Electronic device and method of warming and sterilizing milk thereof

By integrating heating and gas transmission components into an electronic device, the problem of separate use of a bottle warmer and a bottle sterilizer has been solved, enabling a single device to perform both functions, reducing user costs and improving convenience.

CN122140123APending Publication Date: 2026-06-05GUANGZHOU LIGHTWEIGHT INNOVATION TECH CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
GUANGZHOU LIGHTWEIGHT INNOVATION TECH CO LTD
Filing Date
2025-06-27
Publication Date
2026-06-05

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Abstract

Embodiments of the present application provide an electronic device and a sterilization and milk warming method thereof. The electronic device comprises a base, a first heating component, a second heating component, a gas transmission component and a control component. The control component can control the first heating component, the second heating component and the gas transmission component to be in a first working mode according to a first container to be warmed on the base. The control component can control the first heating component, the second heating component and the gas transmission component to be in a second working mode according to a second container to be sterilized on the base. The working states of the first heating component, the second heating component and the gas transmission component are different in the first working mode and the second working mode, which is beneficial to user use.
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Description

Technical Field

[0001] This application relates to the field of sterilization or milk warming, and more particularly to an electronic device and a method for warming and sterilizing milk thereon. Background Technology

[0002] Bottle warmers and bottle sterilizers are essential tools for infants and toddlers. Bottles generally need to be sterilized after washing, and the milk in the bottles can be heated to the desired temperature by a bottle warmer. However, users need to use both a bottle warmer and a sterilizer to achieve these functions, which is inconvenient for them. Summary of the Invention

[0003] This application provides an electronic device and a method for warming and sterilizing milk, which is convenient for users.

[0004] To address the aforementioned technical problems, in a first aspect, embodiments of this application provide an electronic device, which includes:

[0005] The base is provided with a water tank and is used to place a first container for warming milk or a second container for sterilization; the first container for warming milk and the second container for sterilization can be placed on the base in an interchangeable manner and are located above the water tank;

[0006] The first heating element is used to generate steam from the water in the water tank.

[0007] Gas transmission components used for transmitting gas;

[0008] The second heating element is used to heat the gas transmitted by the gas transmission element;

[0009] The control component is electrically connected to the first heating component, the second heating component, and the gas transmission component.

[0010] The control unit can control the first heating element, the second heating element, and the gas transmission element to be in a first working mode according to the first container of milk to be warmed placed on the base;

[0011] The control unit can control the first heating element, the second heating element, and the gas transmission element to be in a second working mode according to the second container to be disinfected placed on the base.

[0012] Among them, the first heating component, the second heating component, and the gas transmission component have different working states in the first working mode and the second working mode.

[0013] In one optional embodiment of this application, the first working mode includes a first sub-working mode;

[0014] In the first sub-working mode, the control unit controls the first heating element to work for a first preset time t1 according to the steam milk warming command;

[0015] after,

[0016] The control unit controls the gas transmission unit to operate for a second preset time t2.

[0017] In one optional embodiment of this application, the second preset duration t2 includes a first sub-preset duration t21, a second sub-preset duration t22, and a third sub-preset duration t23;

[0018] The control unit controls the gas transmission unit to operate at a first power for a first preset time t21; thereafter...

[0019] The control unit controls the gas transmission unit to operate at a second power for a second preset time t22; afterwards,

[0020] The control unit controls the gas transmission unit to operate at the second power for a third preset duration t23;

[0021] The first power is less than the second power.

[0022] In one optional embodiment of this application, the first working mode includes a second sub-working mode;

[0023] In the second sub-operating mode, the control unit controls the gas transmission unit to operate at the first power for a third preset time t3 according to the warm air / milk warming command; afterwards...

[0024] The control unit controls the gas transmission component to operate at the second power for a fourth preset time t4, and simultaneously controls the second heating component to operate for the fourth preset time t4; afterwards...

[0025] The control unit controls the gas transmission unit to operate at the second power for a fifth preset duration t5;

[0026] The first power is less than the second power.

[0027] In one optional embodiment of this application, in the second working mode, the control component controls the first heating component to work for a sixth preset time t6 according to the steam sterilization and drying command.

[0028] Subsequently, the control unit controls the gas transmission unit and the second heating unit to work simultaneously for a seventh preset time t7.

[0029] In one optional embodiment of this application, a detection component is further included, which is electrically connected to the control component. The detection component is disposed on the base and is used to monitor the ambient temperature of the environment where the first container of milk to be warmed is placed on the base.

[0030] When the ambient temperature is not higher than the first temperature but higher than the second temperature, the control unit controls the gas transmission component to work and controls the second heating component to not work.

[0031] When the ambient temperature is equal to the second temperature, the control component prevents the gas transmission component and the second heating component from working.

[0032] When the ambient temperature is lower than the second temperature but not lower than the third temperature, the control component controls the gas transmission component to work and controls the second heating component to work.

[0033] When the ambient temperature is lower than the third temperature, the control unit continuously controls the gas transmission unit to work, and at the same time controls the second heating unit to work.

[0034] Among them, the first temperature, the second temperature, and the third temperature decrease in that order.

[0035] In one optional embodiment of this application, a support assembly and a milk warming assembly are also included, both having a receiving chamber for placing items, and both being detachably mounted on the base. The support assembly and the milk warming assembly can be switched on the base, and when the support assembly or the milk warming assembly is mounted on the base, the receiving chamber of the support assembly or the milk warming assembly is located above the sink.

[0036] In the first working mode, the milk warming component is set on the base and located above the water tank;

[0037] In the second working mode, the support assembly is set on the base and located above the water tank.

[0038] Secondly, embodiments of this application also provide a method for warming and sterilizing milk using an electronic device, the electronic device comprising:

[0039] The base is provided with a water tank and is used to place a first container for warming milk or a second container for sterilization; the first container for warming milk and the second container for sterilization can be placed on the base in an interchangeable manner and are located above the water tank;

[0040] The first heating element is used to generate steam from the water in the water tank.

[0041] Gas transmission components used for transmitting gas;

[0042] The second heating element is used to heat the gas transmitted by the gas transmission element;

[0043] The control component is electrically connected to the first heating component, the second heating component, and the gas transmission component.

[0044] The methods include:

[0045] S100, The control unit receives the control command;

[0046] If the control unit determines that the control command is a milk warming command, it will proceed to S300; if the control unit determines that the control command is a sterilization and drying command, it will proceed to S600.

[0047] S300: If the control unit determines that the milk warming command is a steam milk warming command, it will proceed to S400; if the control unit determines that the milk warming command is a warm air milk warming command, it will proceed to S500.

[0048] S400: The control unit controls the working status of the first heating element, the second heating element, and the gas transmission element in the steam milk warming mode according to the steam milk warming command.

[0049] S500: The control unit controls the working status of the first heating element, the second heating element, and the gas transmission element in the warm air milk warming mode according to the warm air milk warming command.

[0050] S600: The control unit controls the working status of the first heating element, the second heating element, and the gas transmission element in the disinfection and drying mode according to the disinfection and drying command.

[0051] The first heating element, the second heating element, and the gas transmission element operate differently in the steam milk warming mode, the warm air milk warming mode, and the sterilization and drying mode.

[0052] In one optional embodiment of this application, S400 includes:

[0053] S410, The control unit controls the first heating element to work for a first preset duration t1 according to the steam milk warming command;

[0054] S420, The control unit controls the gas transmission unit to operate for a second preset time t2.

[0055] In one optional embodiment of this application, the second preset duration t2 includes a first sub-preset duration t21, a second sub-preset duration t22, and a third sub-preset duration t23;

[0056] The S420 includes:

[0057] S421, The control unit controls the gas transmission unit to operate at a first power for a first preset duration t21;

[0058] S422, The control unit controls the gas transmission unit to operate at the second power for a second preset duration t22;

[0059] S423, The control unit controls the gas transmission unit to operate at the second power for a third preset duration t23;

[0060] The first power is less than the second power.

[0061] In one optional embodiment of this application, S500 includes:

[0062] S510, The control unit controls the gas transmission unit to operate at the first power for a third preset duration t3 according to the warm air and milk warming command;

[0063] S520, the control unit controls the gas transmission unit to operate at the second power for a fourth preset time t4, and simultaneously controls the second heating unit to operate for a fourth preset time t4;

[0064] S530, control the gas transmission component to operate at the second power for a fifth preset duration t5;

[0065] The first power is less than the second power.

