Milk warmer with milk warming self-air-suction structure
By setting up a self-priming air mechanism on the shaker basket, using the self-priming air blades and a heating fan to guide the hot air into the shaker cup, the problem of poor heating efficiency caused by the change of the position of the ventilation hole when the shaker cup rotates, and more efficient milk heating and uniform heating are achieved.
Patent Information
- Application Number
- CN202422293032.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-20
- Publication Date
- 2025-07-18
- Estimated Expiration
- 2034-09-20
AI Technical Summary
The outer wall of the bottom and outer wall of the existing milk warmer is equipped with ventilation holes. The position of the ventilation holes makes it difficult for hot air to enter the inside of the milk shaker, and the heating efficiency is not good.
A self-priming air mechanism is installed on the shaker basket, including a self-priming air blade and a heating fan. The hot air is guided into the shaker basket through the air guide cover and the flow channel to ensure that the hot air can enter the inside of the shaker cup more directly and quickly.
It improves the heating efficiency of the breast warmer, ensures that the bottle is heated evenly, avoids local overheating or insufficient heating, and enhances the flexibility and practicality of the device.
Smart Images

Figure CN223111535U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of milk warmers, and specifically relates to a milk warmer with a milk warming and self-suction air structure. Background Art
[0002] A milk warmer is an electrical device designed specifically for heating the milk in a baby bottle. Its main function is to heat the milk in the bottle to an appropriate temperature through a built-in heating system, ensuring that the baby can obtain safe and warm milk during feeding. The milk warmer is equipped with adjustable temperature control, heat preservation function, and a fast heating mechanism. Some also have an intelligent detection function to ensure uniform heating and avoid overheating. The milk warmer usually includes a rotatable bottle cradle and a heating mechanism to ensure efficient and uniform heating of the milk in the bottle.
[0003] Existing milk warmers often have ventilation holes on the cradle so that the hot air generated by the heating mechanism can enter the inside of the cradle through the ventilation holes to heat the bottle. For example, a transmission device of an air milk warmer and an air milk warmer disclosed in Chinese Patent Document CN219549504U. From the accompanying drawings of the specification of this solution Figure 2 it can be seen that rectangular ventilation holes are spaced on the outer side wall of the bottom of the milk shaking cup. The structure of the ventilation holes is relatively uniform and can only provide places for hot air to pass through. When the milk shaking cup rotates, the positions of several ventilation holes change during the rotation of the milk shaking cup, resulting in difficulty for hot air to enter the inside of the milk shaking cup through the ventilation holes, and the heating efficiency is not good.
[0004] The present utility model is studied and proposed in view of the deficiencies of the existing technology. Content of the Utility Model
[0005] In view of the problem that the existing ventilation holes are spaced on the outer side wall of the bottom of the milk shaking cup, the ventilation holes can only provide places for hot air to pass through. When the milk shaking cup rotates, the positions of several ventilation holes change during the rotation of the milk shaking cup, resulting in difficulty for hot air to enter the inside of the milk shaking cup through the ventilation holes, and the heating efficiency is not good. The technical solution adopted by the present utility model to solve its technical problems is:
[0006] A milk warmer with a milk warming and self-suction air structure includes a housing. An installation base is provided on the housing. A milk shaking basket for accommodating a baby bottle, a heating assembly communicated with the milk shaking basket, and a driving assembly connected to the milk shaking basket are provided on the installation base. The milk shaking basket is provided with a self-suction air mechanism for accelerating the entry of hot air into the milk shaking basket.
[0007] Further, the self-suction air mechanism includes a plurality of self-suction air blades arranged at intervals along the circumferential direction of the milk shaking basket. An air inlet for supplying hot air into the milk shaking basket is provided between adjacent self-suction air blades.
[0008] Further, the self-suction air blade includes a first self-suction air portion and a second self-suction air portion connected to the first self-suction air portion, and the first self-suction air portion and the second self-suction air portion are obliquely connected.
[0009] Further, the side of the self-suction air blade away from the axis direction of the milk-shaking basket is obliquely arranged towards the rotation direction of the driving assembly.
[0010] Further, the heating assembly includes a heating fan and an air duct connected to the heating fan and having an opening facing the air inlet.
