Equipment for preparing high-performance glass

By designing a high-performance glass device containing multiple forming molds and automated processing components, the problem that glass liquid in the prior art cannot form high-performance glass is solved, and an efficient production and processing process is achieved.

CN120208516AInactive Publication Date: 2025-06-27LINYI HUAHAO GLASS CO LTD
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Patent Information

Application Number
CN202510248850.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-04
Publication Date
2025-06-27
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The prepared glass liquid in the prior art cannot form high-performance glass, which affects the production and processing of high-performance glass.

Method used

A high-performance glass device including a substrate, a conveyor rack, a conveyor belt, a support rack, a glass tank, a scraping assembly, a molding assembly, a transport assembly and a cooling assembly are designed. The conveyor belt drives the mold to move, and the glass liquid flows into the mold through the vertical pipe. The scraping assembly carries out the glass liquid to the leveling process, the molding assembly is pressed down, and the transport assembly is transported to the cooling assembly for cooling, completing the production and processing of high-performance glass.

Benefits of technology

The full-process automated processing is realized, the production and processing efficiency of high-performance glass is improved, and the high-performance glass can be formed, solving the problem that glass liquid cannot form high-performance glass in the prior art.

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Abstract

The invention relates to the technical field of glass preparation, in particular to high-performance glass preparation equipment which comprises a base plate, a conveying frame, a conveying belt, a supporting frame, a glass liquid box, a slicking assembly, a forming assembly, a transferring assembly and a cooling assembly. A plurality of forming molds are arranged on the conveying belt, the supporting frame is arranged on the outer wall of the conveying frame, the molten glass box is installed at the top of the supporting frame, a vertical pipe communicated with the interior of the molten glass box is arranged at the bottom of the molten glass box, a valve is arranged on the vertical pipe, and the slicking assembly and the forming assembly are sequentially arranged on the outer wall of the conveying frame. According to the production and processing device, production and processing of the whole high-performance glass are completed, automatic processing is achieved in the whole process, and the production and processing efficiency is high.
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Description

Technical Field

[0001] The present invention relates to the technical field of glass preparation, and specifically to a device for preparing high-performance glass. Background Art

[0002] Glass is an amorphous inorganic non-metallic material. Generally, it is made from a variety of inorganic minerals as the main raw materials, with a small amount of auxiliary raw materials added. Its main components are silica and other oxides. The main raw materials of glass include: quartz sand, limestone, feldspar, soda ash, boric acid, etc. It is an amorphous solid with an irregular structure and is widely used in buildings for wind and light insulation. It belongs to a mixture. There is also colored glass that shows color after mixing certain metal oxides or salts, and tempered glass obtained by physical or chemical methods. Sometimes, some transparent plastics are also called plexiglass.

[0003] The Chinese invention patent with the publication number CN118495787B discloses a kiln furnace device for preparing borosilicate glass. It includes a kiln furnace body, a filtering mechanism, a lifting and blocking mechanism, a troubleshooting mechanism, a metal drainage channel, and a vibration defoaming mechanism. The kiln furnace body includes a homogenizing chamber communicated with a melting chamber and a drainage chamber communicated with the homogenizing chamber. The filtering mechanism includes a filter plate, a horizontal displacement component, a vertical lifting component, and a slag fishing claw. The lifting and blocking mechanism includes a first blocking component and a second blocking component. The height of the metal drainage channel is flush with the middle position of the glass liquid inside the drainage chamber. A sealing component is arranged at one end of the metal drainage channel inserted into the drainage chamber. A disassembly and assembly component is installed outside the kiln furnace body, and a heat preservation and insulation channel is arranged outside the metal drainage channel. This invention can perform filtering and slag removal operations, remove nodular substances, improve the service life of the filter plate, and can detect the metal drainage channel alone, improving the stable operation time of the equipment.

[0004] However, the above patent still has the following deficiencies in actual use: Although this patent can prepare glass liquid, the prepared glass liquid cannot form high-performance glass, affecting the production and processing of high-performance glass. Summary of the Invention

[0005] The purpose of the present invention is to provide a device for preparing high-performance glass to solve the problem that the prepared glass liquid cannot form high-performance glass and affects the production and processing of high-performance glass as proposed in the above background art.

