Kiln device for producing high-performance borosilicate glass

By designing a cooling component including a base, a lift, an embedded block, an air inlet, a second air outlet and an elastic member, the problem of uneven cooling in borosilicate glass production is solved, and uniform cooling and efficient cooling of flat glass are achieved.

CN119983828AActive Publication Date: 2025-05-13YAOHUA SPECIAL GLASS (FENGYANG) CO LTD
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Patent Information

Application Number
CN202510296584.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-13
Publication Date
2025-05-13
Estimated Expiration
2045-03-13

AI Technical Summary

Technical Problem

In the existing borosilicate glass production technology, uneven cooling of flat glass leads to cracks, and double-sided cooling technology is difficult to effectively cool down the lower surface, affecting cooling efficiency.

Method used

A high-performance borosilicate glass production kiln device is designed, and a cooling assembly is made of a base, a lifting seat, an embedding block, an air inlet, a second air outlet and an elastic member. The upper surface and the second cooling passage are cooled through the first cooling passage, and the glass plate is displaced upwards from the support assembly through the airflow, thereby improving the cooling efficiency of the lower surface.

Benefits of technology

The uniform cooling of flat glass is achieved, reducing the temperature difference and overall cooling time, improving the cooling efficiency, and reducing the risk of glass cracks.

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Abstract

The invention discloses a kiln device for high-performance borosilicate glass production, and relates to the technical field of high-performance borosilicate glass production.The kiln device comprises a rack, and a conveying assembly is arranged on the rack; the bearing assembly is arranged on the conveying assembly, the bearing assembly is used for bearing the plate glass, the cooling assembly comprises a base, a lifting seat, an embedded block, an air inlet, a second air opening, an elastic piece and a closing piece, the base is fixed to the conveying belt, the lifting seat is slidably connected into the base, the elastic piece is arranged between the lifting seat and the base, and the embedded block is embedded into the elastic piece. The embedded block is embedded in the lifting base, the air inlets are formed in the two ends of the embedded block, and the second air opening is formed in the upper portion of the embedded block. When the second cooling channel discharges air, under the action of airflow, the plate glass can passively move upwards so as to be separated from the bearing assembly, the cooling effect of the lower surface of the plate glass is good, the temperature difference of the plate glass can be reduced, and the overall cooling time of the glass is shortened.
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Description

Technical Field

[0001] The invention relates to the technical field of high-performance borosilicate glass production, and in particular to a kiln device for producing high-performance borosilicate glass. Background Art

[0002] Borosilicate glass is a special glass with silicon dioxide and boron oxide as the main components. It is widely used due to its excellent physical and chemical properties. During the preparation process: its main raw materials are high-purity silicon dioxide and boron trioxide, and auxiliary materials such as aluminum oxide, sodium oxide and potassium oxide need to be added. The raw materials are passed into the kiln and melted at high temperature to form glass liquid. The molten glass liquid is pressed-cut and then annealed to form borosilicate glass. The formed flat glass is transported to the cooling component through the conveying component for cooling. Cooling generally uses cold air. Because the temperature of the upper surface of the flat glass drops faster than that of the lower surface, in order to avoid cracks in the glass due to uneven cooling, the cooling time needs to be extended, resulting in low cooling efficiency. In the prior art, double-sided cooling is used, that is, by blowing air to cool the upper and lower surfaces of the flat glass at the same time. However, the part of the glass that contacts the conveying component is difficult to be directly contacted by the cold air, resulting in insufficient temperature drop on the lower surface. Summary of the invention

[0003] The object of the present invention is to provide a kiln device for producing high-performance borosilicate glass to solve the deficiencies in the above-mentioned prior art.

