Milk maker
Patent Information
- Application Number
- CN202522140807.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-09
- Publication Date
- 2026-09-15
- Estimated Expiration
- 2035-10-09
AI Technical Summary
由于该台面与出水口之间的距离固定,当使用瓶身较矮的奶瓶时,瓶口距离出水口较远,导致热水流入奶瓶时易发生溅洒现象,部分热水未能顺利注入瓶内,不仅造成使用不便,也影响了用户体验
[0031] The formula maker of this utility model has a first support component and a second support component on the body at different heights from the liquid outlet, wherein the second support component can switch between an unfolded state and a retracted state. When using a taller first bottle to prepare formula, the second support component can be rotated to fit against the side of the machine, creating space above the first support component. This ensures the first support component can support the taller bottle and aligns the bottle opening with the dispensing spout at a suitable distance, allowing the liquid to flow steadily into the first bottle and preventing splashing. When using a shorter second bottle, the second support component is rotated to be directly below the dispensing spout, ensuring it supports the second bottle and aligns the bottle opening with the dispensing spout. This effectively raises the height of the second bottle, ensuring a suitable distance between the bottle opening and the dispensing spout, and further ensuring a stable flow of liquid into the second bottle, preventing splashing caused by an excessive distance between the bottle opening and the dispensing spout. This design accommodates bottles of different heights, offering greater flexibility and convenience while effectively preventing splashing and improving the user experience.
Smart Images

Figure CN224747842U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of household appliance technology, and in particular to a formula maker. Background Technology
[0002] In modern childcare, infant feeding demands higher precision in water temperature control and ease of operation. As a popular maternal and infant product, bottle warmers can maintain a stable water temperature within a suitable range for infants, allowing for instant preparation and drinking. This effectively avoids the problems of long cooling times and difficulty in accurately controlling water temperature associated with traditional brewing methods, providing significant convenience for daily feeding.
[0003] Chinese utility model patent CN223220314U discloses a formula maker base and the formula maker thereof, which includes: a base with a top surface and a heating plate in the middle area of the top surface for receiving and heating a kettle; a plurality of protrusions protruding upward from the top surface and surrounding the outer periphery of the heating plate; a first sensor on the upper end surface of the protrusions to monitor the water temperature in the kettle; and a water outlet connected to one side of the base, with a water outlet at the upper end of the water outlet adapted to communicate with the kettle so that liquid in the kettle flows out from the water outlet.
[0004] Although the aforementioned bottle warmer has an automatic water dispensing function, in actual use, the bottle is usually placed on a platform directly below the water outlet. Since the distance between this platform and the outlet is fixed, when using shorter bottles, the bottle opening is far from the outlet, causing hot water to easily splash as it flows into the bottle. Some hot water fails to enter the bottle properly, resulting in inconvenience and a negative user experience. Utility Model Content
[0005] In order to overcome the shortcomings and deficiencies of the existing technology, this utility model provides a formula maker.
[0006] This utility model is achieved through the following technical solution:
[0007] Formula maker, including:
[0008] The body has a liquid outlet;
[0009] The kettle body is mounted on the machine body;
[0010] A conveying component is provided on the machine body, the conveying component is connected to the pot body and the liquid outlet, and the conveying component is used to convey the liquid in the pot body to the liquid outlet;
[0011] A first supporting component, disposed on the machine body, is located below the liquid outlet. The first supporting component supports the first baby bottle and aligns the bottle neck with the liquid outlet.
[0012] A second support component is rotatably mounted on the body and located between the liquid outlet and the first support component. The second support component has an unfolded state and a retracted state, and can rotate to switch between the unfolded and retracted states. In the unfolded state, the second support component can support the second bottle and align the bottle mouth of the second bottle with the liquid outlet, and the height of the second bottle is less than the height of the first bottle. In the retracted state, the second support component is close to the side of the body to free up space above the first support component.
[0013] The formula maker of this utility model has a first support component and a second support component on the body at different heights from the liquid outlet, wherein the second support component can switch between an unfolded state and a retracted state. When using a taller first bottle to prepare formula, the second support component can be rotated to fit against the side of the machine, creating space above the first support component. This ensures the first support component can support the taller bottle and aligns the bottle opening with the dispensing spout at a suitable distance, allowing the liquid to flow steadily into the first bottle and preventing splashing. When using a shorter second bottle, the second support component is rotated to be directly below the dispensing spout, ensuring it supports the second bottle and aligns the bottle opening with the dispensing spout. This effectively raises the height of the second bottle, ensuring a suitable distance between the bottle opening and the dispensing spout, and further ensuring a stable flow of liquid into the second bottle, preventing splashing caused by an excessive distance between the bottle opening and the dispensing spout. This design accommodates bottles of different heights, offering greater flexibility and convenience while effectively preventing splashing and improving the user experience.