[0066] Beneficial effects: Compared to a bottle warmer that only has a bottle warming function, the electronic device in this application embodiment can perform both bottle warming and sterilization functions. Compared to a sterilizer that only has a sterilization function, the electronic device in this application embodiment can perform both functions in addition to sterilization. Compared to users purchasing two separate devices—a bottle warmer and a sterilizer—this application embodiment allows a single device, the electronic device, to perform both functions, which is convenient for users and saves costs. Attached Figure Description

[0067] To more clearly illustrate the technical solutions in the embodiments of this application, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0068] To gain a more complete understanding of this application and its beneficial effects, the following description will be provided in conjunction with the accompanying drawings, wherein the same reference numerals in the following description denote the same parts.

[0069] Figure 1 and Figure 2 These are schematic diagrams of two structures of the electronic device according to embodiments of this application.

[0070] Figure 3 , Figure 4 and Figure 5 This is a cross-sectional view of one or more components of an electronic device according to an embodiment of this application in a first state.

[0071] Figure 6 This is a cross-sectional view of one or more components of an electronic device according to an embodiment of this application in a second state.

[0072] Figure 7This is a cross-sectional view of one or more components of an electronic device according to an embodiment of this application in a third state.

[0073] Figure 8 This is an exploded view of some components in the electronic device according to an embodiment of this application.

[0074] Figure 9 This is a cross-sectional view of the electronic device in the first configuration according to an embodiment of this application.

[0075] Figure 10 This is an exploded view of some components of the electronic device according to an embodiment of this application.

[0076] Figure 11 This is a perspective view of the milk warming component in the electronic device of this application embodiment.

[0077] Figure 12 This is a cross-sectional view of the electronic device in the second configuration according to an embodiment of this application.

[0078] Figure 13 This is an exploded view of some components of the electronic device according to an embodiment of this application.

[0079] Figure 14 This is a perspective view of the first bracket in the electronic device according to an embodiment of this application.

[0080] Figure label:

[0081] 100. Electronic equipment; 1000. Heat-generating main unit;

[0082] 1100. Base; 1101. Water tank; 1102. Vent; 1103. Support wall; 1103a. Top; 1103b. Inner side; 1104. Bearing wall; 1105. Protrusion; 1106. First storage cavity; 1107. Wind baffle; 11071. Curved surface; 1108a. First gap; 1108b. Second gap; 1108c. Third gap; 1109. Drainage hole; 1110. Stepped structure; 1120. Second... Storage cavity; 1130, first through hole; 1140, second through hole; 1200, first heating element; 1210, sealing element; 1301, gas transmission element; 1302, air duct; 1303, second heating element; 1304, mounting element; 1304a, first part; 1304b, second part; 1400, control element; 1410, mounting element; 1500, detection element; 1600, operating component; 1610, mounting element;

[0083] 2000, Support assembly; 2101, First support; 2102, Second support; 2103, Bottle stand; 2104, Channel; 2105, Receiving chamber; 2200, First top cover; 2300, Grip part;

[0084] 3000, Milk warming component; 3100, Receiving chamber; 3200, Through hole; 3210, First through hole; 3220, Second through hole; 3230, Third through hole; 3300, Side wall; 3400, Bottom wall; 3500, Operating part; 3600, Edge; 3700, Raised edge.

[0085] F1, first direction; F2, airflow direction; F3, water flow direction. Detailed Implementation

[0086] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of this application, and not all of them. The following description of at least one exemplary embodiment is merely illustrative and is in no way intended to limit the application or its application or use. All other embodiments obtained by those skilled in the art based on the embodiments of this application without creative effort are within the protection scope of this application.

[0087] In this document, references to "embodiment" or "implementation" mean that a particular feature, structure, or characteristic described in connection with an embodiment or implementation may be included in at least one embodiment of this application. The appearance of this phrase in various places throughout the specification does not necessarily refer to the same embodiment, nor is it a separate or alternative embodiment mutually exclusive with other embodiments. It will be explicitly and implicitly understood by those skilled in the art that the embodiments described herein can be combined with other embodiments.

[0088] like Figure 1 , Figures 3-8As shown, the electronic device 100 includes a base 1100, a first heating element 1200, a second heating element 1303, a gas transmission element 1301, and a control element 1400. The base 1100 is provided with a water tank 1101, and is used to place a first container for warming milk or a second container for sterilization. The first container for warming milk and the second container for sterilization can be alternately placed on the base 1100 and positioned above the water tank 1101. The first heating element 1200 is used to generate steam from the water in the water tank 1101. The gas transmission element 1301 is used to transmit gas. The second heating element 1303 is used to heat the gas transmitted by the gas transmission element 1301. The control unit 1400 is electrically connected to the first heating element 1200, the second heating element 1303, and the gas transmission element 1301. The control unit 1400 can control the first heating element 1200, the second heating element 1303, and the gas transmission element 1301 to operate in a first working mode based on the first container of milk to be warmed placed on the base 1100. The control unit 1400 can also control the first heating element 1200, the second heating element 1303, and the gas transmission element 1301 to operate in a second working mode based on the second container to be sterilized placed on the base 1100. The first heating element 1200, the second heating element 1303, and the gas transmission element 1301 operate in different states in the first and second working modes.

[0089] In this embodiment, the second heating element 1303, the air duct 1302, and the gas transmission element 1301 can be referred to as the air assembly.

[0090] In this embodiment, the base 1100 of the electronic device 100 and the components disposed on the base 1100 can be referred to as the heating host 1000. For example, the heating host 1000 includes the base 1100, the first heating component 1200, the fan assembly, the control component 1400, etc.

[0091] The first container can be a container holding liquids such as milk, for example, the first container is a baby bottle containing milk. Figures 9-11 The electronic device 100 in this embodiment may further include a milk warming component 3000, which is detachably connected to the base 1100, meaning that the milk warming component 3000 can be placed on the base 1100 and can be removed from the base 1100. The milk warming component 3000 is used to hold a first container, which can contain milk.

[0092] The second container can be a cleaned container, such as a cleaned baby bottle. Figures 12-14The electronic device 100 in this embodiment may further include a support assembly 2000, which is detachably connected to the base 1100, meaning that the support assembly 2000 can be placed on the base 1100 and can be removed from the base 1100. The support assembly 2000 is used to hold the second container to be sterilized.

[0093] The milk warming component 3000 and the support component 2000 of this application can be switched and placed on the base 1100, above the water tank 1101. In some cases, such as when heating the milk in the bottle is required, the milk warming component 3000 is placed on the base 1100, above the water tank 1101, while the support component 2000 is separate from the base 1100. In other cases, such as when sterilizing a cleaned bottle, the support component 2000 is placed on the base 1100, above the water tank 1101, while the milk warming component 3000 is separate from the base 1100. In practical applications, users can install different components on the base 1100 according to different needs; for example, when milk needs to be warmed, the milk warming component 3000 can be installed on the base 1100; when sterilization is required, the support component 2000 can be installed on the base 1100. Compared to a bottle warmer that only warms milk, the electronic device 100 in this embodiment of the application can also sterilize milk, in addition to warming milk. Compared to a sterilizer that only sterilizes milk, the electronic device 100 in this embodiment can also warm milk, in addition to sterilizing milk. Compared to users purchasing two separate devices—a bottle warmer and a sterilizer—this embodiment of the application uses a single device, the electronic device 100, to perform both functions, which is convenient for users and saves costs.

[0094] Therefore, in this embodiment, the same position on the base can detachably support either the milk warming component 3000 or the support component 2000. Compared to electronic devices having separate structures for supporting the milk warming component and the support component at different locations, this embodiment can share the same position on the base, as well as the first heating element 1200, the gas transmission element 1301, and the second heating element 1303 of the electronic device.

[0095] In some cases, the electronic device 100 of this application embodiment may be referred to as a multi-functional bottle warmer 100. In the working state, one of the bottle warming component 3000 and the support component 2000 is disposed on the base 1100 and located above the water tank 1101.

[0096] In some embodiments, such as Figure 10As shown, the base 1100 includes a supporting wall 1104 and a supporting wall 1103. The supporting wall 1103 and the supporting wall 1104 together define a first storage cavity 1106. Specifically, the supporting wall 1103 surrounds the supporting wall 1104 to form the first storage cavity 1106. The water tank 1101 is located within the first storage cavity 1106. For example, the supporting wall 1103 surrounds the supporting wall 1104 to define the first storage cavity 1106. The top end 1103a of the supporting wall 1103 is used to support the milk warming component 3000 or the support assembly 2000, and the inner side 1103b of the supporting wall 1103 is used to limit the movement of the milk warming component 3000 or the support assembly 2000. For example, as... Figure 11 As shown, the milk warming assembly 3000 includes an edge 3600 that can be placed on and fit against the top end 1103a of the support wall 1103. The milk warming assembly 3000 also includes a protruding edge 3700 located inside the edge 3600. The protruding edge 3700 can be placed inside the support wall 1103 and can be aligned with the inner surface 1103b, which restricts the movement of the protruding edge 3700.

