All-glass kettle mounting structure

By using an outer shell to encase the all-glass kettle and employing snap-fit ​​connections and elastic protective components, the problems of traditional all-glass kettles being heavy and hot to the touch are solved, achieving easy installation and scalding prevention.

CN223601252UActive Publication Date: 2025-11-28ZHONGSHAN JUNTI TECH CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202422627867.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-30
Publication Date
2025-11-28
Estimated Expiration
2034-10-30

AI Technical Summary

Technical Problem

Traditional all-glass kettles are heavy and difficult to lift when fully loaded, and the kettle body gets hot and can easily burn the user.

Method used

An outer shell is fitted over the outside of the kettle body. The outer shell is connected to the kettle body by a snap-fit ​​mechanism and uses elastic protective parts to prevent the kettle body from breaking. The outer shell also serves as heat insulation to prevent burns.

Benefits of technology

It achieves easy installation and anti-scalding function for all-glass kettles, improving safety and convenience of use.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223601252U_ABST
    Figure CN223601252U_ABST
Patent Text Reader

Abstract

The utility model discloses an all-glass kettle mounting structure which comprises a kettle body, a shell, a heating disc, a heat insulation cover and a base, the kettle body is of an all-glass integrated structure and is provided with a side face and a bottom face, and a groove is formed in the side face; the shell is arranged outside the kettle body in a sleeving manner and is provided with a convex part clamped into the groove, so that the shell is stably assembled on the kettle body; an elastic protection piece is arranged between the convex part and the groove; the outer side of the kettle body is sleeved with the shell, so that the heat insulation effect is achieved, and a user is prevented from being scalded by the full-glass kettle body; and the shell is assembled with the kettle body in a buckling manner, so that the assembly is easy.
Need to check novelty before this filing date? Find Prior Art

Description

TECHNICAL FIELD

[0001] The utility model relates to kettle technical field, more specifically relates to full glass kettle mounting structure. BACKGROUND

[0002] Full glass kettle is more and more favored by consumers because of its aesthetic, easy cleaning and healthy non-toxic characteristics. However, there are some problems in the production and use of traditional full glass kettle:

[0003] The full glass kettle of prior art comprises a glass kettle body, a handle and a base. The user lifts the entire full glass kettle by the handle to move or pour water. When the full glass kettle is full, it is difficult to lift the full glass kettle horizontally by the strength of the user's wrist, and sometimes the user needs to use the strength of both hands to lift the full glass kettle stably by applying force to the other side of the handle. However, when the full glass kettle finishes boiling water, the glass kettle body is very hot, which can easily burn the user and the glass kettle body can also touch the user and burn the user.

[0004] Therefore, there is an urgent need for a full glass kettle that is easy to install and can prevent burns. SUMMARY

[0005] Therefore, the utility model provides a full glass kettle mounting structure.

[0006] In order to achieve the above purpose, the utility model adopts the following technical scheme: a full glass kettle mounting structure comprises:

[0007] The kettle body is a full glass integrated structure having a side surface and a bottom surface, and the side surface is provided with a groove;

[0008] The outer shell is sleeved on the outside of the kettle body, and the outer shell is provided with a protrusion that is clamped into the groove, so that the outer shell is stably assembled on the kettle body;

[0009] The protrusion and the groove are provided with an elastic protection piece therebetween;

[0010] The utility model sleeves an outer shell on the outside of the kettle body to play a heat insulation role and prevent the kettle body from burning the user. The outer shell is assembled with the kettle body by a clamping buckle, which is easy to assemble.

[0011] As an optimal scheme of the utility model, the groove is provided with at least one circle on the kettle body, and the inner wall of the outer shell is correspondingly provided with a protrusion. This technology is a specific structure of the groove and the protrusion, which can realize the clamping assembly between the outer shell and the kettle body.

[0012] As one preferred scheme of the utility model, the shell is provided with an open slot and a locking portion for locking the open slot; the shell has a certain deformability through the open slot, the convex portion is clamped in the groove and then tightened, thereby realizing stable assembly between the kettle body and the shell and simplifying the assembly mode.

[0013] As one preferred scheme of the utility model, the groove is provided at multiple positions on the kettle body, and the shell is provided with a convex portion corresponding to the multiple grooves, thereby realizing buckle assembly between the shell and the kettle body.

