Cooling device and glass kiln
By installing multi-layered cooling components in the glass furnace, including cooling ducts, water-cooled plates, and cooling water tanks, the problem of inadequate existing cooling methods is solved, and effective cooling of the pool wall bricks, electrode bricks, and the area around the flow hole is achieved, thus extending the service life of the glass furnace.
Patent Information
- Application Number
- CN202520500266.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-20
- Publication Date
- 2026-02-13
- Estimated Expiration
- 2035-03-20
AI Technical Summary
The existing glass furnaces use a single cooling method, resulting in poor cooling effect and failing to effectively slow down the erosion of the pool wall bricks, electrode bricks, etc., thus affecting their service life.
The system is equipped with a first cooling component, a second cooling component, and a third cooling component to provide multi-level cooling for the areas between the electrode bricks and the pool wall bricks, between the electrode bricks and the bridge bricks, and around the flow hole, including the combined use of cooling ducts, water-cooled plates, and cooling water tanks.
The combined use of multi-level cooling components significantly reduces the erosion effect on the glass furnace and extends its service life.
Smart Images

Figure CN223906738U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to glass production equipment technical field, especially relate to a cooling device and glass kiln. BACKGROUND
[0002] In the working process of glass kiln, in order to reduce the erosion and scour of high-temperature molten glass liquid to pool wall brick, electrode brick etc., generally will be through the cooling wind of exerting cooling wind cooling to protect pool wall brick, electrode brick etc., slow down the erosion and scour of high-temperature molten glass liquid to pool wall brick, electrode brick etc., but the existing cooling mode is single, resulting in its cooling effect is poor, and then, the erosion effect of slowing down pool wall brick, electrode brick etc. is not obvious. SUMMARY
[0003] The main purpose of the utility model is to provide a cooling device and glass kiln, which is designed to fully cool the eroded area of the glass kiln by setting the first cooling assembly, the second cooling assembly and the third cooling assembly, so as to effectively slow down the erosion of the glass kiln and improve the service life of the glass kiln.
[0004] To achieve the above object, the cooling device comprises:
[0005] Two mounting racks, the two mounting racks are spaced apart and mounted outside the furnace body, and one side of each mounting rack is connected to each pool wall brick;
[0006] A first cooling assembly is mounted on the mounting rack and used for cooling the gap between the electrode brick and the pool wall brick and the gap between the electrode brick and the bridge brick;
[0007] A second cooling assembly is mounted on the mounting rack and located on one side of the first cooling assembly, and the second cooling assembly is used for cooling the gap between the electrode brick and the bridge brick;
[0008] A third cooling assembly comprises a first water-cooled plate, a first cooling water bag and a second cooling water bag, the first water-cooled plate is arranged on the side of the electrode brick facing the mounting rack and used for cooling the electrode brick, the first cooling water bag is arranged on one side of the pool wall brick and one side of the first water-cooled plate, and the second cooling water bag is wrapped around the outer peripheral wall of the flow liquid hole to cool the flow liquid hole.
[0009] In an embodiment, the cooling device further comprises a fixing member mounted between the two mounting frames, and a plurality of the first cooling assemblies are mounted on the mounting frames in a spaced manner, each of the first cooling assemblies comprises a cooling air pipe forming a cooling air passage with an air inlet and an air outlet, and a fixing bolt for mounting part of the cooling air pipe on a side of one of the mounting frames away from the other mounting frame so that the air outlet of part of the cooling air pipe is opposite to the gap between the electrode brick and the bridge brick, and one of the cooling air pipes is mounted on the fixing member by the fixing bolt so that the air outlet of the cooling air pipe is opposite to the gap between the electrode brick and the bridge brick.
[0010] In an embodiment, the second cooling assembly comprises an air pipe and a connecting column, one side of the connecting column is mounted on the fixing member, and the other side of the connecting column is connected to the air pipe so that the air outlet of the air pipe is opposite to the gap between the electrode brick and the bridge brick.
[0011] In an embodiment, the air pipe is in a cylindrical structure, and a plurality of air outlets are arranged on the air pipe in a spaced manner and face the outer peripheral wall of the electrode brick so that the air outlets are opposite to the gap between the electrode brick and the bridge brick.
