3D glass heat suction mold structure

By using the design of components such as positioning columns, positioning slots, installation slots and fastening bolts in 3D glass heat suction molds, the problems of low functionality and short service life of the existing mold are solved, and the rapid replacement of molds and the production of different sizes of products are achieved, which extends the service life of the molds.

CN222893102UActive Publication Date: 2025-05-23DONGGUAN HENGDING AUTOMATION EQUIP CO LTD
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Patent Information

Application Number
CN202421864862.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-02
Publication Date
2025-05-23
Estimated Expiration
2034-08-02

AI Technical Summary

Technical Problem

Existing molds have low functionality and short service life when processing 3D glass. Traditional molds can only produce products of single sizes. The internal heating module is damaged and the entire mold needs to be discarded.

Method used

A 3D glass heat-absorbing mold structure is designed to realize the split connection between the heating module and the forming plate through components such as positioning columns, positioning grooves, installation grooves and fastening bolts, ensuring the overall installation stability of the mold, and enabling the disassembly option of the mold by adjusting bolts.

Benefits of technology

It realizes rapid replacement of molds and production of products with different shapes and sizes, extends the service life of molds and improves post-maintenance efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the field of mold manufacturing, in particular to a 3D glass heat suction mold structure which comprises a bottom shell, a heating module, a forming plate and a suction module are installed in the middle of the bottom shell to form a whole mold, and the outer side of the heating module is installed on the inner wall of the forming plate in a limited and clamped mode through a plurality of positioning columns. Adjusting holes are formed in the outer wall of the forming plate and used for clamping the positioning columns, and through grooves are formed in the bottoms of the adjusting holes. According to the utility model, the split connection function of the heating module and the forming plate is realized through the arrangement of the positioning columns, the positioning grooves and other components, the overall installation stability of the mold is realized through the arrangement of the installation grooves and the fastening bolts in the connection process with the bottom shell, and meanwhile, the disassembly optionality of the heating module and the forming plate can be realized through the adjusting bolts; the later maintenance efficiency of the mold is effectively improved, the mold is rapidly replaced, production of products of different shapes and sizes is achieved, and the service life of the mold is guaranteed.
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Description

Technical Field

[0001] The utility model relates to the technical field of mold manufacturing, in particular to a 3D glass heat absorption mold structure. Background Art

[0002] With the continuous innovation of mobile phones, tablet computers and other products, the market has higher and higher requirements for the glass panels covering their screens, which has put higher and higher requirements on the molds used to process glass panels.

[0003] Among them, 3D glass, also known as 3D curved glass, is a high-quality choice for current smart devices. However, most molds on the market are one-piece. Although they have high integrity, once the internal heating module is damaged, the entire mold needs to be discarded. At the same time, traditional molds can only produce products of a single size, with low functionality and short service life. Therefore, a 3D glass heat absorption mold structure is urgently needed. Utility Model Content

[0004] The utility model aims to solve the shortcomings in the prior art and proposes a 3D glass heat absorption mold structure.

[0005] In order to achieve the above purpose, the utility model adopts the following technical solutions:

[0006] A 3D glass heat suction mold structure, comprising a bottom shell, wherein a heating module, a molding plate, and a suction module are respectively installed in the middle of the bottom shell to form a mold as a whole, wherein the outer side of the heating module is limitedly clamped and installed on the inner wall of the molding plate through a plurality of positioning columns, and an adjustment hole is opened on the outer wall of the molding plate to be clamped with the positioning column, and a through groove is opened at the bottom of the adjustment hole;

[0007] The outer side of the heating module is provided with a plurality of limit grooves, in which positioning columns are installed through spring connection, and the positioning columns are limitedly installed in the limit grooves, and when the heating module is connected to the forming plate, the positioning columns are fixedly connected with the adjustment holes.

[0008] In addition, a preferred structure is that the outer walls of the bottom shell and the forming plate are respectively provided with a plurality of mounting grooves, and when the bottom shell and the forming plate are connected to each other, each mounting groove overlaps.

[0009] In addition, a preferred structure is that a fastening bolt is installed in the installation groove by spiral screw connection, and the fastening bolt is respectively connected to the bottom shell and the forming plate.

[0010] In addition, a preferred structure is that a suction module is installed at the bottom of the bottom shell, and the suction module is plugged into a through hole opened in the middle of the heating module.

[0011] In addition, a preferred structure is that a cavity is opened in the middle of the forming plate, a plurality of heat suction ports are opened in the cavity, and the bottom ends of the heat suction ports are connected to the suction module.

[0012] In addition, a preferred structure is that the molded plate is plug-in installed inside the bottom shell.