[0014] As one preferred scheme of the utility model, the elastic protection member is elastic silica gel, which prevents the convex portion from crushing the kettle body.

[0015] As one preferred scheme of the utility model, the kettle body bottom is further provided with a heating disc, a heat shield and a base; the heating disc is tightly attached to the outer bottom surface of the kettle body, the heat shield is arranged on the heating disc, and the base is arranged on the heat shield.

[0016] As one preferred scheme of the utility model, a gap B is formed between the heat shield and the outer bottom surface of the kettle body; the heat shield and the shell are assembled through at least one of the buckle mode, the adhesive mode and the screw locking mode; the gap B can ensure that the assembly between the kettle body, the shell, the heat shield and the base is completed even if the height of the kettle body has errors, thereby reducing the product component scrap rate.

[0017] As one preferred scheme of the utility model, the heating disc is connected with an elastic mechanism at the bottom, and the heating disc is tightly contacted with the outer bottom surface of the kettle body through the elastic force of the elastic mechanism; the elastic mechanism is vertically assembled on the heat shield or the base; the heating disc is tightly attached to the outer bottom surface of the kettle body through the elastic mechanism, thereby ensuring the heating efficiency.

[0018] As one preferred scheme of the utility model, the elastic mechanism is a spring, and the heat shield or the base or the heating disc is provided with a guide column for assembling and limiting the spring; the spring is vertically assembled; the guide column assists the stable assembly of the spring to provide vertical elastic force of the heating disc.

[0019] As one preferred scheme of the utility model, the base and the heat shield are assembled through at least one of the buckle mode, the adhesive mode and the screw locking mode; the side surface of the base extends to the bottom of the shell, the height of the base is A, and the base of the full-glass kettle is thinner.

[0020] The remaining beneficial technical effects of the utility model are embodied in the specific implementation mode. BRIEF DESCRIPTION OF DRAWINGS

[0021] In order to more clearly illustrate the technical solutions of the embodiments of the present application or the prior art, the following will briefly introduce the drawings needed to be used in the embodiments or prior art description. Obviously, the drawings in the following description are only the embodiments of the present application, and for those skilled in the art, other drawings can also be obtained without creative labor on the basis of the provided drawings.

[0022] Figure 1 It is a cross-sectional view of the present application.

[0023] Figure 2 It is an exploded view of the present application.

[0024] Explanation of reference signs

[0025] Pot body 100; side surface 101; bottom surface 102; groove 110; handle 120; shell 200; open slot 201; locking portion 202; convex portion 210; first support edge 220; heating disc 300; heat shield 400; second support edge 410; guide column 420; base 500; elastic mechanism 600; elastic protection piece 700. Specific implementation

[0026] The present application will now be further described in detail with reference to the drawings. These drawings are all simplified schematic diagrams, and only schematically illustrate the basic structure of the present application, and thus only show the configurations related to the present application.

[0027] The full glass kettle mounting structure, please refer to Figure 1 -2, which comprises: pot body 100, shell 200, heating disc 300, heat shield 400 and base 500.

[0028] The pot body 100 is a full glass integrated structure, having a side surface 101 and a bottom surface 102, the side surface 101 is provided with a groove 110, the pot body 100 forms a water storage cavity inside, and the pot body 100 is provided with a handle 120 on the side surface.

[0029] The shell 200 is sleeved on the pot body 100, and the shell 200 is provided with a convex portion 210 which is clamped into the groove 110, so that the shell 200 is stably assembled on the pot body 100.

[0030] As is known to all, the heat transfer speed of the glass material pot body 100 is fast, and the surface temperature of the glass pot body 100 is very high after the water in the pot body 100 is heated and boiled, so that the user is easy to be scalded if accidentally touching the pot body 100; therefore, the shell 200 is arranged outside the pot body 100, and the shell 200 plays a heat insulation role.

[0031] The shell 200 can be made of plastic material or good heat-resistant plastic material. The shell 200 covers the side of the kettle body 100. Although the heat of the kettle body 100 is also transferred to the shell 200, the temperature of the shell 200 rises less. Although the user feels hot when touching the shell 200, it will not be scalded.