[0011] Further, an elastic clamping mechanism for fixing the milk bottle is provided on the milk-shaking basket, a connecting mechanism is provided between the elastic clamping mechanism and the milk-shaking basket, and the elastic clamping mechanism is detachably connected to the milk-shaking basket through the connecting mechanism.
[0012] Further, the elastic clamping mechanism includes a first elastic clamping mechanism, and the connecting mechanism includes a first connecting groove on the inner side wall of the milk-shaking basket and a first connecting protrusion on the first elastic clamping mechanism and engaged with the first connecting groove.
[0013] Further, the first elastic clamping mechanism includes a plurality of elastic clamping claws arranged at intervals in the circumferential direction of the milk-shaking basket.
[0014] Further, the elastic clamping mechanism includes a second elastic clamping mechanism connected to the first elastic clamping mechanism, and an elastic connecting member is provided between the first elastic clamping mechanism and the second elastic clamping mechanism.
[0015] Further, a second connecting protrusion is provided on the inner side wall of the first elastic clamping mechanism, and a second connecting groove engaged with the second connecting protrusion is provided on the elastic connecting member, so that the first elastic clamping mechanism and the elastic connecting member are detachably connected;
[0016] A third connecting groove is provided on the second elastic clamping mechanism, and a third connecting protrusion inserted and engaged with the third connecting groove is provided on the elastic connecting member, so that the second elastic clamping mechanism and the elastic connecting member are detachably connected.
[0017] The beneficial effects of the present utility model are as follows:
[0018] 1. The utility model solves the problem that the heating efficiency is not good by setting a self - suction air mechanism on the milk - shaking basket. When the driving mechanism drives the milk - shaking basket to rotate, the self - suction air mechanism can guide the hot air generated by the heating component into the inside of the milk - shaking basket. Compared with the traditional ventilation holes that can only provide places for hot air to enter the milk - shaking basket, the self - suction air mechanism has the effect of guiding the air flow transmission path, so that the hot air can enter the inside of the milk - shaking basket more directly and quickly. In the existing milk - shaking cup, ventilation holes are provided at intervals on the outer side wall of the bottom. The ventilation holes can only provide places for hot air to pass through. When the milk - shaking cup rotates, the positions of several ventilation holes change during the rotation of the milk - shaking cup, resulting in difficulty for hot air to enter the inside of the milk - shaking cup through the ventilation holes.
[0019] 2. An elastic clamping mechanism for fixing the milk bottle is provided on the milk - shaking basket. The elastic clamping mechanism is detachably connected to the milk - shaking basket, so that the user can disassemble the elastic clamping mechanism and install elastic clamping mechanisms of different shapes on the milk - shaking basket, enabling the milk - shaking basket to fix milk bottles of different types and shapes, which is beneficial to improving the flexibility and practicality of the device.
[0020] The following will further illustrate the present utility model in conjunction with the drawings and specific embodiments. BRIEF DESCRIPTION OF THE DRAWINGS
[0021] Figure 1 is a schematic structural view of the milk warmer of the present utility model;
[0022] Figure 2 is a schematic structural view of the connection of the milk - shaking basket, heating component and driving component of the present utility model;
[0023] Figure 3 is one of the exploded views of the milk warmer of the present utility model;
[0024] Figure 4 is another exploded view of the milk warmer of the present utility model;
[0025] Figure 5 is the third exploded view of the milk warmer of the present utility model;
[0026] Figure 6 is a schematic structural view of the milk - shaking basket of the present utility model;
[0027] Figure 7 is one of the exploded views of the connection between the milk - shaking basket and the elastic clamping mechanism of the present utility model;
[0028] Figure 8 is the second exploded view of the connection between the milk - shaking basket and the elastic clamping mechanism of the present utility model. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0029] The following will describe the embodiments of the present utility model in detail with reference to the drawings.
[0030] As Figures 1 to 8 shown, a milk warmer with a warm milk self - suction air structure includes a housing 1. An installation base 2 is provided on the housing 1. A milk - shaking basket 3 for accommodating a milk bottle, a heating component 4 communicating with the milk - shaking basket 3, and a driving component 5 connected to the milk - shaking basket 3 are provided on the installation base 2. The milk - shaking basket 3 is provided with a self - suction air mechanism 6 for accelerating the hot air to enter the milk - shaking basket 3.
