Buffer structure of glass heating container
By introducing a buffer structure into the all-glass milk warmer, and utilizing the connecting mechanism and multiple buffer units to absorb and transfer impact forces, the problem of glass containers being easily damaged during transportation is solved, ensuring heating efficiency and equipment stability.
Patent Information
- Application Number
- CN202520188785.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-06
- Publication Date
- 2026-01-02
- Estimated Expiration
- 2035-02-06
AI Technical Summary
Existing all-glass formula warmers are easily damaged during transportation due to vibration or drops, and the heating mechanism is easily affected by impact.
A buffer structure is adopted, and the side of the glass container is fixed by a connecting mechanism. The first, second and third buffer units absorb and transfer the impact force, increase the force-bearing area and reduce the impact force, prevent the glass container from being damaged, and maintain heating efficiency at the same time.
It effectively prevents damage to the glass container and heating mechanism when subjected to impact, increases the stress-bearing area and heating efficiency of the glass container, and extends the service life of the buffer unit.
Smart Images

Figure CN223746226U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model belongs to the field of milk frother, concretely relates to a buffer structure of glass heating container. BACKGROUND
[0002] Milk frother is a kind of household appliance specially used for brewing milk powder for infants, which can adjust the water temperature of brewing milk powder. To ensure the safety of milk frother, glass container milk frother appears on the market. Glass is an inorganic non-metallic material, which will not release harmful substances such as metal ions and chemical substances during heating, and will not threaten the health of infants, improving the safety of milk frother.
[0003] In the prior art, such as the patent document with the announcement number CN215016253U, a full glass milk frother is disclosed, which includes a heating base and a full glass heating kettle. Although the full glass heating kettle will not release harmful substances during use, it is easy to be damaged due to the brittle glass material when it is shaken or dropped during transportation. SUMMARY
[0004] In view of the problems in the prior art, the utility model provides a buffer structure of glass heating container, which fixes the glass container from the side when the milk frother is impacted, transfers the impact force to the side wall of the glass container, and absorbs the impact force by the first and second buffer units during the transfer of impact force, thereby not only increasing the stress area of the glass container, but also reducing the impact force received by the glass container to prevent the glass container from being damaged.
[0005] The utility model is implemented as follows: a buffer structure of glass heating container, which includes a shell, a glass container, and a heating mechanism abutting the bottom of the glass container, further includes a connecting mechanism, the connecting mechanism includes a ring-shaped connecting body, the upper end of the connecting body is provided with a first buffer unit, the first buffer unit elastically abuts the side of the glass container, the lower end of the connecting body is provided with a second buffer unit, the second buffer unit is elastically connected with the shell, the connecting mechanism connects the glass container with the shell in a side-fixed manner, on the one hand, not only increases the stress area of the glass container, but also reduces the impact force received by the glass container by absorbing the impact force through the first and second buffer units, thereby playing a buffering role and preventing the glass container from being damaged, on the other hand, fixing the glass container from the side also makes the first buffer unit closely adhere to the glass container without affecting heating, while ensuring the heating efficiency of the glass container.
[0006] The bottom of the heating mechanism is provided with a third buffering unit, one end of the third buffering unit is in abutment with the shell, and the other end is elastically connected with the heating mechanism. Since air is a poor heat conductor, in order to ensure the heating efficiency of the milk warmer, the heating mechanism needs to be in abutment with the glass container, and the third buffering unit is used to buffer the heating mechanism, so as to prevent the impact force from being transferred to the glass container when the heating mechanism receives the impact force, and further improve the buffering effect of the buffering structure.
[0007] Preferably, the connecting body comprises a first half ring part and a second half ring part arranged opposite to each other, and the two ends of the first half ring part are fixedly connected with the two ends of the second half ring part correspondingly to frame the glass container. On the one hand, the connecting body can be compatible with glass containers of different sizes, thereby improving the compatibility of the connecting body. On the other hand, the first buffering unit can be tightly attached to the glass container, thereby improving the reliability of the first buffering unit.
[0008] Specifically, the second buffering unit is provided with a mounting groove, the cross section of the second buffering unit is in the shape of a "concave" character, and the bottom of the first half ring part and the second half ring part is embedded in the mounting groove. When the first half ring part and the second half ring part frame the glass container, the first half ring part and the second half ring part are in a contracted state. The mounting groove enables the first half ring part and the second half ring part to slide in the mounting groove when they are contracted, thereby preventing the first half ring part and the second half ring part from causing the second buffering unit to deform due to contraction, and improving the service life and reliability of the second buffering unit.