[0014] In one embodiment, the first supporting component has a first positioning groove, which is adapted to fit the lower end of the first baby bottle to position the first baby bottle so as to restrict the bottle opening of the first baby bottle to be aligned with the liquid outlet, thereby allowing liquid to be stably injected into the first baby bottle.
[0015] The second supporting component has a second positioning groove, which is adapted to fit the lower end of the second bottle to position the second bottle so as to restrict the bottle opening to be aligned with the liquid outlet, thereby allowing liquid to be stably injected into the second bottle.
[0016] In one embodiment, the formula maker further includes:
[0017] A bottle detection component is mounted on the machine body. This component detects whether the first or second support component is holding a bottle. When the detection component detects a bottle, the conveying component is activated. Specifically, when the detection component detects a bottle on the first or second support component, the circuit board of the formula maker controls the conveying component to open, allowing it to automatically dispense liquid from the container to the outlet, eliminating the need for manual operation and improving ease of use.
[0018] In one embodiment, the bottle detection component is located between the second support component and the liquid outlet;
[0019] The second support component has a clearance hole that extends vertically through it. When the second support component is in the retracted state, the clearance hole aligns with the detection part of the bottle detection component, preventing obstruction of the detection part and enabling the bottle detection component to detect whether the first support component is supporting a first bottle. By positioning the bottle detection component between the second support component and the dispensing port, and cleverly incorporating the vertically extending clearance hole on the second support component, the clearance hole precisely aligns with the detection part of the bottle detection component when the second support component is in the retracted state, preventing structural obstruction. This structural design achieves the detection requirements of both the first and second support components simultaneously with a single bottle detection component. It not only simplifies the structural layout but also ensures unobstructed detection path for the bottle detection component, guaranteeing that even when the second support component is in the retracted state, the bottle detection component can still reliably perform the detection task on the bottle on the first support component, thus improving structural reliability.
[0020] In one embodiment, the formula maker further includes:
[0021] A heating element is provided on the body of the container and is used to heat the liquid inside the container. By integrating the heating element into the body and separating it from the container body, the liquid inside the container can be heated efficiently while avoiding the risk of liquid contamination caused by the heating element coming into contact with the liquid.
[0022] In one embodiment, the machine body has a third positioning groove that fits with the lower end of the kettle body, and the heating element is located on the bottom wall of the third positioning groove. By providing a third positioning groove on the machine body to cooperate with the lower end of the kettle body, the kettle body can be accurately installed and reliably fixed, effectively preventing the kettle body from detaching from the machine body and improving safety during use. At the same time, placing the heating element on the bottom wall of the third positioning groove ensures that the heating element and the bottom of the kettle body maintain a constant optimal heat transfer distance, thereby achieving efficient heating of the liquid inside the kettle.
[0023] In one embodiment, the body further has a plurality of first heat dissipation holes, which are located on the side wall of the third positioning groove and are arranged around the kettle body.
[0024] The formula maker also includes:
[0025] A fan is installed inside the machine body. The fan's air inlet is connected to the outside, and its air outlet is connected to the first heat dissipation hole. The fan is used to guide outside air to the first heat dissipation hole. By setting multiple first heat dissipation holes around the side wall of the third positioning groove, and configuring the fan inside the machine body so that its air outlet is connected to the first heat dissipation holes, this structure uses a surrounding layout to enhance the uniformity of heat dissipation coverage. At the same time, the forced airflow generated by the fan acts directly on the high-temperature area where the pot body and the machine body are joined through the first heat dissipation holes. This not only achieves efficient heat dissipation of the liquid inside the pot, enabling the liquid inside the pot to cool down quickly to the set temperature, but also achieves simultaneous heat dissipation of the heating components. Thus, while achieving rapid temperature adjustment, it ensures the long-term stability and service life of the milk maker.
