant feeding device to enter a second working state.
[0044] In this way, users can select the first or second working state of the baby feeding device through the control components, which increases the ease of operation for users of the baby feeding device.
[0045] The aforementioned control components may include at least a button disposed on the body 1, the first operating body may be specifically a first button, and the second operating body may be a second button, so as to facilitate user operation.
[0046] It should be noted that the control components can be built using electronic components such as timers, comparators, registers, and digital logic circuits, or implemented using processor chips such as microcontrollers, microprocessors, programmable logic controllers (PLCs), digital signal processors (DSPs), field-programmable gate arrays (FPGAs), programmable logic arrays (PLAs), and application-specific integrated circuits (ASICs) and their peripheral circuits.
[0047] In some embodiments, such as Figures 1 to 3 As shown, the infant feeding device also includes a water supply component, which includes a water tank 7 and a pump body 8. The inlet of the pump body 8 is connected to the outlet of the water tank 7 through a water outlet pipe. A water quality detection module is provided on the water outlet pipe. The first heating structure 4 and the second heating structure 5 are respectively connected to the outlet of the pump body 8.
[0048] In this way, water can be stably supplied to the first heating structure 4 and the second heating structure 5 through the pump body 8, and the purity of the water can be ensured through the water quality detection module, thereby ensuring the safety of the prepared food.
[0049] The water quality detection module can be electrically connected to the control component. When the water quality detection module indicates that the water purity is poor, the control component can issue a prompt message to remind the user to replace the water in the water tank 7 or clean the water tank 7.
[0050] In some embodiments, such as Figures 1 to 3 as well as Figure 9 As shown, the upper part of the mixing chamber 12 is connected to the accommodating cavity 11, the lower part of the mixing chamber 12 has a liquid outlet 15, and the side wall of the mixing chamber 12 has an injection port 13 connected to the liquid supply channel.
[0051] The above-mentioned mixing chamber 12 has a simple and reasonable structural design, which can ensure a stable liquid supply through the liquid injection port 13 and allow the prepared milk to be directly discharged through the liquid outlet 15.
[0052] In some embodiments, the infant feeding device further includes an identification component (not shown) and a control component (not shown) electrically connected. The identification component is used to generate first identification information when the milk powder container component 2 is disposed on the receiving cavity 11, and to generate second identification information when the supplementary food container component 3 is disposed on the receiving cavity 11. The control component is used to receive the first identification information to determine that the infant feeding device has entered a first working state, and is also used to receive the second identification information to determine that the infant feeding device has entered a second working state.
[0053] In this way, the milk powder compartment component 2 or the complementary food compartment component 3 can be automatically identified on the receiving cavity 11 by the identification component, so that the control component can control the first working state or the second working state of the infant feeding device based on this, thereby realizing the control of the heating component, improving the automation level of the device, and making it more convenient for users to use the infant feeding device.
[0054] The aforementioned identification component can employ mechanical contact identification methods, magnetic identification methods, etc. For example, a contact switch can be used to determine whether the milk powder compartment component 2 or the baby food compartment component 3 is installed within the receiving cavity 11. Alternatively, different types of magnets can be embedded in the milk powder compartment component 2 and the baby food compartment component 3, and the strength and direction of the sensed magnetic field can be used to identify the milk powder compartment component 2 and the baby food compartment component 3. This application does not limit the specific identification method of the identification component, as long as it can accurately identify the milk powder compartment component 2 and the baby food compartment component 3.
[0055] The first working state of the infant feeding device is described below: To realize the function of preparing formula, the formula container 2 is placed on the receiving cavity 11. At this time, water is drawn by the pump body 8. The water quality is detected by the water quality detection module to determine the purity of the water. Then the water enters the first heating structure 4. When the water reaches the preset temperature in the first heating structure 4, it will be injected into the mixing chamber 12. At the same time, the drive component 6 is activated to rotate the formula container 2, so that the formula falls into the mixing chamber 12. After the water and formula are rotated and mixed in the mixing chamber 12, the formula is discharged through the mixing chamber 12.
[0056] The second working state of the infant feeding device is described below: In order to realize the function of steaming complementary food, the complementary food chamber component 3 is placed on the receiving cavity 11. At this time, water is drawn by the pump body 8. The water quality is tested by the water quality detection module to determine the purity of the water. Then the water enters the second heating structure 5. When the water boils through the second heating structure 5, steam continuously enters the complementary food chamber component 3 along the air supply channel 14 and the air guide channel 34. After heating the complementary food, the steam is discharged through the hole on the complementary food cover 33. When the steaming is completed, the drive component 6 will be activated to rotate the stirring component 31 to stir the complementary food.
[0057] The above embodiments are merely exemplary embodiments of this utility model and are not intended to limit this utility model. Those skilled in the art can make various modifications or equivalent substitutions to this utility model within its substance and protection scope, and such modifications or equivalent substitutions should also be considered to fall within the protection scope of this utility model.