[0009] Preferably, the first buffering unit is in the shape of a strip and surrounds the bottom of the circumferential side of the glass container. The bottom of the first buffering unit is bent outward along the circumferential side to form a flange. The upper end of the connecting body is in the shape of L, and the bottom surface of the upper end is in abutment with the flange. The flange can be positioned by abutting with the bottom surface of the upper end, thereby improving the installation convenience of the first buffering unit. When the upper end transmits the impact force to the first buffering unit, the flange will be attached to the glass container, thereby further increasing the stress area of the glass container and reducing the risk of damage to the glass container.
[0010] Preferably, the bottom of the heating mechanism is provided with a first mounting part corresponding to the third buffering unit, the first mounting part is inserted into the shell in a slidable manner, and the third buffering unit is sleeved on the first mounting part. By sleeving the third buffering unit on the first mounting part, the third buffering unit can be prevented from being bent and deformed, thereby preventing the third buffering unit from falling off and improving the reliability of the third buffering unit.
[0011] Specifically, the heating mechanism bottom is further provided with a guide portion corresponding to the first mounting portion, and the guide portion is slidably inserted into the shell. The guide portion is used for guiding the elastic displacement of the heating mechanism, preventing the position deviation of the heating mechanism during the elastic displacement, ensuring that the heating mechanism can completely abut against the glass container, and ensuring the repeated accuracy of the heating mechanism and the heating efficiency of the heating mechanism.
[0012] Specifically, the shell is provided with a guide hole corresponding to the guide portion, and the depth of the guide hole is greater than 1 / 3 of the length of the guide portion, thereby improving the length-diameter ratio of the guide hole, preventing the guide portion from swinging in the guide hole, and further improving the guiding accuracy of the guide portion.
[0013] Specifically, the first mounting portion gradually decreases from top to bottom, and the cross section of the first mounting portion is in a cross shape. The first mounting portion gradually decreasing from top to bottom has a surplus when the bottom of the first mounting portion is inserted into the shell, preventing the positional deviation of the first mounting portion due to the dimensional error and the installation error, and improving the installation convenience of the first mounting portion. The cross section of the first mounting portion is in a cross shape, so that a plurality of reinforcing ribs are formed on the side of the first mounting portion, improving the rigidity of the first mounting portion, and making the first mounting portion less likely to be deformed.
[0014] Specifically, the first mounting portion and the guide portion are each provided with at least two. In geometry, two points determine a straight line, and at least two first mounting portions and guide portions can prevent the rotation of the heating mechanism and improve the stability of the installation of the heating mechanism.
[0015] Preferably, the first buffer unit and the second buffer unit are each made of flexible silica gel, and the first buffer unit is made of heat-resistant flexible silica gel. Since the glass container is often heated as a heating container, the first buffer unit is made of heat-resistant flexible silica gel, which can not only absorb the impact force but also prevent the first buffer unit from being aged by heat, thereby improving the service life of the first buffer unit.
[0016] The beneficial effects of the utility model are as follows:
[0017] The utility model provides a buffer structure of a glass heating container, which on one hand fixes the glass container from the side, when the milk frother is impacted, the impact force is transferred to the side wall of the glass container, and in the process of transferring the impact force, the first buffer unit and the second buffer unit absorb the impact force, which not only increases the stress area of the glass container but also reduces the impact force received by the glass container, preventing the glass container from being damaged. On the other hand, the third buffer unit buffers the heating mechanism, preventing the heating mechanism from transferring the impact force to the glass container when the impact force is received, and further preventing the glass container from being damaged. Attached Figure Description
[0018] Figure 1 This is an overall cross-sectional view of the buffer structure of this utility model;
[0019] Figure 2 for Figure 1 An enlarged schematic diagram of point a;
[0020] Figure 3 This is a schematic diagram of the internal structure of the buffer of this utility model.
[0021] Figure 4 This is another schematic diagram of the internal structure of the buffer structure of this utility model;
[0022] Figure 5 This is a schematic diagram of the connection mechanism of the buffer structure of this utility model;
[0023] Figure 6 This is a schematic diagram of the first buffer unit of the buffer structure of this utility model.
[0024] Figure label:
[0025] 1. Shell; 2. Glass container; 3. Heating mechanism; 4. Connecting mechanism; 31. Third buffer unit; 32. First mounting part; 33. Guide part; 41. Connecting body; 42. First buffer unit; 43. Second buffer unit; 411. First semi-ring part; 412. Second semi-ring part; 421. Flange; 431. Mounting groove. Detailed Implementation
[0026] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only a part of the embodiments of the present utility model, and not all of them. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0027] like Figures 1-6 As shown, a buffer structure for a glass heating container includes a shell 1, a glass container 2, and a heating mechanism 3 abutting against the bottom of the glass container 2. It also includes a connecting mechanism 4, which includes a ring-shaped connecting body 41. The upper end of the connecting body 41 is provided with a first buffer unit 42, which elastically abuts against the periphery of the glass container 2.