[0012] In an embodiment, the first water cooling plate is in a plate shape, and the first water cooling plate forms a cooling cavity with a water inlet and a water outlet.
[0013] In an embodiment, the first water cooling device comprises a pair of first water cooling plates, each of the first water cooling plates comprises a second water cooling plate and a mounting rod for mounting the second water cooling plate on the mounting frame, the second water cooling plate is in an L shape, at least part of the second water cooling plate is located on one side of the pool wall brick, and the other part of the second water cooling plate is located on one side of the bridge brick, and the two second water cooling plates surround the outer peripheral wall of the electrode brick.
[0014] In an embodiment, the second water cooling device is in a rectangular shape, and the second water cooling device forms a mounting shell with a mounting opening, a cavity for water passing through is formed in the mounting shell, and the cavity has a cooling water inlet and a cooling water outlet.
[0015] In an embodiment, the cooling device further comprises a supporting plate, one side of the fixing member is connected to the supporting plate, and the other side of each of the mounting frames is connected to each of the supporting plates.
[0016] The utility model further provides a glass kiln which comprises a furnace body and the cooling device as claimed in any one of the preceding embodiments.
[0017] In one embodiment, the furnace body further comprises an electrode support brick disposed on a side of the electrode brick facing away from the bridge brick for supporting the electrode brick.
[0018] The technical scheme of the utility model discloses fully cool the eroded area of the glass kiln through the first cooling assembly, the second cooling assembly and the third cooling assembly, so that the erosion effect of the glass kiln can be effectively slowed down, and the service life of the glass kiln is improved. BRIEF DESCRIPTION OF DRAWINGS
[0019] In order to more clearly illustrate the technical scheme in the embodiments of the utility model or the prior art, the drawings needed to be used in the embodiment or the prior art description will be briefly introduced as follows, and obviously, the drawings in the following description are only some embodiments of the utility model, and for those skilled in the art, other drawings can also be obtained according to the structure shown in these drawings without creative labor.
[0020] Figure 1 The structural schematic diagram of an embodiment of the cooling device provided by the utility model is shown in the figure.
[0021] Figure 2 The front view structural schematic diagram of an embodiment of the cooling device provided by the utility model is shown in the figure.
[0022] Figure 3 The structural schematic diagram of the water inlet and outlet of the third cooling assembly of an embodiment of the cooling device provided by the utility model is shown in the figure.
[0023] EXPLANATION OF DRAWINGS:
[0024] 10, cooling device, 1, mounting rack, 2, first cooling assembly, 21, cooling air pipe, 22, fixing part, 3, second cooling assembly, 31, air pipe, 32, connecting column, 4, third cooling assembly, 41, first water cooling plate, 42, first cooling water bag, 421, second water cooling plate, 422, mounting rod, 43, second cooling water bag, 5, supporting plate, 201, pool wall brick, 202, electrode brick, 203, bridge brick, 204, electrode support brick, 205, liquid flow hole.
[0025] The realization of the utility model, functional characteristics and advantages will be further explained by combining with the embodiments and referring to the drawings. DETAILED DESCRIPTION
[0026] The technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments of the present application, all other embodiments obtained by those skilled in the art without creative efforts fall within the scope of the present application.
[0027] It should be noted that if the embodiments of the present application involve directional indications (such as up, down, left, right, front, back, etc.), the directional indications are only used to explain the relative positional relationship, movement condition, etc. between components in a certain specific posture, and if the specific posture changes, the directional indications also change accordingly.
[0028] In addition, if the embodiments of the present application involve descriptions such as "first", "second", etc., the descriptions of "first", "second", etc. are only for description purposes, and cannot be understood as indicating or implying the relative importance of the indicated technical features or implicitly indicating the number of the indicated technical features. Therefore, the features limited by "first" and "second" can explicitly or implicitly include at least one of the features. In addition, "and / or" or "and / or" appearing throughout the text means that the three parallel solutions are included, for example, "A and / or B" includes A solution, or B solution, or A and B solutions. In addition, the technical solutions of each embodiment can be combined with each other, but it must be based on the fact that a person skilled in the art can realize it, and when the combination of technical solutions appears contradictory or unachievable, it should be considered that the combination of technical solutions does not exist and is not within the protection scope required by the present application.
