Heat preservation device for overflow port of glass kiln

By setting a rotating device and a supporting device at the overflow port of the glass kiln and using a pull rope to adjust the position of the insulation brick group, the problem of needing to stop the production line to adjust the position of the insulation brick group in the existing technology is solved, and flexible adjustment without stopping the production line is achieved, thereby reducing production costs.

CN223342566UActive Publication Date: 2025-09-16XINJIANG HUIGUANG OPTOELECTRONICS TECHNOLOGY CO LTD +1
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Patent Information

Application Number
CN202422224160.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-11
Publication Date
2025-09-16
Estimated Expiration
2034-09-11

AI Technical Summary

Technical Problem

In the existing glass production process, when the position of the insulation brick group needs to be adjusted, the production line needs to be stopped, resulting in a waste of glass liquid and production time.

Method used

A glass furnace overflow insulation device is designed. Through a rotating device and a supporting device on a bracket, a pull rope is used to adjust the position of the insulation brick group. The rotating device rotates around a second direction, and the pull rope is wound or unwound to drive the insulation brick group to rise or fall, and move along the first direction under the action of the supporting device.

Benefits of technology

Without stopping the production line, the position of the insulation brick group can be flexibly adjusted, shortening the operation time, reducing production costs and increasing corporate profits.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a heat preservation device for an overflow port of a glass kiln. Relates to the technical field of glass production. The glass kiln overflow port heat preservation device comprises a support, the top of the support is provided with a rotating device and a supporting device at intervals in the first direction, the rotating device is used for rotating around the second direction, and the supporting device is movably connected with the support in the first direction; one end of the pull rope is connected with the rotating device, and the other end of the pull rope is connected with an insulating brick group through a supporting device; the rotating device rotates to drive the pull rope to be wound on the rotating device or drive the pull rope wound on the rotating device to be unwound so as to drive the insulating brick group to ascend or descend; an included angle is formed between any two of the first direction, the second direction and the vertical direction.
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Description

Technical Field

[0001] The present application relates to the technical field of glass production, and in particular to a glass furnace overflow insulation device. Background Art

[0002] Currently, during the glass production process, furnaces have overflow ports, and it is crucial to ensure that the temperature of the molten glass at this location meets the requirements for rolling and forming. The insulation structure of the overflow port in current mainstream glass rolling and forming production lines relies on retaining bricks on both sides of the overflow port and an insulation brick assembly on top. Because the insulation brick assembly is fixed in position during production, if the molten glass temperature does not meet production requirements and adjustment is required, production lines must be suspended to clean the remaining molten glass and adjust the position of the insulation brick assembly, resulting in wasted glass and production time.

[0003] Therefore, how to provide a structure that can adjust the position of the insulation brick group without stopping the production line has become an urgent problem to be solved. Utility Model Content

[0004] A technical problem to be solved by this application is: how to adjust the position of the insulation brick group without stopping the production line.

[0005] To solve the above technical problems, the present invention provides a glass furnace overflow insulation device, comprising:

[0006] A bracket, wherein a rotating device and a supporting device are provided at intervals on the top of the bracket along the first direction, the rotating device is used to rotate about the second direction, and the supporting device is movably connected to the bracket along the first direction;

[0007] A pull rope, one end of which is connected to the rotating device, and the other end of which is connected to the insulation brick group through the supporting device;

[0008] The rotating device rotates to drive the pull rope to be wound around the rotating device or the pull rope wound around the rotating device is unwound to drive the insulation brick group to rise or fall;

[0009] There is an angle between any two directions among the first direction, the second direction and the vertical direction.

[0010] In some embodiments, further comprising:

[0011] The slide rail is extended along the first direction and is arranged on the top of the bracket and is located on one side of the rotating device along the second direction. The supporting device is slidably connected to the slide rail along the extension direction of the slide rail.

[0012] In some embodiments, further comprising:

[0013] The pulley is slidably connected to the slide rail along the length direction of the slide rail, and is also fixedly connected to the supporting device.