[0031] By setting a self - suction air mechanism on the milk - shaking basket in the present utility model, when the driving mechanism drives the milk - shaking basket to rotate, the self - suction air mechanism can guide the hot air generated by the heating component into the interior of the milk - shaking basket. Compared with the traditional ventilation holes that can only provide places for hot air to enter the milk - shaking basket, the self - suction air mechanism has the effect of guiding the air flow transmission path, so that the hot air can enter the interior of the milk - shaking basket more directly and quickly, effectively solving the problem that in the existing milk - shaking cup, ventilation holes are provided at intervals on the outer side wall of the bottom of the milk - shaking cup, and the ventilation holes can only provide places for hot air to pass through. When the milk - shaking cup rotates, the positions of several ventilation holes change during the rotation of the milk - shaking cup, resulting in difficulty for hot air to enter the interior of the milk - shaking cup through the ventilation holes and poor heating efficiency.
[0032] Specifically, the traditional milk - shaking cup is provided with ventilation holes, and the ventilation holes only allow air to enter the interior of the milk - shaking cup, without playing the role of guiding the air flow into the interior of the milk - shaking cup. When the rotation speed of the milk - shaking cup becomes faster and faster, an air wall is formed on the outer side wall of the milk - shaking cup due to rotation, and it is difficult for hot air to pass through the air wall and enter the milk - shaking cup through the ventilation holes; while the self - suction air mechanism 6 has the effect of guiding the air flow transmission path. When the milk - shaking basket 3 rotates, the self - suction air mechanism 6 can drive the hot air into the interior of the milk - shaking basket 3, thereby effectively heating the milk bottle.
[0033] Optionally, in some embodiments, the self - suction air mechanism 6 includes a wind - guiding cover provided on the outer side wall of the milk - shaking basket 3 and communicating with the milk - shaking basket 3. An air flow channel or a wind - guiding plate is provided on the wind - guiding cover. Under the action of guiding the air flow of the air flow channel or the wind - guiding plate, it is ensured that the hot air can enter the interior of the milk - shaking basket 3 evenly from multiple directions.
[0034] Optionally, in some embodiments, the self - suction air mechanism 6 includes a diversion groove provided on the side wall or the bottom of the milk - shaking basket 3 and communicating with the milk - shaking basket 3. The diversion groove has a specific shape and inclination angle to guide the flow direction of the hot air.
[0035] Furthermore, as a preferred but non - limiting way of the present utility model, the self - suction air mechanism 6 includes a plurality of self - suction air blades 61 provided on the milk - shaking basket 3. An air inlet 62 for the hot air to enter the interior of the milk - shaking basket 3 is provided between every two adjacent self - suction air blades 61.
[0036] Further, the driving assembly 5 includes a driving member 51, a transmission portion 52 connected to the output end of the driving member 51, and a rotating sleeve 53 connected to the transmission portion 52 and connected to the milk-shaking basket 3. The transmission portion 52 is configured to drive the rotating sleeve 53 to drive the milk-shaking basket 3 to rotate. The transmission portion 52 is connected to the output end of the driving member 51, which helps to efficiently transmit the power of the driving member to the rotating sleeve 53, effectively ensuring that the milk-shaking basket 3 can rotate smoothly, avoiding losses during power transmission, and being beneficial to improving the overall rotation efficiency.
[0037] Optionally, in some embodiments, the driving member 51 is a DC motor or an AC motor.
[0038] Optionally, in some embodiments, the driving member 51 is a stepper motor.
[0039] Optionally, in some embodiments, the driving member 51 is a servo motor.
[0040] Optionally, in some embodiments, the driving member 51 is a pneumatic motor.
[0041] As Figures 1 to 8 shown, the self-suction air mechanism 6 includes a plurality of self-suction air blades 61 arranged at intervals along the circumferential direction of the milk-shaking basket 3, and an air inlet 62 for hot air to enter the milk-shaking basket 3 is provided between adjacent self-suction air blades 61;
[0042] Specifically, when the milk-shaking basket 3 rotates, hot air can enter the interior of the milk-shaking basket 3 along a specified path. At this time, the air pressure on the outside is higher than the air pressure at the air inlet 62, and under the action of the pressure difference, the hot air is accelerated to enter the interior from the outside of the milk-shaking basket 3.
[0043] Further, the self-suction air blades 61 are integrally formed at the bottom of the milk-shaking basket 3.
