Automatic glass production line

By designing an automated glass production line, the glass cutting, edge grinding, tempering and storage processes are automated, and the problems of low automation, poor production efficiency and quality in the existing technology are solved, and efficient and automated glass production and storage are achieved.

CN120040067AInactive Publication Date: 2025-05-27JIANGSU YAXIN GLASS CO LTD
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Patent Information

Application Number
CN202510194000.8
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-02-21
Publication Date
2025-05-27
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The existing glass production lines have low degree of automation, poor production efficiency and glass quality, and limited glass storage efficiency and quantity.

Method used

An automated glass production line was designed, and the glass cutting machine, edge grinding machine, tempering line and storage system were connected in series through the conveying line to realize automatic cutting, edge grinding, tempering and storage of glass.

Benefits of technology

The automation degree and production efficiency of glass production are improved, the quality of glass is ensured, and the storage efficiency and quantity are greatly improved through automated storage systems.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The invention discloses an automatic glass production line which comprises a glass cutting machine, the glass cutting machine is connected with a vertical sheet arranging machine A through a conveying line A, the vertical sheet arranging machine A is sequentially connected with a detection table and a glass edge grinding machine through a conveying line B, and the glass edge grinding machine is connected with a vertical sheet arranging machine B through a conveying line C; the vertical sheet arranging machine B is connected with an automatic typesetting machine through a conveying line D, the automatic typesetting machine is connected with a tempering line through a conveying line E, and the tempering line is connected with a warehousing system through a conveying line F. The cutting machine, the edge grinding machine and the tempering line can be connected in series to form a complete automatic glass production line, so that the production efficiency of the glass is greatly improved, the production quality is ensured, a large amount of glass can be automatically stored in a warehousing system, and the storage efficiency is improved.
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Description

Technical Field

[0001] The present invention relates to the technical field of glass production, and particularly to an automated glass production line. Background Art

[0002] During the glass production process, operations such as cutting, edge grinding, and tempering of the glass are required. Currently, the cutting device, edge grinding device, and tempering device are all separately arranged. That is, after the glass is cut, it is transported to the edge grinding device, and after the edge grinding is completed, it is sent to the tempering device. The degree of automation is low, the production efficiency is low, and the quality of the produced glass is not good. Moreover, after the glass production is completed, the glass cannot be stored in large quantities immediately, but instead, it needs to be manually moved to the warehouse, resulting in low storage efficiency and small storage quantity. Summary of the Invention

[0003] In view of the deficiencies of the prior art, the present invention provides an automated glass production line to solve the problems mentioned in the above background art.

[0004] To solve the above technical problems, the present invention provides the following technical solutions:

[0005] An automated glass production line includes a glass cutting machine. The glass cutting machine is connected to a vertical glass aligning machine A through a conveyor line A. The vertical glass aligning machine A is sequentially connected to an inspection table and a glass edge grinding machine through a conveyor line B. The glass edge grinding machine is connected to a vertical glass aligning machine B through a conveyor line C. The vertical glass aligning machine B is connected to an automatic typesetting machine through a conveyor line D. The automatic typesetting machine is connected to a tempering line through a conveyor line E. The tempering line is connected to a warehousing system through a conveyor line F. The warehousing system includes a horizontal first guide rail, a first automatic trolley slidably connected to the first guide rail, a first vertical conveyor table provided on the first automatic trolley, a plurality of vertical storage tables provided on one side of the first guide rail, a vertical second guide rail provided between adjacent vertical storage tables, a second automatic trolley slidably connected to the second guide rail, and a second vertical conveyor table connected to the second automatic trolley through a rotating mechanism.

[0006] Preferably, the conveyor line A includes a horizontal conveyor table A provided at the end of the glass cutting machine. The end of the horizontal conveyor table A is connected to a horizontal-vertical conversion table A. The horizontal-vertical conversion table A is connected to the vertical glass aligning machine A through a vertical conveyor table A.

[0007] According to the above technical solution, the cut glass is transported to the horizontal-vertical conversion table A through the horizontal conveyor table A, the glass is converted from horizontal to vertical through the horizontal-vertical conversion table A, and then the glass is sent to the vertical glass aligning machine A through the vertical conveyor table A.

[0008] Preferably, the conveyor line B includes a vertical conveyor table B, a horizontal-vertical conversion table B, and a two-way conveyor table B arranged in sequence. The inspection table is provided at the end of the two-way conveyor table B.

[0009] In the above technical solution, the vertical glass sorting machine A is used to collect several glasses, sort the glasses, and send the glasses to the vertical conveyor table B one by one in an orderly manner. After being converted by the vertical-horizontal conversion table B, the glasses are converted from vertical to horizontal, and the direction is adjusted by the two-way conveyor table B, and then the glasses are transported to the inspection table. After inspection, the glasses are sent to the edge grinding machine to grind the edges of the glasses.

[0010] Preferably, the conveyor line C includes a vertical-horizontal conversion table C and a vertical conveyor table C connected in sequence, and the vertical glass sorting machine B is arranged at the end of the vertical conveyor table C.