[0014] In some embodiments, further comprising:

[0015] The buckle is provided on the supporting device to fix the supporting device to the slide rail when the supporting device slides to a preset position.

[0016] In some embodiments, the support device comprises:

[0017] A movable shaft is extended along the second direction, one end of the movable shaft is fixedly connected to the pulley, and the other end is movably connected to the bracket along the first direction;

[0018] A fixed pulley is arranged on the movable shaft, and a pull rope is wound around the fixed pulley and connected to the insulation brick group.

[0019] In some embodiments, two fixed pulleys are spaced apart along the length direction on each movable shaft, a pull rope is wound around each fixed pulley, and the two pull ropes are respectively used to fix the two ends of the insulation brick group along the second direction.

[0020] In some embodiments, the rotating device comprises:

[0021] A rotating shaft extending along the second direction, one end of the rotating shaft being connected to the slide rail and the other end being rotatably connected to the bracket;

[0022] The driving member is connected to the rotating shaft to drive the rotating shaft to rotate.

[0023] In some embodiments, the rotating device further includes a bearing seat and a bearing. The bearing seat is disposed on the slide rail, and a bearing is disposed on the bearing seat. The bearing is rotatably connected to one end of the rotating shaft.

[0024] In some embodiments, further comprising:

[0025] a base, the base being arranged below the bracket;

[0026] A plurality of movable wheels are respectively arranged on both sides of the base along the first direction, and each movable wheel moves along the second direction to drive the base to move along the second direction.

[0027] In some embodiments, a reinforcing rib is provided at the connection between the base and the bracket.

[0028] Through the above technical solution, the present application provides a glass furnace overflow insulation device, which is arranged between the furnace overflow and a calender. The glass furnace overflow insulation device includes a bracket, a rotating device, a supporting device, and a pull rope. The rotating device and the supporting device are arranged at the top of the bracket. The rotating device and the supporting device are spaced apart along a first direction. The rotating device is configured to rotate about a second direction, the second direction being at an angle to the first direction. The supporting device is configured to be movably connected to the bracket along the first direction. One end of the pull rope is connected to the rotating device, and the other end is connected to the insulation brick group through the supporting device. That is, the pull rope has a first portion and a second portion. The first portion is the portion extending along the first direction between the rotating device and the supporting device, and the second portion is the portion extending in a vertical direction between the supporting device and the insulation brick group. The pull rope has a wound state and a free state. The wound state is the portion of the pull rope wound around the rotating device, and the free state is the portion of the pull rope not wound around the rotating device. The free state of the pull rope is the first portion and the second portion of the pull rope. Therefore, when the position of the insulation brick group needs to be adjusted, the rotating device can be rotated, so that the pull rope can be rotated around the rotating device to drive the insulation brick group connected to the pull rope to rise or fall, and the supporting device can be moved in a first direction or a direction opposite to the first direction to drive the insulation brick group to move in the first direction or a direction opposite to the first direction. When the rotating device rotates in a direction away from the supporting device, the part of the pull rope in a free state is wound around the rotating device, and the number of turns of the pull rope wound around the rotating device is the same as the number of turns of the rotating device. At this time, the length of the pull rope in the free state is shortened, thereby driving the insulation brick group connected thereto to rise; when the rotating device rotates in a direction close to the supporting device, the pull rope wound around the rotating device is unwound during the rotation process and becomes free. The number of turns of the pull rope unwound is the same as the number of turns of the rotating device. At this time, the length of the pull rope in the free state is lengthened, thereby driving the insulation brick group connected thereto to fall.

[0029] The glass furnace overflow insulation device provided by this application, through the arrangement of a rotating device, a supporting device, and a pull rope on the bracket, allows the insulation brick group connected to one end of the pull rope to rise or fall in a vertical direction under the action of the rotating device, and to move in a first direction or a direction opposite to the first direction under the action of the supporting device. This allows the position of the insulation brick group to be flexibly adjusted in multiple directions without stopping production, greatly shortening operation time, reducing the production cost of adjusting the insulation bricks, and increasing corporate profits. BRIEF DESCRIPTION OF THE DRAWINGS

[0030] In order to more clearly illustrate the embodiments of the present application or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are only some embodiments of the present application. For ordinary technicians in this field, other drawings can be obtained based on these drawings without any creative work.