[0097] In some embodiments, such as Figure 8 As shown, the base 1100 also includes a second storage cavity 1120, which is connected to the first storage cavity 1106 via a first through hole 1130. It should be noted that, combined with... Figure 10 A first through hole 1130 is formed on the supporting wall 1104. Some components of the electronic device 100, such as the first heating element 1200, are installed at the position of the first through hole 1130. The first heating element 1200 alone or the first heating element 1200 is sealed by the sealing element 1210 to close the first through hole 1130, thereby separating the first receiving cavity 1106 and the second receiving cavity 1120. The second receiving cavity 1120 can accommodate some components of the electronic device 100, such as the gas transmission element 1301, the second heating element 1303, and the control element 1400. It should be noted that when the electronic device 100 also includes other components, the second receiving cavity 1120 can also accommodate other components of the electronic device 100. For example, the base 1100 also includes a second through hole 1140, which is located on the side wall of the base 1100 and communicates with the second receiving cavity 1120. The second through hole 1140 is used to expose one or more components of the electronic device 100 to the outside of the base 1100.

[0098] For example, such as Figure 2 , Figure 8 , Figure 9 , Figure 10 and Figure 13As shown, the electronic device 100 also includes an operating component 1600, which is mounted on the base 1100 via a mounting component 1610. The operating component 1600 is electrically connected to the control component 1400. A user can operate the operating component 1600 to transmit relevant control commands to the control component 1400. The control component 1400 controls the operating states of the first heating component 1200, the second heating component 1303, and the gas transmission component 1301 based on the control commands transmitted by the user through the operating component 1600. In some cases, the operating component 1600 has a knob-like structure, allowing control commands to be transmitted to the control component 1400 by rotating the operating component 1600. In other cases, the operating component 1600 has a press-type structure, allowing the user to transmit control commands to the control component 1400 by pressing the operating component 1600. It should be noted that the type of operating component 1600 is not limited in this embodiment; for example, the operating component 1600 may include a touchscreen electrically connected to the control component 1400.

[0099] For example, such as Figure 8 As shown, the control component 1400 may include a circuit board on which controllers and control circuits may be integrated. The control component 1400 is mounted to the base 1100 via a mounting component 1410, specifically, the control component 1400 is mounted to the second storage cavity 1120 of the base 1100 via the mounting component 1410.

[0100] In some embodiments, the base 1100 further includes one or more vent holes 1102, which communicate with the gas transmission component 1301 to transmit gas from the vent holes 1102 to the first receiving cavity 1106. Specifically, the vent holes 1102 connect the first receiving cavity 1106 and the second receiving cavity 1120, wherein the position of the vent holes 1102 on the base 1100 along the first direction F1 is higher than the position of the water tank 1101 on the base 1100, ensuring that when liquid such as water is added to the water tank 1101, the liquid such as water in the water tank 1101 will not flow from the vent holes 1102 into the second receiving cavity 1120. For example, the first receiving cavity 1106 of the base 1100 is provided with a protrusion 1105, which protrudes from the upper surface of the support wall 1104 along the first direction F1. The vent 1102 is provided on the protrusion 1105. The gas transmission component 1301 is provided in the second receiving cavity 1120. The gas transmission component 1301 transmits gas to the vent 1102 through the air duct 1302 in the second receiving cavity 1120, and then transmits the gas to the first receiving cavity 1106 through the vent 1102.

[0101] For example, such as Figure 8As shown, a portion of the air duct 1302 can be directly formed from the base 1100. Exemplarily, a portion of the air duct 1302 can be formed from a mounting component 1304, which can be a single component or multiple components. For example, the mounting component 1304 includes a first part 1304a and a second part 1304b, which are assembled together. It is understood that the air inlet of the mounting component 1304 is connected to the air outlet of the gas transmission component 1301. Exemplarily, the gas transmission component 1301 is a component capable of transmitting gas, such as a fan. The second heating component 1303 is disposed within the mounting component 1304, that is, the second heating component 1303 is disposed between the first part 1304a and the second part 1304b, and is fixed by the first part 1304a and the second part 1304b.

[0102] In some embodiments, the base 1100 is provided with an air inlet located at the bottom of the base 1100. To maintain the cleanliness of the incoming air, the base 1100 is provided with a filter structure at the air inlet. Specifically, the filter structure includes filter cotton.

[0103] For example, the gas conveying component conveys gas to 1301, which has the function of drying condensate and dispersing steam in the milk warming assembly 3000 or the support assembly 3000.

[0104] For example, the first heating element 1200 is a component capable of heating a liquid, such as water. The first heating element 1200 can be a heating wire, heating plate, or heating rod structure. Figure 8 As shown, a first through hole 1130 is provided on the base 1100, combined with... Figures 3-7 The first heating element 1200 is disposed at the first through hole 1130, and the first heating element 1200 can cover the first through hole 1130 to form a water tank 1101. A sealing element 1210 is disposed between the first heating element 1200 and the base 1100, and the sealing element 1210 can be disposed around the first heating element 120. Figure 10 and Figure 13 As shown, the sealing component 1210 is connected to the mounting wall 1104 of the base 1100, and the sealing component 1210, the first heating component 1200 and the mounting wall 1104 of the base 1100 together define the water outlet 1101.

[0105] For example, the first heating element 1200 is capable of heating the liquid, such as water, in the water tank 1101 by means of resistance heating.

[0106] The water tank 1101 can hold a certain amount of liquid, such as water. The first heating element 1200 can heat the liquid, such as water, contained in the water tank 1101 until steam is generated. In this embodiment, the water tank 1101 is located at the bottom of the first receiving cavity 1106. In some embodiments, such as Figure 10 As shown, the water tank 1101 includes at least one stepped structure 1110. Specifically, the sealing component 1210, the first heating component 1200, and the mounting wall 1104 of the base 1100 together define the stepped structure 1110.

[0107] The second heating element 1303 is a component capable of heating a liquid, such as water. The second heating element 1303 can be a heating wire, heating plate, or heating rod structure. Figures 3-8 As shown, the second heating element 1303 is disposed within the base 1100. Exemplarily, the second heating element 1303 is disposed within the second receiving cavity 1120. Exemplarily, the second heating element 1303 is capable of heating the gas transmitted by the gas transmission component 1301 via resistance heating.

[0108] In some cases, when the milk warming component 3000 or the support component 2000 is placed on the base 1100, the first heating element 1200 can heat the liquid such as water in the water tank 1101 to generate steam. The steam can then enter the milk warming component 3000 or the support component 2000 to heat the second container in the support component 2000 to achieve the sterilization function, or to heat the first container in the milk warming component 3000 to achieve the milk warming function.

[0109] The gas transmitted by the gas transmission component 1301 has the function of drying condensate and dispersing steam in the milk warming assembly 3000 or the support assembly 2000. In some cases, when the milk warming assembly 3000 or the support assembly 2000 is placed on the base 1100, the gas transmitted by the gas transmission component 1301 can enter the first receiving cavity 1106 through the vent 1102, and then enter the milk warming assembly 3000 or the support assembly 2000, which can dry condensate and disperse steam in the milk warming assembly 3000 or the support assembly 2000.

[0110] In some cases, when the milk warming component 3000 or the support component 2000 is placed on the base 1100, the second heating component 1303 can heat the gas transmitted by the gas transmission component 1301. The heated gas can enter the first storage cavity 1106 through the air outlet 1102, and then enter the milk warming component 3000 or the support component 2000. The hot air can heat the container in the milk warming component 3000 or the support component 2000.

[0111] like Figures 9-12 As shown, the milk warming assembly 3000 is provided with a receiving chamber 3100 for accommodating a first container, such as a baby bottle containing milk, which can be placed in the receiving chamber 3100. At least one of the side wall 3300 and the bottom wall 3400 of the receiving chamber 3100 is provided with a hollow area or a mesh through hole for warming milk.

[0112] like Figures 9-12 As shown, the milk warming component 3000 is provided with a receiving chamber 3100 for placing a first container and multiple through holes. The mesh through holes or hollow areas can be understood as multiple through holes, which include at least two types: a first through hole 3210 and a second through hole 3220, wherein the length and / or width of the first through hole 3210 and the second through hole 3220 are different.