[0004] In order to achieve the above object, the present invention provides the following technical solution: a kiln device for producing high-performance borosilicate glass, comprising:

[0005] A frame, on which a transmission component is arranged;

[0006] Supporting components, the supporting components are all arranged on the conveying components, and the supporting components are used to support the flat glass. The cooling component includes a base, a lifting seat, an embedded block, an air inlet, a second air outlet, an elastic member, and a closing member. The base is fixed on the conveyor belt, the lifting seat is slidably connected in the base, the elastic member is arranged between the lifting seat and the base, the embedded block is embedded in the lifting seat, the air inlet is opened at both ends of the embedded block, and the second air outlet is opened at the upper part of the embedded block;

[0007] The cooling assembly includes a shell, an air source, a hydraulic cylinder, a side plate, and an air guide hole. A first air outlet is provided inside the shell. The shell, the first air outlet, and the air source form a first cooling channel. The upper surface of the flat glass is cooled through the first cooling channel. The side plate is mounted on the shell. The air guide hole is provided in the side plate.

[0008] The hydraulic cylinder is used to drive the shell to move in the vertical direction. During the downward movement of the shell, the lifting seat moves downward synchronously to enable the closing piece to be passively unfolded. A second cooling channel is formed between the air source, the air guide hole, the air inlet, and the second air outlet, and the lower surface of the flat glass is cooled through the second cooling channel.

[0009] Preferably, the transmission assembly includes a transmission shaft, gears, chains and a driving unit, the transmission shaft is fixedly mounted on a frame, the gears are fixedly mounted on the transmission shaft, the gears are connected via a chain transmission, and the driving unit is connected to the transmission shaft via a transmission connection.

[0010] Preferably, the supporting assembly further comprises an anti-slip pin, one end of which slides through the base and is then fixed to the bottom surface of the lifting seat.

[0011] Preferably, the embedding block and the lifting seat are arranged to be detachably connected.

[0012] Preferably, the cooling assembly further comprises a pressing plate and a limiting block, wherein the pressing plate is fixedly mounted on the side plate, and the limiting block is fixedly mounted on the pressing plate.

[0013] Preferably, it further comprises a mounting frame, wherein the mounting frame is fixedly mounted on both sides of the frame, the hydraulic cylinder is fixedly mounted on the mounting frame, and the output end of the hydraulic cylinder is fixedly mounted on the housing.

[0014] Preferably, the flux of the first air outlet is not greater than the flux of the second air outlet.

[0015] Preferably, a first arc chamfer is provided at one end of the pressing plate, and a second arc chamfer is provided at a lower portion of a side of the pressing plate close to the flat glass.

[0016] Preferably, the upper portion of the air guide hole is connected to the air source, and the lower portion of the air guide hole is matched with the air inlet.

[0017] Preferably, the air source delivers filtered air into the housing.

[0018] In the above technical scheme, the present invention provides a kiln device for producing high-performance borosilicate glass. When the second cooling channel is discharging air, under the action of the airflow, the flat glass will passively move upward to separate from the supporting component. The cooling effect of the lower surface of the flat glass is good, which helps to reduce the temperature difference of the flat glass and reduce the overall cooling time of the glass. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] In order to more clearly illustrate the embodiments of the present application or the technical solutions in the prior art, the drawings required for use in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments recorded in the present invention. For ordinary technicians in this field, other drawings can also be obtained based on these drawings.

[0020] Figure 1 This is a schematic diagram of the overall structure of a kiln device for producing high-performance borosilicate glass according to the present invention;

[0021] Figure 2 This is a schematic diagram of a transmission component of a kiln device for producing high-performance borosilicate glass according to the present invention;

[0022] Figure 3 A chain schematic diagram of a kiln device for producing high-performance borosilicate glass according to the present invention;

[0023] Figure 4 It is a partial cross-sectional view of a cooling component of a kiln device for producing high-performance borosilicate glass according to the present invention;

[0024] Figure 5 The invention provides an accessory for a kiln device for producing high-performance borosilicate glass. Figure 4 The enlarged schematic diagram of point A in the middle;