[0006] The technical solution of the present invention is: A device for preparing high-performance glass, comprising a substrate, a conveying rack, a conveyor belt, a support frame, a glass liquid tank, a leveling assembly, a forming assembly, a transfer assembly and a cooling assembly. The conveying rack is arranged on the top of the substrate. The conveyor belt is installed inside the conveying rack. A plurality of forming molds are arranged on the conveyor belt. The support frame is arranged on the outer wall of the conveying rack. The glass liquid tank is installed on the top of the support frame. A vertical pipe communicating with the inside of the glass liquid tank is arranged at the bottom of the glass liquid tank. A valve is arranged on the vertical pipe. The leveling assembly and the forming assembly are sequentially arranged on the outer wall of the conveying rack. The transfer assembly and the cooling assembly are arranged at intervals on the top of the substrate.

[0007] Further, the leveling assembly includes a mounting frame, a first screw rod slide, a cross plate, a lifting block, a scraper and two first electric push rods. The mounting frame is arranged on the outer wall of the conveying rack. The first screw rod slide is horizontally arranged at the inner top of the mounting frame. The cross plate is installed on the moving end of the first screw rod slide. The two first electric push rods are symmetrically arranged at the bottom of the cross plate. The lifting block is installed on the output ends of the two first electric push rods. The scraper is arranged at the bottom of the lifting block.

[0008] Further, the forming assembly includes a bearing frame, a vertical rail, an adjusting plate, a hydraulic push rod and a pressing component. The bearing frame is erected on the outer wall of the conveying rack. The vertical rail is vertically arranged on the inner wall of the bearing frame. The adjusting plate is slidably installed on the vertical rail. The hydraulic push rod is installed on the top of the bearing frame, and the output end of the hydraulic push rod is connected to the adjusting plate. The pressing component is installed on the adjusting plate.

[0009] Further, the pressing component includes a sliding rod, a pressing plate, a moving block, a roller, a spring, a driving shaft, a cam, a driving motor and two vertical plates. The sliding rod is slidably installed on the adjusting plate. The pressing plate is installed at the bottom of the sliding rod. The moving block is arranged at the top of the sliding rod. The roller is rotatably installed on the moving block. The spring is sleeved on the outer part of the sliding rod, and the two ends of the spring are respectively connected to the adjusting plate and the moving block. The two vertical plates are symmetrically arranged on the adjusting plate. The driving shaft is rotatably installed at the top ends of the two vertical plates. The cam is installed on the driving shaft, and the bottom end of the cam abuts against the top end of the roller. The driving motor is horizontally arranged on the outer wall of one of the vertical plates, and the output shaft of the driving motor is connected to the driving shaft.

[0010] Further, the transfer component includes a transfer frame, a second screw slide table, a second electric push rod, a U-shaped frame, a guide rail, two clamping plates and two third electric push rods. The transfer frame is erected on the top of the substrate. The second screw slide table is horizontally arranged at the inner top end of the transfer frame. The second electric push rod is vertically arranged on the moving end of the second screw slide table. The U-shaped frame is installed on the output end of the second electric push rod. The guide rail is horizontally arranged at the inner top end of the U-shaped frame. The two clamping plates are slidably installed on the guide rail. The two third electric push rods are symmetrically arranged on the U-shaped frame, and the output ends of the two third electric push rods are connected to the two clamping plates.

[0011] Further, the cooling component includes a bracket, a rotating shaft, a rotating disk, a rotating motor, a driving gear, a driven gear and a cooling component. The bracket is installed on the top of the substrate. The rotating shaft is rotatably installed on the top of the bracket. The rotating disk is installed on the top of the rotating shaft. The rotating motor is vertically arranged on the top of the bracket. The driving gear is installed on the output shaft of the rotating motor. The driven gear is installed on the rotating shaft, and the driven gear meshes with the driving gear. The cooling component is installed on the top of the substrate, and one end of the cooling component extends above the top of the rotating disk.