[0031] Figure 1 This is a schematic structural diagram of a glass furnace overflow insulation device disclosed in an embodiment of the present application;

[0032] Figure 2 This is a side view of a glass furnace overflow insulation device disclosed in an embodiment of the present application;

[0033] Figure 3 yes Figure 2 A magnified view of middle A;

[0034] Figure 4 This is a top view of a glass furnace overflow insulation device disclosed in an embodiment of the present application.

[0035] Description of reference numerals:

[0036] 1. Glass kiln overflow insulation device; 11. Bracket; 111. Support column; 112. First crossbeam; 113. Second crossbeam; 12. Rotating device; 121. Rotating shaft; 122. Driving member; 123. Bearing seat; 124. Bearing; 13. Support device; 131. Movable shaft; 132. Fixed pulley; 14. Pull rope; 15. Slide rail; 16. Pulley; 17. Buckle; 18. Base; 19. Movable wheel; 20. Reinforcement rib; 2. Insulation brick set. DETAILED DESCRIPTION

[0037] The following detailed description of the embodiments of the present application is provided in conjunction with the accompanying drawings and examples. The detailed description of the following examples and the accompanying drawings are intended to illustrate the principles of the present application, but are not intended to limit the scope of the present application. The present application may be implemented in many different forms and is not limited to the specific embodiments disclosed herein, but rather includes all technical solutions within the scope of the claims.

[0038] The present application provides these embodiments to make this application thorough and complete, and to fully express the scope of this application to those skilled in the art. It should be noted that: unless otherwise specifically stated, the relative arrangement of parts and steps, the composition of materials, numerical expressions and numerical values ​​set forth in these embodiments should be interpreted as merely exemplary, and not as limiting.

[0039] It should be noted that, in the description of this application, unless otherwise specified, "plurality" means greater than or equal to two; the terms "upper," "lower," "left," "right," "inner," "outer," and the like, indicating directions or positional relationships, are intended solely to facilitate the description of this application and simplify the description, and do not indicate or imply that the devices or components referred to must have a specific orientation, be constructed, or operate in a specific orientation. Therefore, they should not be construed as limitations on this application. When the absolute position of the object being described changes, the relative positional relationship may also change accordingly.

[0040] In addition, the terms "first," "second," and similar terms used in this application do not denote any order, quantity, or importance, but are simply used to distinguish different parts. "Perpendicular" does not mean perpendicular in the strict sense, but rather means within the tolerance range. "Parallel" does not mean parallel in the strict sense, but rather means within the tolerance range. "Include" or "comprising" and similar terms mean that the elements preceding the word include the elements listed after the word, and do not exclude the possibility of other elements being included.

[0041] It should also be noted that, in the description of this application, unless otherwise expressly specified or limited, the terms "installed," "connected," and "connected" should be understood in a broad sense. For example, they can refer to fixed connections, detachable connections, or integral connections; they can refer to direct connections or indirect connections through an intermediary. A person of ordinary skill in the art will understand the specific meanings of the above terms in this application depending on the specific circumstances. When a specific device is described as being located between a first device and a second device, there may or may not be an intervening device between the specific device and the first or second device.

[0042] All terms used in this application have the same meaning as understood by one of ordinary skill in the art to which this application belongs, unless otherwise specifically defined. It should also be understood that terms defined in, for example, common dictionaries should be interpreted as having a meaning consistent with their meaning in the context of the relevant technology and should not be interpreted in an idealized or highly formal sense, unless explicitly defined as such herein.

[0043] Technologies, methods, and equipment known to ordinary technicians in the relevant art may not be discussed in detail, but where appropriate, the technologies, methods, and equipment should be considered part of the specification.