[0032] As shown in Figure 1 , since the shell 200 plays a role of heat insulation and scald prevention, the shell 200 is preferably fully covered on the side wall of the kettle body 100. However, since the kettle body 100 is provided with a spout for pouring water, the shell 200 cannot be covered to the spout, and thus Figure 1 the shell 200 is covered to the high position of the kettle body 100, that is, the position close to the top opening of the kettle body 100;

[0033] Preferably, the shell 200 should be covered to at least one half of the top opening of the kettle body 100.

[0034] Optionally, the shell 200 can also be covered to one fifth, two fifths, one fourth, one third, etc. of the top opening of the kettle body 100.

[0035] Further, the shell 200 can be tightly attached to the side wall of the kettle body 100, or a small gap can be left between the shell 200 and the side wall to better insulate heat.

[0036] The shell 200 and the kettle body 100 are assembled by a buckle mode. As shown in Figure 1 -2, a groove 110 is arranged at the position close to the top opening of the kettle body 100, and a convex portion 210 is correspondingly arranged on the inner wall of the shell 200.

[0037] When the shell 200 is assembled on the kettle body 100, the convex portion 210 is pressed in the groove 110 to avoid separation of the kettle body 100 and the shell 200. Since the kettle body 100 is made of glass material, it is easy to be crushed by excessive force, and thus a resilient protective piece 700 is arranged between the convex portion 210 and the groove 110. The resilient protective piece 700 plays a role of buffering to prevent the kettle body 100 from being crushed.

[0038] Further, the resilient protective piece 700 is preferably resilient silica gel.

[0039] In an embodiment, the groove 110 is arranged at least one circle on the kettle body 100, and the inner wall of the shell 200 is correspondingly provided with the convex portion 210.

[0040] Specifically, as shown in Figure 2 , the groove 110 is arranged at one circle at the position close to the top opening of the kettle body 100, and the convex portion 210 of the shell 200 is also arranged at one circle.

[0041] Optionally, the grooves 110 can be designed in multiple circles on the kettle body 100, for example, one more circle of grooves 110 is added in the middle of the kettle body 100, and / or one more circle of grooves 110 is added near the bottom surface of the kettle body 100; similarly, according to the number of grooves 110, the number of convex parts 210 on the shell 200 is also increased accordingly, and the number of elastic protection pieces 700 is also increased accordingly.

[0042] Further, as shown in Figure 2 The shell 200 is in a hollow sleeve shape, which is roughly matched with the side shape of the kettle body 100, for example, Figure 2 The kettle body 100 is roughly in a circular barrel shape, and the shell 200 is in a hollow cylindrical shape;

[0043] The convex part 210 is arranged on the inner side of the shell 200 and close to the top of the shell 200. The shell 200 has an open slot 201 arranged from top to bottom at the position corresponding to the convex part 210, and has a locking part 202 arranged to lock the open slot 201.

[0044] The open slot 201 provides the ability of the shell 200 to deform. During assembly, the elastic protection piece 700 is first sleeved in the groove 110, and the shell 200 is sleeved outside the kettle body 100 from bottom to top. During the sleeving process, the position of the shell 200 provided with the convex part 210 at the top is slightly expanded outward under the reaction force of the kettle body 100. After the shell 200 is assembled to the kettle body 100, the convex part 210 is aligned with the groove 110 and is clamped into the groove 110. Then the locking part 202 is locked by a screw, and the convex part 210 is pressed in the groove 110.

[0045] Further, as shown in Figure 1 In the Figure 1 direction, the locking part 202 protrudes to the left side, and the handle 120 is also assembled to the left side of the kettle body 100. An opening can be provided on the side of the handle 120, and the locking part 202 extends into the opening to connect with the handle 120, so that the overall appearance is more neat.

[0046] In an embodiment, the grooves 110 are arranged in multiple places on the kettle body 100, and the shell 200 is provided with convex parts 210 corresponding to the multiple grooves 110;

[0047] That is, the grooves 110 can not be arranged in a whole circle on the kettle body 100, but can be arranged in half or a quarter of a circle, and the grooves 110 can be arranged in different heights and different directions on the kettle body 100 to disperse the stress on the kettle body 100. Similarly, the number, shape and position of the convex parts 210 arranged on the shell 200 are changed according to the changes of the grooves 110; and the number and shape of the elastic protection pieces 700 are also changed according to the changes of the grooves 110.