[0044] Further, the arrangement of the self-suction air blades 61 can guide the hot air to enter the milk-shaking basket 3 along a predetermined path, which is beneficial to reducing the turbulence and eddy current phenomena during the transmission of the hot air, thereby improving the utilization efficiency of the hot air.
[0045] Further, the self-suction air blades 61 are arranged at intervals along the circumferential direction of the milk-shaking basket 3 so that the hot air can be evenly distributed in all corners of the milk-shaking basket 3. The arrangement of the air inlet 62 also further promotes the even flow of the hot air, thereby ensuring that the milk bottle is evenly heated and avoiding local overheating or insufficient heating.
[0046] As Figures 1 to 8 shown, the self-suction air blade 61 includes a first self-suction air portion 611 and a second self-suction air portion 612 connected to the first self-suction air portion 611, and the first self-suction air portion 611 is obliquely connected to the second self-suction air portion 612;
[0047] Specifically, the first self-suction air part 611 is arranged vertically, and the width of the first self-suction air part 611 is smaller than that of the second self-suction air part 612, which helps to more centrally guide the air flow and reduce the diffusion of the air flow. When the air flow passes through the first self-suction air part 611, due to the reduction of the cross-sectional area, the air flow speed will increase, thereby enhancing the directivity of the air flow.
[0048] Furthermore, the second self-suction air part 612 is arranged horizontally, and the width of the second self-suction air part 612 is larger than that of the first self-suction air part 611, which helps to distribute and guide the air flow.
[0049] Furthermore, the cross-section between the first self-suction air part 611 and the second self-suction air part 612 is in an "L" shape, and the width of the first self-suction air part 611 is smaller than that of the second self-suction air part 612, so that the first self-suction air part 611 can more easily divide the air flow, allowing the air flow to enter the inside of the milk-shaking basket 3 from the air inlet 62, which is beneficial to accelerating the flow efficiency of the air flow.
[0050] Optionally, in some embodiments, the first self-suction air part 611 is perpendicularly connected to the second self-suction air part 612.
[0051] Optionally, in some embodiments, the first self-suction air part 611 is obliquely connected to the second self-suction air part 612 and forms an inverted corner.
[0052] Furthermore, as a preferred mode rather than a limitation of the present invention, the first self-suction air part 611 is obliquely connected to the second self-suction air part 612 and forms an inverted rounded corner.
[0053] Furthermore, the setting of the inverted rounded corner can significantly reduce the stress concentration phenomenon of the self-suction air blade 61. Compared with the inverted corner, the stress of the inverted corner is more concentrated, and the inverted corner is prone to cracks or fractures. Through the treatment of the inverted rounded corner, the stress can be dispersed to a larger area, thereby improving the strength and durability of the self-suction air blade 61.
[0054] Furthermore, in the air flow, the setting of the inverted rounded corner helps to improve the flow performance of the air flow. The inverted rounded corner can reduce the eddy current and turbulence generated by the air flow at the self-suction air blade 61, which is beneficial to reducing the flow resistance, so that the distribution of the air flow is more uniform, thereby improving the overall efficiency of the air flow.
[0055] As Figures 1 to 8 shown, the side of the self-suction air blade 61 away from the axis direction of the milk-shaking basket 3 is obliquely arranged towards the rotation direction of the drive assembly 5;
[0056] Optionally, in some instances, the drive assembly 5 drives the milk-shaking basket 3 to rotate clockwise, and the side of the self-suction air blade 61 away from the inner wall of the milk-shaking basket 3 extends along a clockwise curve.
[0057] Optionally, in some instances, the driving component 5 drives the milk-shaking basket 3 to rotate counterclockwise, and the self-suction air blade 61 extends along the inner wall of the milk-shaking basket 3 in a counterclockwise-bending manner.
[0058] Furthermore, the inclined setting of the self-suction air blade 61 can effectively guide the flow direction of the hot air, so that the hot air can more smoothly enter the interior of the milk-shaking basket 3 from the direction of the heating component 5, which is beneficial to reducing the collision and turbulence of the hot air with the self-suction air blade 61 during the flow process, and effectively improving the flow efficiency of the hot air.
[0059] Furthermore, under the guidance of the inclined self-suction air blade 61, the hot air will receive an inward component force when entering the milk-shaking basket 3, which helps to accelerate the flow of the hot air, enables it to contact the milk bottle faster, and is beneficial to improving the heating efficiency.