[0013] In addition, a preferred structure is that a plurality of positioning grooves are provided on the outer wall of the bottom shell, and the positioning grooves correspond to a plurality of adjustment holes provided on the outer wall of the forming plate, wherein an adjustment bolt is screwed and installed in the positioning groove, and the diameter of the adjustment bolt is smaller than the adjustment hole and is equal to the inner diameter of the through groove provided at the bottom of the adjustment hole.

[0014] The beneficial effects of the utility model are:

[0015] In the utility model, the split connection function of the heating module and the forming plate is realized by the arrangement of components such as positioning columns and positioning grooves. In the process of connecting with the bottom shell, the overall installation stability of the mold is achieved by the arrangement of mounting grooves and fastening bolts. At the same time, the optional disassembly of the heating module and the forming plate can be achieved by adjusting the bolts, which effectively increases the efficiency of the later maintenance of the mold, realizes the rapid replacement of the mold, realizes the production of products of different shapes and sizes, and ensures the service life of the mold. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] Figure 1 This is a schematic diagram of the explosion structure of a 3D glass heat absorption mold structure proposed by the utility model;

[0017] Figure 2 This is a schematic diagram of the external structure of the mold proposed by the utility model;

[0018] Figure 3 This is a schematic diagram of the heating module connection structure proposed by the utility model;

[0019] Figure 4 This is a schematic diagram of the forming plate connection structure proposed by the utility model;

[0020] Figure 5 This is a schematic diagram of the positioning column installation structure proposed by the utility model.

[0021] In the figure: 1 bottom shell, 2 heating module, 21 positioning column, 22 positioning groove, 3 forming plate, 31 adjustment hole, 32 cavity, 4 hot suction port, 5 mounting groove, 6 suction module, 7 adjusting bolt, 8 fastening bolt, 9 limit groove, 10 spring. DETAILED DESCRIPTION

[0022] The technical solutions in the embodiments of the present invention will be described clearly and completely below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all of the embodiments.

[0023] Reference Figure 1-5 A 3D glass heat absorption mold structure includes a bottom shell 1, a heating module 2, a molding plate 3, and a suction module 6 are respectively installed in the middle of the bottom shell 1 to form a mold as a whole, wherein the outer side of the heating module 2 is limitedly clamped and installed on the inner wall of the molding plate 3 through a plurality of positioning columns 21, and an adjustment hole 31 is opened on the outer wall of the molding plate 3 to be the same as the clamping positioning column 21, and a through groove is opened at the bottom of the adjustment hole 31;

[0024] Furthermore, a plurality of limit grooves 9 are provided on the outer side of the heating module 2, and a positioning column 21 is installed in the limit groove 9 through a spring 10. The positioning column 21 is limitedly installed in the limit groove 9, and when the heating module 2 is connected to the forming plate 3, the positioning column 21 is clamped and fixed with the adjustment hole 31.

[0025] Furthermore, the outer walls of the bottom shell 1 and the molding plate 3 are respectively provided with a plurality of mounting grooves 5 . When the bottom shell 1 and the molding plate 3 are connected to each other, each mounting groove 5 overlaps with each other, and the connection stability between the bottom shell 1 and the molding plate 3 is achieved through the mounting grooves 5 .

[0026] Furthermore, a fastening bolt 8 is installed in the installation groove 5 by spiral screwing, and the fastening bolt 8 is connected to the bottom shell 1 and the forming plate 3 respectively.

[0027] Furthermore, a suction module 6 is installed at the bottom of the bottom shell 1 , and the suction module 6 is plugged into a through hole opened in the middle of the heating module 2 .

[0028] Furthermore, a cavity 32 is provided in the middle of the forming plate 3 , a plurality of heat suction ports 4 are provided in the cavity 32 , and the bottom ends of the heat suction ports 4 are connected to the suction module 6 .

[0029] Furthermore, the forming plate 3 is plugged and installed inside the bottom shell 1 .

[0030] Furthermore, a plurality of positioning grooves 22 are provided on the outer wall of the bottom shell 1, and the positioning grooves 22 correspond to a plurality of adjustment holes 31 provided on the outer wall of the forming plate 3, wherein an adjustment bolt 7 is screwed and installed in the positioning groove 22, and the diameter of the adjustment bolt 7 is smaller than the adjustment hole 31, and is equal to the inner diameter of the through groove provided at the bottom of the adjustment hole 31.

[0031] In this embodiment, the heating module 2 is installed in the forming plate 3 by means of a retractable positioning column 21, and the heating module 2 is connected to the suction module 6 at the bottom of the bottom shell 1 by insertion. During the connection process, the forming plate 3 is connected to the bottom shell 1, and finally, the mounting grooves 5 jointly arranged on the bottom shell 1 and the forming plate 3 are connected by tightening bolts 8 to complete the overall installation of the mold.

