Milk brewing cup and milk brewing machine
By designing an independent milk brewing cup and a matching milk brewing machine, the problem of water splashing into the milk powder chamber in the existing milk brewing machine is solved, and the safe and effective mixing of milk powder during the milk brewing process is achieved.
Patent Information
- Application Number
- CN202421796455.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-26
- Publication Date
- 2025-05-20
- Estimated Expiration
- 2034-07-26
AI Technical Summary
In the existing milk brewer design, water is prone to splashing into the milk powder chamber or water vapor pours in, causing the milk powder to be damp and affecting the safety of storage and use.
A separate milk brewing cup is designed with a drain hole at the bottom and equipped with a stirring assembly and a sealing assembly. The milk brewer is filled with water through a water pump, and communicates with the milk brewing cup with the first diversion pipe to realize the discharge of the milk liquid. At the same time, the agitator drives the stirring assembly to rotate to ensure that the milk powder is fully mixed.
It effectively avoids affecting the storage of milk powder during water injection, ensures that the milk powder is not damp during the milk making process, and improves the safety of the milk powder storage and use.
Smart Images

Figure CN222885302U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the technical field of milk powder dispensers, and particularly to a milk powder cup and a milk powder dispenser. Background Art
[0002] All commercially available milk powder dispensers are internally provided with a milk powder bin and a mixing bin. When making milk powder, the milk powder falls from the milk powder bin into the mixing bin and is pumped with water at an appropriate temperature for stirring and mixing. In this case, water is easily splashed into the milk powder bin or water vapor easily floods into the milk powder bin, resulting in the milk powder getting damp, which affects the storage and use safety of the milk powder. Summary of the Utility Model
[0003] To solve at least one of the above technical problems, this application provides a milk powder cup and a milk powder dispenser, and the technical solutions adopted are as follows.
[0004] A drain hole is provided at the bottom of the milk powder cup provided in this application. The milk powder cup includes a stirring assembly and a sealing assembly. The stirring assembly is disposed in the milk powder cup. The stirring assembly includes at least one stirring blade; the sealing assembly includes a sealing structure. The sealing structure is disposed at the drain hole, and the sealing structure is movable to move away from or close to the drain hole, thereby opening or closing the drain hole.
[0005] In some embodiments of this application, the stirring assembly is disposed at the bottom of the milk powder cup through a rotating shaft, and the rotating shaft of the stirring assembly is connected to the bottom of the milk powder cup.
[0006] In some embodiments of this application, the stirring assembly is disposed at the bottom of the milk powder cup through a mounting bracket. The stirring assembly is disposed in the mounting bracket, and the mounting bracket is detachably disposed at the bottom of the milk powder cup.
[0007] In some embodiments of this application, the mounting bracket has a first support frame and a second support frame for disposing the stirring assembly. The second support frame is located above the first support frame. The stirring assembly is disposed on the first support frame and is connected to the rotating shaft of the second support frame.
[0008] In some embodiments of this application, the sealing assembly includes a sealing ejector rod. The sealing structure is disposed on the sealing ejector rod. The sealing ejector rod is disposed at the drain hole. The sealing ejector rod moves upward to move the sealing structure away from the drain hole or the sealing ejector rod moves downward to move the sealing structure close to the drain hole.
[0009] In some embodiments of this application, the sealing assembly includes an elastic member. The elastic member is sleeved on the outer sidewall of the sealing ejector rod. The elastic member applies a downward thrust to the sealing ejector rod to seal the drain hole with the sealing structure.
[0010] The milk making machine provided in the present application is provided with a containing chamber, in which the milk making cup is placed, and the milk making machine comprises a water pump and a first flow guide pipe, which can be connected with the milk making cup so that the mixed milk in the milk making cup can be discharged through the first flow guide pipe; the milk making machine also comprises a stirring drive, which drives the stirring component to rotate.
[0011] In some embodiments of the present application, a top support is provided on the lower side of the accommodating chamber, and the top support applies a thrust to the sealing assembly to move the sealing structure, thereby opening the drainage hole and connecting the first guide pipe to the drainage hole.
[0012] In certain embodiments of the present application, the stirring driver drives the stirring component to rotate by magnetic force.
[0013] In some embodiments of the present application, the milk making machine includes a first interception component, the first interception component includes a magnetic generator and a first interception structure, the first interception structure is arranged in the first guide tube and is used to block the channel of the first guide tube, the magnetic generator is arranged outside the first guide tube, and the magnetic generator can magnetically attract the first interception structure to move the first interception structure and make the first guide tube conductive.