[0060] Furthermore, the inclination angle of the self-suction air blade 61 can ensure that during the rotation of the milk-shaking basket 3, the hot air can continuously and effectively enter the interior of the milk-shaking basket.
[0061] As Figures 1 to 8 shown, the heating component 4 includes a heating fan 41 and a duct 42 connected to the heating fan 41 and opening towards the air inlet 62;
[0062] Furthermore, the heating component 4 includes a heating fan 41 and a duct 42 connected to the heating fan 41 and opening towards the air inlet 62. The opening of the duct 42 faces the air inlet 62, so that the hot air generated by the heating fan 41 can be directed into the interior of the milk-shaking basket 3, which is beneficial to reducing the loss and turbulence of the hot air, and effectively improving the utilization efficiency of the hot air; secondly, through the guidance of the duct 42, the hot air can be evenly distributed in the interior of the milk-shaking basket 3, ensuring that the milk bottle is heated evenly, helping to avoid the situation of local overheating or insufficient heating, and being beneficial to improving the heating uniformity.
[0063] Furthermore, the air pressure generated by the heating fan 41 can accelerate the flow of the hot air, forming a forced convection. This forced convection helps to accelerate the entry of the hot air into the interior of the milk-shaking basket 3, thereby accelerating the heating speed of the milk liquid in the milk bottle and shortening the waiting time of the user.
[0064] As Figures 1 to 8 shown, an elastic clamping mechanism 7 for fixing the milk bottle is provided on the milk-shaking basket 3. A connecting mechanism 8 is provided between the elastic clamping mechanism 7 and the milk-shaking basket 3, and the elastic clamping mechanism 7 is detachably connected to the milk-shaking basket 3 through the connecting mechanism 8;
[0065] Furthermore, the elastic characteristics of the elastic clamping mechanism 7 can be finely adjusted according to the size of the milk bottle to ensure that the milk bottle is firmly fixed in the milk-shaking basket 3. Secondly, since a connecting mechanism 8 is provided between the elastic clamping mechanism 7 and the milk-shaking basket 3, it enables the user to easily disassemble and assemble the elastic clamping mechanism 7. This not only facilitates the user to replace clamping mechanisms of different specifications but also allows the user to separate the components for cleaning during cleaning, which is beneficial to improving the cleaning efficiency.
[0066] Furthermore, an elastic clamping mechanism 7 for fixing the milk bottle is provided on the milk-shaking basket 3. The elastic clamping mechanism 7 is detachably connected to the milk-shaking basket 3, enabling the user to disassemble the elastic clamping mechanism 7 and install elastic clamping mechanisms 7 of different shapes on the milk-shaking basket 3, so that the milk-shaking basket can fix milk bottles of different types and shapes, which is beneficial to improving the flexibility and practicality of the device.
[0067] Optionally, in some embodiments, several elastic anti-slip hemispheres are provided on the inner wall of the elastic clamping mechanism 7 along the circumferential direction. The elastic anti-slip hemispheres are elastically abutted against the outer wall of the milk bottle to fix the position of the milk bottle.
[0068] Optionally, in some embodiments, several elastic anti-slip stripes are provided on the inner wall of the elastic clamping mechanism 7 along the circumferential direction. The elastic anti-slip stripes are elastically abutted against the outer wall of the milk bottle to fix the position of the milk bottle.
[0069] Furthermore, as a preferred but non-limiting manner of the present invention, several elastic clamping claws 711 are provided on the inner wall of the elastic clamping mechanism 7 along the circumferential direction. The elastic clamping claws 711 are elastically abutted against the outer wall of the milk bottle to fix the position of the milk bottle.
[0070] Optionally, in some embodiments, the elastic clamping mechanism 7 is made of silica gel material. The silica gel material has good elasticity, high temperature resistance, and corrosion resistance. At the same time, the silica gel material is non-toxic and odorless, will not contaminate the milk bottle and the milk liquid, and is also easy to clean, and can withstand multiple uses and cleanings.
[0071] Optionally, in some embodiments, the elastic clamping mechanism 7 is made of food-grade plastic. The food-grade plastic material has the characteristics of being non-toxic and odorless, and the cost is relatively low.
