Composite glassware

By placing a thermally conductive pad at the bottom of the glass container and sintering it with the plate, the problems of poor thermal conductivity and uneven bottom of the glassware are solved, resulting in more efficient heating and better safety.

CN223585706UActive Publication Date: 2025-11-25FOSHAN TUOFANG INTELLIGENT TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202423085959.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-13
Publication Date
2025-11-25
Estimated Expiration
2034-12-13

AI Technical Summary

Technical Problem

Existing glassware has poor thermal conductivity, resulting in low heating efficiency. Its uneven bottom makes it prone to damage and poses a safety hazard.

Method used

A thermally conductive pad is placed at the bottom of the glass container body, and a composite structure is formed by sintering and fusing the fluxing layer. The thermally conductive pad is preferably made of a material with good thermal conductivity, such as microcrystalline glass, ceramic or metal sheet, to ensure that the bottom is flat and improve thermal uniformity.

Benefits of technology

It improves heating efficiency, ensures the flatness and impact resistance of the bottom, avoids damage caused by direct contact, and enhances safety.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to a composite glassware. The composite glassware comprises a glass container body for storing liquid, the bottom of the glass container body is opened and is provided with a heat-conducting gasket for sealing the opening, the glass container body and the heat-conducting gasket are sintered and fused into a whole, and heat energy is transferred to an inner cavity of the glass container body through the heat-conducting gasket. Glass heat conduction at the bottom of the composite glassware is replaced by the heat conduction gasket, and the heat conduction gasket is preferably made of a material with good heat conduction performance, so that the heating efficiency of the glassware is effectively improved, and the problem of low heating efficiency of the existing pure glassware is solved; besides, the heat-conducting gasket easy to shape is sintered and fused at the bottom of the glass container body, so that the flatness of the bottom of the composite glassware can be effectively ensured, the heat conductivity and the heat uniformity of the composite glassware are further ensured, and the internal liquid is uniformly heated; in addition, by arranging the heat-conducting gasket, the common glass part on the composite glassware can be prevented from being in direct contact with the table top, and the composite glassware is prevented from being damaged easily.
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Description

TECHNICAL FIELD

[0001] The utility model relates to a liquid storage vessel, in particular to a composite glass vessel. BACKGROUND

[0002] The vessel of glass material is the commonly used liquid storage vessel on the market, especially widely used in the water boiler product, and the heater is arranged at the bottom of the liquid storage vessel, and the heat generated by the working of the heater is transmitted to the liquid in the liquid storage vessel through the glass bottom wall to heat the liquid, but the heat conduction performance of the conventional glass is poorer than that of the material such as microcrystalline glass, ceramic and metal, which directly reduces the heating efficiency of the glass water boiler product.

[0003] Therefore, further improvement is needed. SUMMARY

[0004] The utility model discloses a composite glass vessel which can improve the heating efficiency, ensure the flatness of the bottom, improve the heat transfer effect and increase the anti-collision strength.

[0005] The utility model discloses a composite glass vessel which can improve the heating efficiency, ensure the flatness of the bottom, improve the heat transfer effect and increase the anti-collision strength.

[0006] The utility model discloses a composite glass vessel which can improve the heating efficiency, ensure the flatness of the bottom, improve the heat transfer effect and increase the anti-collision strength.

[0007] As a specific scheme, the glass container body and the heat conduction gasket are sintered and fused through the fusion aid layer.

[0008] As another specific scheme, the fusion aid layer fills the gap between the glass container body and the heat conduction gasket.

[0009] As another specific scheme, the glass container body is provided with a fusion part, and the fusion part is sintered and fused with the heat conduction gasket through the fusion aid layer.

[0010] As another specific scheme, the glass container body is provided with a first positioning part, and the first positioning part is positioned on the circumferential side of the heat conduction gasket.

[0011] As another specific scheme, the first positioning part is sintered and fused with the heat conduction gasket through the fusion aid layer.

[0012] As a further specific solution, the glass container body is provided with a groove, the heat-conducting gasket is embedded in the groove, and the fusion portion and / or the first positioning portion are provided on the inner wall of the groove.

[0013] As a further specific solution, the heat-conducting gasket is provided with a second positioning portion, and the second positioning portion is positioned on the inner wall or the outer wall of the glass container body.

[0014] As a further specific solution, the heat-conducting gasket is a microcrystalline glass sheet, a ceramic sheet or a metal sheet.

[0015] As a further specific solution, the bottom of the heat-conducting gasket is flat.

[0016] The beneficial effects of the utility model are as follows:

[0017] The bottom of the composite glassware cancels the glass heat conduction, and is replaced by the heat-conducting gasket, which is made of a material with good heat-conducting performance, effectively improves the heating efficiency of the glassware, and solves the pain point of low heating efficiency of the existing pure glassware; in addition, the glass container body is sintered and fused with the heat-conducting gasket which is easy to shape, can effectively ensure the flatness of the bottom of the composite glassware, and further ensure the heat conductivity and thermal uniformity of the composite glassware, and ensure that the internal liquid is uniformly heated; furthermore, by arranging the heat-conducting gasket, the ordinary glass part on the composite glassware can be prevented from directly contacting the table top, and damage can be avoided. BRIEF DESCRIPTION OF DRAWINGS

[0018] Figure 1 It is a sectional view of the composite glassware in the first embodiment of the utility model.