[0012] Further, the cooling component includes a guide rod, a guide frame, a fourth electric push rod, a cooling cover, an air inlet box and an air inlet fan. The guide rod is vertically arranged on the top of the substrate. The guide frame is slidably installed on the guide rod. The fourth electric push rod is vertically arranged on the top of the substrate, and the output end of the fourth electric push rod is connected to the guide frame. The cooling cover is installed on the outer wall of the guide frame. The air inlet box is arranged on the top of the cooling cover. The air inlet fan is installed in the air inlet box. Air inlet grooves are arranged on both sides of the air inlet box, and filter nets are installed in the air inlet grooves.

[0013] Further, a limit disk is arranged at the top of the guide rod.

[0014] Further, anti-slip lines are arranged on the outer wall of the clamping plate.

[0015] The present invention provides a high-performance glass manufacturing device through improvement. Compared with the prior art, it has the following improvements and advantages: First: The present invention drives the movement of multiple forming molds through the operation of a conveyor belt. When a forming mold passes under the vertical pipe, the valve opens, and the glass liquid in the glass liquid tank flows into the forming mold through the vertical pipe. When the forming mold passes through the leveling assembly, the leveling assembly operates to level the top surface of the glass liquid in the forming mold. When the forming mold passes through the forming assembly, the forming assembly operates to press down and form the glass liquid in the forming mold to form high-performance glass. Then, the transfer assembly operates to clamp and transport the forming mold on the conveyor belt to the cooling assembly. Finally, the cooling assembly operates to cool the high-performance glass in the forming mold, completing the production and processing of the entire high-performance glass. The whole process is automated, and the production and processing efficiency is high.

[0016] Second: The present invention drives the downward movement of the U-shaped frame through the operation of the second electric push rod. The U-shaped frame drives the two clamping plates to move downward to both sides of the forming mold. Then, the two third electric push rods operate to drive the two clamping plates to move closer to each other on the guide rail, and the two clamping plates clamp the forming mold. Then, the second electric push rod and the second screw rod slide table cooperate to drive the forming mold to be transported to the cooling assembly, facilitating the cooling of the high-performance glass in the forming mold by the cooling assembly.

[0017] Third: The present invention drives the downward movement of the guiding frame on the guiding rod through the operation of the fourth electric push rod. The guiding frame drives the cooling cover to move downward, and the cooling cover covers the forming mold on the rotating disk therein. Then, the intake fan operates to blow the external gas into the forming mold, and the gas cools the high-performance glass, while the filter screen filters the passing gas. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] The following further explains the present invention in conjunction with the drawings and embodiments: Figure 1 is the three-dimensional structure schematic of the present invention Figure 1 ; Figure 2 is the three-dimensional structure schematic of the present invention Figure 2 ; Figure 3 is the partial three-dimensional structure schematic of the present invention Figure 1 ; Figure 4 is the three-dimensional structure schematic diagram of the leveling assembly of the present invention; Figure 5 is the three-dimensional structure schematic of the forming assembly of the present invention Figure 1 ; Figure 6 is the three-dimensional structure schematic of the forming assembly of the present invention Figure 2 ; Figure 7 is the three-dimensional structure schematic diagram of the transfer assembly of the present invention; Figure 8It is a three-dimensional structural schematic diagram of the cooling component of the present invention; Figure 9 It is a partial three-dimensional structural schematic diagram of the cooling component of the present invention.

[0019] Explanation of reference numerals: Substrate 1, conveying rack 2, conveyor belt 3, forming die 31, support frame 4, glass liquid tank 5, vertical pipe 51, valve 52, leveling component 6, mounting frame 61, first lead screw slide 62, cross plate 63, lifting block 64, scraping plate 65, first electric push rod 66, forming component 7, bearing frame 71, vertical rail 72, adjusting plate 73, hydraulic push rod 74, pressing component 75, sliding rod 751, pressing plate 752, moving block 753, roller 754, spring 755, drive shaft 756, cam 757, drive motor 758, vertical plate 759, transfer component 8, transfer rack 81, second lead screw slide 82, second electric push rod 83, U-shaped frame 84, guide rail 85, clamping plate 86, third electric push rod 87, cooling component 9, support 91, rotating shaft 92, rotating disk 93, rotating motor 94, driving gear 95, driven gear 96, cooling component 97, guide rod 971, guide frame 972, fourth electric push rod 973, cooling cover 974, air inlet box 975, air inlet fan 976, filter screen 977, limit disk 978. Detailed implementation manners