[0072] Optionally, in some embodiments, the elastic clamping mechanism 7 and the milk-shaking basket 3 can be connected by threads. Threads are provided on a specific part of the elastic clamping mechanism 7, and corresponding threaded holes are provided on the inner wall of the milk-shaking basket 3. Under the action of the thread fit, the elastic clamping mechanism 7 and the milk-shaking basket 3 are detachably connected.
[0073] Optionally, in some embodiments, the elastic clamping mechanism 7 and the milk-shaking basket 3 can be connected by a slot connection. An installation groove is provided on the inner wall of the milk-shaking basket 3, and the elastic clamping mechanism 7 is inserted and matched with the installation groove so that the elastic clamping mechanism 7 and the milk-shaking basket 3 are detachably connected.
[0074] Further, as a preferred but not limiting way of the present invention, the elastic clamping mechanism 7 and the milk-shaking basket 3 are connected by a snap connection.
[0075] As Figures 1 to 8 shown, the elastic clamping mechanism 7 includes a first elastic clamping mechanism 71, and the connecting mechanism 8 includes a first connecting groove 81 on the inner side wall of the milk-shaking basket 3 and a first connecting protrusion 82 located on the first elastic clamping mechanism 71 and snap-fitted with the first connecting groove 81;
[0076] Further, the snap-fitting of the first connecting protrusion 82 and the first connecting groove 81 is beneficial to ensuring the stable connection between the first elastic clamping mechanism 71 and the milk-shaking basket 3. The snap-fitting can effectively prevent the first elastic clamping mechanism 71 from loosening or falling off during shaking or rotation, thus ensuring the stable fixation of the milk bottle.
[0077] Further, the setting of the snap-fitting makes the installation and disassembly of the first elastic clamping mechanism 71 very convenient. Users can easily complete the installation and disassembly process without using complex tools or performing cumbersome operations.
[0078] Further, the cross-section of the first connecting protrusion 82 is in a "C" shape. The "C"-shaped first connecting protrusion 82 provides a larger contact area, can be closely matched with the first connecting groove 81 to form a more stable connection, is beneficial to reducing the risk of falling off caused by connection loosening, and effectively improves the stability of the whole structure.
[0079] As Figures 1 to 8 shown, the first elastic clamping mechanism 71 includes a plurality of elastic clamping claws 711 arranged at intervals along the circumferential direction of the milk-shaking basket 3;
[0080] Further, the number of the elastic clamping claws 711 is four and they are arranged at intervals along the circumferential direction of the milk-shaking basket 3.
[0081] Further, by arranging a plurality of elastic clamping claws 711 at intervals along the circumferential direction, multi-point support for the milk bottle can be achieved. This multi-point support method can ensure that when the milk bottle is subjected to shaking or rotational force, the clamping force received is more uniform, reducing the situation of excessive single-point force; secondly, the uniform clamping force helps to better fix the milk bottle, prevent it from shaking or tilting during shaking, and is beneficial to ensuring the stability and safety of the milk bottle.
[0082] Furthermore, the multi-point support setting helps to disperse the stress of the feeding bottle on the first elastic clamping mechanism 71, which is beneficial to reducing wear or damage caused by excessive single-point force, helps to improve the durability of the elastic clamping mechanism 71, and effectively extends its service life. Secondly, during long-term use, single-point force is likely to cause material fatigue and damage, while the multi-point support setting can reduce this fatigue effect, which is beneficial to maintaining the long-term stability and reliability of the first elastic clamping mechanism 71.
[0083] As Figures 1 to 8 shown, the elastic clamping mechanism 7 includes a second elastic clamping mechanism 72 connected to the first elastic clamping mechanism 71, and an elastic connecting member 73 is provided between the first elastic clamping mechanism 71 and the second elastic clamping mechanism 72;
[0084] Furthermore, the first elastic clamping mechanism 71 and the second elastic clamping mechanism 72 act together on the feeding bottle to form a multi-point clamping system. This setting can more effectively fix the feeding bottle and prevent it from shaking or tilting during the shaking or rotating process, thereby enhancing the stability of the clamping. Secondly, the two elastic clamping mechanisms 7 are connected to each other through the elastic connecting member 73 to form an integral structure. During the clamping process, the first elastic clamping mechanism 71 and the second elastic clamping mechanism 72 can work together and share the clamping force together so that the clamping effect is more uniform and stable.