[0028] In the embodiment, the first buffering unit 42 is in a band shape and surrounds the bottom of the glass container 2; the bottom of the first buffering unit 42 is bent outward along the circumference to form a flange 421; the upper end of the connecting body 41 is in an L shape, and the bottom surface of the upper end abuts against the flange 421. On one hand, the flange 421 can be positioned by abutting against the bottom surface of the upper end, which improves the installation convenience of the first buffering unit 42; on the other hand, when the upper end transmits the impact force to the first buffering unit 42, the flange 421 adheres to the glass container 2, which further increases the force receiving area of the glass container 2 and reduces the risk of damage of the glass container 2.
[0029] The lower end of the connecting body 41 is provided with a second buffering unit 43, which is elastically connected with the shell 1; the connecting mechanism 4 connects the glass container 2 with the shell 1 in a side-fixed manner, which on one hand, not only increases the force receiving area of the glass container 2, but also reduces the impact force ultimately received by the glass container 2 by absorbing the impact force through the first buffering unit 42 and the second buffering unit 43, which plays a buffering role and prevents the glass container 2 from being damaged; on the other hand, the glass container 2 is fixed from the side, which also makes the first buffering unit 42 closely adhere to the glass container 2 without affecting the heating, while ensuring the heating efficiency of the glass container 2.
[0030] In the embodiment, the connecting body 41 includes a first half ring part 411 and a second half ring part 412 arranged oppositely, and the two ends of the first half ring part 411 are fixedly connected with the two ends of the second half ring part 412 to frame the glass container 2, which on one hand, enables the connecting body 41 to be compatible with glass containers 2 of different sizes, which improves the compatibility of the connecting body 41; on the other hand, enables the first buffering unit 42 to closely adhere to the glass container 2, which improves the reliability of the first buffering unit 42.
[0031] Specifically, the second buffering unit 43 is provided with a mounting groove 431, which makes the cross section of the second buffering unit 43 in a “concave” shape, and the bottom of the first half ring part 411 and the second half ring part 412 is embedded in the mounting groove 431. When the first half ring part 411 and the second half ring part 412 frame the glass container 2, the first half ring part 411 and the second half ring part 412 are in a contracted state, and the mounting groove 431 enables the first half ring part 411 and the second half ring part 412 to slide in the mounting groove 431 when they are contracted, which prevents the first half ring part 411 and the second half ring part 412 from deforming the second buffering unit 43 due to contraction, and improves the service life and reliability of the second buffering unit 43.
[0032] In the embodiment, the first and second buffering units 42 and 43 are made of flexible silica gel, and the first buffering unit 42 is made of heat-resistant flexible silica gel. Since the glass container 2 is often heated as a heating container, the first buffering unit 42 is made of heat-resistant flexible silica gel, which can not only absorb impact force, but also prevent the first buffering unit 42 from being aged by heat, thereby prolonging the service life of the first buffering unit 42.
[0033] The heating mechanism 3 is provided at the bottom with a third buffering unit 31, one end of which is in abutment with the shell 1, and the other end of which is elastically connected with the heating mechanism 3. Since air is a poor heat conductor, in order to ensure the heating efficiency of the milk warmer, the heating mechanism 3 needs to be in abutment with the glass container 2, and the third buffering unit 31 is used to buffer the heating mechanism 3, preventing the heating mechanism 3 from transferring impact force to the glass container 2 when the heating mechanism 3 receives impact force, thereby further improving the buffering effect of the buffering structure.
[0034] In the embodiment, the heating mechanism 3 is provided at the bottom with a first mounting portion 32 corresponding to the third buffering unit 31, the first mounting portion 32 is slidably inserted into the shell 1, and the third buffering unit 31 is sleeved on the first mounting portion 32. By sleeving the third buffering unit 31 on the first mounting portion 32, the third buffering unit 31 can be prevented from being bent and deformed, and further prevented from falling off, thereby improving the reliability of the third buffering unit 31.
[0035] In the embodiment, the third buffering unit 31 is a compression spring.