[0014] In certain embodiments of the present application, the first flow guide tube has a large-diameter channel and a small-diameter channel, a shoulder is formed between the large-diameter channel and the small-diameter channel, the first flow-cutting structure is set as a sphere, and the diameter of the first flow-cutting structure is larger than the diameter of the small-diameter channel and smaller than the diameter of the large-diameter channel, the first flow-cutting structure is set in the large-diameter channel, and under the magnetic attraction of the magnetic force generator, the first flow-cutting structure can move at the shoulder to a position deviating from the port of the small-diameter channel to make the first flow guide tube conductive.
[0015] In some embodiments of the present application, the magnetic force generator includes an electromagnetic device; or the magnetic force generator includes a first driver and a magnetic attraction member, the first driver is connected to the magnetic attraction member, the first driver drives the magnetic attraction member to approach the outer surface of the first guide tube, and the magnetic attraction member magnetically attracts the first intercepting structure.
[0016] In some embodiments of the present application, the first driver drives the magnetic member to move linearly so that the magnetic member approaches or moves away from the outer surface of the first flow guide tube; or, the rotating shaft of the first driver is connected to the magnetic member, and driven by the rotating shaft of the first driver, the magnetic member moves around the rotating shaft so that the magnetic member approaches or moves away from the outer surface of the first flow guide tube.
[0017] In some embodiments of the present application, the milk powder dispenser includes a second throttling assembly. The second throttling assembly includes a second throttling structure and a second driver. The second throttling structure is disposed in the first diversion pipe, and the second driver is disposed outside the first diversion pipe. The rotating shaft of the second driver is connected to the second throttling structure. Driven by the second driver, the second throttling structure rotates in the first diversion pipe with the central axis of the rotating shaft as the rotation axis, so that the second throttling structure blocks or conducts the first diversion pipe.
[0018] In some embodiments of the present application, the second throttling structure is arranged as a sphere, and the second throttling structure has a through hole. The second throttling structure takes the radial direction of the first diversion pipe as the rotation axis, and the second driver drives the second throttling structure to rotate so that the through hole of the second throttling structure communicates with the channel of the first diversion pipe; alternatively, the second throttling structure is arranged as a plate body, and the second throttling structure takes the radial direction of the first diversion pipe as the rotation axis.
[0019] The embodiments of the present application at least have the following beneficial effects: The present application designs an independent milk powder cup. The user puts milk powder into the milk powder cup, then puts the milk powder cup into the accommodating chamber of the milk powder dispenser, and then uses a water pump to inject water into the milk powder cup, thereby avoiding affecting the storage of milk powder during the water injection process. The present application can be widely applied to the technical field of milk powder dispensers. Description of the Drawings
[0020] The aspects and advantages described and / or appended in the embodiments of the present application will become obvious and easy to understand in conjunction with the following drawings. It should be noted that the embodiments shown in the following drawings are exemplary and are only used to explain the present application, and should not be construed as a limitation to the present application.
[0021] Figure 1 It is a structural diagram of a milk powder dispenser.
[0022] Figure 2 It is a cross-sectional view of a milk powder dispenser.
[0023] Figure 3 It is a cross-sectional view of a milk powder cup in some embodiments of the present application.
[0024] Figure 4 It is a structural diagram of a sealing assembly.
[0025] Figure 5 It is a cross-sectional view of a milk powder cup in some other embodiments of the present application.
[0026] Figure 6 It is a structural diagram of a mounting bracket.
[0027] Figure 7 It is a structural diagram of a stirring assembly and a magnetic element.
[0028] Figure 8 Structural diagram of the stirring driver and the milk mixing cup.
[0029] Figure 9 Structural diagram of the first throttling component in some embodiments of the present application.
[0030] Figure 10 Structural diagram of the first throttling component in some embodiments of the present application.
[0031] Figure 11 Structural diagram of the second throttling component in some other embodiments of the present application.
[0032] Figure 12 Is Figure 11 Partial view of area A of the structure in
[0033] Figure 13 Structural diagram of the second throttling component disconnecting the first diversion pipe.
[0034] Reference numerals: 1000, milk mixing cup; 1100, stirring component; 1101, stirring blade; 1102, central turntable; 1200, mounting bracket; 1201, first support frame; 1202, second support frame; 1300, sealing component; 1301, sealing ejector rod; 1302, sealing structure; 1303, elastic member; 1400, first cover body; 2000, milk machine; 2100, accommodating chamber; 2200, support plate; 2300, stirring driver; 2401, top support member; 2402, solenoid valve; 2501, water tank; 2502, second cover body; 2601, first throttling structure; 2602, first driver; 2603, magnetic attracting member; 2701, second throttling structure; 2702, second driver. Detailed implementation manners
[0035] The following will combine the attached Figure 1 To the attached Figure 13 The embodiments of the present application will be described in detail. Examples of the embodiments are shown in the drawings, where the same or similar reference numerals represent the same or similar elements or elements with the same or similar functions throughout. The embodiments described below by referring to the drawings are exemplary and are only used to explain the present application and should not be construed as a limitation to the present application.