[0113] For example, the length of the first through hole 3210 in the side wall 3300 of the accommodating chamber 3100 is greater than the length of the second through hole 3220 in the side wall 3300 of the accommodating chamber 3100. Or it can be understood as: the length of the first through hole 3210 along the first direction F1 is greater than the length of the second through hole 3220 along the first direction F1.

[0114] For example, the width of the first through hole 3210 in the side wall 3300 of the accommodating chamber 3100 is smaller than the width of the second through hole 3220 in the side wall 3300 of the accommodating chamber 3100.

[0115] For example, the length of the first through hole 3210 in the bottom wall 3400 of the accommodating chamber 3100 is greater than the length of the second through hole 3220 in the bottom wall 3400 of the accommodating chamber 3100.

[0116] For example, the width of the first through hole 3210 in the bottom wall 3400 of the accommodating chamber 3100 is smaller than the width of the second through hole 3220 in the bottom wall 3400 of the accommodating chamber 3100.

[0117] For example, a plurality of first through holes 3210 and a plurality of second through holes 3220 are arranged sequentially at intervals. In one embodiment, a second through hole 3220 is arranged between two adjacent first through holes 3210, and a first through hole 3210 is arranged between two adjacent second through holes 3220. For example, a plurality of first through holes 3210 and a plurality of second through holes 3220 are arranged sequentially at equal intervals.

[0118] For example, the plurality of through holes also includes a third through hole 3230, which penetrates the center of the bottom wall 3400 of the receiving chamber 3100, and when the milk warming component 3000 is disposed on the base 1100, the third through hole 3230 is located directly above the water tank 1101. When a bottle containing milk is placed in the receiving chamber 3100, the center of the bottom of the bottle containing milk can be directly affected by the steam or airflow in the first receiving chamber 1106 through the third through hole 3230. Similarly, steam or airflow can also act on the bottle placed in the receiving chamber 3100 through the first through hole 3210 and the second through hole 3220. The gas transmitted by the gas transmission component 1301 can be referred to as airflow, or the gas transmitted by the gas transmission component 1301 after being heated by the second heating component 1303 can also be referred to as airflow.

[0119] In some embodiments, the electronic device 100 may further include a second top cover disposed on top of the milk warming assembly 3000, the second top cover being removable from the top of the milk warming assembly 3000 to allow removal of the bottle from the milk warming assembly 3000.

[0120] In this application embodiment, the milk warming component 3000 and the base 1100 can be detachably connected by either plugging or snapping, and this application embodiment does not impose any restrictions.

[0121] Understandably, during the steam milk warming process, the bottle containing milk is placed in the receiving chamber 3100 of the milk warming component 3000, which is placed on the base 1101. The control unit 1400 can control the first heating element 1200 to operate according to the control command, heating the liquid, such as water, in the water tank 1101 until steam is generated. However, steam accumulating in the milk warming component 3000 may cause the milk to become too hot and unsuitable for drinking. Therefore, the fan component generates airflow using natural cool air. That is, the control unit 1400 controls the first heating element 1200 to stop operating according to the control command and controls the gas transmission component 1301 to start, transmitting gas to generate airflow to disperse the steam in the milk warming component 3000 and prevent the milk from overheating. When the fan component generates airflow using natural cool air, it can quickly disperse the steam accumulated in the milk warming component 3000, cooling the milk temperature, preventing it from becoming too hot, maintaining a constant milk temperature, and preventing overheating.

[0122] On the other hand, if the user does not remove the warm bottle in time, the control unit 1400 can control the second heating element 1303 of the fan assembly to work in stages, intermittently starting and stopping. Furthermore, the control unit 1400 can control the gas transmission element 1301 to transmit gas and generate airflow, alternately blowing cold or hot air, thus maintaining a constant milk temperature. Alternatively, if the user does not remove the warm bottle in time, the control unit 1400 can control the second heating element 1303 of the fan assembly to work continuously and control the gas transmission element 1301 to work continuously, so that the fan assembly continuously generates hot air, thus maintaining a constant milk temperature.

[0123] It should be noted that when the wind assembly has a second heating element 1303, if the user does not turn on the first heating element 1200 of the heating unit 1000, but instead turns on the second heating element 1303 of the wind assembly, hot air can be used to warm milk.

[0124] In some embodiments, the electronic device 100 further includes a temperature sensor disposed in the milk warming assembly 3000 for monitoring the temperature in the milk warming assembly 3000.

[0125] like Figures 12 to 14 As shown, the support assembly 2000 can be disposed on the base 1100, and when disposed on the base 1100, the support assembly 2000 is located on the upper side of the base 1100. The air outlet 1102 of the base 1100 communicates with the interior of the support assembly 2000, and the steam generated by the water tank 1101 and the airflow generated by the air assembly can both enter the support assembly 2000. In this embodiment, the support assembly 2000 and the base 1100 can be detachably connected by either a plug-in connection or a snap-fit ​​connection; this embodiment does not impose any limitations.

[0126] Understandably, the baby bottle is placed in the support assembly 2000, and the heating unit 1000 can sterilize the bottle and nipple with steam and dry them using the airflow generated by the fan assembly. For example, the heating unit 1000 first sterilizes the bottle with steam and then dries it. Specifically, the control unit 1400 can control the first heating unit 1200 to operate to sterilize the bottle and / or nipple in the support assembly 2000, and then the control unit 1400 can control the gas transmission unit 1301 to operate to transmit gas and generate airflow, thereby drying the sterilized bottle and / or nipple.

[0127] Furthermore, when the air assembly is capable of generating hot air, the bottles and nipples are dried with hot air, improving efficiency. Specifically, the control unit 1400 can control the gas transmission unit 1301 to operate in order to transmit gas and generate airflow, and the control unit 1400 can control the second heating unit 1303 to operate in order to heat the gas transmitted by the gas transmission unit 1301 to form hot air.

[0128] In some embodiments, the support assembly 2000 includes a carrier support on which the baby bottle and nipple are placed for sterilization and drying.

[0129] Specifically, the support includes a bottom support and enclosing sidewalls, with the sidewalls positioned on the upper side of the bottom support. The support is formed as a hollow cylindrical structure, serving as a accommodating chamber for holding bottles or nipples. The bottom support is configured as a support plate, and may have perforated areas or a mesh to allow steam and airflow to rise into the support.

[0130] In some examples, there are at least two support shelves arranged in layers, with bottles and nipples placed on different shelves. In this case, the lower end of the side wall of the upper support shelf is connected to the upper end of the side wall of the lower support shelf.

[0131] Furthermore, adjacent shelves are detachably connected to each other for easy access to nipples or bottles. Specifically, the side walls of adjacent shelves are connected by a plug-in or snap-fit ​​mechanism.

[0132] In some examples, the support assembly 2000 includes a first top cover 2200, which is disposed on the top of the support assembly 2000 and is removable from the top of the support assembly 2000. It is understood that the first top cover 2200, being disposed on the top of the uppermost support, allows for the removal and placement of a nipple or bottle. For ease of operation, a grip 2300 is provided on the top of the first top cover 2200.

[0133] In some embodiments, the support assembly 2000 is detachably disposed on the base 1100 so that the support assembly 2000 can be removed from the upper side of the base 1100 to pour water into the water tank 1101.

[0134] Specifically, the lower end of the side wall of the lowest load-bearing bracket is inserted or snapped into the upper end of the side wall of the base 1100.

[0135] In some embodiments, two supports are provided, namely a first support 2101 and a second support 2102. The first support 2101 and the second support 2102 are arranged in layers on the upper side of the base 1100, with the second support 2102 located above the first support 2101. The baby bottle is placed on one of the first support 2101 and the second support 2102, and the nipple is placed on the other of the first support 2101 and the second support 2102.

[0136] Specifically, the first support 2101 includes a bottom support and enclosing sidewalls. The first support 2101 is formed as a hollow cylindrical structure, which can serve as a receiving chamber 2105 for placing a baby bottle or nipple. The bottom support has a perforated area to allow steam and airflow to flow upward into the first support 2101. The second support 2102 includes a bottom support and enclosing sidewalls. The second support 2102 is formed as a hollow cylindrical structure to place a baby bottle or nipple. The bottom support has a perforated area to allow steam and airflow to flow upward into the second support 2102.

