Furnace body cooling device for glass production
By coordinating the design of the circulation component, deceleration component, and rotation component, the problem of low wind cooling efficiency was solved, achieving uniform cooling and temperature control of the furnace body, thereby improving glass production efficiency and product quality.
Patent Information
- Application Number
- CN202520421823.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-12
- Publication Date
- 2026-01-30
- Estimated Expiration
- 2035-03-12
AI Technical Summary
In existing technologies, wind-cooled glass production furnaces have low cooling efficiency, resulting in extended production cycles, inaccurate temperature control, reduced glass product quality, and increased energy consumption.
The design employs a synergistic approach of circulation components, deceleration components, and rotation components. It utilizes the coolant to remove heat through heat-conducting fins and the rotation component to uniformly cool the furnace body. The combination of a one-way valve and a reduction gear system optimizes the flow of coolant and the rotation speed.
This resulted in more uniform temperature throughout the furnace body, improving production efficiency and product quality stability, while reducing energy consumption and production costs.
Smart Images

Figure CN223852474U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model belongs to glass manufacturing technology relates to a glass production with furnace body cooling device. BACKGROUND
[0002] The glass production furnace is the core equipment in the glass manufacturing process, mainly used for heating the raw materials in glass production to a high temperature melting state, forming a glass liquid, so as to subsequent forming and processing, according to the different production process, usually divided into continuous furnace, intermittent furnace, electric furnace, etc.
[0003] Such as patent (CN214009977U), discloses a kind of cooling cover fan cooling device for furnace, wherein, it is recorded "including installation shell and fan, fan is installed in installation shell, the inside of installation shell is equipped with cooling pipe, fan is installed on fixed frame, fixed frame is vertically welded on the inner wall of installation shell, cooling pipe is installed with cooling liquid accelerating device, beneficial effect is: the cooling device for furnace of the utility model is installed cooling pipe in the periphery of fan, cooling pipe is spiral, surrounds the four around of fan, cooling pipe is also installed with cooling liquid accelerating device, utilizes the wind power generated when fan rotates, rotates to push fan blade, so that fan blade drives rotating shaft and propeller rotation, cooling liquid in cooling pipe is accelerated, so that cooling liquid accelerates flow, carries away more heat, improves the cooling effect of fan, simultaneously realizes energy conversion, wind power generated by fan is converted into mechanical energy by fan blade, and then reused".
[0004] The prior art has the following technical defects: in the glass production process, when air is used to cool the furnace body, the specific heat capacity of air is much lower than that of water or other liquid media, and the cooling efficiency is relatively low. The deficiency in efficiency not only prolongs the production cycle, but also may lead to inaccurate temperature control of the furnace body, thereby affecting the quality of glass products. The increase of cooling time will indirectly lead to the increase of energy consumption and the increase of production cost. UTILITY MODEL CONTENTS
[0005] The utility model solves the technical problem that: in the glass production process, when air is used to cool the furnace body, the specific heat capacity of air is much lower than that of water or other liquid media, and the cooling efficiency is relatively low. The deficiency in efficiency not only prolongs the production cycle, but also may lead to inaccurate temperature control of the furnace body, thereby affecting the quality of glass products. The increase of cooling time will indirectly lead to the increase of energy consumption and the increase of production cost. The utility model overcomes the deficiencies of the prior art and provides a furnace body cooling device for glass production.
[0006] The utility model discloses a base is provided with support shell, the support shell inside rotation is connected with the main part of the smelting furnace, and the inside bottom of base is provided with the water storage groove, and the inside top of base is close to the water storage groove and is fixed with a plurality of groups of heat conduction fins, and the inside top of base is provided with the cooling groove, and the outside of base is provided with circulating assembly, and the outside one side of main part of the smelting furnace is provided with rotating assembly, and circulating assembly and rotating assembly are connected with each other through speed reducer assembly.
[0007] Circulating assembly includes drive motor, drive motor is located at the top of base, and the output of drive motor is fixed with drive rod, and the outside of base is close to drive rod and is installed with sealing shell, and one end of drive rod is located in the inside of sealing shell, and the end of sealing shell is installed with impeller main part away from drive motor, and the first water pipe is installed at the end of impeller main part, and the first water pipe is communicated with water storage groove, and the second water pipe is set up on the side away from the first water pipe of water storage groove, and the cooling groove is communicated with water storage groove through the second water pipe, and the third water pipe is set up in the inside of cooling groove, and the third water pipe is communicated with sealing shell away from the end of cooling groove, and the one-way valve is installed in the inside of third water pipe.