[0044] like Figures 1 to 4 As shown, the present application provides a glass furnace overflow insulation device 1, comprising:

[0045] A bracket 11, with a rotating device 12 and a supporting device 13 spaced apart on the top of the bracket 11 along a first direction, the rotating device 12 being configured to rotate about a second direction, and the supporting device 13 being movably connected to the bracket 11 along the first direction;

[0046] A pull rope 14, one end of which is connected to the rotating device 12, and the other end of which is connected to the insulation brick group 2 through the supporting device 13;

[0047] The rotating device 12 rotates to drive the pull rope 14 to be wound around the rotating device 12 or to unwind the pull rope 14 wound around the rotating device 12 to drive the insulation brick group 2 to rise or fall;

[0048] There is an angle between any two directions among the first direction, the second direction and the vertical direction.

[0049] In this embodiment, the pull cord 14 may be a steel wire.

[0050] The present application provides a glass furnace overflow insulation device 11, which is disposed between the furnace overflow and a calender. The glass furnace overflow insulation device 1 comprises a bracket 11, a rotating device 12, a supporting device 13, and a pull rope 14. The rotating device 12 and the supporting device 13 are disposed on the top of the bracket 11. The rotating device 12 and the supporting device 13 are spaced apart along a first direction. The rotating device 12 is configured to rotate about a second direction, which is at an angle to the first direction. The supporting device 13 is configured to be movably connected to the bracket 11 along the first direction. One end of the pull rope 14 is connected to the rotating device 12, and the other end is connected to the insulation brick group 2 through the support device 13. That is, the pull rope 14 has a first part and a second part. The first part is the part between the rotating device 12 and the support device 13 extending in the first direction, and the second part is the part between the support device 13 and the insulation brick group 2 extending in the vertical direction. The pull rope 14 has a wound state and a free state. The wound state is the part of the pull rope 14 wound on the rotating device 12, and the free state is the part of the pull rope 14 not wound on the rotating device 12. The pull rope 14 in the free state is the first and second parts of the pull rope 14. Therefore, when the position of the insulation brick group 2 needs to be adjusted, the rotating device 12 can be rotated, so that the pull rope 14 can rotate around the rotating device 12 to drive the insulation brick group 2 connected to the pull rope 14 to rise or fall, and the support device 13 can be moved in the first direction or in a direction opposite to the first direction to drive the insulation brick group 2 to move in the first direction or in a direction opposite to the first direction. When the rotating device 12 rotates in a direction away from the supporting device 13, part of the pull rope 14 in a free state is wound around the rotating device 12, and the number of turns of the pull rope 14 wound around the rotating device 12 is the same as the number of turns of the rotating device 12. At this time, the length of the pull rope 14 in the free state becomes shorter, thereby driving the insulation brick group 2 connected thereto to rise; when the rotating device 12 rotates in a direction close to the supporting device 13, the pull rope 14 wound around the rotating device 12 is unwound during the rotation process and becomes a free state. The number of turns of the pull rope 14 unwound is the same as the number of turns of the rotating device 12. At this time, the length of the pull rope 14 in the free state becomes longer, thereby driving the insulation brick group 2 connected thereto to descend.

[0051] The glass furnace overflow insulation device 1 provided in this application, through the arrangement of the rotating device 12, the supporting device 13, and the pull rope 14 on the bracket 11, allows the insulation brick group 2 connected to one end of the pull rope 14 to rise or fall in the vertical direction under the action of the rotating device 12, and to move in a first direction or a direction opposite to the first direction under the action of the supporting device 13. Thus, the position of the insulation brick group 2 can be flexibly adjusted in multiple directions without stopping production on the production line, greatly shortening operation time, reducing the production cost of adjusting the insulation bricks, and increasing corporate profits.

[0052] like Figures 1 to 4 As shown, in the embodiment of the present application, it also includes:

[0053] The slide rail 15 extends along the first direction and is disposed on the top of the bracket 11 and is located on one side of the rotating device 12 along the second direction. The supporting device 13 is slidably connected to the slide rail 15 along the extension direction of the slide rail 15.