[0137] Furthermore, the second bracket 2102 is detachably connected to the first bracket 2101. Specifically, the lower end of the side wall of the second bracket 2102 is inserted into or snapped into the upper end of the side wall of the first bracket 2101. It is understood that the second bracket 2102 is detachably connected to the first bracket 2101 so that the second bracket 2102 can be removed from the first bracket 2101 to facilitate the placement of the bottle or nipple into the first bracket 2101.

[0138] Regarding the bracket assembly 2000, at least the following alternative embodiments also exist.

[0139] In some alternative embodiments, the support bracket in the support assembly 2000 is configured as a single support, with both the nipple and the bottle disposed within the inner cavity of the support.

[0140] Furthermore, the storage bracket is detachably connected to the base 1100, and the bottom support in the storage bracket may be detachable or non-detachable. Alternatively, the storage bracket and the base 1100 are fixedly connected non-detachably, and the bottom support in the storage bracket is detachable. Alternatively, the side wall of the storage bracket is integrally formed with the side wall of the base 1100, and the bottom support in the storage bracket is detachable.

[0141] In other alternative embodiments, the support assembly 2000 includes at least two load-bearing supports, each of which is a support plate. Further, the support assembly 2000 includes a cylindrical tube connected to the base 1100, with each load-bearing support disposed within the cylindrical tube and arranged in layers.

[0142] Furthermore, at least one support is detachably connected to the inner wall of the cylindrical tube. In some examples, each support is detachable within the cylindrical tube. In other examples, the lowest support in the cylindrical tube is not detachable, while the remaining supports are detachable.

[0143] In some examples, the cylindrical tube and the base 1100 are fixedly connected in a non-detachable manner, or the cylindrical tube and the side wall of the base 1100 are integrally formed. In this case, by removing the support in the cylindrical tube, water can be poured into the water tank 1101 of the base 1100.

[0144] In other examples, the cylindrical tube is detachably connected to the base 1100, and the load holder may be detachable or non-detachable within the cylindrical tube.

[0145] In some embodiments, the support frame is provided with a bottle stand 2103, and at least one bottle stand 2103 is provided. The bottle stand 2103 is used to invert the bottle onto the support frame, with the bottle mouth fitted onto the outer side of the bottle stand 2103 to prevent the bottle from tipping over. A gap is left between the inner wall of the bottle mouth and the outer side of the bottle stand 2103.

[0146] Furthermore, the bottle stand 2103 is hollow, forming a channel 2104 that runs through both ends. The bottle stand 2103 also forms a vertically continuous channel 2104, which connects the inside and outside of the support frame. Understandably, when the bottle is inverted on the bottle stand 2103, steam or airflow enters the bottle through the channel 2104.

[0147] It should be noted that when there are at least two storage racks, at least one of the storage racks is equipped with a bottle support column 2103.

[0148] In this embodiment, the process of gas transmission in the base 1100 by the gas transmission component 1301 is as follows: Figure 3 As shown, Figure 3 The dashed line segment shown represents the approximate path of the gas transported by the gas transport component 1301 from the second receiving cavity 1120 to the first receiving cavity 1106. Figure 3 The arrow in the dashed line segment indicates the approximate direction of gas flow from the second receiving cavity 1120 to the first receiving cavity 1106, referred to as the airflow direction F2. For example, the control unit 1400 controls the gas transmission unit 1301 to operate. After activation, the gas transmission unit 1301 transmits gas, which flows to the second heating element 1303, then from the heating element 1303 to the air duct 1302, through the air duct 1302 to the air outlet 1102, and finally into the first receiving cavity 1106. When the base 1100 supports the milk warming component 3000 or the support component 2000, the gas enters the milk warming component 3000 or the support component 2000 from the first receiving cavity 1106. It should be noted that during the process of the gas transmitted by the gas transmission unit 1301 passing through the second heating element 1303, if the second heating element 1303 is operating, the second heating element 1303 can heat the flowing gas to form hot air. If the second heating element 1303 is not working, then the second heating element 1303 will not heat the flowing gas, which can be called natural wind.

[0149] like Figures 3-7The base 1100 has a baffle 1107 installed in the air duct 1302. One end of the baffle 1107 is connected to the inner side of the base 1100, and the other end of the baffle 1107 can rotate around its connection position. During rotation, the baffle 1107 can change the size of the air duct 1302 at its location. For example, a gap can be formed between the other end of the baffle 1107 and the wall of the base 1100 near the first receiving cavity 1106. The size of the gap between the baffle 1107 and the wall of the base 1100 near the first receiving cavity 1106 varies depending on the state of the baffle 1107. For example, as... Figures 3-5 When the wind deflector 1107 is in its first state, a first gap 1108a is formed between the wind deflector 1107 and the wall of the base 1100 near the first receiving cavity 1106. Air from the air duct 1302 can flow from the first gap 1108a into the air outlet 1102, and water flowing from the air outlet 1102 into the second receiving cavity 1120 can flow from the first gap 1108a to the drain hole 1109. Figure 6 As shown, when the wind deflector 1107 is in its second state, a second gap 1108b is formed between the wind deflector 1107 and the wall of the base 1100 near the first receiving cavity 1106. The second gap 1108b is larger than the first gap 1108a. In some cases, the airflow through the second gap 1108b is greater than the airflow through the first gap 1108a. For example... Figure 7 As shown, when the wind deflector 1107 is in the third state, a third gap 1108c is formed between the wind deflector 1107 and the wall of the base 1100 near the first receiving cavity 1106. The third gap 1108c is larger than the second gap 1108b. In some cases, the airflow through the third gap 1108c is greater than the airflow through the second gap 1108b.

[0150] For example, the wind deflector 1107 is positioned near the air outlet 1102.

[0151] It should be noted that in actual application, when a user adds liquid, such as water, to the water tank 1101, the added water may exceed the capacity of the water tank 1101 and enter the vent 1102, flowing into the second storage cavity 1120 from the vent 1102. To prevent water from flowing into the second storage cavity 1120 from the vent 1102 and damaging the components located in the second storage cavity 1120, this embodiment of the application provides a water flow channel on the base 1100. For example, as shown... Figure 4 As shown, Figure 4 The dashed line segment shown represents the path of water flowing from the first receiving cavity 1106 to the outside of the base 1100. Figure 4The arrow in the dashed line segment represents the flow direction F3 of water from the first receiving cavity 1106 to the outside of the base 1100, referred to as the water flow direction F3. For example, water in the first receiving cavity 1106 flows into the second receiving cavity 1120 through the vent 1102, first passing through the bottom of the air duct 1302, and then flowing from the bottom of the air duct 1302 to the bottom of the base 1100. A drain hole 1109 is provided at the bottom of the base 1100, and finally, the water is discharged from the drain hole 1109 to the outside of the base 1100. It should be noted that the water flow process in the second receiving cavity 1120 does not pass through electrical components, thus not affecting the electrical components within the second receiving cavity 1120.

[0152] In some embodiments, the side of the wind deflector 1107 away from its connection position is an arc-shaped surface 11071. The arc-shaped surface 11071 facilitates the downward flow of water from the upper surface of the wind deflector 1107, preventing water from accumulating on the upper surface of the wind deflector 1107.

[0153] In some cases, the control unit 1400 can control the first heating element 1200, the second heating element 1303, and the gas transmission element 1301 to different working states according to different control commands. Control commands can come from the operating unit 1600 or from voice; for example, the electronic device 100 also includes a voice receiver that can receive the user's voice information and convert it into control commands. In other cases, the control unit 1400 can automatically identify the components placed on the base 1100 and then control the working states of the first heating element 1200, the second heating element 1303, and the gas transmission element 1301 according to the identification result. For example, the electronic device 100 also includes a component detection device, such as a pressure sensor. Since the support assembly 2000 and the milk warming assembly 3000 have different weights and hold different numbers of bottles, and are placed on the base, the pressure sensor can detect different pressure values. The control unit 1400 is electrically connected to the pressure sensor. The control unit 1400 can determine whether the component placed on the base 1100 is the support assembly 2000 or the milk warming assembly 3000 based on different pressure values, and then control the first heating element 1200, the second heating element 1303, and the gas transmission element 1301 to be in the corresponding states according to the identification result. Some cases are illustrated below.

[0154] It should be noted that the operating states of the first heating element 1200, the second heating element 1303, and the gas transmission element 1301 include whether they are operating or not. In some cases, the first heating element 1200 is operating; in other cases, it is not operating. In some cases, the second heating element 1303 is operating; in other cases, it is not operating. In some cases, the gas transmission element 1301 is operating; in other cases, it is not operating.

