Tailgate temperature adjustable heating equipment support

By designing a tail baffle temperature adjustable heating equipment bracket, and utilizing the heat exchange medium and sandwich structure to adjust the tail baffle temperature, the problem of difficulty in adjusting the insulation efficiency of insulation materials in the existing technology is solved, thereby improving the insulation efficiency of the heating equipment and ensuring process stability.

CN224313416UActive Publication Date: 2026-06-02RAINBOW (HEFEI) LIQUID CRYSTAL GLASS CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
RAINBOW (HEFEI) LIQUID CRYSTAL GLASS CO LTD
Filing Date
2025-04-29
Publication Date
2026-06-02

AI Technical Summary

Technical Problem

The tail baffle of existing heating equipment is usually made of heat insulation material, which makes it difficult to effectively adjust the heat insulation efficiency and affects the process stability of the glass edge plate.

Method used

A tail baffle temperature adjustable heating equipment bracket was designed. Through the sandwich structure formed by the heat exchange medium input and output pipes and the heat exchange bend, the tail baffle temperature is adjusted by the heat exchange medium. Combined with a high-temperature alloy layer, a heat insulation coating and a nano-microporous heat insulation base layer, the tail baffle temperature is adjustable and the heat insulation efficiency is improved.

Benefits of technology

It effectively regulates the temperature of the tail baffle, improves heat insulation efficiency, protects the glass edge plate from the radiant heat of the heating equipment, and ensures process stability.

✦ Generated by Eureka AI based on patent content.

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    Figure CN224313416U_ABST
Patent Text Reader

Abstract

The utility model provides a kind of tail baffle temperature adjustable heating equipment support, it is related to liquid crystal substrate glass processing and manufacturing technical field, and it includes: heating support body and tail baffle, tail baffle is welded in the heating support body left side end face, the heating support body right side end face is connected with heat exchange medium input square tube and heat exchange medium output square tube respectively, heat exchange elbow pipe is embedded and fixed in the inside of heating support body and tail baffle, one side end of heat exchange elbow pipe is connected with heat exchange medium input square tube by shunt cavity, another side end of heat exchange elbow pipe is connected with heat exchange medium output square tube by collection cavity. The utility model solves the problem that tail baffle made of heat insulation material is difficult to effectively adjust the heat insulation efficiency of baffle in the existing heating equipment.
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Description

Technical Field

[0001] This utility model relates to the field of liquid crystal substrate glass processing and manufacturing technology, specifically to a tail baffle temperature adjustable heating device bracket. Background Technology

[0002] In the processing of liquid crystal substrate glass, especially in the overflow molding process, heating equipment is required to assist in heating the far and near ends of the overflow brick. This heater is a core piece of equipment in the hot-end molding area. However, when the heater power is high, the radiant heat generated may affect the glass edge plate, impacting process stability. Therefore, the tail baffle of the heating equipment is crucial. However, existing heating equipment typically uses tail baffles made of heat-insulating materials, which makes it difficult to effectively adjust the baffle's heat insulation efficiency. Utility Model Content

[0003] To overcome the shortcomings of existing technologies, a tail baffle temperature adjustable heating device bracket is provided to solve the problem that the tail baffle, which is usually made of heat insulation material, is difficult to effectively adjust the heat insulation efficiency of.

[0004] To achieve the above objectives, a tail baffle temperature-adjustable heating device bracket is provided, comprising: a heating bracket body and a tail baffle, wherein the tail baffle is welded to the left end face of the heating bracket body.

[0005] The right end face of the heating bracket body is connected to a heat exchange medium inlet square tube and a heat exchange medium outlet square tube, respectively. A heat exchange bend is embedded and fixed inside the heating bracket body and the tail baffle. One end of the heat exchange bend is connected to the heat exchange medium inlet square tube through a diversion cavity, and the other end of the heat exchange bend is connected to the heat exchange medium outlet square tube through a collection cavity.

[0006] Furthermore, both the heating bracket body and the tail baffle are provided with a high-temperature alloy layer, and the upper surface of the high-temperature alloy layer is coated with a heat-insulating coating.

[0007] Furthermore, the heat exchange bends are horizontally distributed within the high-temperature alloy layer inside the heating support body; and the outer surface of the heat exchange bends is bonded to the high-temperature alloy layer through a heat insulation sleeve.

[0008] Furthermore, a nanoporous heat insulation base layer is embedded in the lower end of the heating bracket body and the left end of the tail baffle.

[0009] Furthermore, the inner side of the tail baffle is in contact with the heat exchange bend through an aerogel filling layer, which is distributed at the distance between the high-temperature alloy layer and the heat insulation coating.