[0029] The utility model provides a kind of cooling device, to be aimed at by being set first cooling component, second cooling component and third cooling component, the eroded area of glass kiln is cooled sufficiently, to be able to effectively slow down the erosion effect of glass kiln, promote the service life of glass kiln.
[0030] Please refer to Figures 1 to 3 In an embodiment of the present application, the cooling device 10 is applied to a glass kiln, the glass kiln includes a furnace body, the furnace body includes two pool wall bricks 201, electrode bricks 202 and bridge bricks 203, the electrode bricks 202 are arranged between the two pool wall bricks 201, the bridge bricks 203 are arranged on one side of the electrode bricks 202, one side of the glass kiln is provided with a liquid flow hole 205, and the cooling device 10 includes:
[0031] Two mounting frames 1 are spaced apart and mounted in the furnace body, and one side of each mounting frame 1 is connected to each pool wall brick 201.
[0032] A first cooling assembly 2 is installed on the mounting frame 1 and used to cool the gap between the electrode brick 202 and the pool wall brick 201 and the gap between the electrode brick 202 and the bridge brick 203.
[0033] A second cooling assembly 3 is installed on the mounting frame 1 and located on one side of the first cooling assembly 2, and is used to cool the gap between the electrode brick 202 and the bridge brick 203.
[0034] A third cooling assembly 4 includes a first water cooling plate 41, a first cooling water bag 42 and a second cooling water bag 43. The first water cooling plate 41 is arranged on the side of the electrode brick 202 facing the mounting frame 1 and used to cool the electrode brick 202. The first cooling water bag 42 is arranged on one side of the pool wall brick 201 and on one side of the first water cooling plate 41 and used to cool the pool wall brick 201. The second cooling water bag 43 is wrapped around the outer peripheral wall of the flow liquid hole 205 and used to cool the flow liquid hole 205.
[0035] It is known that in the glass production process, the glass kiln is used to melt the mixed material into high-quality high-temperature glass liquid for the next process. The glass kiln includes a furnace body, which includes two pool wall bricks 201, an electrode brick 202 and a bridge brick 203. The electrode brick 202 is arranged between the two pool wall bricks 201, and the bridge brick 203 is arranged on one side of the electrode brick 202. It should be noted that the electrode brick 202 can move relative to the pool wall brick 201, and there is a certain gap between the electrode brick 202 and the bridge brick 203 and the pool wall brick 201, so as to facilitate the movement of the electrode brick 202. At the same time, a flow liquid hole 205 is arranged on one side of the glass kiln, which is used to introduce the glass liquid melted in the kiln into the next process. The pool wall brick 201 is arranged on the outer peripheral wall of the flow liquid hole 205.
[0036] In order to effectively slow down the erosion effect of the glass kiln, the cooling device 10 comprises two mounting racks 1, a first cooling assembly 2, a second cooling assembly 3 and a third cooling assembly 4, wherein the two mounting racks 1 are installed at intervals outside the furnace body, one side of each mounting rack 1 is connected to each pool wall brick 201, and it is noted that the mounting rack 1 is in the shape of C. The first cooling assembly is installed on the mounting rack 1 and is used for effectively cooling the gap between the electrode brick 202 and the pool wall brick 201, thereby improving the cooling efficiency of the glass kiln; the second cooling assembly 3 is also installed on the mounting rack 1 and is located on one side of the first cooling assembly 2, and the second cooling assembly 3 is used for cooling the gap between the electrode brick 202 and the bridge brick 203, thereby effectively cooling the corresponding position between the electrode brick 202 and the bridge brick 203 to slow down the erosion of the electrode brick 202 and the bridge brick 203; at the same time, the third cooling assembly 4 comprises a first water-cooled plate 41, a first cooling water bag 42 and a second cooling water bag 43, the first water-cooled plate 41 is arranged on the side of the electrode brick 202 facing the mounting rack 1 and is used for cooling the electrode brick 202, thereby sufficiently cooling the electrode brick 202 through the first water-cooled plate 41 to effectively slow down the erosion effect of the electrode brick 202; and the first cooling water bag 42 is arranged on one side of the pool wall brick 201 and is arranged on one side of the first water-cooled plate 41, and is used for cooling the pool wall brick 201, thereby sufficiently cooling the electrode brick 202 through the first cooling water bag 42 to effectively slow down the erosion effect of the pool wall brick 201; the second cooling water bag 43 is wrapped around the outer circumferential wall of the flow liquid hole 205 and is used for cooling the flow liquid hole 205 to slow down the erosion speed of the pool wall brick 201 around the flow liquid hole 205. Further, by arranging the first cooling assembly 2, the second cooling assembly 3 and the third cooling assembly 4 on the mounting rack, the three can sufficiently cool the eroded area of the glass kiln, thereby effectively slowing down the erosion effect of the glass kiln and prolonging the service life of the glass kiln.