[0020] The present invention will be described in detail below. The technical solutions in the embodiments of the present invention are clearly and completely described. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0021] The present invention provides a high-performance glass manufacturing device through improvement, such as Figures 1 - 9As shown in the figure, it includes a substrate 1, a conveying rack 2, a conveyor belt 3, a support frame 4, a glass liquid tank 5, a leveling assembly 6, a forming assembly 7, a transfer assembly 8 and a cooling assembly 9. The conveying rack 2 is arranged on the top of the substrate 1. The conveyor belt 3 is installed inside the conveying rack 2. A plurality of forming molds 31 are provided on the conveyor belt 3. The support frame 4 is arranged on the outer wall of the conveying rack 2. The glass liquid tank 5 is installed on the top of the support frame 4. A vertical pipe 51 communicating with the inside thereof is provided at the bottom of the glass liquid tank 5. A valve 52 is provided on the vertical pipe 51. The leveling assembly 6 and the forming assembly 7 are sequentially arranged on the outer wall of the conveying rack 2. The transfer assembly 8 and the cooling assembly 9 are arranged at intervals on the top of the substrate 1. Through the operation of the conveyor belt 3, the plurality of forming molds 31 are driven to move. When the forming mold 31 passes below the vertical pipe 51, the valve 52 is opened, and the glass liquid in the glass liquid tank 5 flows into the forming mold 31 through the vertical pipe 51. When the forming mold 31 passes the leveling assembly 6, the leveling assembly 6 operates to level the top surface of the glass liquid in the forming mold 31. When the forming mold 31 passes the forming assembly 7, the forming assembly 7 operates to press down and form the glass liquid in the forming mold 31 to form high-performance glass. Then, the transfer assembly 8 operates to clamp and transport the forming mold 31 on the conveyor belt 3 to the cooling assembly 9. Finally, the cooling assembly 9 operates to cool the high-performance glass in the forming mold 31, completing the production and processing of the entire high-performance glass. The whole process is automated, and the production and processing efficiency is high.

[0022] Specifically, the leveling assembly 6 includes a mounting frame 61, a first screw rod slide 62, a cross plate 63, a lifting block 64, a scraper 65 and two first electric push rods 66. The mounting frame 61 is arranged on the outer wall of the conveying rack 2. The first screw rod slide 62 is horizontally arranged at the inner top of the mounting frame 61. The cross plate 63 is installed on the moving end of the first screw rod slide 62. The two first electric push rods 66 are symmetrically arranged at the bottom of the cross plate 63. The lifting block 64 is installed on the output ends of the two first electric push rods 66. The scraper 65 is arranged at the bottom of the lifting block 64. Through the operation of the two first electric push rods 66, the lifting block 64 and the scraper 65 are driven to move downward. The bottom end of the scraper 65 moves downward into the forming mold 31. Then, the first screw rod slide 62 operates to drive the scraper 65 to move horizontally, and the scraper 65 levels the top surface of the glass liquid in the forming mold 31.

[0023] Specifically, the forming assembly 7 includes a carrier 71, a vertical rail 72, an adjusting plate 73, a hydraulic push rod 74, and a pressing component 75. The carrier 71 is mounted on the outer wall of the conveying rack 2. The vertical rail 72 is vertically arranged on the inner wall of the carrier 71. The adjusting plate 73 is slidably mounted on the vertical rail 72. The hydraulic push rod 74 is installed on the top of the carrier 71, and the output end of the hydraulic push rod 74 is connected to the adjusting plate 73. The pressing component 75 is installed on the adjusting plate 73. The hydraulic push rod 74 works to drive the adjusting plate 73 to perform lifting adjustment on the vertical rail 72. The adjusting plate 73 drives the pressing component 75 to adjust to an appropriate height. Then, the pressing component 75 works to press down and form the molten glass in the forming die 31.