[0010] Furthermore, thermometer one and thermometer two are respectively installed on the surface of the heat exchange medium inlet square tube and the heat exchange medium outlet square tube.

[0011] Furthermore, the left side cross-section of the heat exchange bend is arranged in a U-shape vertically and located inside the tail baffle.

[0012] The beneficial effects of this utility model are as follows: the tail baffle temperature adjustable heating equipment bracket of this utility model utilizes a heat exchange bend, a diversion cavity, a collection cavity, a heat exchange medium inlet square pipe, and a heat exchange medium outlet square pipe to form a heat exchange jacket structure for the tail baffle. The heat exchange medium is sent into the heat exchange bend inside the tail baffle through the heat exchange medium inlet square pipe, so that the heat of the tail baffle exchanges heat with the medium in the heat exchange bend and is discharged through the heat exchange medium outlet square pipe. This facilitates effective adjustment of the temperature of the tail baffle at the side end of the heating bracket, thereby changing the heat insulation effect of the tail baffle, improving the heat insulation efficiency of the tail baffle at the side end of the heating equipment bracket, and facilitating the protection of the glass side plate from the radiant heat of the heating equipment. Attached Figure Description

[0013] Figure 1 This is a top view of the tail baffle temperature adjustable heating device bracket according to an embodiment of the present invention.

[0014] Figure 2 This is a top cross-sectional view of the tail baffle temperature adjustable heating device support according to an embodiment of the present invention.

[0015] Figure 3 This is a front cross-sectional view of the tail baffle temperature adjustable heating device bracket according to an embodiment of the present utility model.

[0016] Figure 4 This is a partial side view of the heat exchanger bend in an embodiment of the present invention.

[0017] In the figure: 1. Heating bracket body; 2. Tail baffle; 21. Aerogel filling layer; 3. Heat exchange medium inlet square tube; 31. Thermometer 1; 32. Heat exchange medium outlet square tube; 33. Thermometer 2; 4. Heat exchange bend; 41. Diversion cavity; 42. Collection cavity; 5. High temperature alloy layer; 6. Heat insulation coating; 7. Nanoporous heat insulation base layer. Detailed Implementation

[0018] Reference Figures 1 to 4 As shown, this utility model provides a heating device bracket with adjustable tail baffle temperature, including: a heating bracket body 1 and a tail baffle 2, wherein the tail baffle 2 is welded to the left end face of the heating bracket body 1.

[0019] The right end face of the heating bracket body 1 is connected to the heat exchange medium inlet square pipe 3 and the heat exchange medium outlet square pipe 32 respectively. The heating bracket body 1 and the tail baffle 2 are embedded and fixed with heat exchange bend 4. One end of the heat exchange bend 4 is connected to the heat exchange medium inlet square pipe 3 through the diversion cavity 41, and the other end of the heat exchange bend 4 is connected to the heat exchange medium outlet square pipe 32 through the collection cavity 42.

[0020] When the heating bracket body 1 supports the heating equipment to heat the glass substrate, the tail baffle 2 at the side end of the heating bracket body 1 blocks the influence of radiant heat on the glass edge plate. The heat exchange medium is introduced into the heat exchange bend 4 through the heat exchange medium inlet square pipe 3, so that the heat exchange medium in the heat exchange bend 4 exchanges heat with the surface temperature of the tail baffle 2, and then is discharged through the heat exchange medium inlet square pipe 3 to adjust the temperature of the tail baffle 2, thereby changing the heat insulation effect of the tail baffle 2, improving the heat insulation efficiency of the tail baffle 2 at the side end of the heating equipment bracket, and facilitating the protection of the glass edge plate from the radiant heat of the heating equipment.

[0021] In this embodiment, both the heating bracket body 1 and the tail baffle 2 are provided with a high-temperature alloy layer 5, and the upper surface of the high-temperature alloy layer 5 is coated with a heat-insulating coating 6. The heat exchange bends 4 are horizontally distributed in the high-temperature alloy layer 5 inside the heating bracket body 1; and the outer surface of the heat exchange bends 4 is attached to the high-temperature alloy layer 5 through a heat-insulating sleeve. The lower end of the heating bracket body 1 and the left side end of the tail baffle 2 are inlaid with nanoporous heat-insulating base layers 7.