[0048] However, from the actual assembly and processing difficulty, it is preferred that a groove 110 is arranged near the top opening of the kettle body 100 as in 1, which is more optimal in processing and assembly.

[0049] In one embodiment, the heating disc 300, the heat shield 400 and the base 500 are all located below the kettle body 100, and the heating disc 300 is in close contact with the outer bottom surface of the kettle body 100, the heat shield 400 is covered on the heating disc 300, and the base 500 is covered on the heat shield 400.

[0050] Further, as shown in Figure 1 The heat shield 300 is assembled with the outer shell 200, and the heat shield 400 and the outer shell 200 are assembled by at least one of the buckle method, the adhesive method, and the screw locking method;

[0051] Optionally, the heat shield 400 and the outer shell 200 can be assembled by the buckle method;

[0052] Optionally, the heat shield 400 and the outer shell 200 can be assembled by the screw locking method;

[0053] Optionally, the heat shield 400 and the outer shell 200 can be assembled by the adhesive method;

[0054] Optionally, the heat shield 400 and the outer shell 200 can be assembled by the buckle method and the screw locking method, the heat shield 400 and the outer shell 200 are first assembled by the buckle method, and then the screw is locked between them to further reinforce the assembly.

[0055] As shown in Figure 1 The bottom of the outer shell 200 is inwardly bent to form a first supporting edge 220, and the side of the heat shield 400 is outwardly bent to form a second supporting edge 410, the first supporting edge 220 and the second supporting edge 410 are in contact and support each other, and the first supporting edge 220 and the second supporting edge 410 can be glued or locked by a screw to realize the assembly between the heat shield 400 and the outer shell 200.

[0056] Continuing as shown in Figure 1 After the assembly between the heat shield 400 and the outer shell 200, a gap B is formed between the heat shield 400 and the outer bottom surface of the kettle body 100;

[0057] Preferably, 0.3mm≤B≤1.5mm.

[0058] When the kettle body 100 is produced, due to the error of precision, there may be a small error in the height of the kettle body 100, and the gap B formed between the heat shield 400 and the bottom surface of the kettle body 100 can well accommodate the error, preventing the problem of high scrap rate caused by the height error of the kettle body 100.

[0059] Further, the base 500 and the heat shield 400 are assembled by at least one of the buckle mode, the adhesive mode, and the screw locking mode.

[0060] Optionally, the heat shield 400 and the base 500 can be assembled by the buckle mode.

[0061] Optionally, the heat shield 400 and the base 500 can be assembled by the screw locking mode.

[0062] Optionally, the heat shield 400 and the base 500 can be assembled by the adhesive mode.

[0063] Optionally, the heat shield 400 and the base 500 can be assembled by the buckle mode and the screw locking mode, the heat shield 400 and the base 500 are assembled by the buckle mode first, and then the screw is locked between the heat shield 400 and the base 500 to further reinforce the assembly.

[0064] As shown in FIG. 4, the heat shield 400 and the base 500 can be assembled by the screw locking mode. Figure 1 The side of the base 500 extends to the bottom of the outer shell 200, and the height of the base 500 is A.

[0065] Preferably, A≤40mm, and the base of the all-glass kettle is thinner.

[0066] In an embodiment, the heating disc 300 is connected with an elastic mechanism 600 at the bottom, and the heating disc 300 is in close contact with the outer bottom surface of the kettle body 100 by the elastic force of the elastic mechanism 600; the elastic mechanism 600 is vertically assembled in the heat shield 400 or the base 500.

[0067] Further, the elastic mechanism 600 is a spring, and the heat shield 400 or the base 500 or the heating disc 300 is provided with a guide column for assembling and limiting the spring; the spring is vertically assembled.

[0068] Optionally, a guide column 420 is arranged in the heat shield 400, and a spring is sleeved on the guide column, one end of the spring is supported on the inner bottom surface of the heat shield 400, and the other end is supported on the bottom surface of the heating disc 300, so as to provide the elastic force of the heating disc 300 close to the outer bottom surface of the kettle body 100.