[0025] Figure 6 The invention provides an accessory for a kiln device for producing high-performance borosilicate glass. Figure 4 The enlarged schematic diagram of point B in the middle;

[0026] Figure 7 This is a schematic diagram of the structure of a blocking block of a kiln device for producing high-performance borosilicate glass according to the present invention;

[0027] Figure 8 This is a schematic structural diagram of a supporting component of a kiln device for producing high-performance borosilicate glass according to the present invention when it is not under pressure;

[0028] Fig. 9 An exploded view of a support assembly of a kiln device for producing high-performance borosilicate glass according to the present invention;

[0029] Fig.10 This is a schematic diagram of the pressure plate structure of a kiln device for producing high-performance borosilicate glass according to the present invention.

[0030] Explanation of the reference numerals in the accompanying drawings: 1. Frame; 2. Transmission assembly; 21. Drive shaft; 22. Gear; 23. Chain; 3. Drive unit; 4. Cooling assembly; 41. Shell; 411. First air outlet; 42. Air source; 43. Hydraulic cylinder; 44. Mounting frame; 45. Pressing plate; 451. First circular chamfer; 452. Second circular chamfer; 46. Limiting block; 47. Side panel; 471. Air guide hole; 48. Blocking block; 5. Supporting assembly; 51. Base; 52. Lifting seat; 53. Embedded block; 54. Air inlet; 56. Second air outlet; 57. Anti-drop pin; 58. Elastic member; 59. Closing member. DETAILED DESCRIPTION

[0031] In order to enable those skilled in the art to better understand the technical solution of the present invention, the present invention will be further described in detail below with reference to the accompanying drawings.

[0032] See also Figure 1-10 , a kiln device for producing high-performance borosilicate glass provided by an embodiment of the present invention comprises:

[0033] A frame 1, on which a transmission component 2 is arranged;

[0034] The supporting assembly 5 is arranged on the conveying assembly 2. The supporting assembly 5 is used to support the flat glass. The supporting assembly 5 includes a base 51, a lifting seat 52, an embedding block 53, an air inlet 54, a second air outlet 56, an elastic member 58, and a closing member 59. The base 51 is fixed on the conveying assembly 2. The lifting seat 52 is slidably connected in the base 51. The elastic member 58 is arranged between the lifting seat 52 and the base 51. The embedding block 53 is embedded in the lifting seat 52. The air inlet 54 is provided at both ends of the embedding block 53. The second air outlet 56 is provided at the upper part of the embedding block 53.

[0035] The cooling assembly 4 includes a shell 41, an air source 42, a hydraulic cylinder 43, a side plate 47, and an air guide hole 471. A first air port 411 is provided inside the shell 41. The shell 41, the first air port 411, and the air source 42 form a first cooling channel. The upper surface of the flat glass is cooled through the first cooling channel. The side plate 47 is installed on the shell 41. The air guide hole 471 is provided in the side plate 47.

[0036] The hydraulic cylinder 43 is used to drive the shell 41 to move in the vertical direction. During the downward movement of the shell 41, the lifting seat 52 moves downward synchronously, so that the closing piece 59 is passively unfolded. A second cooling channel is formed between the air source 42, the air guide hole 471, the air inlet 54, and the second air outlet 56, and the lower surface of the flat glass is cooled through the second cooling channel.

[0037] In the embodiment of the present invention, the frame 1 is fixed to the bottom surface, and the frame 1 is arranged along the discharging direction of the kiln. After being cut, the discharged glass substrate is transported to the conveying assembly 2 by the industrial robot. Since the conveying assembly 2 is covered by the supporting assembly 5, the glass plate placed on the supporting assembly 5 will also be displaced step by step through the movement of the conveying assembly 2, and the purpose of moving the glass plate to the cooling assembly 4 is achieved through the conveying assembly 2.