[0036] In the description of the present application, it should be understood that if terms such as "center", "middle part", "longitudinal direction", "transverse direction", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "axial direction", "radial direction", "circumferential direction", etc. are used to indicate the orientation or positional relationship, it is based on the orientation or positional relationship shown in the drawings. This is only for the convenience of describing the present application and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation. Therefore, it should not be construed as a limitation to the present application. The features defined with "first" and "second" are used to distinguish the feature names and do not have special meanings. In addition, the features defined with "first" and "second" may explicitly or implicitly include one or more of such features. In the description of the present application, unless otherwise specified, the meaning of "a plurality of" is two or more.
[0037] In the description of the present application, it should be noted that unless otherwise clearly specified and defined, the terms "install", "connect", and "couple" should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be directly connected or indirectly connected through an intermediate medium, and it can be the communication inside two elements. For those of ordinary skill in the art, the specific meanings of the above terms in the present application can be understood according to specific circumstances.
[0038] The present application relates to a milk mixing cup 1000, and a user puts milk powder into the milk mixing cup 1000.
[0039] The present application relates to a milk dispenser 2000. The milk dispenser 2000 has a housing. Figure 1 , and the milk dispenser 2000 is provided with a receiving chamber 2100, and the milk mixing cup 1000 is placed in the receiving chamber 2100.
[0040] As an independent structure, the user pre - puts an appropriate amount of milk powder into the milk mixing cup 1000. After the milk mixing cup 1000 is placed in the receiving chamber 2100, and after the milk powder is brewed and the milk liquid is discharged into the baby bottle, the user can take out the milk mixing cup 1000 and clean it.
[0041] The milk dispenser 2000 includes a water pump that injects water into the milk mixing cup 1000. Further, the milk dispenser 2000 includes a first diversion pipe disposed at the bottom of the receiving chamber 2100. A liquid discharge hole is provided at the bottom of the milk mixing cup 1000, and one end of the first diversion pipe extends to the liquid discharge hole, and the first diversion pipe can communicate with the milk mixing cup 1000 so that the mixed milk liquid in the milk mixing cup 1000 can be discharged through the first diversion pipe.
[0042] It can be understood that the milk powder mixer 2000 includes a second diversion pipe, which is connected to a water pump. One end of the second diversion pipe extends into the accommodating chamber 2100, and the second diversion pipe communicates with the milk powder mixing cup 1000. The water pump pumps clear water into the milk powder mixing cup 1000 through the second diversion pipe.
[0043] The milk powder mixer 2000 includes a tray 2200. The milk bottle is placed on the tray 2200. The other end of the first diversion pipe is connected with a liquid guide nozzle, and the liquid guide nozzle is located above the milk bottle so that the milk liquid can enter the milk bottle.
[0044] The milk powder mixing cup 1000 includes a stirring assembly 1100. The stirring assembly 1100 is located at the bottom of the milk powder mixing cup 1000 and in the middle of the bottom of the milk powder mixing cup 1000. The stirring assembly 1100 stirs and mixes the milk powder and clear water to obtain milk liquid. Specifically, the stirring assembly 1100 includes at least one stirring blade 1101. The stirring assembly 1100 rotates to make the stirring blade 1101 agitate the milk liquid. The stirring assembly 1100 includes a central turntable 1102, and the stirring blade 1101 is arranged at the edge of the central turntable 1102.
[0045] It can be understood that the milk powder mixer 2000 includes a stirring driver 2300. The stirring driver 2300 is located on the lower side of the milk powder mixing cup 1000. The stirring driver 2300 provides power for the stirring assembly 1100 to drive the stirring assembly 1100 to rotate. Specifically, the stirring driver 2300 includes a motor, and the motor is set as a DC motor.
[0046] Furthermore, the stirring driver 2300 drives the stirring assembly 1100 to rotate by magnetic force. Referring to the attached Figure 7 figure, the stirring assembly 1100 includes at least a pair of magnetic elements. The magnetic elements are arranged on the central turntable 1102. The magnetic elements adopt axially magnetized magnets. The polar positions of each pair of magnetic elements are opposite. The N pole of one magnetic element faces up and the S pole faces down, and the N pole of the other magnetic element faces down and the S pole faces up. The rotating shaft of the motor of the stirring driver 2300 is connected with a rotating piece. The rotating piece is provided with at least a pair of magnetic elements. The polar positions of each pair of magnetic elements are opposite. The N pole of one magnetic element faces up and the S pole faces down, and the N pole of the other magnetic element faces down and the S pole faces up. When the stirring driver 2300 drives the rotating piece to rotate, the magnetic interaction between the rotating piece and the central turntable 1102 can drive the stirring assembly 1100 to rotate, so that the stirring blade 1101 agitates and mixes the milk liquid.