[0026] In one embodiment, the body further has a plurality of second heat dissipation holes, all of which are connected to the air outlet of the fan. The plurality of second heat dissipation holes are located on one side of the kettle body and are arranged sequentially along the height direction of the kettle body. This structure forms a directional airflow channel distributed along the height direction of the kettle body, thereby significantly increasing the effective heat dissipation area and avoiding local overheating. This allows the forced airflow to cover the entire height area of the kettle body more evenly and efficiently, thereby improving the overall cooling efficiency.
[0027] In one embodiment, the kettle body is detachably mounted on the machine body, allowing the kettle body to be removed from the machine body. This not only facilitates the user to add water to the kettle body separately, avoiding potential liquid splashing, inconvenience, and safety hazards to the machine body's internal circuitry when adding water to the whole machine, but also facilitates the cleaning and maintenance of the kettle body.
[0028] In one embodiment, the machine body is provided with a first connecting pipe, which is connected to the inlet of the conveying component;
[0029] A second connecting pipe is provided on one side of the top of the kettle body. The second connecting pipe is connected to the inner cavity of the kettle body. The second connecting pipe can be detachably inserted into the first connecting pipe and is connected to the first connecting pipe to ensure fluid communication. This structure enables rapid and precise docking and separation between the kettle body and the machine body.
[0030] The beneficial effects of this utility model are:
[0031] The formula maker of this utility model has a first support component and a second support component on the body at different heights from the liquid outlet, wherein the second support component can switch between an unfolded state and a retracted state. When using a taller first bottle to prepare formula, the second support component can be rotated to fit against the side of the machine, creating space above the first support component. This ensures the first support component can support the taller bottle and aligns the bottle opening with the dispensing spout at a suitable distance, allowing the liquid to flow steadily into the first bottle and preventing splashing. When using a shorter second bottle, the second support component is rotated to be directly below the dispensing spout, ensuring it supports the second bottle and aligns the bottle opening with the dispensing spout. This effectively raises the height of the second bottle, ensuring a suitable distance between the bottle opening and the dispensing spout, and further ensuring a stable flow of liquid into the second bottle, preventing splashing caused by an excessive distance between the bottle opening and the dispensing spout. This design accommodates bottles of different heights, offering greater flexibility and convenience while effectively preventing splashing and improving the user experience. Attached Figure Description
[0032] Figure 1 This is a three-dimensional structural diagram of the formula maker of this utility model from a first-person perspective, wherein the second supporting component is in an unfolded state;
[0033] Figure 2 This is a three-dimensional structural diagram of the formula maker of this utility model from a second perspective, wherein the second supporting component is in a retracted state;
[0034] Figure 3 This is a cross-sectional view of the formula maker of this utility model from a third-person perspective, in which the pot body is in a state of being separated from the main body;
[0035] Figure 4 This is a cross-sectional view of the formula maker of this utility model from a fourth perspective.
[0036] Figure 5This is a three-dimensional structural diagram of the formula maker of this utility model from a fifth-person perspective, wherein the pot body is in a state of being separated from the main body;
[0037] Figure 6 This is a three-dimensional structural diagram of the formula maker of this utility model from a sixth-angle perspective, wherein the first support component and the second support component are not shown in the figure.
[0038] Figure Labels
[0039] 1. Body; 11. Liquid outlet; 12. Third positioning groove; 13. First heat dissipation hole; 14. Second heat dissipation hole; 15. First air duct; 16. Second air duct; 17. First connecting pipe; 18. Pushing part; 19. Fourth positioning groove; 2. Pot body; 21. Second connecting pipe; 22. Water stop valve; 23. Positioning boss; 3. Conveying component; 4. First supporting component; 41. First positioning groove; 5. Second supporting component; 51. Second positioning groove; 52. Clearance hole; 6. Bottle detection component; 7. Heating component; 8. Fan; 9. Water level monitoring component; 10. Temperature monitoring component. Detailed Implementation
[0040] The directional terms such as up, down, left, right, front, back, front, back, top, and bottom mentioned or possibly used in this specification are defined relative to the structures shown in the accompanying drawings. They are relative concepts and therefore may vary depending on their location and usage. Therefore, these or other directional terms should not be interpreted as restrictive.