[0037] In an embodiment, referring to Figure 1 and Figure 2The cooling device 10 further comprises a fixing member 22 installed between two of the mounting frames 1, and the first cooling assembly 2 is provided with a plurality of first cooling assemblies 2 which are installed on the mounting frames 1 at intervals, each of the first cooling assemblies 2 comprises a cooling air pipe 21 and fixing bolts, the cooling air pipe 21 forms a cooling air passage with an air inlet and an air outlet, and the fixing bolts are used to install part of the cooling air pipe 21 on the side of one of the mounting frames 1 away from the other mounting frame 1, so that the air outlet of part of the cooling air pipe 21 is opposite to the gap between the pool wall brick 201 and the electrode brick 202, and one of the cooling air pipes 21 is installed on the fixing member 22 by the fixing bolts, and the fixing member 22 is used to install one of the cooling air pipes 21 between two of the mounting frames 1, so that the air outlet of one of the cooling air pipes 21 is opposite to the gap between the electrode brick 202 and the bridge brick 203, so that the cooling air blown out by the cooling air pipe 21 can completely cover the gap between the electrode brick 202 and the pool wall brick 201 or the gap between the electrode brick 202 and the bridge brick 203, so as to achieve the effect of sufficient cooling.
[0038] In this embodiment, in order to sufficiently cool the gap between the electrode brick 202 and the pool wall brick 201, the first cooling assembly 2 is provided with a plurality of first cooling assemblies 2 which are installed on the mounting frames 1 at intervals, it should be noted that the electrode brick 202, the pool wall brick 201 and the bridge brick 203 are all plate-shaped, and the electrode brick 202 is arranged between two pool wall bricks 201, and the bridge brick 203 is arranged on one side of the electrode brick 202, since the electrode brick 202 moves relative to the pool wall brick 201 and the bridge brick 203, there is a gap between the electrode brick 202 and the pool wall brick 201 and the bridge brick 203, and these gaps are most susceptible to erosion, and then by arranging a plurality of first cooling assemblies 2, the cooling air is blown to these gaps, and the corresponding positions between the electrode brick 202 and the pool wall brick 201 or the electrode brick 202 and the bridge brick 203 are effectively cooled, so as to slow down the erosion speed of these gaps. It should be further noted that two first cooling assemblies 2 are arranged between the gap between the electrode brick 202 and each pool wall brick 201, that is, four first cooling assemblies 2 are arranged on both sides of the electrode brick 202, of course, three or more first cooling assemblies 2 can also be arranged, and one first cooling assembly 2 is arranged between the electrode brick 202 and the bridge brick 203, of course, two or more first cooling assemblies 2 can also be arranged, in this way, the cooling air is blown to these gaps by the first cooling assembly 2, and the corresponding positions between the electrode brick 202 and the pool wall brick 201 or the electrode brick 202 and the bridge brick 203 are effectively cooled, so as to slow down the erosion speed of these gaps.