[0038] Through the setting of the elastic member 58, the elastic member 58 applies an upward force to the lifting seat 52, so that the bottom surface of the lifting seat 52 is separated from the base 51. When the glass plate is placed on the lifting seat 52, the elastic member 58 is only slightly compressed. As the conveying component 2 moves, the glass plate is conveyed to the bottom of the cooling component 4 and then stops. At this time, the hydraulic cylinder 43 drives the shell 41 to move downward, and the shell 41 will cover the top of the glass plate. After the air source 42 is turned on, it continuously draws air into the shell 41, and the air pressure in the shell 41 increases. A large amount of air will be discharged through the first air outlet 411, and the discharged air will contact the upper surface of the glass plate to quickly reduce the temperature of the upper surface of the glass plate.

[0039] See attached Figure 4 and attached Figure 5 When the shell 41 moves downward, the side plates 47 fixed on both sides thereof will fit on the end surface of the embedding block 53, and the lower part of the air guide hole 471 will be connected to the air inlet 54 located on the embedding block 53, and the upper part of the air guide hole 471 will be connected to the inner cavity of the shell 41, so the air in the shell 41 will be transported to the air inlet 54 through the air guide hole 471, and the air in the air inlet 54 will be discharged through the second air outlet 56, and the air discharged through the second air outlet 56 will cool down the lower surface of the glass plate, so as to help cool down the position where the glass plate is supported and help reduce the temperature difference between the upper and lower surfaces of the glass plate;

[0040] During the downward movement of the shell 41, the lifting seat 52 will also be squeezed, and the lifting seat 52 will overcome the elastic force of the elastic member 58 to move downward. During the downward movement of the lifting seat 52, the closing member 59 will be expanded, so that the gap between the two adjacent cooling components 4 will be blocked by the closing member 59. This arrangement creates a closed surface on the lower surface of the glass plate, and the air discharged through the second air outlet 56 must exert an upward force on the glass plate in order to be discharged. In this way, the glass plate will move upward and separate from the lifting seat 52, thereby forming an air flow channel between the supporting component 5 and the glass plate, and the air will be discharged outward from the channel, which greatly improves the cooling efficiency of the lower surface of the glass plate. After the lower surface of the glass plate is separated from the supporting component 5, the water stains and other attachments remaining on the glass plate will be separated from the glass plate under the action of the high-speed airflow, which is helpful for later stacking.

[0041] In the embodiments of the present invention, please refer to Figure 2 and Figure 3 The transmission assembly 2 includes a transmission shaft 21, a gear 22, a chain 23 and a driving unit 3. The transmission shaft 21 is fixedly mounted on the frame 1, the gear 22 is fixedly mounted on the transmission shaft 21, the gears 22 are transmission connected by the chain 23, and the driving unit 3 and the transmission shaft 21 are transmission connected.

[0042] The driving unit 3 is used to drive the transmission shaft 21 to rotate. When the transmission shaft 21 rotates, it can drive the gear 22 to rotate. When the gear 22 rotates, it can drive the chain 23 to rotate. The base 51 is fixed on the chain 23. Therefore, when the chain 23 moves, it can synchronously drive the supporting assembly 5 to move, and the glass plate on the supporting assembly 5 will also move synchronously.

[0043] In the embodiments of the present invention, please refer to Fig. 9 The supporting assembly 5 further includes an anti-dropout pin 57 , one end of which slides through the base 51 and is fixed to the bottom surface of the lifting seat 52 .

[0044] The anti-drop pin 57 prevents the lifting seat 52 from being separated from the base 51 , so that the lifting seat 52 can only slide along the base 51 .

[0045] In the embodiments of the present invention, please refer to Fig. 9 The embedding block 53 and the lifting seat 52 are detachably connected. The detachable setting of the embedding block 53 can significantly reduce the manufacturing cost. By performing wire cutting on the lifting seat 52 and the embedding block 53, the two can be closely matched to avoid air leakage.