[0041] Please see Figures 1-6 This invention illustrates a preferred embodiment of a formula maker, comprising:
[0042] Body 1, body 1 has a liquid outlet 11;
[0043] Kettle body 2, which is mounted on the machine body 1;
[0044] The conveying component 3 is located on the machine body 1. The conveying component 3 is connected to the pot body 2 and the liquid outlet 11. The conveying component 3 is used to convey the liquid in the pot body 2 to the liquid outlet 11.
[0045] The first supporting component 4 is disposed on the body 1 and is located below the liquid outlet 11. The first supporting component 4 is used to support the first baby bottle and align the bottle opening with the liquid outlet 11; and
[0046] The second support component 5 is rotatably mounted on the body 1. The second support component 5 is located between the liquid outlet 11 and the first support component 4, that is, the second support component 5 is closer to the liquid outlet 11 than the first support component 4. The second support component 5 has an unfolded state and a retracted state. The second support component 5 can rotate to switch between the unfolded state and the retracted state. In the unfolded state, the second support component 5 can support the second bottle and align the bottle mouth of the second bottle with the liquid outlet 11. The height of the second bottle is less than the height of the first bottle. In the retracted state, the second support component 5 is close to the side of the body 1 to make room above the first support component 4 so that the first support component 4 can support the first bottle with a taller body.
[0047] This invention relates to a formula maker, which has a first support component 4 and a second support component 5 on the body 1 at different heights from the liquid outlet 11. The second support component 5 can be switched between an extended state and a retracted state. When using a taller first bottle to prepare formula, the second support component 5 can be rotated to be close to the side of the body 1, thus freeing up space above the first support component 4. This ensures that the first support component 4 can support the taller first bottle and aligns the bottle opening with the liquid outlet 11 at a suitable distance, allowing the liquid flowing from the liquid outlet 11 to be stably injected into the first bottle and preventing splashing. When using a shorter second bottle to prepare formula, the second support component 5 is rotated to be located directly below the liquid outlet 11. The second supporting component 5 can support the second bottle and align the bottle opening with the liquid outlet 11, effectively raising the height of the second bottle and ensuring a suitable distance between the bottle opening and the liquid outlet 11. This allows the liquid flowing from the liquid outlet 11 to be stably injected into the second bottle, preventing liquid splashing due to an excessive distance between the bottle opening and the liquid outlet 11. This structural design can adapt to bottles of different heights, making it more flexible and convenient to use. At the same time, it can effectively prevent liquid splashing and improve the user experience.
[0048] See Figure 1 In one embodiment, the first supporting component 4 has a first positioning groove 41, which is adapted to the lower end of the first baby bottle. That is, the first positioning groove 41 cooperates with the lower end of the first baby bottle to position the first baby bottle so as to restrict the bottle mouth of the first baby bottle to be aligned with the liquid outlet 11, thereby allowing liquid to be stably injected into the first baby bottle.
[0049] The second supporting component 5 has a second positioning groove 51, which is adapted to the lower end of the second bottle. That is, the second positioning groove 51 cooperates with the lower end of the second bottle to position the second bottle so as to restrict the bottle opening of the second bottle to be aligned with the liquid outlet 11, thereby allowing the liquid to be stably injected into the second bottle.
[0050] See Figures 1-2 In one embodiment, the formula maker further includes:
[0051] A bottle detection component 6 is mounted on the body 1. This component detects whether the first support component 4 or the second support component 5 is supporting a bottle. When the detection component 6 detects a bottle on either support component 4 or the second support component 5, the conveying component 3 is activated. Specifically, when the detection component 6 detects a bottle on either support component 4 or the second support component 5, the circuit board of the formula maker controls the conveying component 3 to open, allowing it to automatically dispense liquid from the container 2 to the outlet 11, thus achieving automatic liquid filling without manual operation and improving ease of use.
[0052] See Figures 1-2 In one embodiment, the bottle detection component 6 is located between the second support component 5 and the liquid outlet 11, ensuring that the detection range of the bottle detection component 6 covers the first support component 4 and the second support component 5.