[0024] Specifically, the pressing component 75 includes a sliding rod 751, a pressing plate 752, a moving block 753, a roller 754, a spring 755, a driving shaft 756, a cam 757, a driving motor 758, and two vertical plates 759. The sliding rod 751 is slidably mounted on the adjusting plate 73. The pressing plate 752 is installed at the bottom of the sliding rod 751. The moving block 753 is arranged at the top of the sliding rod 751. The roller 754 is rotatably mounted on the moving block 753. The spring 755 is sleeved outside the sliding rod 751, and both ends of the spring 755 are respectively connected to the adjusting plate 73 and the moving block 753. The two vertical plates 759 are symmetrically arranged on the adjusting plate 73. The driving shaft 756 is rotatably mounted at the top ends of the two vertical plates 759. The cam 757 is installed on the driving shaft 756, and the bottom end of the cam 757 abuts against the top end of the roller 754. The driving motor 758 is horizontally arranged on the outer wall of one of the vertical plates 759, and the output shaft of the driving motor 758 is connected to the driving shaft 756. The driving motor 758 works to drive the driving shaft 756 and the cam 757 to rotate. The cam 757 drives the moving block 753 and the sliding rod 751 to reciprocate up and down by using the roller 754. The sliding rod 751 drives the pressing plate 752 to reciprocate up and down to press down and form the molten glass in the forming die 31 to form high-performance glass.

[0025] Specifically, the transfer assembly 8 includes a transfer rack 81, a second lead screw slide 82, a second electric push rod 83, a U-shaped frame 84, a guide rail 85, two clamping plates 86 and two third electric push rods 87. The transfer rack 81 is erected on the top of the substrate 1. The second lead screw slide 82 is horizontally arranged at the inner top end of the transfer rack 81. The second electric push rod 83 is vertically arranged on the moving end of the second lead screw slide 82. The U-shaped frame 84 is installed at the output end of the second electric push rod 83. The guide rail 85 is horizontally arranged at the inner top end of the U-shaped frame 84. The two clamping plates 86 are slidably installed on the guide rail 85. The two third electric push rods 87 are symmetrically arranged on the U-shaped frame 84, and the output ends of the two third electric push rods 87 are connected to the two clamping plates 86. By the operation of the second electric push rod 83, the U-shaped frame 84 is driven to move downward. The U-shaped frame 84 drives the two clamping plates 86 to move downward to both sides of the forming die 31. Then, the two third electric push rods 87 operate to drive the two clamping plates 86 to move closer to each other on the guide rail 85. The two clamping plates 86 clamp the forming die 31. Then, the second electric push rod 83 and the second lead screw slide 82 cooperate to drive the forming die 31 to be transported into the cooling assembly 9, facilitating the cooling assembly 9 to cool the high-performance glass in the forming die 31.

[0026] Specifically, the cooling assembly 9 includes a bracket 91, a rotating shaft 92, a rotating disk 93, a rotating motor 94, a driving gear 95, a driven gear 96 and a cooling component 97. The bracket 91 is installed on the top of the substrate 1. The rotating shaft 92 is rotatably installed on the top of the bracket 91. The rotating disk 93 is installed on the top of the rotating shaft 92. The rotating motor 94 is vertically arranged on the top of the bracket 91. The driving gear 95 is installed on the output shaft of the rotating motor 94. The driven gear 96 is installed on the rotating shaft 92, and the driven gear 96 meshes with the driving gear 95. The cooling component 97 is installed on the top of the substrate 1, and one end of the cooling component 97 extends above the top of the rotating disk 93. The rotating disk 93 supports the forming die 31. Then, the rotating motor 94 operates to drive the driving gear 95 to rotate. The driving gear 95 drives the rotating shaft 92 and the rotating disk 93 to rotate by means of the driven gear 96. The rotating disk 93 drives the forming die 31 to rotate to the lower part of the cooling component 97. Then, the cooling component 97 operates to perform rapid cooling treatment on the high-performance glass.