[0069] Optionally, a guide column is arranged downward at the bottom of the heating disc 300, a spring is sleeved on the guide column, one end of the spring is supported on the inner bottom surface of the heat shield 400, and the other end is supported on the bottom surface of the heating disc 300, so as to provide the elastic force of the heating disc 300 close to the outer bottom surface of the kettle body 100.

[0070] Optionally, a guide column is arranged downward at the bottom of the heating disc 300, a spring is sleeved on the guide column, one end of the spring is supported on the inner bottom surface of the heat shield 400, and the other end is supported on the bottom surface of the heating disc 300, so as to provide the elastic force of the heating disc 300 close to the outer bottom surface of the kettle body 100.

[0071] Optionally, a guide column is arranged in the base 500, the guide column extends upward through the heat insulation cover, a spring is sleeved on the guide column, one end of the spring is supported on the inner bottom surface of the base 500, and the other end of the spring is supported on the bottom surface of the heating disc 300, so that the spring provides the elastic force for the heating disc 300 to tightly contact the outer bottom surface of the kettle body 100.

[0072] The full-glass kettle has simple and quick assembling mode, and the shell 200 can achieve good heat insulation and scald prevention functions.

[0073] The above description of the disclosed embodiments enables one of ordinary skill in the art to make or use the application. Various modifications to these embodiments will be readily apparent to those skilled in the art, and the generic principles defined herein can be applied to other embodiments without departing from the spirit or scope of the application. Thus, the present application is not intended to be limited to the embodiments shown herein but is to be accorded the widest scope consistent with the principles and novel features disclosed herein.

Claims

1. A structure for mounting a glass kettle, characterized by: The utility model relates to a kettle body (100) is full glass integration structure has side (101) and bottom (102), is provided with recess (110) on side (101), the shell (200) is set up in the kettle body (100) outside, the shell (200) is provided with the convex part (210) of carding recess (110) in, make the shell (200) stable assembly in the kettle body (100), the convex part (210) and recess (110) between the setting has elastic protection piece (700). The recess (110) is provided with at least one circle on the kettle body (100), and the inner wall of the shell (200) is correspondingly provided with the convex part (210). The shell (200) is provided with an open slot (201) and a locking portion (202) for locking the open slot (201). The recess (110) is provided with multiple places on the kettle body (100), and the shell (200) is correspondingly provided with the convex part (210) corresponding to the multiple recesses (110).

2. The all-glass kettle mounting structure according to claim 1, characterized by: The elastic protection piece (700) is elastic silica gel.

3. The all-glass kettle mounting structure according to claim 2, characterized by: The kettle body (100) is further provided with a heating disc (300), a heat shield (400) and a base (500); the heating disc (300) is tightly attached to the outer bottom surface of the kettle body (100), the heat shield (400) is covered on the heating disc (300), and the base (500) is covered on the heat shield (400).

4. The all-glass kettle mounting structure according to claim 1, characterized by: The heat shield (400) and the outer bottom surface of the kettle body (100) form a gap B; the heat shield (400) and the shell (200) are assembled through at least one of a buckle mode, a glue mode and a screw locking mode.

5. The all-glass kettle mounting structure according to any one of claims 1 to 4, characterized in that: The bottom of the heating disc (300) is connected with an elastic mechanism (600), and the heating disc (300) is tightly contacted with the outer bottom surface of the kettle body (100) through the elastic force of the elastic mechanism (600).

6. The all-glass kettle mounting structure according to any one of claims 1 to 4, characterized in that: The elastic mechanism (600) is vertically assembled on the heat shield (400) or the base (500).

7. The all-glass kettle mounting structure according to claim 6, characterized by: The elastic mechanism (600) is a spring, and the heat shield (400) or the base (500) or the heating disc (300) is provided with a guide column for assembling and limiting the spring; the spring is vertically assembled.

8. The all-glass kettle mounting structure according to claim 6, characterized by: The base (500) and the heat shield (400) are assembled through at least one of a buckle mode, a glue mode and a screw locking mode; the side surface of the base (500) extends to the bottom of the shell (200), and the height of the base (500) is A. ​ 9. The all-glass kettle mounting structure according to claim 8, characterized by: ​ 10. The all-glass kettle mounting structure according to claim 7, characterized by: ​