[0046] In the embodiments of the present invention, please refer to Figure 4-6 The cooling assembly 4 further includes a pressing plate 45 and a limiting block 46 . The pressing plate 45 is fixedly mounted on the side plate 47 , and the limiting block 46 is fixedly mounted on the pressing plate 45 .

[0047] The pressing plate 45 is installed on the side plate 47. When the side plate 47 moves downward, the pressing plate 45 will be pressed on the supporting assembly 5. The pressing plate 45 presses the lifting seat 52, so that the lifting seat 52 overcomes the elastic force of the elastic member 58 and moves downward. The limit block 46 can limit the four corners of the glass plate. When the glass plate is blown upward by the airflow, its floating height is limited by the limit block 46 to avoid the height being too high and causing the flow velocity of the air flow channel to be reduced.

[0048] In the embodiments of the present invention, please refer to Figure 1, and also includes a mounting frame 44, which is fixedly mounted on both sides of the frame 1, the hydraulic cylinder 43 is fixedly mounted on the mounting frame 44, and the output end of the hydraulic cylinder 43 is fixedly mounted on the housing 41.

[0049] The mounting frames 44 are fixedly mounted on both sides of the frame 1 , and the height of the housing 41 can be adjusted by extending and retracting the hydraulic cylinder 43 .

[0050] See also Figure 7 As shown, a blocking block 48 is provided on the shell 41 to prevent the glass plate from being displaced to both sides under the action of high-speed airflow, and the lower part of the blocking block 48 is longer, which can also play a blocking role. When the shell 41 has not completely fallen, the blocking block 48 is adjusted to the moving path of the glass plate through the appropriate height of the shell 41 to hinder the glass plate from moving forward.

[0051] In the embodiments of the present invention, please refer to Figure 4 , the flux of the first air outlet 411 is not greater than the flux of the second air outlet 56.

[0052] The number of the first air outlets 411 is small, so as to avoid excessive air volume causing the upper surface to cool too quickly, and also reduce the pressure of the air discharged from the first air outlets 411 on the glass plate, so that the glass plate can move up smoothly.

[0053] In the embodiments of the present invention, please refer to Figure 4 and Fig.10 A first arc chamfer 451 is provided at one end of the pressing plate 45 , and a second arc chamfer 452 is provided at the lower portion of one side of the pressing plate 45 close to the flat glass.

[0054] The glass sheet may be slightly deflected during transportation. The second arc chamfer 452 of the pressing plate 45 can be set to center the glass sheet when the pressing plate 45 is pressed down, while the first arc chamfer 451 can reduce the downward pressure on the supporting component 5 on the outside.

[0055] In the embodiments of the present invention, please refer to Figure 5 The upper portion of the air guide hole 471 is connected to the air source 42 , and the lower portion of the air guide hole 471 is matched with the air inlet 54 .

[0056] The air in the shell 41 will enter the air inlet 54 through the air guide hole 471, and the insufficient air can be discharged from the second air outlet 56 to achieve cooling of the lower surface of the glass plate.

[0057] Preferably, the air source 42 delivers filtered air into the housing 41. The air source 42 may be equipped with a high-pressure centrifugal fan to ensure sufficient air pressure in the housing 41. It should be noted that too low air pressure will cause all the air to be discharged from the first air outlet 411, so high air pressure needs to be ensured. Since the air discharged from the first air outlet 411 suddenly enters a larger space and escapes faster, the air discharged from the first air outlet 411 exerts less downward pressure on the glass plate, while the airflow space of the second air outlet 56 is narrow, and the airflow will inevitably blow the glass plate upward.

[0058] The above description is only by way of illustration of certain exemplary embodiments of the present invention. It is undoubted that those skilled in the art can modify the described embodiments in various ways without departing from the spirit and scope of the present invention. Therefore, the above drawings and descriptions are illustrative in nature and should not be construed as limiting the scope of protection of the claims of the present invention.