[0155] It should also be noted that the operating states of the first heating element 1200, the second heating element 1303, and the gas transmission element 1301 include different power states. In some cases, the gas transmission element 1301 operates at a first power; in other cases, it operates at a second power. In some cases, the first heating element 1200 operates at a third power; in other cases, it operates at a fourth power. In some cases, the second heating element 1303 operates at a fifth power; in other cases, it operates at a sixth power.

[0156] In this embodiment of the application, the control command may include a steam milk warming command.

[0157] For example, the first working mode includes a first sub-working mode, such as a steam milk warming mode. In the steam milk warming mode, the milk warming component 3000 has a bottle containing milk, and the milk warming component 3000 is placed on the base 1100 and located above the water tank 1101.

[0158] In the first sub-operating mode, the control unit 1400 controls the first heating element 1200 to operate for a first preset duration t1 according to the steam milk warming command; then, the control unit 1400 controls the gas transmission element 1301 to operate for a second preset duration t2. It can be understood that the control unit 1400 is capable of receiving the steam milk warming command. Upon receiving the command, the control unit 1400 controls the first heating element 1200 to operate for the first preset duration t1, then stops the first heating element 1200 from operating, and controls the gas transmission element 1301 to operate for the second preset duration t2, and finally stops the gas transmission element 1301 from operating.

[0159] In one optional embodiment, the second preset duration t2 includes a first sub-preset duration t21, a second sub-preset duration t22, and a third sub-preset duration t23. The control unit 1400 controls the gas transmission unit 1301 to operate at a first power for the first sub-preset duration t21; subsequently, the control unit 1400 controls the gas transmission unit 1301 to operate at a second power for the second sub-preset duration t22; and subsequently, the control unit 1400 controls the gas transmission unit 1301 to operate at a second power for the third sub-preset duration t23. The first power is less than the second power. For example, the second power is twice the first power; for instance, the first power might be half the power of the gas transmission unit 1301, and the second power might be the full power of the gas transmission unit 1301. For example, t1 > t22 > t23 > t21 or t1 > t23 > t22 > t21.

[0160] Specifically, the steam milk warming mode process is as follows: First, a rated amount of water is injected into the water tank 1101. After the heating unit 1000 is powered on, or in other words, after the heating unit 1000 is powered on, the user can operate the control component 1600 to select the steam milk warming function to heat the baby bottle in the milk warming component 3000. The control component 1400 controls the first heating component 1200 to start working, with a working time t1. At this time, the milk temperature in the bottle varies depending on the material, generally around 21-34 degrees Celsius. At this time, the first heating component 1200 stops working, and the control component 1400 controls the gas transmission component 1301 to start slowly at half power, with a working time of t21. After an interval of t21, the control component 1400 controls the gas transmission component 1301 to start at full power, with a working time of t22. During the time interval t21+t2, the milk temperature in the bottle is maintained at a relatively stable level. The gas transmission component 1301 dissipates the residual heat inside the milk warming component 3000 to the surface of the bottle, generating hot air that raises the temperature to the target temperature of 36-37°C. Then, the control component 1400 controls the gas transmission component 1301 to continue operating at full power for a period t23. Within t23, the residual heat inside the milk warming component is minimal, effectively blowing away excess heat from the bottle surface and simultaneously drying the surface moisture. This prevents the milk temperature inside the bottle from rising further, maintaining it at approximately 37-38°C, achieving precise milk warming without overheating and simultaneous drying of the bottle surface. The total warming time T1 = t1 + t21 + t22, with t23 being the time period without overheating. It should be noted that the milk in the bottle is drinkable within the t23 time period. After t23, the milk temperature may become too high and unsuitable for consumption. Therefore, t23 is not part of the actual warming time but rather a reminder to the consumer that the milk is ready to drink. In some cases, the t23 time period can be indicated by an indicator light on the electronic device 100.

[0161] In steam-warming mode, the overall bottle temperature is approximately 21-34 degrees Celsius, specifically as follows: For glass bottles initially refrigerated, the temperature of the first heating element 1200 after one working cycle (t1) is 21-26℃. For glass bottles initially at room temperature, the temperature is 26-28℃. For plastic bottles initially refrigerated, the temperature is 26.5-31℃. For plastic bottles initially at room temperature, the temperature is 26.5-31℃. For silicone bottles initially refrigerated, the temperature is 29.5-33℃. When the baby bottle is made of silicone and is initially at room temperature, the temperature of the first heating element 1200 after working for t1 is 32.5-35℃.

[0162] In steam milk warming mode, the temperature of the bottle in refrigeration mode is around 4℃, such as 3.5℃, 3.6℃, ​​3.7℃, 3.8℃, 3.9℃, 4℃, 4.1℃, 4.2℃, 4.3℃, etc.

[0163] In steam milk warming mode, the temperature of the bottle at room temperature is around 22℃, such as 21℃, 21.5℃, 22℃, 22.5℃, 23℃, etc.

[0164] In other optional embodiments, in the steam milk warming mode, the second preset duration t2 includes a first sub-preset duration t21 and a second sub-preset duration t22; the control unit 1400 controls the gas transmission unit 1301 to operate at a first power for the first sub-preset duration t21; then, the control unit 1400 controls the gas transmission unit 1301 to operate at a second power for the second sub-preset duration t22.

[0165] In steam-warming milk mode, because the warming component 3000 is installed on the base 1100 to form a relatively enclosed space, heat can be concentrated on the outside of the bottle inside the warming component 3000, rapidly raising the milk temperature. This causes the accumulated heat to continue warming the milk after the warming process ends, resulting in the milk temperature inside the bottle becoming too high, exceeding 42 degrees Celsius, which is unsuitable for infants. In this embodiment, after the first heating element 1200 finishes heating, the control element 1400 controls the second heating element 1303 to stop working and controls the gas... When the transmission component 1301 is working, the entire air duct 1302 blows out natural cool air, which can quickly blow away the heat accumulated in the bottle and cool the warm milk on the outer wall of the bottle, so that the milk temperature does not rise too high and the milk temperature is kept constant. If the bottle in the milk warming component 3000 is not removed in time, the control component 1400 can control the second heating component 1303 to work in stages and control the gas transmission component 1301 to work in stages to blow hot air to maintain the temperature of the milk in the milk warming component 3000.

[0166] In this embodiment of the application, the control command may include a warm air / milk warming command.

[0167] For example, the first working mode includes a second sub-working mode, such as a warm air milk warming mode. In the warm air milk warming mode, the milk warming component 3000 has a milk bottle containing milk, and the milk warming component 3000 is placed on the base 1100 and located above the water tank 1101.

[0168] In the second sub-operation mode, the control unit 1400 controls the gas transmission unit 1301 to operate at a first power for a third preset duration t3 according to the warm air / milk warming command; then, the control unit 1400 controls the gas transmission unit 1301 to operate at a second power for a fourth preset duration t4, and simultaneously controls the second heating unit 1303 to operate for a fourth preset duration t4; then, the control unit 1400 controls the gas transmission unit 1301 to operate at a second power for a fifth preset duration t5. The first power is less than the second power, and the relationship between the first power and the second power can be referred to the above content, which will not be repeated here. For example, t4 > t5 > t3.

[0169] In other alternative embodiments, after t5, the control unit 1400 controls the gas transmission unit 1301 to operate at a second power for an eighth preset duration t8. For example, t4 > t5 > t8 > t3 or t4 > t8 > t5 > t3.

[0170] Specifically, the process of the warm air milk warming mode is as follows: After the heating unit 1000 is powered on, or in other words, after the heating unit 1000 is powered on, the user can operate the operating component 1600 to select the warm air milk warming function to heat the milk bottle in the milk warming component 3000. Control unit 1400 controls gas transmission unit 1301 to start slowly at half power for a period of time t4. After time t4, control unit 1400 controls gas transmission unit 1301 to start at full power. Simultaneously, control unit 1400 controls the second heating element 1303 inside the air duct 1302 to start working for a period of time t5. The gas transmitted by gas transmission unit 1301 blows the heat from the second heating element 1303 onto the surface of the bottle in the milk warming component 3000. After time t5, the milk temperature inside the bottle rises to approximately 21-34 degrees Celsius. At this point, control unit 1400 controls the second heating element 1303 to stop working, and control unit 1400 controls gas transmission unit 1301 to continue working at full power for a period of time t6. Once the milk temperature inside the bottle reaches 36-37 degrees Celsius, control unit 1400 controls gas transmission unit 1301 to continue working at full power for a period of time t8. The total milk warming time T2 = t3 + t4 + t5, with the time not exceeding the temperature limit being t8.