[0054] In this embodiment, the glass furnace overflow insulation device 1 includes a bracket 11, and a supporting device 13, a rotating device 12 and a slide rail 15 are arranged on the top of the bracket 11. The rotating device 12 and the supporting device 13 are spaced apart along the first direction, and the slide rail 15 is arranged on one side of the supporting device 13 along the second direction, and the slide rail 15 is extended along the first direction. The supporting device 13 is slidably connected to the slide rail 15 along the length direction of the slide rail 15. One end of the pull rope 14 is connected to the rotating device 12, and the other end is connected to the insulation brick group 2 through the support device 13, so that when the support device 13 slides along the first direction or in a direction opposite to the first direction, it can drive the pull rope 14 and the insulation brick group 2 fixed on the pull rope 14 to slide along the first direction or in a direction opposite to the first direction, thereby realizing the adjustment of the position of the insulation brick group 2 along the first direction or in a direction opposite to the first direction.

[0055] like Figures 1 to 4 As shown, in the embodiment of the present application, it also includes:

[0056] The pulley 16 is slidably connected to the slide rail 15 along the length direction of the slide rail 15 , and the pulley 16 is also fixedly connected to the support device 13 .

[0057] In this embodiment, the glass furnace overflow port insulation device 1 includes a bracket 11, and a support device 13, a rotating device 12, a slide rail 15 and a pulley 16 are provided on the top of the bracket 11. The rotating device 12 and the support device 13 are spaced apart along the first direction. The slide rail 15 is provided on one side of the support device 13 along the second direction, and a groove is extended along the first direction on the plate to form the slide rail 15. The pulley 16 is provided on the slide rail 15 and is slidably connected to the slide rail 15 along the length direction of the slide rail 15. The pulley 16 is fixed to the support device 13. The pull rope 14 is connected to the rotating device 12, thereby driving the support device 13 to slide along the length direction of the slide rail 15. One end of the pull rope 14 is connected to the rotating device 12, and the other end is connected to the insulation brick group 2 through the support device 13. When the support device 13 slides along the first direction or in a direction opposite to the first direction, it can drive the pull rope 14 and the insulation brick group 2 fixed on the pull rope 14 to slide along the first direction or in a direction opposite to the first direction, thereby realizing the adjustment of the position of the insulation brick group 2 along the first direction or in a direction opposite to the first direction.

[0058] like Figures 1 to 4As shown, in the embodiment of the present application, it also includes:

[0059] The buckle 17 is provided on the supporting device 13 to fix the supporting device 13 to the slide rail 15 when the supporting device 13 slides to a preset position.

[0060] In this embodiment, when the support device 13 is fixedly connected to the pulley 16, at least a portion of it is located on the slide rail 15. A buckle 17 is provided on the support device 13. When the pulley 16 slides to a preset position, the buckle 17 on the support device 13 can be fixedly connected to the slide rail 15, so that the support device 13 and the pulley 16 can no longer slide, thereby achieving the fixation of the position of the support device 13 and the fixation of the position of the insulation brick group 2 along the first direction. When it is necessary to continue to adjust the position of the insulation brick group 2 in the first direction, the buckle 17 is opened, and the slider can continue to drive the support device 13 and the insulation brick group 2 to slide along the length direction of the slide rail 15, so as to drive the position of the insulation brick group 2 in the first direction to be adjusted to meet user needs.

[0061] like Figures 1 to 4 As shown, in the embodiment of the present application, the supporting device 13 includes:

[0062] A movable shaft 131 extends along the second direction, with one end of the movable shaft 131 fixedly connected to the pulley 16 and the other end movably connected to the bracket 11 along the first direction;

[0063] The fixed pulley 132 is arranged on the movable shaft 131 , and the pull rope 14 is wound around the fixed pulley 132 and connected to the insulation brick group 2 .