[0032] In order to meet the production needs of molds of different sizes, the fastening bolts 8 arranged on the outside of the bottom shell 1 are loosened so that the fastening bolts 8 are disengaged from the forming plate 3, and the adjusting bolts 7 are rotated so that the adjusting bolts 7 press the positioning column 21 inward, and the positioning column 21 is embedded in the heating module 2, and the positioning column 21 is no longer clamped with the adjustment hole 31 arranged on the outside of the forming plate 3. At this time, the forming plate 3 can be pulled out separately for replacement, thereby meeting the demand for replacing the mold.

[0033] In the later maintenance process, the fastening bolts 8 are disassembled and the forming plate 3 is directly pulled out, so that the forming plate 3 and the heating module 2 are separated from the bottom shell 1 together.

[0034] In actual use, since the through slot at the bottom of the adjustment hole 31 is the same size as the adjustment bolt 7 , the through slot will not be limited by the adjustment bolt 7 during the movement of the adjustment hole 31 , thereby realizing the disassembly function of the forming plate 3 .

[0035] Among them, it is worth noting that the heating module 2 and the suction module 6 are both necessary components existing in the heat suction mold, and their specific internal structures are technical common sense well known to those skilled in the art, and will not be elaborated here.

[0036] In the utility model, the split connection function of the heating module 2 and the forming plate 3 is realized by the arrangement of components such as the positioning column 21 and the positioning groove 22. In the process of connecting with the bottom shell 1, the overall installation stability of the mold is achieved by the arrangement of the mounting groove 5 and the fastening bolt 8. At the same time, the optional disassembly of the heating module 2 and the forming plate 3 can be achieved by adjusting the bolt 7, which effectively increases the efficiency of the later maintenance of the mold, realizes the rapid replacement of the mold, realizes the production of products of different shapes and sizes, and ensures the service life of the mold.

[0037] The above description is only a preferred specific implementation manner of the present invention, but the protection scope of the present invention is not limited thereto. Any technician familiar with the technical field can make equivalent replacements or changes within the technical scope disclosed by the present invention according to the technical scheme and the utility model concept of the present invention, which should be covered by the protection scope of the present invention.

Claims

1. A 3D glass heat absorption mold structure, comprising a bottom shell (1), characterized in that: The middle part of the bottom shell (1) is respectively installed with a heating module (2), a molding plate (3), and a suction module (6) to form a mold as a whole, wherein the outer side of the heating module (2) is fixedly mounted on the inner wall of the molding plate (3) by a plurality of positioning columns (21), and an adjustment hole (31) is provided on the outer wall of the molding plate (3) and is connected to the positioning column (21), and a through groove is provided at the bottom of the adjustment hole (31); The outer side of the heating module (2) is provided with a plurality of limit grooves (9), and a positioning column (21) is installed in the limit groove (9) via a spring (10). The positioning column (21) is limitedly installed in the limit groove (9), and when the heating module (2) is connected to the forming plate (3), the positioning column (21) is fixedly engaged with the adjustment hole (31).

2. A 3D glass heat absorption mold structure according to claim 1, characterized in that: The outer walls of the bottom shell (1) and the forming plate (3) are each provided with a plurality of mounting grooves (5) correspondingly, and when the bottom shell (1) and the forming plate (3) are connected to each other, each mounting groove (5) overlaps.

3. A 3D glass heat absorption mold structure according to claim 2, characterized in that: A fastening bolt (8) is installed in the installation groove (5) by means of a spiral connection, and the fastening bolt (8) is respectively connected to the bottom shell (1) and the forming plate (3).

4. A 3D glass heat absorption mold structure according to claim 1, characterized in that: A suction module (6) is installed at the bottom of the bottom shell (1), and the suction module (6) is plugged into a through hole opened in the middle of the heating module (2).

5. The 3D glass heat absorption mold structure according to claim 1, characterized in that: A cavity (32) is provided in the middle of the molding plate (3), a plurality of heat suction ports (4) are provided in the cavity (32), and the bottom ends of the heat suction ports (4) are connected to the suction modules (6).

6. A 3D glass heat absorption mold structure according to claim 1, characterized in that: The forming plate (3) is plugged and installed inside the bottom shell (1).

7. The 3D glass heat absorption mold structure according to claim 1, characterized in that: The outer wall of the bottom shell (1) is provided with a plurality of positioning grooves (22), the positioning grooves (22) corresponding to a plurality of adjustment holes (31) provided on the outer wall of the forming plate (3), wherein an adjustment bolt (7) is screwed and installed in the positioning groove (22), the diameter of the adjustment bolt (7) being smaller than that of the adjustment hole (31) and being equal to the inner diameter of a through groove provided at the bottom of the adjustment hole (31).