[0008] Rotating assembly includes first gear, and the first gear is located at the outside of drive rod, and the first gear is connected with second gear through speed reducer assembly, and the side close to drive rod of the outside of base is fixed with support table, and the top of support table is rotatably connected with worm, and the end close to support table of main part of the smelting furnace is fixed with worm wheel, and worm wheel is engaged with worm.
[0009] Speed reducer assembly includes support frame, and the support frame is located at the side close to drive rod of base, and the side of support frame is rotatably connected with first speed reduction gear, and the outside of first speed reduction gear is engaged with drive rod, and the outside of first speed reduction gear is engaged with second speed reduction gear, and second speed reduction gear is rotatably connected with support frame, and the outside of second speed reduction gear is engaged with rotating assembly.
[0010] The outside of third water pipe is installed with drain valve, and the outside one side of drain valve is installed with handle.
[0011] The outside of main part of the smelting furnace is fixed with heat conduction plate, and heat conduction plate is located between support shell and main part of the smelting furnace.
[0012] Work process or working principle: first, the furnace body is installed in the support shell on the top of the base, when the furnace body needs to be cooled down after work, inject cooling liquid into the cooling tank, the cooling liquid enters the water tank through the circulating assembly and contacts the heat conduction sheet, the heat conduction sheet is made of pure copper, the cooling liquid can quickly take away the heat of the furnace body through the heat conduction sheet, and then enters the cooling tank again to dissipate heat and achieve the effect of cooling down, meanwhile, when the circulating assembly works, the furnace body rotates uniformly in the support shell through the cooperation of the speed reducer assembly and the rotating assembly, so that the furnace body is cooled down more uniformly, the furnace body is cooled down by the cooling liquid, one side can take away more heat, and the furnace body is rotated constantly, so that the cooling speed of the furnace body is more uniform, when the cooling liquid is injected into the cooling tank, the cooling liquid enters the water tank through the third water pipe and the second water pipe and contacts the heat conduction sheet, at this time, the driving motor starts to work and drives the driving rod and the impeller body to rotate in the sealing shell, the impeller body converts mechanical energy into kinetic energy of the liquid by rotating, so that the liquid flows in the second water pipe, meanwhile, the one-way valve is arranged in the third water pipe, so that the cooling liquid circulates between the first water pipe, the second water pipe and the third water pipe, meanwhile, when the sealing shell rotates, the first speed reducing gear on one side of the sealing shell driving support frame on the outer side of the driving rod starts to rotate, the driving rod rotates at a high speed, and the first speed reducing gear and the second speed reducing gear are matched to reduce the speed, then the second speed reducing gear and the second gear drive the worm to rotate outside the support table, the worm is engaged with the worm wheel to drive the furnace body to rotate uniformly in the base, after the furnace body is cooled down, the drain valve is opened and closed by rotating the handle, and the cooling liquid in the device is discharged, so as to reduce the influence of the cooling liquid on the work of the furnace body, avoid the direct contact between the furnace body and the support shell, reduce the abrasion speed of the furnace body when rotating, and increase the service life of the device.
[0013] Compared with the prior art, the beneficial effects of the utility model are that: through the cooperation of the speed reducer assembly and the rotating assembly, the furnace body rotates uniformly in the support shell, so that the furnace body is cooled down more uniformly, the furnace body is cooled down by the cooling liquid, one side can take away more heat, and the furnace body is rotated constantly, so that the cooling speed of the furnace body is more uniform, the stability and efficiency of the furnace body temperature are further improved, and the practicality of the device is increased.
[0014] The utility model discloses a through the synergistic work of circulating assembly, deceleration assembly and rotation component, realize the efficient cooling of the main body of the smelting furnace, and circulating assembly ensures the continuous flow of coolant, and deceleration assembly controls the flow rate of coolant to optimize the cooling effect, and rotation component makes the main body of the smelting furnace rotate constantly in the cooling process, thereby the temperature consistency of the main body of the smelting furnace everywhere is improved significantly, this design effectively reduces the local overheating or supercooling phenomenon caused by temperature difference, avoids the fluctuation of product quality, finally improves production efficiency and product yield. BRIEF DESCRIPTION OF DRAWINGS
[0015] Fig. 1 It is the structural schematic diagram of the support shell of the utility model,
[0016] Fig. 2 It is the structural schematic diagram of the main body of the smelting furnace of the utility model,
[0017] Fig. 3 It is the structural schematic diagram of the driving motor of the utility model,
[0018] Fig. 4 It is the structural schematic diagram of the first water pipe of the utility model,
[0019] Fig. 5 It is Fig. 3 A place enlarged view of.