[0064] In this embodiment, the supporting device 13 includes a movable shaft 131 and a fixed pulley 132. The movable shaft 131 extends along the second direction. One end of the movable shaft 131 is fixedly connected to the pulley 16, and the other end is movably connected to the bracket 11 arranged opposite to the slide rail 15. The bracket 11 connected to the other end of the movable shaft 131 has a groove body along the first direction, and the other end of the movable shaft 131 extends into the groove body and slides along the first direction. When the pulley 16 slides along the slide rail 15, it can drive the movable shaft 131 to move along the length direction of the slide rail 15, and a fixed pulley 132 is also fixedly provided on the movable shaft 131. One end of the pull rope 14 is connected to the rotating device 12, and the other end will be connected to the insulation brick group 2 under the support device 13 through the wheel groove of the fixed pulley 132. Therefore, the setting of the fixed pulley 132 can ensure the sliding of the pull rope 14 along the extension direction of the rope, and will limit the position of the pull rope 14 in the second direction, so as to avoid the pull rope 14 from moving in the second direction and affecting the position adjustment of the insulation brick group 2, thereby making the position adjustment of the insulation brick group 2 more accurate.

[0065] In the embodiment of the present application, two fixed pulleys 132 are arranged on each movable shaft 131 at intervals along the length direction, and a pull rope 14 is wound around each fixed pulley 132. The two pull ropes 14 are respectively used to fix the two ends of the insulation brick group 2 along the second direction.

[0066] In this embodiment, the two pull ropes 14 are arranged in parallel, and the distance between the two pull ropes 14 is equal to the distance between the two ends of the insulation brick group 2 along the second direction, so that the insulation brick group 2 can be better fixed by the two pull ropes 14, and then the insulation brick group 2 can be driven to move along the first direction and along the vertical direction to achieve adjustment of the position of the insulation brick group 2.

[0067] In this embodiment, each insulation brick group 2 includes multiple insulation bricks, which can be three, four, or other numbers. The multiple insulation bricks are connected by series plates and bonded by glue to achieve fixation between the multiple insulation bricks in the insulation brick group 2, maintain the overall structure of the insulation brick group 2 stable, and prevent separation between the bricks.

[0068] like Figures 1 to 4 As shown, in the embodiment of the present application, the rotating device 12 includes:

[0069] A rotating shaft 121 extending along the second direction, with one end of the rotating shaft 121 fixedly connected to the slide rail 15;

[0070] The driving member 122 is connected to the rotating shaft 121 to drive the rotating shaft 121 to rotate.

[0071] In this embodiment, the bracket 11 includes a plurality of support columns 111, a first beam 112 extending along the first direction, two second beams 113 extending along the second direction and a guide rail extending along the first direction. There can be four support columns 111, and the four support columns 111 are respectively arranged at four corner positions to form a main body of a quadrangular prism. The two ends of the first beam 112 are respectively connected to the tops of two support columns 111, and the two ends of each second beam 113 are respectively connected to the tops of two support columns 111. The two second beams 113 are respectively connected to the tops of two support columns 111, and the two second beams 113 are respectively arranged opposite to each other. The first beam 112 and the guide rail are provided between the two second beams 113, and the guide rail is arranged opposite to the first beam 112. The two second beams 113, the first beam 112 and the guide rail are enclosed to form a rectangular frame arranged above the four support columns 111.

[0072] In this embodiment, the rotating device 12 includes a rotating shaft 121 and a driving member 122. The rotating shaft 121 is arranged parallel to the movable shaft 131 and both extend along the second direction. The two ends of the rotating shaft 121 are respectively connected to the slide rail 15 and the first beam 112. The rotating shaft 121 is also connected to the driving member 122 so that the rotating shaft 121 rotates under the control of the driving member 122, thereby driving the pull rope 14 to be wound around the rotating shaft 121 when the rotating shaft 121 rotates, or unwinding the pull rope 14 wound around the rotating shaft 121, thereby achieving the lengthening or shortening of the free state length of the pull rope 14, so as to achieve the vertical rise or fall of the insulation brick group 2 connected to the other end of the pull rope 14.

[0073] In this embodiment, the driving member 122 may be a motor, which drives the rotating shaft 121 to rotate, thereby controlling the rise or fall of the insulation brick group 2 through the motor, saving manpower and facilitating operation.