[0053] The second support component 5 has a clearance hole 52, which extends through the second support component 5 from both the top and bottom. When the second support component 5 is in the retracted state, the clearance hole 52 is aligned with the detection part of the bottle detection component 6 to avoid obstructing the detection part of the bottle detection component 6, so that the bottle detection component 6 can detect whether the first support component 4 is supporting the first bottle. By positioning the bottle detection component 6 between the second support component 5 and the liquid outlet 11, and cleverly providing a through-hole 52 on the second support component 5, the through-hole 52 can be precisely aligned with the detection part of the bottle detection component 6 when the second support component 5 is in the retracted state, avoiding structural obstruction. This structural design enables a single bottle detection component 6 to simultaneously cover the detection requirements of the first support component 4 and the second support component 5. This not only simplifies the structural layout but also ensures unobstructed detection path for the bottle detection component 6. It guarantees that even when the second support component 5 is in the retracted state, the bottle detection component 6 can still reliably perform the detection task on the bottle on the first support component 4, thus improving structural reliability.
[0054] Specifically, the bottle detection component 6 can be an infrared detector or a visual detector (such as a camera).
[0055] Specifically, the second supporting component 5 is connected to the body 1 via a pivot shaft to achieve a rotatable connection between the second supporting component 5 and the body 1.
[0056] In one embodiment, the formula maker further includes:
[0057] A limiting mechanism (not shown in the figure) is provided on the body 1. When the second supporting component 5 is in the unfolded state, the limiting mechanism abuts against the bottom of the second supporting component 5 to restrict the second supporting component 5 in the unfolded state and ensure that the second supporting component 5 can stably support the baby bottle.
[0058] Specifically, the aforementioned limiting mechanism can be a limiting protrusion integrally provided on the body 1, or it can be a limiting component separately provided from the body 1.
[0059] In one embodiment, the formula maker further includes:
[0060] A positioning mechanism (not shown in the figure) is used to connect the body 1 and the second supporting component 5 to restrict the second supporting component 5 to a stored state.
[0061] In one embodiment, the positioning mechanism includes a positioning protrusion and a positioning groove, one of which is located on the body 1 and the other is located on the second supporting component 5, and the positioning protrusion and the positioning groove are adapted to each other.
[0062] See Figures 3-4 In one embodiment, the formula maker further includes:
[0063] Heating component 7 is mounted on the body 1 and is used to heat the liquid inside the kettle 2. By integrating the heating component 7 into the body 1 and separating it from the kettle 2, the liquid inside the kettle 2 can be heated efficiently while avoiding the risk of liquid contamination caused by the heating component 7 coming into contact with the liquid.
[0064] See Figures 1-5 In one embodiment, the machine body 1 has a third positioning groove 12, which is adapted to the lower end of the kettle body 2, and the heating element 7 is located on the bottom wall of the third positioning groove 12. By setting the third positioning groove 12 on the machine body 1 to cooperate with the lower end of the kettle body 2, the kettle body 2 can be accurately installed and reliably fixed, effectively preventing the kettle body 2 from detaching from the machine body 1 at will and improving the safety of use; at the same time, by setting the heating element 7 on the bottom wall of the third positioning groove 12, it is ensured that the heating element 7 and the bottom of the kettle body 2 maintain a constant optimal heat transfer distance, thereby achieving efficient heating of the liquid in the kettle body 2.
[0065] See Figures 2-5 In one embodiment, the body 1 also has a plurality of first heat dissipation holes 13, which are located on the side wall of the third positioning groove 12 and are arranged around the body 2.
[0066] The formula maker also includes:
[0067] A fan 8 is located inside the body 1. The air inlet of the fan 8 is connected to the outside, and the air outlet of the fan 8 is connected to the first heat dissipation hole 13. The fan 8 is used to guide outside air to the first heat dissipation hole 13. By setting multiple first heat dissipation holes 13 around the side wall of the third positioning groove 12, and arranging the fan 8 inside the body 1 so that its air outlet is connected to the first heat dissipation hole 13, this structure uses a surrounding layout to enhance the uniformity of heat dissipation coverage. At the same time, the forced airflow generated by the fan 8 acts directly on the high-temperature area where the body 2 and the body 1 are combined through the first heat dissipation hole 13. This not only enables efficient heat dissipation of the liquid in the body 2, allowing the liquid in the body 2 to cool down quickly to the set temperature, but also enables synchronous heat dissipation of the heating element 7. Thus, while achieving rapid temperature adjustment, it ensures the long-term stability and service life of the milk maker.
[0068] See Figure 5 In one embodiment, the body 1 also has a plurality of second heat dissipation holes 14, each of which is connected to the air outlet of the fan 8. The plurality of second heat dissipation holes 14 are located on one side of the kettle body 2 and are arranged sequentially along the height direction of the kettle body 2. This structure forms a directional airflow channel distributed along the height direction of the kettle body 2, thereby significantly increasing the effective heat dissipation area and avoiding local overheating. This allows the forced airflow to cover the entire height area of the kettle body 2 more evenly and efficiently, thereby improving the overall cooling efficiency.