[0027] Specifically, the cooling component 97 includes a guide rod 971, a guide frame 972, a fourth electric push rod 973, a cooling cover 974, an air inlet box 975, and an air inlet fan 976. The guide rod 971 is vertically arranged on the top of the substrate 1. The guide frame 972 is slidably mounted on the guide rod 971. The fourth electric push rod 973 is vertically arranged on the top of the substrate 1, and the output end of the fourth electric push rod 973 is connected to the guide frame 972. The cooling cover 974 is mounted on the outer wall of the guide frame 972. The air inlet box 975 is arranged on the top of the cooling cover 974. The air inlet fan 976 is mounted in the air inlet box 975. Air inlet grooves are provided on both sides of the air inlet box 975, and filter nets 977 are mounted in the air inlet grooves. When the fourth electric push rod 973 works, it drives the guide frame 972 to move downward on the guide rod 971. The guide frame 972 drives the cooling cover 974 to move downward. The cooling cover 974 covers the forming die 31 on the rotating disk 93 therein. Then, the air inlet fan 976 works to blow the outside air into the forming die 31, and the air cools the high-performance glass. The filter nets 977 filter the passing air.

[0028] Specifically, a limit disk 978 is provided at the top of the guide rod 971; the limit disk 978 prevents the guide frame 972 from slipping off the guide rod 971.

[0029] Specifically, anti-slip lines are provided on the outer wall of the clamping plate 86; the anti-slip lines increase the friction between the clamping plate 86 and the outer wall of the forming die 31, ensuring the clamping effect of the clamping plate 86.

[0030] The above description of the disclosed embodiments enables those skilled in the art to implement or use the present invention. Various modifications to these embodiments will be apparent to those skilled in the art. The general principles defined herein can be implemented in other embodiments without departing from the spirit or scope of the present invention. Therefore, the present invention will not be limited to the embodiments shown herein, but rather to the widest scope consistent with the principles and novel features disclosed herein.

Claims

1. A device for preparing high-performance glass, characterized in that: The invention comprises a substrate (1), a conveying frame (2), a conveyor belt (3), a support frame (4), a glass liquid tank (5), a scraping assembly (6), a molding assembly (7), a transfer assembly (8) and a cooling assembly (9), wherein the conveying frame (2) is arranged on the top of the substrate (1), the conveyor belt (3) is installed in the conveying frame (2), a plurality of molding molds (31) are arranged on the conveyor belt (3), the support frame (4) is arranged on the outer wall of the conveying frame (2), the glass liquid tank (5) is installed on the top of the support frame (4), a vertical pipe (51) connected to the interior of the glass liquid tank (5) is provided at the bottom of the glass liquid tank (5), and a valve (52) is provided on the vertical pipe (51), the scraping assembly (6) and the molding assembly (7) are arranged on the outer wall of the conveying frame (2) in sequence, and the transfer assembly (8) and the cooling assembly (9) are arranged at intervals on the top of the substrate (1).

2. The high-performance glass preparation device according to claim 1, characterized in that: The scraping assembly (6) comprises a mounting frame (61), a first screw slide (62), a transverse plate (63), a lifting block (64), a scraper (65) and two first electric push rods (66); the mounting frame (61) is arranged on the outer wall of the conveying frame (2); the first screw slide (62) is horizontally arranged at the inner top end of the mounting frame (61); the transverse plate (63) is installed on the moving end of the first screw slide (62); the two first electric push rods (66) are symmetrically arranged at the bottom of the transverse plate (63); the lifting block (64) is installed on the output ends of the two first electric push rods (66); and the scraper (65) is arranged at the bottom of the lifting block (64).

3. The high-performance glass preparation device according to claim 1, characterized in that: The forming assembly (7) comprises a bearing frame (71), a vertical rail (72), an adjustment plate (73), a hydraulic push rod (74) and a pressing component (75); the bearing frame (71) is mounted on the outer wall of the conveying frame (2); the vertical rail (72) is vertically arranged on the inner wall of the bearing frame (71); the adjustment plate (73) is slidably mounted on the vertical rail (72); the hydraulic push rod (74) is mounted on the top of the bearing frame (71); and the output end of the hydraulic push rod (74) is connected to the adjustment plate (73); and the pressing component (75) is mounted on the adjustment plate (73).