[0171] It's important to note that the milk in the bottle is drinkable within the t8 time period. After t8, the milk may become too hot to drink. Therefore, t8 is not a time for warming the milk, but rather a reminder that it's ready to drink. In some cases, the t8 time period can be indicated by an indicator light on the electronic device.

[0172] In the warm air milk warming mode, the overall bottle temperature is approximately 21-34 degrees Celsius, specifically as follows: For glass bottles initially refrigerated, the temperature of the second heating element 1303 after operation t4 is 21-26℃. For glass bottles initially at room temperature, the temperature is 26-28℃. For plastic bottles initially refrigerated, the temperature is 26.5-31℃. For plastic bottles initially at room temperature, the temperature is 26.5-31℃. For silicone bottles initially refrigerated, the temperature is 29.5-33℃. When the baby bottle is made of silicone and is initially at room temperature, the temperature of the second heating element 1303 after working for t4 is 32.5-35℃.

[0173] In the warm air milk warming mode, the temperature of the baby bottle in refrigeration mode is around 4℃, such as 3.5℃, 3.6℃, ​​3.7℃, 3.8℃, 3.9℃, 4℃, 4.1℃, 4.2℃, 4.3℃, etc.

[0174] In the warm air milk warming mode, the temperature of the bottle at room temperature is around 22℃, such as 21℃, 21.5℃, 22℃, 22.5℃, 23℃, etc.

[0175] In the warm air milk warming mode, the control component 1400 controls the first heating component 1200 to not work.

[0176] It should be noted that in both steam milk warming mode and warm air milk warming mode, before the gas transmission component 1301 is turned on, the baffle 1107 is in the first state. When the gas transmission component 1301 is turned on, that is, when the gas transmission component 1301 starts to work, the gas transmitted by the gas transmission component 1301 gradually reaches the position of the baffle 1107 through the air duct 1302. Part of it is transmitted to the air outlet 1102 through the first gap 1108a, while the other part directly acts on the baffle 1107 and drives the baffle 1107 to move. In the initial stage of operation, the gas transmitted by the gas transmission component 1301 at the first power exerts a limited force on the baffle plate 1107, causing the baffle plate 1107 to move slowly and gradually reach the second state. When the baffle plate 1107 reaches the second state, the gas transmission component 1301 operates at the second power. The gas transmitted by other transmission components 1301 at the second power operating state exerts a greater force on the baffle plate 1107, causing the baffle plate 1107 to move and reach the third state. In other alternative embodiments, the gas transmission component 1301 can also always operate at the second power. When the gas transmission component 1301 operates at the second power during the opening phase, the force exerted by the gas transmitted by other transmission components 1301 on the wind deflector 1107 is large and stable, causing an imbalance in the movement of the wind deflector 1107. This results in the wind deflector 1107 reciprocating and producing abnormal noise for a period of time until the gas transmitted by the gas transmission component 1301 can stably act on the wind deflector 1107, bringing the wind deflector 1107 to the third state. Therefore, when the gas transmission component 1301 first operates at the first power and then at the second power, it can drive the wind deflector 1107 to move relatively stably, solving the problem of abnormal noise from the wind deflector 1107.

[0177] In the various embodiments of this application, the gas transmission component 1301 preferentially operates at a first power during the start-up phase, or the initial working phase. Of course, in other cases, the gas transmission component 1301 can also operate at a second power during the start-up phase, or the initial working phase.

[0178] In this embodiment of the application, the control instructions may include steam sterilization and drying instructions.

[0179] In this embodiment, the second working module can be understood as a steam sterilization and drying mode. In this mode, the support assembly 2000 is placed on the base 1100 and above the water tank 1101. The support assembly 2000 can accommodate multiple bottles, nipples, breast pump accessories, and other containers. It should be noted that when the support assembly 2000 is placed on the base 1100, the support assembly 2000 and the first storage cavity 1106 of the base 1100 form a relatively enclosed space for sterilization and drying.

[0180] For example, in the second working mode, the control unit 1400 controls the first heating element 1200 to work for a sixth preset time t6 according to the steam sterilization and drying command; then, the control unit 1400 controls the gas transmission element 1301 and the second heating element 1303 to work simultaneously for a seventh preset time t7.

[0181] Specifically, the steam sterilization and drying mode process is as follows: First, a rated amount of water is injected into the water tank 1101. After the heating unit 1000 is powered on, or in other words, after the heating unit 1000 is powered on, the user can operate the operating component 1600 to select the sterilization and drying function to sterilize the baby bottles in the support assembly 2000. The control component 1400 controls the first heating component 1200 to start working, heating the water in the water tank 1101 until steam is formed. The steam enters the support assembly 2000 for sterilization. After sterilization, i.e., after time period t6, the drying function begins. Control unit 1400 controls the operation of the second heating element 1303 and the gas transmission element 1301. The gas transmitted by the gas transmission element 1301 passes through the second heating element 1303 and is blown out from the air outlet 1103, forming continuous hot air drying. The hot air is delivered to the inside of the bottle body through the channel 2104 of the bottle stand 2103 to dry the bottle body. The hot air also acts on other containers within the support assembly 2000 for drying. This forms a complete fully automatic hot air drying system.

[0182] In steam sterilization and drying mode, the control unit 1400 can control the gas transmission unit 1301 to operate in either the first or second sub-operating mode. For example, the control unit 1400 might first control the gas transmission unit 1301 to operate at a first power for a period of time, and then control it to operate at a second power for a period of time. This prevents the baffle plate 1107 from making abnormal noises due to the gas transmission unit 1301 maintaining a single power level throughout its operation. It is understandable that, under other circumstances, the control unit 1400 can also control the gas transmission unit 1301 to maintain the same power level continuously.

[0183] like Figure 2 As shown, the electronic device 100 also includes a detection component 1500, which is electrically connected to the control component 1400. The detection component 1500 is disposed on the base 1100 and is used to monitor the ambient temperature of the environment where the first container of milk to be warmed is placed on the base 1100. For example, the detection component 1500 may be a temperature sensor.

[0184] For example, when the ambient temperature is not higher than the first temperature but higher than the second temperature, the control unit 1400 controls the gas transmission unit 1301 to operate, and the control unit 1400 controls the second heating unit 1303 to not operate.

[0185] For example, when the ambient temperature is equal to the second temperature, the control unit 1400 controls the gas transmission unit 1301 and the second heating unit 1303 to not work.

[0186] For example, when the ambient temperature is lower than the second temperature but not lower than the third temperature, the control unit 1400 controls the gas transmission unit 1301 to operate and controls the second heating unit 1303 to operate.

[0187] For example, when the ambient temperature is lower than the third temperature, the control unit 1400 continuously controls the gas transmission unit 1301 to work, and at the same time controls the second heating unit 1303 to work.

[0188] The first, second, and third temperatures decrease sequentially. For example, the first temperature is greater than 70°C; the second temperature is greater than 40°C and less than or equal to 70°C; and the third temperature is greater than 38°C and less than or equal to 40°C.

[0189] In this embodiment, the control unit 1400 can control the operation of the gas transmission component 1301 in either a first sub-operating mode or a second sub-operating mode. For example, the control unit 1400 may first control the gas transmission component 1301 to operate at a first power for a period of time, and then control it to operate at a second power for a period of time. This prevents the wind deflector 1107 from making abnormal noises due to the gas transmission component 1301 maintaining a single power level throughout its operation. It is understood that in other situations, the control unit 1400 may also control the gas transmission component 1301 to maintain the same power level continuously.

[0190] Based on the embodiments of this application, the electronic device can realize the functions of warming and sterilizing milk. This application also provides a method for enabling the electronic device to achieve warming and sterilizing milk. The electronic device is the same as the above-described electronic device 100, and will not be described again here. The method includes:

[0191] S100, the control unit receives the control command. The control command can be found in the above content and will not be repeated here.

[0192] If the control unit determines that the control command is a milk warming command, it will proceed to S300; if the control unit determines that the control command is a sterilization and drying command, it will proceed to S600.

[0193] If the control unit determines that the milk warming command is a steam milk warming command, it will proceed to S400; if the control unit determines that the milk warming command is a warm air milk warming command, it will proceed to S500.

[0194] S400: The control unit controls the operating status of the first heating element, the second heating element, and the gas transmission element in the steam milk warming mode according to the steam milk warming command. The operating status of the first heating element, the second heating element, and the gas transmission element in the steam milk warming mode can be referred to the above content and will not be repeated here.