[0036] Specifically, the heating mechanism 3 is further provided at the bottom with a guide portion 33 corresponding to the first mounting portion 32, and the guide portion 33 is slidably inserted into the shell 1. The guide portion 33 is used to guide the elastic displacement of the heating mechanism 3, preventing the heating mechanism 3 from being deviated in position when it is elastically displaced, which causes the heating mechanism 3 to fail to completely abut against the glass container 2, thereby ensuring the repeated accuracy of the heating mechanism 3, and further ensuring the heating efficiency of the heating mechanism 3.
[0037] Specifically, the shell 1 is provided with a guide hole corresponding to the guide portion 33, and the depth of the guide hole is greater than 1 / 3 of the length of the guide portion 33, thereby improving the length-diameter ratio of the guide hole, preventing the guide portion 33 from swinging in the guide hole, and further improving the guiding accuracy of the guide portion 33.
[0038] Specifically, the first mounting portion 32 gradually decreases from top to bottom, and the cross section of the first mounting portion 32 is in the shape of a cross. The first mounting portion 32 gradually decreasing from top to bottom has a margin when the bottom of the first mounting portion 32 is inserted into the shell 1, preventing the first mounting portion 32 from being misaligned due to dimensional error and installation error, and improving the installation convenience of the first mounting portion 32. The cross section of the first mounting portion 32 being in the shape of a cross forms multiple reinforcing ribs on the side of the first mounting portion 32, improving the rigidity of the first mounting portion 32 and making the first mounting portion 32 less likely to deform.
[0039] Specifically, the first mounting portion 32 and the guide portion 33 are each provided with three. In geometry, three points determine a plane, and the three first mounting portions 32 and guide portions 33 can prevent the heating mechanism 3 from rotating, improving the stability of the installation of the heating mechanism 3.
[0040] According to the disclosure and teaching of the above description, the skilled in the art of the present application can also change and modify the above embodiments. Therefore, the present application is not limited to the specific embodiments disclosed and described above, and some modifications and changes of the present application should fall within the protection scope of the claims of the present application. In addition, although some specific terms are used in the present specification, these terms are only for convenience of description and do not constitute any limitation on the present application.
Claims
1. A buffer structure for a glass heating container, comprising a shell, a glass container, and a heating mechanism abutting against the bottom of the glass container, characterized in that, It also includes a connecting mechanism, which includes a ring-shaped connecting body. The upper end of the connecting body is provided with a first buffer unit, which elastically abuts against the periphery of the glass container. The lower end of the connecting body is provided with a second buffer unit, which is elastically connected to the shell. The bottom of the heating mechanism is provided with a third buffer unit, one end of which abuts against the shell and the other end of which is elastically connected to the heating mechanism.
2. The buffer structure of a glass heating container according to claim 1, characterized in that, The connecting body includes a first semi-ring and a second semi-ring that are arranged in a relatively separate manner. The two ends of the first semi-ring are fixedly connected to the two ends of the second semi-ring to frame the glass container.
3. The buffer structure of a glass heating container according to claim 2, characterized in that, The second buffer unit is provided with a mounting groove, which makes the cross-section of the second buffer unit concave, and the bottom of the first semi-ring and the second semi-ring are embedded in the mounting groove.
4. The buffer structure of a glass heating container according to claim 1, characterized in that, The first buffer unit is strip-shaped and surrounds the bottom periphery of the glass container; the bottom of the first buffer unit bends outward along the periphery to form a flange; the upper end of the connecting body is L-shaped, and the bottom surface of the upper end abuts against the flange.
5. The buffer structure of a glass heating container according to claim 1, characterized in that, The heating mechanism has a first mounting part at its bottom that corresponds to the third buffer unit. The first mounting part is slidably inserted into the housing, and the third buffer unit is sleeved on the first mounting part.
6. The buffer structure of a glass heating container according to claim 5, characterized in that, The bottom of the heating mechanism is also provided with a guide portion corresponding to the first mounting portion, and the guide portion is slidably inserted into the housing.
7. The buffer structure of a glass heating container according to claim 6, characterized in that, The housing is provided with a guide hole that is adapted to the guide portion, and the depth of the guide hole is greater than 1 / 3 of the length of the guide portion.
8. The buffer structure of a glass heating container according to claim 6, characterized in that, The first mounting portion gradually decreases in size from top to bottom, and the cross-section of the first mounting portion is cross-shaped.
9. The buffer structure of a glass heating container according to claim 6, characterized in that, The first mounting part and the guide part are each provided with at least two.
10. The buffer structure of a glass heating container according to claim 1, characterized in that, Both the first buffer unit and the second buffer unit are made of flexible silicone, wherein the first buffer unit is made of heat-resistant flexible silicone.
Citation Information
Patent Citations
All-glass milk mixer
CN215016253U