[0039] Specifically, each of the first cooling assembly 2 comprises a cooling air pipe 21 and a fixing bolt, the cooling air pipe 21 forms a cooling air passage with an air inlet and an air outlet, and the fixing bolt is used to mount part of the cooling air pipe 21 on the side of a mounting frame 1 away from another mounting frame 1, so that the air outlet of the part of the cooling air pipe 21 is opposite to the gap between the pool wall brick 201 and the electrode brick 202, four first cooling assemblies are arranged between the pool wall brick 201 and the electrode brick 202, and every two first cooling assemblies are mounted on the side of each mounting frame away from another mounting frame by the fixing bolt, so that the cooling air pipe is suspended above the electrode brick 202 and the pool wall brick 201. Meanwhile, a first cooling assembly 2 is arranged between the electrode brick 202 and the bridge brick 203, one side of the fixing member 22 is mounted on the mounting frame 1, and the other side of the fixing member 22 is mounted with the cooling air pipe 21, that is, the cooling air pipe 21 is mounted on the mounting frame 1 through the fixing member 22, so that the cooling air pipe is suspended above the gap between the electrode brick 202 and the bridge brick 203, in this way, the first cooling assembly 2 does not contact the electrode brick 202, the pool wall brick 201 and the bridge brick 203, and the cooling air pipe 21 forms a cooling air passage with an air inlet and an air outlet, that is, the air outlet of the cooling air pipe 21 is opposite to the gap between the electrode brick 202 and the pool wall brick 201 or the electrode brick 202 and the bridge brick 203. It should be noted that the fixing member 22 is T-shaped, and the cooling air pipe 21 is fixed on the fixing member 22 by bolts, and thick insulating gaskets are arranged at the bolts to ensure that the fixing member 22 and the mounting frame 1 are in an insulating state. It should be noted that the cooling air pipe 21 is a duckbill air pipe.
[0040] Further, in order to ensure the normal use of the first cooling assembly 2, the cooling air blown by the cooling air pipe 21 is provided by a cooling air fan, and it should be noted that the cooling air fan is prior art, which will not be described in detail herein.
[0041] In an embodiment, referring to Figure 1 and Figure 2 , the second cooling assembly 3 comprises an air pipe 31 and a connecting column 32, one side of the connecting column 32 is mounted on the fixing member 22, and the other side of the connecting column 32 is connected to the air pipe 31, so that the air outlet of the air pipe 31 is opposite to the gap between the electrode brick 202 and the bridge brick 203, in this way, by arranging the second cooling assembly 3, the cooling efficiency between the electrode brick 202 and the bridge brick 203 is further improved.
[0042] In this embodiment, the second cooling assembly 3 comprises an air pipe 31 and a connecting column 32, one side of the connecting column 32 is installed on the fixing member 22, and the other side of the connecting column 32 is connected to the air pipe 31, so that the air pipe 31 is in a suspended state, and the air outlet of the air pipe 31 is opposite to the gap between the electrode brick 202 and the bridge brick 203, and the cooling requirements between the electrode brick 202 and the bridge brick 203 are met through the cooperation of the first cooling assembly 2 and the second cooling assembly 3.
[0043] It should be noted that, in order to ensure the normal use of the second cooling assembly 3, the compressed air blown by the air pipe 31 is provided by an air compressor, and it should be noted that the air compressor is a prior art, and the present application will not be described in detail here.
[0044] In an embodiment, referring to Figure 1 and Figure 2 , the air pipe 31 is a cylindrical structure, and the air pipe 31 is provided with a plurality of exhaust ports arranged at intervals on the outer peripheral wall facing the electrode brick 202, and the exhaust direction of the exhaust port is opposite to the gap between the electrode brick 202 and the bridge brick 203. By arranging a plurality of exhaust ports, the gap between the bridge brick 203 and the electrode brick 202 can be sufficiently air-cooled.
[0045] In an embodiment, referring to Figure 2 , the first water-cooled plate 41 is in a plate shape, and the first water-cooled plate 41 forms a cooling cavity with a water inlet and a water outlet. It should be noted that the first water-cooled plate 41 is installed on the side of the electrode brick 202 facing the mounting frame 1, and the outer dimensions of the first water-cooled plate 41 are the same as the outer dimensions of the electrode brick 202, so that the electrode brick 202 can be cooled in time. At the same time, the first water-cooled plate 41 forms a cooling cavity with a water inlet and a water outlet, that is, the water will take away the heat of the electrode brick 202 in the process of flowing into the cooling cavity through the water inlet and then flowing out through the water outlet, thereby achieving the effect of cooling.