[0019] Figure 2 It is an enlarged view of H1 part in the first embodiment of the utility model. Figure 1

[0020] Figure 3 It is a sectional view of the composite glassware in the second embodiment of the utility model.

[0021] Figure 4 It is an enlarged view of H2 part in the second embodiment of the utility model. Figure 3

[0022] Figure 5 It is a sectional view of the composite glassware in the third embodiment of the utility model.

[0023] Figure 6 It is an enlarged view of H3 part in the third embodiment of the utility model. Figure 5

[0024] Figure 7 It is a sectional view of the composite glassware in the fourth embodiment of the utility model.

[0025] ​​​Figure 8 As Figure 7 Enlarged view of H4 part.

[0026] Figure 9 Cross-sectional view of the composite glassware in the fifth embodiment of the present application.

[0027] Figure 10 As Figure 9 Enlarged view of H5 part. DETAILED DESCRIPTION

[0028] The present application will be further described below in conjunction with the drawings and embodiments.

[0029] First embodiment:

[0030] Referring to Figure 1 and Figure 2 , the composite glassware involved in the present embodiment comprises a glass container body 1 for storing liquid, and a heating cavity 101 for storing liquid in the glass container body 1; the glass container body 1 is open at the bottom and is provided with a heat-conducting gasket 2 to close the opening, and the glass container body 1 and the heat-conducting gasket 2 are sintered and fused together, and heat energy is transmitted to the inner cavity of the glass container body 1 through the heat-conducting gasket 2. The composite glassware cancels the glass heat conduction at the bottom, and instead uses the heat-conducting gasket 2, which is preferably made of a material with good heat-conducting performance, effectively improving the heating efficiency of the glassware and solving the pain point of low heating efficiency of existing pure glassware; in addition, the glass container body 1 is sintered and fused with the heat-conducting gasket 2 at the bottom, which can effectively ensure the flatness of the bottom of the composite glassware, and further ensure the heat conductivity and thermal uniformity of the composite glassware, and ensure uniform heating of the internal liquid; further, by providing the heat-conducting gasket 2, the ordinary glass part on the composite glassware can be prevented from directly contacting the table top, thereby avoiding damage.

[0031] Further, a fusion aid layer 3 is provided between the glass container body 1 and the heat-conducting gasket 2, and the glass container body 1 is sintered and fused with the heat-conducting gasket 2 through the fusion aid layer 3, and the fusion aid layer 3 can make the glass container body 1 and the heat-conducting gasket 2 melt and connect with each other under high-temperature sintering process, and heat energy is directly transmitted from the heat-conducting gasket 2 to the bottom of the glass container body 1, ensuring heat energy transmission, avoiding heat loss, and ensuring stable and reliable connection performance.

[0032] Further, the fusion aid layer 3 fills the gap between the glass container body 1 and the heat-conducting gasket 2, and the fusion aid layer 3 can avoid the gap between the glass container body 1 and the heat-conducting gasket 2 affecting heat energy propagation.

[0033] Further, the glass container body 1 is provided with a ring-shaped and downwardly directed fusion portion 102 at the bottom opening edge position, which is sintered and fused with the upper edge of the peripheral edge of the heat-conducting gasket 2 through the flux layer 3; and the glass container body 1 is supported on the heat-conducting gasket 2 through the fusion portion 102.

[0034] Further, the glass container body 1 is provided with a ring-shaped and inwardly directed first positioning portion 103 at the bottom opening edge position, which is positioned on the peripheral edge of the heat-conducting gasket 2 to prevent the heat-conducting gasket 2 from being deviated during sintering.

[0035] Further, the first positioning portion 103 is sintered and fused with the peripheral edge of the heat-conducting gasket 2 through the flux layer 3.

[0036] Further, the glass container body 1 is provided with a ring-shaped groove 104 at the bottom opening edge, the heat-conducting gasket 2 is embedded in the groove 104, and the fusion portion 102 and the first positioning portion 103 (according to actual needs, either the fusion portion 102 or the first positioning portion 103 can be selected) are respectively arranged on the inner wall of the groove 104, the fusion portion 102 is the top wall of the groove 104, the fusion portion 102 extends inwardly relative to the glass container body 1, and the first positioning portion 103 is the side wall of the groove 104, the first positioning portion 103 extends downwardly relative to the glass container body 1; the bottom of the heat-conducting gasket 2 protrudes downwardly out of the groove 104, thereby ensuring that the heat-conducting gasket 2 is stably placed on the table top.