[0085] Furthermore, the first elastic clamping mechanism 71 and the second elastic clamping mechanism 72 are connected through the elastic connecting member 73, which helps to disperse the stress of the feeding bottle on the clamping mechanism. This stress-dispersing setting can reduce the situation of excessive single-point force, lower the risk of wear and damage of the clamping mechanism, and thus improve its durability.
[0086] As Figures 1 to 8 shown, a second connecting protrusion 712 is provided on the inner side wall of the first elastic clamping mechanism 71, and a second connecting groove 731 that is in snap-fit connection with the second connecting protrusion 712 is provided on the elastic connecting member 73, so that the first elastic clamping mechanism 71 and the elastic connecting member 73 are detachably connected;
[0087] A third connecting groove 721 is provided on the second elastic clamping mechanism 72, and a third connecting protrusion 732 that is in plug-in fit connection with the third connecting groove 721 is provided on the elastic connecting member 73, so that the second elastic clamping mechanism 72 and the elastic connecting member 73 are detachably connected;
[0088] Furthermore, through the snap-fit connection method, the user can easily connect the first elastic clamping mechanism 71 with the elastic connecting member 73 without using additional tools or complex steps. This quick connection method greatly improves the assembly efficiency.
[0089] Furthermore, the snap-fit between the second connecting protrusion 712 and the second connecting groove 731 can ensure the stability of the connection. During shaking or rotation, this connection method can effectively prevent loosening or detachment between components, thus ensuring the stable clamping of the baby bottle.
[0090] Furthermore, the insertion fit between the third connecting protrusion 732 and the third connecting groove 721 can ensure the reliable connection between the two. During the rotation of the milk-shaking basket 3, the insertion fit connection method can prevent loosening or detachment between the connecting components, which is beneficial to ensuring the stable clamping of the baby bottle.
[0091] The implementation manner of this embodiment is as follows:
[0092] A milk warmer with a milk-warming and self-suction air structure includes a housing 1. An installation base 2 is provided on the housing 1. A milk-shaking basket 3 for accommodating a baby bottle, a heating component 4 communicated with the milk-shaking basket 3, and a driving component 5 connected to the milk-shaking basket 3 are provided on the installation base 2. The milk-shaking basket 3 is provided with a self-suction air mechanism 6 for accelerating the hot air to enter the milk-shaking basket 3. The self-suction air mechanism 6 includes a plurality of self-suction air blades 61 arranged at intervals in the circumferential direction of the milk-shaking basket 3. An air inlet 62 for the hot air to enter the milk-shaking basket 3 is provided between adjacent self-suction air blades 61. One side of the self-suction air blade 61 away from the axis direction of the milk-shaking basket 3 is inclined towards the rotation direction of the driving component 5. When the driving component 5 drives the milk-shaking basket 3 to rotate, the setting of the self-suction air blades 61 can guide the hot air to enter the milk-shaking basket 3 along a predetermined path, which is beneficial to reducing the turbulent flow and eddy current phenomena during the transmission of the hot air, thereby improving the utilization efficiency of the hot air and effectively solving the problem that ventilation holes are provided at intervals on the outer side wall of the bottom of the existing milk-shaking cup. The ventilation holes can only provide places for the hot air to pass through. When the milk-shaking cup rotates, the positions of several ventilation holes change during the rotation of the milk-shaking cup, resulting in difficulty for the hot air to enter the inside of the milk-shaking cup through the ventilation holes and poor heating efficiency. An elastic clamping mechanism 7 for fixing the baby bottle is provided on the milk-shaking basket 3. The elastic clamping mechanism 7 includes a first elastic clamping mechanism 71 and a second elastic clamping mechanism 72. An elastic connecting member 73 for connecting the first elastic clamping mechanism 71 and the second elastic clamping mechanism 72 is provided between the first elastic clamping mechanism 71 and the second elastic clamping mechanism 72. A first connecting protrusion 82 is provided on the first elastic clamping mechanism 71. A first connecting groove 81 engaged with the first connecting protrusion 82 is provided on the inner side wall of the milk-shaking basket 3, so that the first elastic clamping mechanism 71 is detachably connected to the milk-shaking basket 3. The detachable connection between the first elastic clamping mechanism 71 and the milk-shaking basket 3 enables the user to detach the elastic clamping mechanism 7 and install elastic clamping mechanisms 7 with different shapes on the milk-shaking basket 3, so that the milk-shaking basket 3 can fix baby bottles of different types and shapes, which is beneficial to improving the flexibility and practicality of the device.