[0047] In some examples, referring to the attached Figure 3, the stirring assembly 1100 is arranged at the bottom of the milk mixing cup 1000 through a rotating shaft, and the rotating shaft of the stirring assembly 1100 is connected to the bottom of the milk mixing cup 1000. Specifically, the rotating shaft is fixedly connected to the bottom wall of the milk mixing cup 1000, and the central turntable 1102 is rotatably sleeved on the outer side wall of the rotating shaft. Alternatively, the rotating shaft is rotatably connected to the bottom wall of the milk mixing cup 1000, and the central turntable 1102 is fixedly connected to the rotating shaft.
[0048] Regarding the implementation manner of the stirring driver 2300 driving the stirring assembly 1100 to rotate, it can be at least alternatively designed as follows: the rotating shaft of the stirring assembly 1100 is rotatably arranged at the bottom of the milk mixing cup 1000, and the lower end of the rotating shaft is exposed on the lower side of the milk mixing cup 1000. When the milk mixing cup 1000 is placed in the accommodating chamber 2100, the rotating shaft of the motor of the stirring driver 2300 is docked with the rotating shaft of the stirring assembly 1100, and then the stirring driver 2300 drives the stirring assembly 1100 to rotate.
[0049] Regarding the setting of the stirring assembly 1100 in the milk mixing cup 1000, there are at least the following alternative examples.
[0050] In some alternative examples, in combination with the attached Figure 5 , the stirring assembly 1100 is arranged at the bottom of the milk mixing cup 1000 through the mounting bracket 1200. The stirring assembly 1100 is arranged in the mounting bracket 1200, and the mounting bracket 1200 is detachably arranged at the bottom of the milk mixing cup 1000. Specifically, the mounting bracket 1200 has a rotating shaft for mounting the stirring assembly 1100, and the stirring assembly 1100 is arranged at the lower end of the rotating shaft. The user fixes the mounting bracket 1200 provided with the stirring assembly 1100 to the bottom of the milk mixing cup 1000. And the mounting bracket 1200 is provided with a handle to facilitate the user to pick up the mounting bracket 1200. In this case, the user can easily take out the stirring assembly 1100 and the mounting bracket 1200 from the milk mixing cup 1000 for cleaning.
[0051] Furthermore, a sunken accommodating area is arranged at the bottom of the milk mixing cup 1000, and the mounting bracket 1200 is placed in the accommodating area. The accommodating area is set as a circular area, and the side wall of the accommodating area can hold the mounting bracket 1200 to fix the mounting bracket 1200 to the bottom of the milk mixing cup 1000.
[0052] It should be noted that, in order to make the stirring assembly 1100 stir the milk liquid stably, in combination with the attached Figure 6, the mounting frame 1200 has a first support frame 1201 for setting the stirring assembly 1100. The lower side of the central turntable 1102 of the stirring assembly 1100 is arranged at the central position of the first support frame 1201. The mounting frame 1200 has a second support frame 1202, and a rotating shaft is provided at the central position of the second support frame 1202. And the second support frame 1202 is located above the first support frame 1201. The stirring assembly 1100 is arranged on the first support frame 1201 and connected to the rotating shaft of the second support frame 1202. The rotating shaft is connected to the upper side of the stirring assembly 1100. The mounting frame 1200 can arrange the stirring assembly 1100 in the mounting frame 1200 by using the rotating shaft of the second support frame 1202 and the first support frame 1201 below.
[0053] The milk powder mixing cup 1000 includes a sealing assembly 1300. The sealing assembly 1300 is arranged at the liquid discharge hole, and the sealing assembly 1300 is used to open or close the liquid discharge hole. Specifically, when the user puts milk powder into the milk powder mixing cup 1000, the sealing assembly 1300 closes the liquid discharge hole. After the user puts the milk powder mixing cup 1000 into the accommodating chamber 2100, the sealing assembly 1300 opens the liquid discharge hole.
[0054] Specifically, in combination with the attached Figure 4 , the sealing assembly 1300 includes a sealing structure 1302. The sealing structure 1302 is arranged at the liquid discharge hole. The sealing structure 1302 can move to open or close the liquid discharge hole. The sealing structure 1302 is greater than or equal to the inner diameter of the liquid discharge hole, and the sealing structure 1302 can cover the inlet of the liquid discharge hole. It can be understood that the sealing structure can move so that the sealing structure moves away from or close to the liquid discharge hole, thereby opening or closing the liquid discharge hole.