[0046] In an embodiment, referring to Figure 1 , the first cooling water bag 42 is provided with a pair, and each of the first cooling water bag 42 comprises a second water-cooled plate 421 and a mounting rod 422, the mounting rod 422 is used for mounting the second water-cooled plate 421 on the mounting frame 1, the second water-cooled plate 421 is in an L shape, at least part of the second water-cooled plate 421 is located on one side of the pool wall brick 201, and the other part of the second water-cooled plate 421 is located on one side of the bridge brick 203, and the two second water-cooled plates 421 are arranged around the outer peripheral wall of the electrode brick 202.
[0047] In the embodiment, the first cooling water package 42 is provided with a pair of first cooling water packages 42, and each first cooling water package 42 comprises a second water cooling plate 421 and a mounting rod 422, one side of the mounting rod 422 is mounted on the mounting frame 1, and the other side of the mounting rod 422 is mounted on the second water cooling plate 421, that is, the second water cooling plate 421 is fixedly mounted on one side of the pool wall brick 201, the electrode brick 202 and the bridge brick 203 through the mounting rod 422. At the same time, the second water cooling plate 421 is L-shaped, and at least part of the second water cooling plate 421 is located on one side of the pool wall brick 201, and the other part of the second water cooling plate 421 is located on one side of the bridge brick 203. It should be noted that the two second water cooling plates 421 surround the periphery of the electrode brick 202, and the second water cooling plate 421 can quickly take away the heat of the pool wall brick 201 and the bridge brick 203. It should be further noted that the second water cooling plate 421 and the first water cooling plate 41 have the same structure, and also form a cooling cavity with a water inlet and a water outlet, so that the water can take away the heat of the pool wall brick 201 and the bridge brick 203 during the process of flowing into the cooling cavity through the water inlet and flowing out through the water outlet, thereby achieving the effect of cooling.
[0048] In an embodiment, please refer to Figure 3 , the second cooling water package 43 is rectangular, the second cooling water package 43 forms a mounting shell with a mounting port, and a cavity for water passing through is formed in the mounting shell, and the cavity has a cooling water inlet and a cooling water outlet.
[0049] In the embodiment, the second cooling water package 43 is rectangular, the second cooling water package 43 forms a mounting shell with a mounting port, and a cavity for water passing through is formed in the mounting shell, and the cavity has a cooling water inlet and a cooling water outlet. Therefore, the mounting shell wraps around the outer peripheral wall of the flow liquid hole 205, and the flow liquid hole 205 is cooled by circulating water flow through the cooling water inlet and the cooling water outlet, thereby effectively slowing down the erosion of the pool wall brick 201 around the flow liquid hole 205. It should be noted that the cooling water sources of the first water cooling plate 41, the second water cooling plate 421 and the second cooling water package 43 all come from the cooling circulating water system. It should be further noted that the cooling circulating water system is prior art, and the present application will not be described in detail.
[0050] In an embodiment, please refer to Figure 1 and Figure 2 , the cooling device 10 further comprises a supporting plate 5, one side of each mounting frame 1 is connected to each supporting plate 5, and one side of the fixing member 22 is also connected to the supporting plate 5, so that the fixing member 22 can be stably arranged between the two mounting frames 1, thereby ensuring the stable installation of the cooling air pipe 21 and the air pipe 31. It should be noted that the supporting plate 5 is used to bear the refractory material of the glass kiln, so as to ensure that the bridge brick 203 and the pool wall brick 201 are not stressed.
[0051] The utility model also provides a glass kiln, the glass kiln includes furnace body and cooling device 10, the specific structure of cooling device 10 refers to above-mentioned embodiment, because the glass kiln of the utility model adopts all technical schemes of above-mentioned all embodiments, thus at least has all beneficial effects brought by the technical scheme of above-mentioned embodiment, here will not repeat.
[0052] In an embodiment, please refer to Figure 2 The furnace body further comprises an electrode support brick 204, which is arranged on the side of the electrode brick 202 away from the bridge brick 203 to support the electrode brick 202, so as to ensure the stability of the connection between the electrode brick 202 and the bridge brick 203 and the pool wall brick 201.