[0093] The above only further illustrates the technical content of the present utility model with examples to facilitate easier understanding by readers, but it does not mean that the implementation modes of the present utility model are limited to this. Any technical extension or re-creation made according to the present utility model is protected by the present utility model. The protection scope of the present utility model shall be subject to the claims.
Claims
1. A milk warmer with a warm milk self-suction air structure, comprising a housing (1), characterized in that: An installation base (2) is provided on the housing (1). A milk-shaking basket (3) for accommodating a milk bottle, a heating assembly (4) communicating with the milk-shaking basket (3), and a driving assembly (5) connected to the milk-shaking basket (3) are provided on the installation base (2). The milk-shaking basket (3) is provided with a self-suction air mechanism (6) for accelerating hot air to enter the milk-shaking basket (3).
2. The milk warmer with a warm milk and self-suction air structure according to claim 1, wherein: The self-suction air mechanism (6) includes a plurality of self-suction air blades (61) spaced circumferentially along the milk-shaking basket (3). An air inlet (62) for hot air to enter the milk-shaking basket (3) is provided between adjacent self-suction air blades (61).
3. The milk warmer with a milk warming and self-suction air structure according to claim 2, characterized in that: The self-suction air blade (61) includes a first self-suction air portion (611) and a second self-suction air portion (612) connected to the first self-suction air portion (611). The first self-suction air portion (611) is obliquely connected to the second self-suction air portion (612).
4. A milk warmer with a warm milk self-suction air structure according to claim 2, characterized in that: One side of the self-suction air blade (61) away from the axis direction of the milk-shaking basket (3) is obliquely arranged towards the rotation direction of the driving assembly (5).
5. The milk warmer with a milk warming and self-suction air structure according to claim 2, characterized in that: The heating assembly (4) includes a heating fan (41) and an air duct (42) connected to the heating fan (41) and having an opening facing the air inlet (62).
6. The milk warmer with a milk warming and self-suction air structure according to claim 1, characterized in that: An elastic clamping mechanism (7) for fixing the milk bottle is provided on the milk-shaking basket (3). A connecting mechanism (8) is provided between the elastic clamping mechanism (7) and the milk-shaking basket (3). The elastic clamping mechanism (7) is detachably connected to the milk-shaking basket (3) through the connecting mechanism (8).
7. The milk warmer with a milk warming and self-suction air structure according to claim 6, wherein: The elastic clamping mechanism (7) includes a first elastic clamping mechanism (71). The connecting mechanism (8) includes a first connecting groove (81) on the inner side wall of the milk-shaking basket (3) and a first connecting protrusion (82) on the first elastic clamping mechanism (71) that is snap-fitted with the first connecting groove (81).
8. A milk warmer with a warm milk and self-suction air structure according to claim 7, characterized in that: The first elastic clamping mechanism (71) includes a plurality of elastic clamping claws (711) spaced circumferentially along the milk-shaking basket (3).
9. A milk warmer with a warm milk and self-suction air structure according to claim 7, characterized in that: The elastic clamping mechanism (7) includes a second elastic clamping mechanism (72) connected to the first elastic clamping mechanism (71). An elastic connecting member (73) is provided between the first elastic clamping mechanism (71) and the second elastic clamping mechanism (72).
10. A milk warmer with a milk warming and self-suction air structure according to claim 9, characterized in that: A second connecting protrusion (712) is provided on the inner side wall of the first elastic clamping mechanism (71). A second connecting groove (731) snap-fitted with the second connecting protrusion (712) is provided on the elastic connecting member (73), so that the first elastic clamping mechanism (71) and the elastic connecting member (73) are detachably connected; A third connecting groove (721) is provided on the second elastic clamping mechanism (72). A third connecting protrusion (732) inserted and matched with the third connecting groove (721) is provided on the elastic connecting member (73), so that the second elastic clamping mechanism (72) and the elastic connecting member (73) are detachably connected.
Citation Information
Patent Citations
Transmission device of air milk warmer and air milk warmer
CN219549504U