[0055] In some examples, in combination with the attached Figure 4 , the sealing assembly 1300 includes a sealing ejector rod 1301. The sealing structure 1302 is arranged on the sealing ejector rod 1301. The sealing ejector rod 1301 penetrates the liquid discharge hole, and an annular channel is formed between the outer side wall of the sealing ejector rod 1301 and the inner side wall of the liquid discharge hole. It can be understood that when the sealing ejector rod 1301 moves upward, the sealing structure 1302 moves away from the liquid discharge hole, and the sealing structure 1302 opens the inlet of the liquid discharge hole, so that the milk liquid can enter the liquid discharge hole. Correspondingly, when the sealing ejector rod 1301 moves downward, the sealing structure 1302 moves close to the liquid discharge hole, and the sealing structure 1302 closes the inlet of the liquid discharge hole.
[0056] Further, in combination with the attached Figure 4The sealing assembly 1300 includes an elastic member 1303, which is configured as a spring. The elastic member 1303 generates elastic potential energy when under pressure. The elastic member 1303 is sleeved on the outer wall of the sealing top rod 1301. The elastic member 1303 applies a downward thrust to the sealing top rod 1301 so that the sealing structure 1302 seals the drainage hole. The sealing top rod 1301 can elastically move upward to open the drainage hole, and at this time, the elastic member 1303 is under pressure.
[0057] In some examples, a top support member 2401 is provided on the lower side of the accommodating chamber 2100, and the top support member 2401 applies a thrust to the sealing assembly to move the sealing structure 1302, thereby opening the drainage hole. Specifically, the position of the top support member 2401 corresponds to the bottom of the sealing top rod 1301, and the top support member 2401 is used to lift the sealing top rod 1301 to move the sealing structure 1302 upward. When the user puts the milk making cup 1000 into the accommodating chamber 2100, the top support member 2401 lifts the sealing top rod 1301 and the sealing structure 1302 to open the drainage hole and the first guide pipe is connected to the drainage hole.
[0058] It should be noted that at the port formed at the bottom of the accommodating chamber 2100, the outer wall of the top support 2401 is connected to the port side wall of the first flow guide tube by at least two extension arms, and the extension arms form a hollow area at the port so that the drainage hole is connected to the first flow guide tube.
[0059] Regarding the activity mode of the sealing structure, there are at least the following alternative examples.
[0060] In some alternative examples, the bottom of the sealing structure has an inclined pressure surface, and the top of the top support has an inclined pressure surface. As the milk-making cup is gradually placed in the accommodating chamber, the pressure surface of the top support presses against the pressure surface of the sealing structure to make the sealing structure move laterally, thereby opening the drainage hole. Furthermore, a transverse groove is provided at the bottom of the milk-making cup, and the sealing structure is movably provided in the groove.
[0061] It can be understood that after the supporting member pushes the sealing structure open, the sealing structure can move in the opposite direction by means of the spring, thereby causing the sealing structure to close the drainage hole.
[0062] It should be noted that the channel of the first flow guide tube can be disconnected to prevent the milk in the milk making cup from flowing out. When the channel of the first flow guide tube is connected and the drainage hole is opened, the milk in the milk making cup flows out from the first flow guide tube.
[0063] As an implementation method, combined with the attached Figure 9 and attached Figure 10 , the milk making machine includes a first intercepting assembly, which is arranged at the lower side of the accommodating chamber, and is used to intercept the passage of the first guide pipe.
[0064] Specifically, the first interception assembly includes a magnetic generator and a first interception structure 2601. The first interception structure 2601 is disposed in the first flow guide tube and is used to block the passage of the first flow guide tube. The magnetic generator is disposed outside the first flow guide tube. It is understandable that the magnetic generator can magnetically attract the first interception structure 2601 to move the first interception structure 2601 and make the first flow guide tube conductive.
[0065] The first flow guide tube has a large diameter channel and a small diameter channel. The large diameter channel is at the upper end of the small diameter channel. A shoulder is formed between the large diameter channel and the small diameter channel. The shoulder is set in a conical shape. Further, the first intercepting structure 2601 is set as a sphere, and the diameter of the first intercepting structure 2601 is larger than the diameter of the small diameter channel and smaller than the diameter of the large diameter channel. The first intercepting structure 2601 is set in the large diameter channel. The shoulder in the first flow guide tube supports the first intercepting structure 2601. The first intercepting structure 2601 closes the port at the upper end of the small diameter channel to disconnect the channel of the first flow guide tube.
[0066] It can be understood that the magnetic force generator can magnetically attract the first flow-cutting structure 2601 through the side wall of the first flow-conducting tube. Specifically, under the magnetic attraction of the magnetic force generator, the first flow-cutting structure 2601 can move at the hole shoulder to a position deviating from the port of the small-diameter channel to make the first flow-conducting tube conductive. Correspondingly, when the magnetic force generator releases the magnetic attraction of the first flow-cutting structure 2601, the first flow-cutting structure 2601 moves along the conical surface of the hole shoulder to a position covering the port of the small-diameter channel.