Claims

1. A kiln device for producing high-performance borosilicate glass, characterized in that: include: A frame (1), wherein a transmission component (2) is arranged on the frame (1); A supporting assembly (5), wherein the supporting assembly (5) is arranged on the conveying assembly (2), and the supporting assembly (5) is used for supporting the flat glass. The supporting assembly (5) comprises a base (51), a lifting seat (52), an embedding block (53), an air inlet (54), a second air outlet (56), an elastic member (58), and a closing member (59). The base (51) is fixed on the conveying assembly (2), the lifting seat (52) is slidably connected in the base (51), the elastic member (58) is arranged between the lifting seat (52) and the base (51), the embedding block (53) is embedded in the lifting seat (52), the air inlet (54) is arranged at two ends of the embedding block (53), and the second air outlet (56) is arranged at the upper part of the embedding block (53); A cooling assembly (4), the cooling assembly (4) comprising a shell (41), an air source (42), a hydraulic cylinder (43), a side plate (47), and an air guide hole (471); a first air port (411) is provided inside the shell (41); the shell (41), the first air port (411), and the air source (42) form a first cooling channel; the upper surface of the flat glass is cooled through the first cooling channel; the side plate (47) is mounted on the shell (41); and the air guide hole (471) is provided in the side plate (47); The hydraulic cylinder (43) is used to drive the housing (41) to move in a vertical direction. When the housing (41) moves downward, the lifting seat (52) moves downward synchronously, so that the closing member (59) is passively unfolded. A second cooling channel is formed between the air source (42), the air guide hole (471), the air inlet (54), and the second air outlet (56), and the lower surface of the flat glass is cooled through the second cooling channel.

2. A kiln device for producing high-performance borosilicate glass according to claim 1, characterized in that: The transmission assembly (2) comprises a transmission shaft (21), a gear (22), a chain (23) and a driving unit (3); the transmission shaft (21) is fixedly mounted on the frame (1); the gear (22) is fixedly mounted on the transmission shaft (21); the gears (22) are transmission-connected to each other via the chain (23); and the driving unit (3) and the transmission shaft (21) are transmission-connected to each other.

3. A kiln device for producing high-performance borosilicate glass according to claim 1, characterized in that: The supporting assembly (5) further comprises an anti-dropping pin (57), one end of which slides through the base (51) and is then fixed to the bottom surface of the lifting seat (52).

4. A kiln device for producing high-performance borosilicate glass according to claim 1, characterized in that: The embedding block (53) and the lifting seat (52) are arranged to be detachably connected.

5. A kiln device for producing high-performance borosilicate glass according to claim 1, characterized in that: The cooling assembly (4) further comprises a pressing plate (45) and a limiting block (46); the pressing plate (45) is fixedly mounted on the side plate (47); and the limiting block (46) is fixedly mounted on the pressing plate (45).

6. A kiln device for producing high-performance borosilicate glass according to claim 1, characterized in that: It also includes a mounting frame (44), the mounting frame (44) is fixedly mounted on both sides of the frame (1), the hydraulic cylinder (43) is fixedly mounted on the mounting frame (44), and the output end of the hydraulic cylinder (43) is fixedly mounted on the housing (41).

7. A kiln device for producing high-performance borosilicate glass according to claim 1, characterized in that: The flux of the first air outlet (411) is no greater than the flux of the second air outlet (56).

8. A kiln device for producing high-performance borosilicate glass according to claim 5, characterized in that: A first circular chamfer (451) is provided at one end of the pressing plate (45), and a second circular chamfer (452) is provided at the lower portion of a side of the pressing plate (45) close to the flat glass.

9. A kiln device for producing high-performance borosilicate glass according to claim 1, characterized in that: The upper portion of the air guide hole (471) is connected to the air source (42), and the lower portion of the air guide hole (471) is compatible with the air inlet (54).

10. A kiln device for producing high-performance borosilicate glass according to claim 1, characterized in that: The air source (42) delivers filtered air into the housing (41).

Citation Information

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