4. The high-performance glass preparation device according to claim 3, characterized in that: The pressing component (75) comprises a sliding rod (751), a pressing plate (752), a moving block (753), a roller (754), a spring (755), a driving shaft (756), a cam (757), a driving motor (758) and two vertical plates (759); the sliding rod (751) is slidably mounted on the adjusting plate (73); the pressing plate (752) is mounted on the bottom of the sliding rod (751); the moving block (753) is arranged on the top of the sliding rod (751); the roller (754) is rotatably mounted on the moving block (753); the spring (755) is sleeved on the sliding rod The outer portion of the rod (751) is provided with two ends of the spring (755) connected to the adjustment plate (73) and the moving block (753) respectively; the two vertical plates (759) are symmetrically arranged on the adjustment plate (73); the driving shaft (756) is rotatably mounted on the top ends of the two vertical plates (759); the cam (757) is mounted on the driving shaft (756); and the bottom end of the cam (757) is in contact with the top end of the roller (754); the driving motor (758) is horizontally arranged on the outer wall of one of the vertical plates (759); and the output shaft of the driving motor (758) is connected to the driving shaft (756).

5. The high-performance glass preparation device according to claim 1, characterized in that: The transfer assembly (8) comprises a transfer frame (81), a second screw slide (82), a second electric push rod (83), a U-shaped frame (84), a guide rail (85), two clamping plates (86) and two third electric push rods (87). The transfer frame (81) is mounted on the top of the base plate (1), the second screw slide (82) is horizontally arranged at the inner top end of the transfer frame (81), the second electric push rod (83) is vertically arranged on the moving end of the second screw slide (82), the U-shaped frame (84) is mounted on the output end of the second electric push rod (83), the guide rail (85) is horizontally arranged at the inner top end of the U-shaped frame (84), the two clamping plates (86) are slidably mounted on the guide rail (85), the two third electric push rods (87) are symmetrically arranged on the U-shaped frame (84), and the output ends of the two third electric push rods (87) are connected to the two clamping plates (86).

6. The device for preparing high-performance glass according to claim 1, characterized in that: The cooling assembly (9) comprises a bracket (91), a rotating shaft (92), a rotating disk (93), a rotating motor (94), a driving gear (95), a driven gear (96) and a cooling component (97), wherein the bracket (91) is mounted on the top of the base plate (1), the rotating shaft (92) is rotatably mounted on the top of the bracket (91), the rotating disk (93) is mounted on the top of the rotating shaft (92), the rotating motor (94) is vertically arranged on the top of the bracket (91), the driving gear (95) is mounted on the output shaft of the rotating motor (94), the driven gear (96) is mounted on the rotating shaft (92), and the driven gear (96) is meshed with the driving gear (95), and the cooling component (97) is mounted on the top of the base plate (1), and one end of the cooling component (97) extends above the top of the rotating disk (93).

7. The high-performance glass preparation device according to claim 6, characterized in that: The cooling component (97) comprises a guide rod (971), a guide frame (972), a fourth electric push rod (973), a cooling cover (974), an air intake box (975) and an air intake fan (976), wherein the guide rod (971) is vertically arranged on the top of the base plate (1), the guide frame (972) is slidably mounted on the guide rod (971), the fourth electric push rod (973) is vertically arranged on the top of the base plate (1), and the output end of the fourth electric push rod (973) is connected to the guide frame (972), the cooling cover (974) is mounted on the outer wall of the guide frame (972), the air intake box (975) is arranged on the top of the cooling cover (974), the air intake fan (976) is mounted in the air intake box (975), and air intake grooves are arranged on both sides of the air intake box (975), and a filter screen (977) is installed in the air intake groove.

8. The high-performance glass preparation device according to claim 7, characterized in that: A limiting plate (978) is provided on the top of the guide rod (971).

9. The device for preparing high-performance glass according to claim 5, characterized in that: The outer wall of the clamping plate (86) is provided with anti-slip grooves.

Citation Information

Patent Citations

  • A kiln device for preparing borosilicate glass

    CN118495787B