[0067] In some examples, the magnetic force generator includes a first driver 2602 and a magnetic member 2603, the magnetic member 2603 is configured as a magnet, the first driver 2602 is connected to the magnetic member 2603, and the first driver 2602 includes a motor. The first driver 2602 drives the magnetic member 2603 to approach the outer surface of the first flow guide tube, and the magnetic member 2603 magnetically attracts the first flow-cutting structure 2601. Accordingly, the first driver 2602 drives the magnetic member 2603 away from the outer surface of the first flow guide tube, and the magnetic member 2603 releases the magnetic attraction to the first flow-cutting structure 2601.
[0068] Further, the rotating shaft of the first driver 2602 is connected to the magnetic attraction member 2603. Driven by the rotating shaft of the first driver 2602, the magnetic attraction member 2603 moves around the rotating shaft so that the magnetic attraction member 2603 approaches or moves away from the outer surface of the first diversion pipe. Specifically, the rotating shaft of the first driver 2602 is vertically arranged. When the magnetic attraction member 2603 moves around the rotating shaft to between the rotating shaft and the first diversion pipe, the magnetic attraction member 2603 is in a position close to the outer surface of the first diversion pipe. When the magnetic attraction member 2603 moves around the rotating shaft to the other side of the rotating shaft, the magnetic attraction member 2603 is in a position away from the outer surface of the first diversion pipe. Regarding the implementation manner of the magnetic attraction member 2603 approaching or moving away from the first diversion pipe, there are at least the following alternative manners: The first driver 2602 drives the magnetic attraction member 2603 to move linearly so that the magnetic attraction member 2603 approaches or moves away from the outer surface of the first diversion pipe. Specifically, the motor of the first driver 2602 is set as a linear motor and has a telescopic push rod.
[0069] Regarding the magnetic force generator, at least it can also be alternatively designed as: The magnetic force generator includes an electromagnet, and the electromagnet switches whether the magnetic force generator has magnetic force by energizing and de-energizing.
[0070] Regarding the disconnection or connection of the channel of the first diversion pipe, there are at least the following alternative examples.
[0071] In some alternative examples, the milk powder mixer 2000 includes a solenoid valve 2402. The solenoid valve 2402 is arranged on the lower side of the accommodating chamber 2100. The solenoid valve 2402 is connected to the first diversion pipe, and the solenoid valve 2402 disconnects or conducts the first diversion pipe. It can be understood that when the solenoid valve 2402 conducts the first diversion pipe, the milk liquid can flow out along the first diversion pipe.
[0072] In still other alternative examples, in combination with attached Figure 11 to attached Figure 13 , the milk powder mixer includes a second shut-off assembly. The second shut-off assembly is arranged on the lower side of the accommodating chamber. The second shut-off assembly is used to cut off the channel of the first diversion pipe. Specifically, the second shut-off assembly includes a second shut-off structure 2701 and a second driver 2702. The second shut-off structure 2701 is arranged in the first diversion pipe. The second driver 2702 is arranged outside the first diversion pipe. The second driver 2702 includes a motor. The rotating shaft of the second driver 2702 is connected to the second shut-off structure 2701. Driven by the second driver 2702, the second shut-off structure 2701 rotates in the first diversion pipe with the central axis of the rotating shaft as the rotation axis so that the second shut-off structure 2701 blocks the first diversion pipe or conducts the first diversion pipe.
[0073] Further, the second shut-off structure 2701 is arranged as a sphere, and the second shut-off structure 2701 has a through hole. The second shut-off structure 2701 takes the radial direction of the first diversion pipe as the rotation axis, and the second driver 2702 drives the second shut-off structure 2701 to rotate so that the through hole of the second shut-off structure 2701 communicates with the channel of the first diversion pipe, and the rotation axis of the second shut-off structure 2701 is along the radial direction of the first diversion pipe.
[0074] It can be understood that when the second driver 2702 drives the second shut-off structure 2701 to rotate and the through hole is in the vertical position, both ends of the through hole communicate with the channel of the first diversion pipe respectively, thereby realizing the conduction of the first diversion pipe. When the second shut-off structure 2701 rotates to the position where the through hole is in the horizontal position, the inner side wall of the first diversion pipe closes both ends of the through hole, thereby realizing that the second shut-off structure 2701 disconnects the channel of the first diversion pipe.
[0075] Regarding the second shut-off structure 2701, it can be at least alternatively designed as follows: the second shut-off structure 2701 is arranged as a plate body, and the rotation axis of the second shut-off structure 2701 is along the radial direction of the first diversion pipe. When the second driver 2702 drives the second shut-off structure 2701 to rotate, if the second shut-off structure 2701 rotates to the horizontal position, the second shut-off structure 2701 cuts off the channel of the first diversion pipe. If the second shut-off structure 2701 rotates to the inclined or vertical position, the first diversion pipe is conducted.