[0053] The above is only an exemplary embodiment of the utility model, and does not limit the patent scope of the utility model, and any equivalent structural transformation made by using the utility model specification and drawings, or direct / indirect application in other related technical fields is included in the patent protection scope of the utility model.
Claims
1. A cooling device applied to a glass furnace, the glass furnace comprising a furnace body, the furnace body comprising two pool wall bricks, electrode bricks, and bridge bricks, the electrode bricks being disposed between the two pool wall bricks, the bridge bricks being disposed on one side of the electrode bricks, and a flow channel being provided on one side of the glass furnace, characterized in that, The cooling device includes: Two mounting brackets are installed at intervals outside the furnace body, and one side of each mounting bracket is connected to each of the pool wall bricks; A first cooling assembly is mounted on the mounting frame and is used to cool the gaps between the electrode bricks and the pool wall bricks and the gaps between the electrode bricks and the bridge bricks. The second cooling assembly is mounted on the mounting bracket and located on one side of the first cooling assembly. The second cooling assembly is used to cool the gap between the electrode brick and the bridge brick. The third cooling assembly includes a first water-cooled plate, a first cooling water tank, and a second cooling water tank. The first water-cooled plate is disposed on the side of the electrode brick facing the mounting frame and is used to cool the electrode brick. The first cooling water tank is disposed on one side of the pool wall brick and on one side of the first water-cooled plate to cool the pool wall brick. The second cooling water tank wraps around the outer peripheral wall of the flow hole to cool the flow hole.
2. The cooling device as described in claim 1, characterized in that, The cooling device further includes a fixing member installed between the two mounting brackets. Multiple first cooling components are provided, spaced apart on the mounting brackets. Each first cooling component includes a cooling duct and a fixing bolt. The cooling duct forms a cooling air channel with an air inlet and an air outlet. The fixing bolt is used to install a portion of the cooling duct on the side of one mounting bracket away from the other, so that the air outlet of the portion of the cooling duct faces the gap between the pool wall brick and the electrode brick. One cooling duct is installed to the fixing member via the fixing bolt. The fixing member is used to install one cooling duct between the two mounting brackets, so that the air outlet of the cooling duct faces the gap between the electrode brick and the bridge brick.
3. The cooling device as described in claim 2, characterized in that, The second cooling assembly includes an air pipe and a connecting post. One side of the connecting post is mounted to the fixing member, and the other side of the connecting post is connected to the air pipe, so that the exhaust port of the air pipe is directly opposite the gap between the electrode brick and the bridge brick.
4. The cooling device as described in claim 3, characterized in that, The air pipe has a cylindrical structure and multiple spaced exhaust ports on the outer peripheral wall facing the electrode brick. The exhaust direction of the exhaust ports is directly opposite the gap between the electrode brick and the bridge brick.
5. The cooling device as described in claim 1, characterized in that, The first water-cooled plate is plate-shaped and forms a cooling cavity with an inlet and an outlet.
6. The cooling device as claimed in claim 1, characterized in that, The first cooling water pack is provided in pairs. Each first cooling water pack includes a second water-cooled plate and a mounting rod. The mounting rod is used to install the second water-cooled plate on the mounting frame. The second water-cooled plate is L-shaped. At least a portion of the second water-cooled plate is located on one side of the pool wall brick, and another portion of the second water-cooled plate is located on one side of the bridge brick. The two second water-cooled plates surround the outer peripheral wall of the electrode brick.
7. The cooling device as claimed in claim 1, characterized in that, The second cooling water tank is rectangular and forms a mounting housing with an installation port. A cavity for water supply is formed inside the mounting housing, and the cavity has a cooling water inlet and a cooling water outlet.
8. The cooling device as described in claim 2, characterized in that, The cooling device also includes a tray, with one side of each mounting bracket connected to each tray, and one side of the fastener connected to the tray.
9. A glass kiln, characterized in that, It includes a furnace body and a cooling device as described in any one of claims 1 to 8.
10. The glass furnace as described in claim 9, characterized in that, The furnace body also includes electrode support bricks, which are located on the side of the electrode bricks away from the bridge bricks, for supporting the electrode bricks.