[0069] Specifically, in one embodiment, the bottom of the body 1 has a first air duct 15 and a second air duct 16. The first air duct 15 is connected to the air outlet of the fan 8 and a plurality of first heat dissipation holes 13, and the second air duct 16 is connected to the air outlet of the fan 8 and a plurality of second heat dissipation holes 14.
[0070] See Figure 5 In one embodiment, the formula maker further includes:
[0071] The water level monitoring component 9 is located on the side wall of the third positioning groove 12. The water level monitoring component 9 is used to monitor the minimum water level of the kettle body 2. The water level monitoring component 9 is electrically connected to the circuit board inside the body 1. The circuit board is used to issue an alarm signal based on the feedback information from the water level monitoring component 9. That is, when the water level monitoring component 9 detects that the water level of the kettle body 2 has reached the set minimum water level, the circuit board issues an alarm signal to remind the user to add water in time.
[0072] See Figure 5 In one embodiment, the formula maker further includes:
[0073] Temperature monitoring component 10 is located on the side wall of the third positioning groove 12. Temperature monitoring component 10 is used to monitor the temperature of the liquid in the kettle body 2. Temperature monitoring component 10 is electrically connected to the circuit board in the body 1. The circuit board is used to control the heating component 7 to turn off based on the feedback information from temperature monitoring component 10. That is, when temperature monitoring component 10 detects that the temperature of the liquid in the kettle body 2 has reached the set maximum temperature, the circuit board controls the heating component 7 to turn off to stop heating.
[0074] In one embodiment, the kettle body 2 is detachably mounted on the machine body 1 so that the kettle body 2 can be removed from the machine body 1. This not only makes it convenient for users to add water to the kettle body 2 separately, avoiding the liquid splashing, inconvenience of operation, and safety hazards to the internal circuit of the machine body 1 that may occur when adding water to the whole machine, but also facilitates the cleaning and maintenance of the kettle body 2.
[0075] To achieve a detachable connection between the kettle body 2 and the main body 1, see [link / reference]. Figures 3-5 In one embodiment, the body 1 is provided with a first connecting pipe 17, which is connected to the inlet of the conveying component 3;
[0076] A second connecting pipe 21 is provided on one side of the top of the kettle body 2. The second connecting pipe 21 connects to the inner cavity of the kettle body 2. The second connecting pipe 21 can be detachably inserted into the first connecting pipe 17 and the second connecting pipe 21 connects to the first connecting pipe 17 to ensure fluid communication. This structure enables the kettle body 2 and the machine body 1 to quickly and accurately dock and separate.
[0077] See Figures 3-5 In one embodiment, a water stop valve 22 is provided inside the first connecting pipe 17. The water stop valve 22 is used to control the opening and closing of the outlet of the first connecting pipe 17. The water stop valve 22 is kept closed under the action of spring force to ensure that the outlet of the first connecting pipe 17 is sealed when the first connecting pipe 17 is disconnected from the second connecting pipe 21 to prevent water leakage.
[0078] The second connecting pipe 21 is provided with a pusher 18. When the first connecting pipe 17 is inserted into the second connecting pipe 21, the pusher 18 abuts against the water stop valve 22 to restrict the water stop valve 22 to the state of opening the outlet of the first connecting pipe 17, thereby realizing the connection between the first connecting pipe 17 and the second connecting pipe 21.
[0079] It is understood that the specific structure of the aforementioned water stop valve 22 is a conventional structure, and the existing structure can be referred to for details, which will not be repeated here.
[0080] See Figures 3-5 In one embodiment, the body 1 has a fourth positioning groove 19;
[0081] The kettle body 2 is provided with a positioning boss 23, which is adapted to the fourth positioning groove 19 to restrict the first connecting pipe 17 to be inserted into the second connecting pipe 21, thereby playing an installation positioning role and ensuring that the first connecting pipe 17 can be quickly and accurately inserted into the second connecting pipe 21, so as to achieve reliable conduction between the first connecting pipe 17 and the second connecting pipe 21.
[0082] In one embodiment, the conveying component 3 can be any structure such as a water pump or an air pump, and the kettle body 2 is specifically a structure made of glass.