[0076] As an implementation manner, the milk mixing cup 1000 is provided with a first cover body 1400, and the first cover body 1400 is buckled on the cup mouth of the milk mixing cup 1000.
[0077] Further, the milk mixer 2000 is provided with a sensor for sensing the first cover body 1400 arranged on the milk mixing cup 1000. Specifically, the sensor includes a Hall element, and the first cover body 1400 is provided with a magnetic element.
[0078] In some examples, the milk mixer 2000 includes a second cover body 2502, the second cover body 2502 is arranged at the open mouth of the accommodating chamber 2100, the second cover body 2502 can be turned over and opened and closed, and the sensor is arranged on the side surface of the second cover body 2502.
[0079] As an implementation manner, the milk mixer 2000 includes a water tank 2501, and a second diversion pipe is connected to the water tank 2501 to supply water to the milk mixing cup 1000. Alternatively, it can also be designed as: the milk mixer 2000 is connected to a water source through a pipeline.
[0080] As an implementation manner, the milk mixer 2000 includes a heating and heat preservation component for heating the brewed milk liquid.
[0081] Specifically, the heating and heat preservation component uses a resistance wire as a heat source.
[0082] Furthermore, the heating and heat preservation assembly can heat the milk liquid in the milk mixing cup 1000, and the heating and heat preservation assembly is arranged on the side wall of the accommodating cavity. Or the heating and heat preservation assembly is arranged on the side wall of the water tank 2501.
[0083] As an implementation manner, the milk dispenser 2000 includes a control panel and an operation panel. The operation panel is arranged on the surface of the milk dispenser 2000, and the operation panel is electrically connected to the control panel. The control panel is connected to the water pump, the electromagnetic valve 2402, and the sensor through wires. The user can start or stop the milk dispenser 2000 through the operation panel.
[0084] Combined with the above descriptions of the milk dispenser 2000 and the milk mixing cup 1000, the following is an exemplary description of the process of the milk dispenser 2000 brewing milk powder.
[0085] Considering that milk powder or milk liquid may remain on the inner side wall of the milk mixing cup 1000 or the inner side wall of the pipeline, the milk dispenser 2000 is designed to inject water into the milk mixing cup 1000 twice in this application.
[0086] During the brewing process, the water pump pumps a set amount of water A ml into the milk mixing cup 1000 for the first time. The milk powder is dissolved and enters the milk bottle through the first diversion pipe. The water pump pumps a set amount of water B ml into the milk mixing cup 1000 for the second time. The milk liquid enters the milk bottle through the first diversion pipe.
[0087] It can be understood that after the water pump injects water into the milk mixing cup 1000 for the first time, the stirring assembly 1100 starts to rotate, and the clear water and the milk powder are stirred and mixed. After this part of the milk liquid is discharged from the milk mixing cup 1000, the water pump injects water into the milk mixing cup 1000 for the second time, and the stirring assembly 1100 starts to rotate. The clear water injected for the second time can clean the inner side wall of the milk mixing cup 1000 and the inner side wall of the pipeline during the stirring and discharging processes to wash away the residual liquid.
[0088] It should be noted that considering that the milk powder needs to be fully dissolved, the A ml of clear water injected for the first time is more than the B ml of clear water injected for the second time, and the clear water injected for the first time is sufficient to fully dissolve the milk powder.
[0089] In the description of this specification, if there are descriptions of reference terms such as "an embodiment", "some examples", "some embodiments", "schematic embodiments", "examples", "specific examples", or "some examples", it means that the specific features, structures, materials, or characteristics described in combination with the embodiment or example are included in at least one embodiment or example of this application. In this specification, the schematic expressions of the above terms do not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials, or characteristics described can be combined in a suitable manner in any one or more embodiments or examples.
[0090] The embodiments of the present application have been described in detail in conjunction with the accompanying drawings. However, the present application is not limited to the above embodiments, and various changes can be made without departing from the gist of the present application within the scope of knowledge possessed by those of ordinary skill in the art.
[0091] In the description of the present application, if a patent name appears with a comma (,), it indicates a "and" relationship rather than an "or" relationship. For example, if the patent name is "a kind of A, B", it means that the content claimed by the present application is: the technical solution with the theme name A and the technical solution with the theme name B.
Claims
1. A milk making cup, characterized in that: The bottom of the milk-making cup is provided with a drainage hole, and the milk-making cup comprises A stirring component, the stirring component is arranged in the milk making cup, and the stirring component comprises at least one stirring blade; The sealing component comprises a sealing structure, wherein the sealing structure is arranged at the drainage hole, and the sealing structure can be moved so as to move the sealing structure away from or close to the drainage hole, thereby opening or closing the drainage hole.