[0074] like Figures 1 to 4 As shown, in the embodiment of the present application, the rotating device 12 also includes a bearing seat 123 and a bearing 124. The bearing 124 shaft is set on the slide rail 15. A bearing 124 is set on the bearing 124 shaft. The bearing 124 is rotatably connected to one end of the rotating shaft 121.

[0075] In this embodiment, the rotating device 12 includes a rotating shaft 121, a driving member 122, a bearing seat 123, and a bearing 124. The bearing seat 123 is provided in the area of ​​the guide rail corresponding to the rotating shaft 121, and the bearing 124 is provided on the bearing 124. One end of the rotating shaft 121 is rotatably connected to the bearing 124, and the other end of the rotating shaft 121 is rotatably connected to the first crossbeam 112, thereby enabling the rotating shaft 121 to rotate. The rotating shaft 121 is connected to the driving member 122, so that the rotating shaft 121 can rotate under the drive of the driving member 122, thereby achieving automated control of the rotation of the rotating shaft 121.

[0076] like Figures 1 to 4 As shown, in the embodiment of the present application, it also includes:

[0077] The base 18 is provided below the bracket 11;

[0078] The movable wheel 19 moves along the first direction. The movable wheel 19 is arranged on both sides of the base 18 along the second direction to drive the base 18 to move along the first direction.

[0079] In this embodiment, the glass furnace overflow insulation device 1 includes a bracket 11, a base 18 and a plurality of movable wheels 19. There can be two bases 18, and each base 18 is vertically provided with two support columns 111 of the bracket 11, so that the base 18 is used to support and fix the bracket 11. A plurality of movable wheels 19 are provided under each base 18, and the plurality of movable wheels 19 are respectively provided on both sides of each base 18 along the first direction, and each movable wheel 19 can be movable along the second direction, so that when the plurality of movable wheels 19 move, the base 18, the bracket 11 and the insulation brick group 2 provided on the bracket 11 can be driven to move along the second direction, so that the movable brick group can realize the adjustment of the position in the second direction.

[0080] In this embodiment, each base 18 may be provided with four wheels, and the four wheels are respectively provided at two sides of each base 18 along the first direction, with two wheels provided on each side. The two bases 18 may be provided with eight wheels in total.

[0081] In this embodiment, the base 18 is made of steel structure.

[0082] like Figures 1 to 4 As shown, in the embodiment of the present application, a reinforcing rib 20 is provided at the connection between the base 18 and the bracket 11 .

[0083] In this embodiment, the bottom of the support column 111 is connected to the base 18 via a reinforcing rib 20, so that the support column 111 of the bracket 11 can be more firmly connected to the base 18, thereby making the overall structure more stable.

[0084] In a glass kiln overflow insulation device 1 provided in the present application, a bracket 11, a pull rope 14, a rotating device 12, a supporting device 13, a slide rail 15, a pulley 16, a base 18 and a plurality of movable wheels 19 are arranged. A rotating device 12 and a supporting device 13 are arranged on the bracket 11 at intervals along a first direction. One end of the pull rope 14 is connected to the rotating device 12, and the other end is connected to the insulation brick group 2 below through the supporting device 13. When the rotating device 12 rotates, the pull rope 14 can be driven to wrap around or unwrap the rotating device 12, so that the length direction of the pull rope 14 in the free state is shortened or lengthened, so that the insulation brick group 2 connected to the other end of the pull rope 14 can be raised or lowered. One end of the support device 13 is fixedly connected to a pulley 16, which is slidably connected to the slide rail 15 along a first direction. The other end of the support device 13 is slidably connected to the bracket 11 along the first direction. Therefore, when the pulley 16 moves along the length of the slide rail 15, it can drive the support device 13 and the insulation brick group 2 supported by the support device 13 to move in the first direction or in a direction opposite to the first direction. After sliding to a preset position, the buckle 17 is pressed to fix the position of the support device 13 in the first direction. A movable wheel 19 that moves in a second direction is provided on the base 18 below the bracket 11. The movable wheel 19 can drive the base 18, the bracket 11, and the insulation brick group 2 on the bracket 11 to move in the second direction or in a direction opposite to the second direction. Therefore, the above structural arrangement can drive the insulation bricks to move up and down in the vertical direction, move in the first direction or in a direction opposite to the first direction, and move in the second direction or in a direction opposite to the second direction. That is, the position of the insulation brick group 2 can be adjusted in 6 directions, so that the position of the insulation bricks can be flexibly adjusted to meet different needs during different production processes, thereby having a good insulation effect on the glass liquid coming out of the kiln.