[0037] Further, the heat-conducting gasket 2 is made of a material with good high-temperature resistance and heat conductivity, such as a microcrystalline glass sheet, a ceramic sheet or a metal sheet.

[0038] Further, the bottom of the heat-conducting gasket 2 is flat.

[0039] Second embodiment:

[0040] Referring to Figure 3 and Figure 4 , the composite glassware of the present embodiment differs from the first embodiment in that the specific structure of the groove 104.

[0041] The other parts not mentioned are basically the same as those of the first embodiment, which will not be analyzed and described here.

[0042] Third embodiment:

[0043] Referring to Figure 5 and Figure 6 , the composite glassware of the present embodiment differs from the first embodiment in that the fusion portion 102 is the bottom opening edge end of the glass container body 1, and in order to ensure accurate positioning of the heat-conducting gasket 2, a corresponding positioning tool is needed for positioning.

[0044] The other parts not mentioned are basically the same as those of the first embodiment, which will not be analyzed and described here.

[0045] The fourth embodiment:

[0046] Referring to Figure 7 and Figure 8 The composite glassware of the present embodiment differs from the first embodiment in that the heat-conducting gasket 2 is provided with a second positioning portion 201 that is positioned against the inner wall of the glass container body 1.

[0047] Further, the heat-conducting gasket 2 has a boss protruding upward from the top thereof, and the boss is inserted into the inside of the open end of the bottom of the glass container body 1, with the second positioning portion 201 being the outer circumferential side of the boss.

[0048] Further, the heat-conducting gasket 2 is made of a material such as ceramic or metal that is resistant to high temperatures and has good heat conductivity.

[0049] The other parts not described above are basically the same as in the first embodiment, and will not be analyzed and described here.

[0050] The fifth embodiment:

[0051] Referring to Figure 9 and Figure 10 The composite glassware of the present embodiment differs from the first embodiment in that the heat-conducting gasket 2 is provided with a second positioning portion 201 that is positioned against the outer wall of the glass container body 1.

[0052] Further, the heat-conducting gasket 2 has a boss protruding upward from the top thereof, and the boss is inserted into the inside of the open end of the bottom of the glass container body 1, with the second positioning portion 201 being the outer circumferential side of the boss.

[0053] Further, the heat-conducting gasket 2 is made of a material such as ceramic or metal that is resistant to high temperatures and has good heat conductivity.

[0054] The other parts not described above are basically the same as in the first embodiment, and will not be analyzed and described here.

[0055] The above is the preferred scheme of the present application, which shows and describes the basic principle, main features and advantages of the present application. Those skilled in the art should understand that the present application is not limited by the above embodiments, and the above embodiments and descriptions in the specification are only to illustrate the principle of the present application. Without departing from the spirit and scope of the present application, various changes and improvements can be made to the present application, and these changes and improvements all fall within the scope of the present application. The scope of protection of the present application is defined by the appended claims and their equivalents.

Claims

1. A composite glassware comprising a glass container body (1) for storing a liquid; characterized in that: The glass container body (1) is provided with a heat-conducting gasket (2) to close the bottom opening, and the glass container body (1) and the heat-conducting gasket (2) are sintered and fused together, and heat energy is transferred to the inner cavity of the glass container body (1) through the heat-conducting gasket (2).

2. The composite glassware according to claim 1, wherein: An auxiliary fusion layer (3) is arranged between the glass container body (1) and the heat-conducting gasket (2), and the glass container body (1) and the heat-conducting gasket (2) are sintered and fused together through the auxiliary fusion layer (3).

3. The composite glassware according to claim 2, wherein: The auxiliary fusion layer (3) fills the gap between the glass container body (1) and the heat-conducting gasket (2).

4. The composite glassware of claim 2, wherein: The glass container body (1) is provided with a fusion part (102), and the fusion part (102) is sintered and fused with the heat-conducting gasket (2) through the auxiliary fusion layer (3); and the glass container body (1) is supported on the heat-conducting gasket (2) through the fusion part (102).

5. The composite glassware according to claim 4, wherein: The glass container body (1) is provided with a first positioning part (103), and the first positioning part (103) is positioned on the circumferential side of the heat-conducting gasket (2).

6. The composite glassware according to claim 5, wherein: The first positioning part (103) is sintered and fused with the heat-conducting gasket (2) through the auxiliary fusion layer (3).

7. The composite glassware of claim 5, wherein: The glass container body (1) is provided with a groove (104), the heat-conducting gasket (2) is embedded in the groove (104), the fusion part (102) and / or the first positioning part (103) are arranged on the inner wall of the groove (104), and the bottom of the heat-conducting gasket (2) protrudes downward out of the groove (104).

8. The composite glassware according to claim 4, wherein: The heat-conducting gasket (2) is provided with a second positioning part (201), and the second positioning part (201) is positioned on the inner wall or the outer wall of the glass container body (1).

9. The composite glassware according to any one of claims 1 to 8, wherein: The heat-conducting gasket (2) is a microcrystalline glass sheet, a ceramic sheet or a metal sheet.