Claims
1. An infant feeding device, characterized in that, include: The body (1) has a connected accommodating cavity (11) and a mixing chamber (12). The body (1) is provided with a liquid supply channel communicating with the mixing chamber (12) and a gas supply channel (14) communicating with the accommodating cavity (11). The container assembly includes a milk powder container assembly (2) and a complementary food container assembly (3) alternately disposed on the receiving cavity (11). The infant feeding device has a first working state in which the milk powder container assembly (2) is disposed on the receiving cavity (11) and a second working state in which the complementary food container assembly (3) is disposed on the receiving cavity (11). The heating assembly includes a first heating structure (4) and a second heating structure (5). The first heating structure (4) is connected to the liquid supply channel and is used to supply heated liquid to the mixing chamber (12) in the first working state. The second heating structure (5) is connected to the gas supply channel (14) and is used to supply heated gas to the supplementary food chamber assembly (3) in the second working state.
2. The infant feeding device according to claim 1, characterized in that, The infant feeding device further includes a drive assembly (6), the supplementary food container assembly (3) includes a stirring element (31), the drive assembly (6) is connected to the milk powder container assembly (2) in the first working state, and is used to drive the milk powder container assembly (2) to rotate so that the powdered food inside falls into the mixing container (12), and the drive assembly (6) is connected to the stirring element (31) of the supplementary food container assembly (3) in the second working state, and is used to drive the stirring element (31) to rotate.
3. The infant feeding device according to claim 1, characterized in that, The first heating structure (4) includes at least a heating tube; and / or, the second heating structure (5) includes at least a heating plate and a steam chamber (51), the heating plate being used to heat the steam chamber (51) to generate steam, and the gas supply channel (14) being connected to the steam chamber (51).
4. The infant feeding device according to claim 1 or 3, characterized in that, The complementary food container assembly (3) includes a complementary food container body (32) and a complementary food cover (33) that is fastened to the opening of the complementary food container body (32). The complementary food cover (33) has an air guide channel (34) that communicates with the interior of the complementary food container body (32). In the second working state, the air supply channel (14) is connected to the air guide channel (34) to supply air to the complementary food container body (32) through the air guide channel (34).
5. The infant feeding device according to claim 2, characterized in that, The milk powder container assembly (2) includes a fixed milk powder base (21) and a movable milk powder box (22) disposed in the fixed milk powder base (21). The drive assembly (6) is connected to the movable milk powder box (22) in the first working state and is used to drive the movable milk powder box (22) to rotate in the fixed milk powder base (21). A first powder outlet (23) is formed at the bottom of the movable milk powder box (22). When the movable milk powder box (22) rotates to a preset angle, the first powder outlet (23) is connected to the mixing chamber (12).
6. The infant feeding device according to claim 5, characterized in that, The milk powder container assembly (2) also includes a fixed bracket (24), which is mounted inside the fixed milk powder seat (21) and located above the movable milk powder box (22). The fixed milk powder seat (21) has a second powder outlet (25) that communicates with the mixing chamber (12). The fixed bracket (24) is provided with a powder pusher plate (26) corresponding to the second powder outlet (25).
7. The infant feeding device according to claim 1, characterized in that, The infant feeding device further includes a control component and a control component. The control component includes a first operating body and a second operating body. The control component is used to receive a first control command generated by triggering the first operating body to control the infant feeding device to enter the first working state. It is also used to receive a second control command generated by triggering the second operating body to control the infant feeding device to enter the second working state.
8. The infant feeding device according to claim 1, characterized in that, The infant feeding device also includes a water supply component, which includes a water tank (7) and a pump body (8). The inlet of the pump body (8) is connected to the outlet of the water tank (7) through a water outlet pipe. A water quality detection module is provided on the water outlet pipe. The first heating structure (4) and the second heating structure (5) are respectively connected to the outlet of the pump body (8).
9. The infant feeding device according to claim 1, characterized in that, The upper part of the mixing chamber (12) is connected to the accommodating cavity (11), the lower part of the mixing chamber (12) has a liquid outlet (15), and the side wall of the mixing chamber (12) has an injection port (13) connected to the liquid supply channel.
10. The infant feeding device according to claim 1, characterized in that, The infant feeding device further includes an identification component and a control component that are electrically connected. The identification component is used to generate first identification information when the milk powder container component (2) is disposed on the receiving cavity (11), and to generate second identification information when the supplementary food container component (3) is disposed on the receiving cavity (11). The control component is used to receive the first identification information to determine that the infant feeding device has entered the first working state, and is also used to receive the second identification information to determine that the infant feeding device has entered the second working state.
Citation Information
Patent Citations
Milk powder brewing machine
CN115429111A