[0020] In the drawing: 1, base 11, support shell 12, main body of smelting furnace 13, water storage tank 14, heat conduction sheet 15, cooling tank 2, driving motor 21, driving rod 22, sealing shell 23, impeller main body 24, first water pipe 25, second water pipe 26, third water pipe 27, check valve 3, first gear 31, second gear 32, support table 33, worm 34, 4, support frame 41, first reduction gear 42, second reduction gear 5, drain valve 51, handle 6, heat conduction plate. DETAILED DESCRIPTION
[0021] Example 1
[0022] As Figs. 1-5 Shown, including base 1, the top of base 1 is equipped with support shell 11, support shell 11 inside rotationally connected with main body of smelting furnace 12, the bottom of base 1 inboard is equipped with water storage tank 13, the top of base 1 inboard is close to water storage tank 13 and is fixedly connected with multiple groups of heat conduction sheets 14, and the top of base 1 inboard is provided with cooling tank 15, and the outside of base 1 is provided with circulating assembly, and one side of main body of smelting furnace 12 outside is provided with rotation component, and circulating assembly and rotation component are connected with each other through deceleration assembly.
[0023] During operation, the furnace body 12 is first installed inside the supporting shell 11 on top of the base 1. When the furnace body 12 needs to be cooled after operation, coolant is injected into the cooling tank 15. The coolant enters the water storage tank 13 through the circulation component and comes into contact with the heat-conducting plate 14. The heat-conducting plate 14 is made of pure copper. The coolant can quickly carry away the heat of the furnace body 12 through the heat-conducting plate 14 and then enter the cooling tank 15 again to dissipate the heat and achieve the cooling effect. At the same time, when the circulation component is working, the furnace body 12 rotates evenly inside the supporting shell 11 through the cooperation of the deceleration component and the rotation component, making the cooling of the furnace body 12 more uniform. By cooling the furnace body with coolant, more heat can be carried away on one side. At the same time, the continuous rotation of the furnace body 12 makes the cooling speed of the furnace body 12 more uniform, further improving the stability and efficiency of the furnace body temperature and increasing the practicality of the device.
[0024] Example 2
[0025] like Figs. 1-5 As shown, the circulation assembly includes a drive motor 2, which is located on the top of the base 1. A drive rod 21 is fixedly connected to the output end of the drive motor 2. A sealing shell 22 is installed on the outside of the base 1 near the drive rod 21. One end of the drive rod 21 is located inside the sealing shell 22. An impeller body 23 is installed on the end of the sealing shell 22 away from the drive motor 2. A first water supply pipe 24 is installed at the end of the impeller body 23. The first water supply pipe 24 is connected to a water storage tank 13. A second water supply pipe 25 is provided on the side of the water storage tank 13 away from the first water supply pipe 24. A cooling tank 15 is connected to the water storage tank 13 through the second water supply pipe 25. A third water supply pipe 26 is provided inside the cooling tank 15. The end of the third water supply pipe 26 away from the cooling tank 15 is connected to the sealing shell 22. A one-way valve is installed inside the third water supply pipe 26. 27. The rotating assembly includes a first gear 3, which is located outside the drive rod 21. The first gear 3 and the second gear 31 are connected through a reduction assembly. A support platform 32 is fixedly connected to the outer side of the base 1 near the drive rod 21. A worm gear 33 is rotatably connected to the top of the support platform 32. A worm wheel 34 is fixedly connected to the end of the furnace body 12 near the support platform 32. The worm wheel 34 meshes with the worm gear 33. The reduction assembly includes a support frame 4, which is located on the side of the base 1 near the drive rod 21. A first reduction gear 41 is rotatably connected to one side of the support frame 4. The outer side of the first reduction gear 41 meshes with the drive rod 21. A second reduction gear 42 meshes with the outer side of the first reduction gear 41. The second reduction gear 42 is rotatably connected to the support frame 4. A rotating assembly meshes with the outer side of the second reduction gear 42.
[0026] When working, when the cooling liquid is injected into the inside of the cooling groove 15, the cooling liquid enters the inside of the water storage groove 13 along the third water pipe 26 and the second water pipe 25 and contacts the heat conduction sheet 14, at this time, the driving motor 2 starts to work, drives the driving rod 21 and the impeller main body 23 to rotate in the sealing shell 22, the impeller main body 23 converts mechanical energy into kinetic energy of liquid by rotating, realizes the liquid flow in the second water pipe 25, and the one-way valve 27 is arranged in the third water pipe 26, so that the cooling liquid is circulated between the first water pipe 24, the second water pipe 25 and the third water pipe 26, and when the sealing shell 22 rotates, the sealing shell 22 on the outside of the driving rod 21 drives the first speed reducer 41 on one side of the driving support frame 4 to start rotating, the driving rod 21 rotates at a relatively high speed, is reduced in speed through cooperation of the first speed reducer 41 and the second speed reducer 42, and then the second speed reducer 42 and the second gear 31 drive the worm 33 to rotate on the outside of the support table 32, the worm 33 is engaged with the worm wheel 34, and the furnace main body 12 is uniformly rotated in the base 1, the furnace main body 12 is uniformly cooled through cooperation of parts, and the possibility that the quality of the glass in the furnace main body 12 is affected due to uneven cooling of the furnace main body 12 is reduced.