[0085] So far, the various embodiments of the present application have been described in detail. To avoid obscuring the concept of the present application, some details well known in the art have not been described. Based on the above description, those skilled in the art can fully understand how to implement the technical solutions disclosed herein.

[0086] Although some specific embodiments of the present application have been described in detail through examples, those skilled in the art will understand that the above examples are for illustrative purposes only and are not intended to limit the scope of the present application. Those skilled in the art will understand that the above embodiments may be modified or some technical features may be replaced by equivalents without departing from the scope and spirit of the present application. In particular, as long as there are no structural conflicts, the various technical features mentioned in the various embodiments may be combined in any manner.

Claims

1. A glass furnace overflow insulation device, characterized in that: include: A bracket, wherein a rotating device and a supporting device are provided at intervals on the top of the bracket along a first direction, the rotating device is used to rotate about a second direction, and the supporting device is movably connected to the bracket along the first direction; a pull rope, one end of which is connected to the rotating device, and the other end of which is connected to the insulation brick group through the supporting device; The rotating device rotates to drive the pull rope to be wound around the rotating device or to unwind the pull rope wound around the rotating device, thereby driving the insulation brick group to rise or fall; There is an angle between any two directions among the first direction, the second direction and the vertical direction.

2. The glass furnace overflow insulation device according to claim 1, characterized in that: Also includes: The slide rail is extended along a first direction and is arranged on the top of the bracket and is located on one side of the rotating device along a second direction. The supporting device is slidably connected to the slide rail along the extension direction of the slide rail.

3. The glass furnace overflow insulation device according to claim 2, characterized in that: Also includes: A pulley is slidably connected to the slide rail along the length direction of the slide rail, and the pulley is also fixedly connected to the supporting device.

4. The glass furnace overflow insulation device according to claim 2, characterized in that: Also includes: A buckle is provided on the supporting device to fix the supporting device to the slide rail when the supporting device slides to a preset position.

5. The glass furnace overflow insulation device according to claim 3, characterized in that: The supporting device comprises: a movable shaft, the movable shaft extending along the second direction, one end of the movable shaft being fixedly connected to the pulley, and the other end being movably connected to the bracket along the first direction; A fixed pulley is provided on the movable shaft, and the pull rope is wound around the fixed pulley and connected to the insulation brick group.

6. The glass furnace overflow insulation device according to claim 5, characterized in that: Two fixed pulleys are arranged at intervals along the length direction on each movable shaft, and a pull rope is wound around each fixed pulley. The two pull ropes are respectively used to fix the two ends of the insulation brick group along the second direction.

7. The glass furnace overflow insulation device according to claim 2, characterized in that: The rotating device comprises: a rotating shaft, the rotating shaft extending along the second direction, one end of the rotating shaft being connected to the slide rail, and the other end being rotatably connected to the bracket; A driving member is connected to the rotating shaft to drive the rotating shaft to rotate.

8. The glass furnace overflow insulation device according to claim 7, characterized in that: The rotating device further includes a bearing seat and a bearing. The bearing seat is arranged on the slide rail, and the bearing is arranged on the bearing seat. The bearing is rotatably connected to one end of the rotating shaft.

9. The glass furnace overflow insulation device according to claim 1, characterized in that: Also includes: a base, the base being arranged below the bracket; A plurality of movable wheels are respectively arranged on both sides of the base along the first direction, and each of the movable wheels moves along the second direction to drive the base to move along the second direction.

10. The glass furnace overflow insulation device according to claim 9, characterized in that: A reinforcing rib is provided at the connection between the base and the bracket.