[0022] As a preferred embodiment, the high-temperature alloy layer 5 utilizes a high-temperature alloy material that maintains stable structure and excellent performance even at high temperatures, facilitating stable support of the heating device and shielding against radiant heat from the heating bracket body 1 and the tail baffle 2. The nanoporous thermal insulation base layer 7 possesses superior thermal insulation performance, providing efficient thermal insulation. The thermal insulation sleeve on the outer surface of the heat exchange bend 4 prevents heat exchange with the high-temperature alloy layer 5 of the heating bracket body 1.

[0023] In this embodiment, the inner side of the tail baffle 2 is in contact with the heat exchange bend 4 through an aerogel filling layer 21, which is distributed at the distance between the high-temperature alloy layer 5 and the heat insulation coating 6. The left side of the heat exchange bend 4 has a U-shaped vertical cross-section located inside the tail baffle 2.

[0024] In a preferred embodiment, the aerogel filling layer 21 further enhances the thermal insulation performance of the tail baffle 2, while simultaneously securing the heat exchange bend 4 tightly to the inner side of the tail baffle 2. The heat exchange bend 4 arranged inside the tail baffle 2 facilitates heat exchange between the heat exchange medium flowing inside the tube and the tail baffle 2, enabling effective temperature regulation of the tail baffle 2 and thereby altering its thermal insulation effect, thus improving the thermal insulation efficiency of the tail baffle at the side of the heating equipment support.

[0025] In this embodiment, thermometer 31 and thermometer 33 are respectively installed on the surface of the heat exchange medium inlet square tube 3 and the heat exchange medium outlet square tube 32.

[0026] As a preferred implementation, thermometers 31 and 33 are installed on the surface of the heat exchange medium inlet square tube 3 and the heat exchange medium outlet square tube 32 to detect the temperature of the medium inside the square tube, so as to facilitate the judgment of the heat exchange effect of the tail baffle 2.

[0027] This utility model's adjustable tail baffle heating equipment bracket effectively solves the problem that existing heating equipment typically uses tail baffles made of heat insulation materials, making it difficult to effectively adjust the heat insulation efficiency of the baffles. It facilitates effective adjustment of the temperature of the tail baffle on the side of the heating bracket, thereby changing the heat insulation effect of the tail baffle, improving the heat insulation efficiency of the tail baffle on the side of the heating equipment bracket, and conveniently protecting the glass side plate from the radiant heat of the heating equipment. It is suitable for adjustable tail baffle heating equipment brackets.

Claims

1. A tail-end baffle temperature adjustable heating device bracket, comprising: The heating bracket body (1) and the tail baffle (2) are provided, wherein the tail baffle (2) is welded to the left end face of the heating bracket body (1). The heating bracket body (1) is characterized by: The right end face of the heating bracket body (1) is connected to a heat exchange medium inlet square tube (3) and a heat exchange medium outlet square tube (32). A heat exchange bend (4) is embedded and fixed inside the heating bracket body (1) and the tail baffle (2). One end of the heat exchange bend (4) is connected to the heat exchange medium inlet square tube (3) through a diversion cavity (41), and the other end of the heat exchange bend (4) is connected to the heat exchange medium outlet square tube (32) through a collection cavity (42).

2. The tail baffle temperature adjustable heating equipment bracket according to claim 1, characterized in that, The heating bracket body (1) and the tail baffle (2) are both provided with a high-temperature alloy layer (5), and the upper surface of the high-temperature alloy layer (5) is coated with a heat insulation coating (6).

3. The tail baffle temperature adjustable heating equipment bracket according to claim 2, characterized in that, The heat exchange bend (4) is horizontally distributed in the high-temperature alloy layer (5) inside the heating bracket body (1); and the outer surface of the heat exchange bend (4) is attached to the high-temperature alloy layer (5) through a heat insulation sleeve.

4. The tail baffle temperature adjustable heating equipment bracket according to claim 1, characterized in that, The lower end of the heating bracket body (1) and the left side of the tail baffle (2) are inlaid with a nanoporous heat insulation base layer (7).

5. The tail baffle temperature adjustable heating equipment bracket according to claim 1, characterized in that, The inner side of the tail baffle (2) is in contact with the heat exchange bend (4) through the aerogel filling layer (21), and the aerogel filling layer (21) is distributed at the distance between the high-temperature alloy layer (5) and the heat insulation coating (6).

6. The tail baffle temperature adjustable heating equipment bracket according to claim 1, characterized in that, The thermometer one (31) and the thermometer two (33) are respectively installed on the surface of the heat exchange medium input square tube (3) and the heat exchange medium output square tube (32).

7. The tail baffle temperature adjustable heating equipment bracket according to claim 1, characterized in that, The heat exchange bend (4) has a U-shaped vertical cross section on the left side, located inside the tail baffle (2).