[0195] S500: The control unit controls the operating status of the first heating element, the second heating element, and the gas transmission element in the warm air milk warming mode according to the warm air milk warming command. The operating status of the first heating element, the second heating element, and the gas transmission element in the warm air milk warming mode can be referred to the above content and will not be repeated here.

[0196] S600: The control unit controls the operating status of the first heating element, the second heating element, and the gas transmission element in the disinfection and drying mode according to the disinfection and drying command. The operating status of the first heating element, the second heating element, and the gas transmission element in the disinfection and drying mode can be referred to the above content and will not be repeated here.

[0197] The first heating element, the second heating element, and the gas transmission element operate differently in the steam milk warming mode, the warm air milk warming mode, and the sterilization and drying mode.

[0198] The S400 includes:

[0199] S410, The control unit controls the first heating element to work for a first preset time t1 according to the steam milk warming command.

[0200] S420, The control unit controls the gas transmission unit to operate for a second preset time t2.

[0201] The second preset duration t2 includes the first sub-preset duration t21, the second sub-preset duration t22, and the third sub-preset duration t23.

[0202] S420 includes:

[0203] S421, The control unit controls the gas transmission unit to operate at a first power for a first preset duration t21;

[0204] S422, The control unit controls the gas transmission unit to operate at the second power for a second preset duration t22;

[0205] S423, The control unit controls the gas transmission unit to operate at the second power for a third preset duration t23;

[0206] The first power is less than the second power.

[0207] It should be noted that S420 may also include only S421 and S422, but exclude S423.

[0208] The S500 includes:

[0209] S510, The control unit controls the gas transmission unit to operate at the first power for a third preset duration t3 according to the warm air and milk warming command;

[0210] S520, the control unit controls the gas transmission unit to operate at the second power for a fourth preset time t4, and simultaneously controls the second heating unit to operate for a fourth preset time t4;

[0211] S530, control the gas transmission component to operate at the second power for a fifth preset duration t5;

[0212] The first power is less than the second power.

[0213] The electronic device and its milk warming and sterilization method provided in the embodiments of this application have been described in detail above. Specific examples have been used to illustrate the principles and implementation methods of the present invention. The description of the above embodiments is only for the purpose of helping to understand the method and core ideas of the present invention. At the same time, for those skilled in the art, there will be changes in the specific implementation methods and application scope based on the ideas of this application. Therefore, the content of this specification should not be construed as a limitation of this application.

Claims

1. An electronic device, characterized in that, include: The base is equipped with a water tank and is used to place a first container for warming milk or a second container for sterilization. The first container for warming milk and the second container for sterilization can be placed on the base in a switchable manner, and are located above the sink; The first heating element is used to generate steam from the water in the water tank. Gas transmission components used for transmitting gas; The second heating element is used to heat the gas transmitted by the gas transmission element; The control component is electrically connected to the first heating component, the second heating component, and the gas transmission component. The control unit can control the first heating element, the second heating element, and the gas transmission element to be in a first working mode according to the first container of milk to be warmed placed on the base; The control unit can control the first heating element, the second heating element, and the gas transmission element to be in a second working mode according to the second container to be disinfected placed on the base. Among them, the first heating component, the second heating component, and the gas transmission component have different working states in the first working mode and the second working mode.

2. The electronic device according to claim 1, characterized in that, The first working mode includes the first sub-working mode; In the first sub-working mode, the control unit controls the first heating element to work for a first preset time t1 according to the steam milk warming command; after, The control unit controls the gas transmission unit to operate for a second preset time t2.

3. The electronic device according to claim 2, characterized in that, The second preset duration t2 includes the first sub-preset duration t21, the second sub-preset duration t22, and the third sub-preset duration t23; The control unit controls the gas transmission unit to operate at a first power for a first preset time t21; thereafter... The control unit controls the gas transmission unit to operate at a second power for a second preset time t22; afterwards, The control unit controls the gas transmission unit to operate at the second power for a third preset duration t23; The first power is less than the second power.

4. The electronic device according to claim 1, characterized in that, The first working mode includes the second sub-working mode; In the second sub-operating mode, the control unit controls the gas transmission unit to operate at the first power for a third preset time t3 according to the warm air / milk warming command; afterwards... The control unit controls the gas transmission component to operate at the second power for a fourth preset time t4, and simultaneously controls the second heating component to operate for the fourth preset time t4; afterwards... The control unit controls the gas transmission unit to operate at the second power for a fifth preset duration t5; The first power is less than the second power.

5. The electronic device according to claim 1, characterized in that, In the second working mode, the control unit controls the first heating element to work for a sixth preset time t6 according to the steam sterilization and drying command; Subsequently, the control unit controls the gas transmission unit and the second heating unit to work simultaneously for a seventh preset time t7.

6. The electronic device according to claim 1, characterized in that, It also includes a detection component that is electrically connected to the control component. The detection component is mounted on the base and is used to monitor the ambient temperature of the environment where the first container of milk to be warmed is placed on the base. When the ambient temperature is not higher than the first temperature but higher than the second temperature, the control unit controls the gas transmission component to work and controls the second heating component to not work. When the ambient temperature is equal to the second temperature, the control component prevents the gas transmission component and the second heating component from working. When the ambient temperature is lower than the second temperature but not lower than the third temperature, the control component controls the gas transmission component to work and controls the second heating component to work. When the ambient temperature is lower than the third temperature, the control unit continuously controls the gas transmission unit to work, and at the same time controls the second heating unit to work. Among them, the first temperature, the second temperature, and the third temperature decrease in that order.

7. The electronic device according to claim 1, characterized in that, It also includes a support assembly and a milk warmer assembly, both of which have a receiving chamber for placing items and are detachably mounted on the base. The support assembly and the milk warmer assembly can be switched on the base, and when the support assembly or the milk warmer assembly is mounted on the base, the receiving chamber of the support assembly or the milk warmer assembly is located above the sink. In the first working mode, the milk warming component is set on the base and located above the water tank; In the second working mode, the support assembly is set on the base and located above the water tank.

8. A method for warming and sterilizing milk in an electronic device, characterized in that, Electronic devices include: The base is provided with a water tank and is used to place a first container for warming milk or a second container for sterilization; the first container for warming milk and the second container for sterilization can be placed on the base in an interchangeable manner and are located above the water tank; The first heating element is used to generate steam from the water in the water tank. Gas transmission components used for transmitting gas; The second heating element is used to heat the gas transmitted by the gas transmission element; The control component is electrically connected to the first heating component, the second heating component, and the gas transmission component. The methods include: S100, The control unit receives the control command; If the control unit determines that the control command is a milk warming command, it will proceed to S300; if the control unit determines that the control command is a sterilization and drying command, it will proceed to S600. S300: If the control unit determines that the milk warming command is a steam milk warming command, it will proceed to S400; if the control unit determines that the milk warming command is a warm air milk warming command, it will proceed to S500. S400: The control unit controls the working status of the first heating element, the second heating element, and the gas transmission element in the steam milk warming mode according to the steam milk warming command. S500: The control unit controls the working status of the first heating element, the second heating element, and the gas transmission element in the warm air milk warming mode according to the warm air milk warming command. S600: The control unit controls the working status of the first heating element, the second heating element, and the gas transmission element in the disinfection and drying mode according to the disinfection and drying command. The first heating element, the second heating element, and the gas transmission element operate differently in the steam milk warming mode, the warm air milk warming mode, and the sterilization and drying mode.

9. The method for warming and sterilizing milk in an electronic device according to claim 8, characterized in that, The S400 includes: S410, The control unit controls the first heating element to work for a first preset time t1 according to the steam milk warming command; S420, The control unit controls the gas transmission unit to operate for a second preset time t2.

10. The method for warming and sterilizing milk in an electronic device according to claim 9, characterized in that, The second preset duration t2 includes the first sub-preset duration t21, the second sub-preset duration t22, and the third sub-preset duration t23; The S420 includes: S421, The control unit controls the gas transmission unit to operate at a first power for a first preset duration t21; S422, The control unit controls the gas transmission unit to operate at the second power for a second preset duration t22; S423, The control unit controls the gas transmission unit to operate at the second power for a third preset duration t23; The first power is less than the second power.

11. The method for warming and sterilizing milk in an electronic device according to claim 8, characterized in that, The S500 includes: S510, The control unit controls the gas transmission unit to operate at the first power for a third preset duration t3 according to the warm air and milk warming command; S520, the control unit controls the gas transmission unit to operate at the second power for a fourth preset time t4, and simultaneously controls the second heating unit to operate for a fourth preset time t4; S530, control the gas transmission component to operate at the second power for a fifth preset duration t5; The first power is less than the second power.