[0083] This utility model is not limited to the above-described embodiments. If any modifications or variations to this utility model do not depart from the spirit and scope of this utility model, and if such modifications and variations fall within the scope of the claims and equivalent technologies of this utility model, then this utility model also intends to include such modifications and variations.
Claims
1. A formula maker, characterized in that, include: The body (1) has a liquid outlet (11); The kettle body (2) is mounted on the machine body (1); A conveying component (3) is provided on the machine body (1). The conveying component (3) is connected to the pot body (2) and the liquid outlet (11). The conveying component (3) is used to convey the liquid in the pot body (2) to the liquid outlet (11). The first support component (4) is provided on the body (1) and is located below the liquid outlet (11). The first support component (4) is used to support the first bottle and align the bottle mouth of the first bottle with the liquid outlet (11). as well as The second support component (5) is rotatably disposed on the body (1). The second support component (5) is located between the liquid outlet (11) and the first support component (4). The second support component (5) has an unfolded state and a retracted state. The second support component (5) can rotate and switch between the unfolded state and the retracted state. The unfolded state is such that the second supporting component (5) can support the second bottle and align the bottle mouth of the second bottle with the liquid outlet (11), and the height of the second bottle is less than the height of the first bottle; The storage state is such that the second supporting component (5) is attached to the side of the body (1) to make room above the first supporting component (4).
2. The formula maker according to claim 1, characterized in that, The first support member (4) has a first positioning groove (41) for fitting with the lower end of the first bottle to restrict the bottle opening of the first bottle to be aligned with the liquid outlet (11). The second support member (5) has a second positioning groove (51) for fitting with the lower end of the second bottle to restrict the bottle opening of the second bottle to be aligned with the liquid outlet (11).
3. The formula maker according to claim 1, characterized in that, The formula maker also includes: A bottle detection component (6) is provided on the body (1). The bottle detection component (6) is used to detect whether the first support component (4) or the second support component (5) supports a bottle. When the bottle detection component (6) detects that the first support component (4) or the second support component (5) supports a bottle, the conveying component (3) is opened in a controlled manner.
4. The formula maker according to claim 3, characterized in that, The bottle detection component (6) is located between the second support component (5) and the liquid outlet (11); The second support component (5) has a clearance hole (52), which extends through the second support component (5) from both the top and bottom. When the second support component (5) is in the storage state, the clearance hole (52) is aligned with the detection part of the bottle detection component (6) so that the bottle detection component (6) can detect whether the first support component (4) supports the first bottle.
5. The formula maker according to claim 1, characterized in that, The formula maker also includes: Heating component (7) is provided on the body (1) and is used to heat the liquid in the pot body (2).
6. The formula maker according to claim 5, characterized in that, The body (1) has a third positioning groove (12), which is adapted to the lower end of the kettle body (2), and the heating component (7) is located on the bottom wall of the third positioning groove (12).
7. The formula maker according to claim 6, characterized in that, The body (1) also has a plurality of first heat dissipation holes (13), which are located on the side wall of the third positioning groove (12) and are arranged around the kettle body (2). The formula maker also includes: A fan (8) is located inside the body (1). The air inlet of the fan (8) is connected to the outside, and the air outlet of the fan (8) is connected to the first heat dissipation hole (13). The fan (8) is used to guide outside air to the first heat dissipation hole (13).
8. The formula maker according to claim 7, characterized in that, The body (1) also has a plurality of second heat dissipation holes (14), all of which are connected to the air outlet of the fan (8). The plurality of second heat dissipation holes (14) are located on one side of the kettle body (2), and the plurality of second heat dissipation holes (14) are arranged sequentially along the height direction of the kettle body (2).
9. The formula maker according to claim 1, characterized in that, The kettle body (2) is detachably mounted on the machine body (1).
10. The formula maker according to claim 9, characterized in that, The body (1) is provided with a first connecting pipe (17), which is connected to the inlet of the conveying component (3); A second connecting pipe (21) is provided on one side of the top end of the pot body (2). The second connecting pipe (21) is connected to the inner cavity of the pot body (2). The second connecting pipe (21) can be detachably inserted into the first connecting pipe (17), and the second connecting pipe (21) is connected to the first connecting pipe (17).
Citation Information
Patent Citations
Milk mixing device base and milk mixing device thereof
CN223220314U