[0027] Example 3
[0028] As shown in Figs. 1-3 , the third water pipe 26 is provided with a drain valve 5, the drain valve 5 is provided with a handle 51 on one side, the furnace main body 12 is fixedly connected with a heat conduction plate 6, and the heat conduction plate 6 is located between the support shell 11 and the furnace main body 12.
[0029] When working, after the furnace main body 12 is cooled, the handle 51 is rotated to open and close the drain valve 5, the cooling liquid in the device is discharged, the influence of the cooling liquid on the working of the furnace main body 12 is reduced, the furnace main body 12 is prevented from directly contacting the support shell 11, the abrasion speed of the furnace main body 12 is reduced when rotating, and the service life of the device is prolonged.
[0030] In the utility model, the description of the structure direction and relative position relation, such as the description of front, back, left, right, up and down, does not constitute the limitation to the utility model, and is only convenient for description.
Claims
1. A furnace cooling device for glass production, characterized by: The utility model provides a melting furnace, including base (1), the top of base (1) is equipped with the support shell (11), the inside rotation of support shell (11) is connected with the furnace body (12), the bottom of base (1) inside is equipped with the water storage groove (13), the top of base (1) inside is close to water storage groove (13) and is fixedly connected with multiple groups of heat conduction sheet (14), the top of base (1) inside is provided with cooling tank (15), the outside of base (1) is provided with circulating assembly, the outside one side of furnace body (12) is provided with rotating assembly, and circulating assembly and rotating assembly are connected with each other through speed reducer assembly.
2. The furnace cooling device for glass production according to claim 1, characterized in that: The circulating assembly includes a drive motor (2), the drive motor (2) is located on the top of the base (1), the drive motor (2) is fixedly connected with a drive rod (21), the outer side of the base (1) is close to the drive rod (21) and is provided with a sealing shell (22), one end of the drive rod (21) is located in the sealing shell (22), the sealing shell (22) is fixedly connected with an impeller body (23) at one end away from the drive motor (2), the impeller body (23) is provided with a first water pipe (24) at one end, the first water pipe (24) is communicated with the water storage groove (13), the water storage groove (13) is provided with a second water pipe (25) at one end away from the first water pipe (24), the cooling tank (15) is communicated with the water storage groove (13) through the second water pipe (25), the cooling tank (15) is provided with a third water pipe (26) inside, the third water pipe (26) is communicated with the sealing shell (22) at one end away from the cooling tank (15), and the third water pipe (26) is provided with a one-way valve (27) inside.
3. The furnace cooling device for glass production according to claim 1, characterized in that: The rotating assembly includes a first gear (3), the first gear (3) is located on the outer side of the drive rod (21), the first gear (3) is connected with a second gear (31) through a speed reducer assembly, the outer side of the base (1) is fixedly connected with a support table (32) at one side close to the drive rod (21), the support table (32) is rotatably connected with a worm (33) at the top, the furnace body (12) is fixedly connected with a worm wheel (34) at one end close to the support table (32), and the worm wheel (34) is engaged with the worm (33).
4. The furnace cooling device for glass production according to claim 1, characterized in that: The speed reducer assembly includes a support frame (4), the support frame (4) is located on one side of the base (1) close to the drive rod (21), one side of the support frame (4) is rotatably connected with a first speed reducer gear (41), the first speed reducer gear (41) is engaged with the drive rod (21) on the outer side, the first speed reducer gear (41) is engaged with a second speed reducer gear (42) on the outer side, the second speed reducer gear (42) is rotatably connected with the support frame (4), and the second speed reducer gear (42) is engaged with the rotating assembly on the outer side.
5. The furnace cooling device for glass production according to claim 2, characterized in that: The third water pipe (26) is provided with a drain valve (5) on the outer side, and the drain valve (5) is provided with a handle (51) at one side of the outer side.
6. The furnace cooling device for glass production according to claim 1, characterized in that: The outer side of the furnace body (12) is fixedly connected with a heat conduction plate (6), and the heat conduction plate (6) is located between the support shell (11) and the furnace body (12).
Citation Information
Patent Citations
Cooling cover fan cooling device for furnace body
CN214009977U