2. The milk making cup according to claim 1, characterized in that: The stirring component is arranged at the bottom of the milk making cup through a rotating shaft, and the rotating shaft of the stirring component is connected to the bottom of the milk making cup; or, the stirring component is arranged at the bottom of the milk making cup through a mounting frame, the stirring component is arranged in the mounting frame, and the mounting frame is detachably arranged at the bottom of the milk making cup.
3. The milk making cup according to claim 2, characterized in that: The mounting frame comprises a first support frame and a second support frame for arranging the stirring assembly, wherein the second support frame is located on the upper side of the first support frame, and the stirring assembly is arranged on the first support frame and connected to the rotating shaft of the second support frame.
4. The milk making cup according to claim 1, characterized in that: The sealing assembly includes a sealing top rod, the sealing structure is arranged on the sealing top rod, and the sealing top rod is arranged at the drainage hole. The sealing top rod moves upward to make the sealing structure away from the drainage hole or the sealing top rod moves downward to make the sealing structure close to the drainage hole.
5. The milk making cup according to claim 4, characterized in that: The sealing assembly comprises an elastic member, the elastic member is sleeved on the outer side wall of the sealing top rod, and the elastic member applies a downward thrust to the sealing top rod so that the sealing structure seals the drainage hole.
6. A milk making machine, characterized in that: The milk making machine is provided with a accommodating chamber, and the milk making cup as described in any one of claims 1 to 5 is placed in the accommodating chamber. The milk making machine includes a water pump and a first flow guide pipe, and the first flow guide pipe can be connected to the milk making cup so that the mixed milk in the milk making cup can be discharged through the first flow guide pipe; the milk making machine also includes a stirring drive, and the stirring drive drives the stirring component to rotate.
7. The milk making machine according to claim 6, characterized in that: A supporting member is disposed at the lower side of the accommodating chamber, and the supporting member applies a thrust to the sealing assembly to move the sealing structure, thereby opening the drainage hole and connecting the first guide pipe to the drainage hole.
8. The milk making machine according to claim 6, characterized in that: The stirring driver drives the stirring component to rotate by magnetic force.
9. The milk making machine according to any one of claims 6 to 8, characterized in that: The milk making machine includes a first cut-off component, which includes a magnetic generator and a first cut-off structure. The first cut-off structure is arranged in the first flow guide tube and is used to block the channel of the first flow guide tube. The magnetic generator is arranged outside the first flow guide tube. The magnetic generator can magnetically attract the first cut-off structure to move the first cut-off structure and make the first flow guide tube conductive.
10. The milk making machine according to claim 9, characterized in that: The first flow guide tube has a large diameter channel and a small diameter channel therein, a hole shoulder is formed between the large diameter channel and the small diameter channel, the first flow cut-off structure is set as a sphere, and the diameter of the first flow cut-off structure is larger than the diameter of the small diameter channel and smaller than the diameter of the large diameter channel, the first flow cut-off structure is set in the large diameter channel, and under the magnetic attraction of the magnetic generator, the first flow cut-off structure can move at the hole shoulder to a position deviating from the port of the small diameter channel to make the first flow guide tube conductive.
11. The milk making machine according to claim 10, characterized in that: The magnetic generator includes an electromagnet; or the magnetic generator includes a first driver and a magnetic component, the first driver is connected to the magnetic component, the first driver drives the magnetic component to approach the outer surface of the first flow guide pipe, and the magnetic component magnetically attracts the first intercepting structure.
12. The milk making machine according to claim 11, characterized in that: The first driver drives the magnetic component to move linearly so that the magnetic component is close to or away from the outer surface of the first flow guide tube; or, the rotating shaft of the first driver is connected to the magnetic component, and driven by the rotating shaft of the first driver, the magnetic component moves around the rotating shaft so that the magnetic component is close to or away from the outer surface of the first flow guide tube.
13. The milk making machine according to any one of claims 6 to 8, characterized in that: The milk making machine includes a second cut-off component, which includes a second cut-off structure and a second driver. The second cut-off structure is arranged in the first flow guide tube, and the second driver is arranged outside the first flow guide tube. The rotating shaft of the second driver is connected to the second cut-off structure. Under the drive of the second driver, the second cut-off structure rotates in the first flow guide tube with the central axis of the rotating shaft as the rotation axis, so that the second cut-off structure blocks the first flow guide tube or conducts the first flow guide tube.
14. The milk making machine according to claim 13, characterized in that: The second cut-off structure is configured as a sphere, and the second cut-off structure has a through hole, the second cut-off structure uses the radial direction of the first guide tube as the rotation axis, and the second driver drives the second cut-off structure to rotate so that the through hole of the second cut-off structure is connected with the channel of the first guide tube; or, the second cut-off structure is configured as a plate, and the second cut-off structure uses the radial direction of the first guide tube as the rotation axis.