[0011] In the above technical solution, the glass after edge grinding enters the vertical-horizontal conversion table C, the glass is converted from horizontal to vertical, and is sent to the vertical glass sorting machine B by the vertical conveyor table C, and the vertical glass sorting machine B collects the glass.

[0012] Preferably, the conveyor line D includes a vertical-horizontal conversion table D, a horizontal conveyor table D1, a two-way conveyor table D, and a horizontal conveyor table D2 connected in sequence, and the automatic typesetting machine is located at the end of the horizontal conveyor table D2.

[0013] In the above technical solution, the glass of the vertical glass sorting machine B is converted from vertical to horizontal by the vertical-horizontal conversion table D, and then sent to the automatic typesetting machine through the horizontal conveyor table D1, the two-way conveyor table D, and the horizontal conveyor table D2 for automatic typesetting of the glass so as to enter the toughening line in an orderly manner.

[0014] Preferably, the conveyor line E includes a two-way conveyor table E and a horizontal conveyor table E arranged in sequence, and the toughening line is arranged at the end of the horizontal conveyor table E.

[0015] In the above technical solution, the glass coming out of the automatic typesetting machine is sent to the toughening line through the two-way conveyor table E and the horizontal conveyor table E to toughen the glass.

[0016] Preferably, the conveyor line F includes a vertical-horizontal conversion table F, a vertical conveyor table F1, a two-way conveyor table F, and a vertical conveyor table F2 arranged at the end of the toughening line, and the warehousing system is arranged at the end of the vertical conveyor table F2.

[0017] In the above technical solution, the toughened glass is converted by the vertical-horizontal conversion table F to convert from horizontal to vertical, and then is transported to the warehousing system through the vertical conveyor table F1, the two-way conveyor table F, and the vertical conveyor table F2 for storing the glass.

[0018] Preferably, the vertical glass sorting machines A and B have the same structure, and each includes a base, bearing seats connected to both ends of the base, a lead screw rotatably connected to the two bearing seats, third guide rails provided on both sides of the base, a first motor provided at one end of the base and drivingly connected to the third guide rails, and a slide seat slidably connected to the third guide rails. The slide seat is threadedly connected to the first lead screw. A bracket is fixed on the slide seat, and a number of rows of inclined guide rods are connected to the bracket. A silica gel pad is sleeved around each guide rod.

[0019] In the above technical solution, when the first motor is started, the lead screw is driven to rotate. During the rotation of the lead screw, the slide seat is driven to move on the third guide rails, so that the glass conveyed in sequence can be received in turn. The glass passes through between adjacent guide rods. Through the action of the guide rods, the glass is kept upright, so as to temporarily store and sort the glass.

[0020] Preferably, the first vertical conveyor table, the second vertical conveyor table, the vertical conveyor tables A, B, C, F1, and F2 have the same structure, and each includes a base, a support plate and a support table connected to the base, and an inclined plate connected to the support plate. A number of through holes are provided in the inclined plate. Connection seats are connected to both sides of the through holes on the inner side of the inclined plate. A roller is rotatably connected to each connection seat. One end of the roller passes through the through hole and extends to the outside of the inclined plate. A number of guide rollers are rotatably connected to the support table. The inner ends of the guide rollers extend into the support table, and the extending ends are connected with first bevel gears. A number of rotating shafts are rotatably connected to the top of the base. The upper ends of the rotating shafts are connected with second bevel gears meshing with the first bevel gears. The lower ends of the rotating shafts are connected with third bevel gears. A transmission rod is rotatably connected to the base. A number of fourth bevel gears meshing with the third bevel gears are connected to the transmission rod. A second motor is also provided in the base. The second motor is drivingly connected to one end of the transmission rod. A stop block is connected to the base on one side of the guide rollers.

[0021] In the above technical solution, after the glass enters the inclined plate, the lower end of the glass abuts against the guide rollers. When the second motor is started, the transmission rod is driven to rotate. Through the action of the fourth bevel gear and the third bevel gear, the transmission rod drives the rotating shaft to rotate. Through the action of the second bevel gear and the first bevel gear, the rotating shaft drives the guide rollers to rotate, so as to convey the glass forward while keeping it upright. Moreover, through the action of the rollers, the glass can be supported and it is also beneficial for the glass to be conveyed forward.

[0022] Preferably, the rotating mechanism includes a rotating column rotatably connected to the second automatic trolley, a third motor provided on the second automatic trolley, a transmission shaft connected to the third motor through a coupling, a main gear connected to the transmission shaft, and a sub-gear connected to the rotating column. The main gear meshes with the sub-gear. The upper end of the rotating column is connected to the second vertical conveyor table.

[0023] In the above technical solution, the first automatic trolley moves horizontally on the first guide rail to catch the glass conveyed by the vertical conveyor table F2. Then, the first automatic trolley moves horizontally to reach the front of the corresponding second automatic trolley and sends the glass to the second vertical conveyor table. Next, the rotating mechanism adjusts the direction of the second vertical conveyor table to send the glass into the vertical storage table, thereby realizing the classified storage of the glass.

[0024] Compared with the prior art, the present invention has the following beneficial effects:

[0025] (1) Through conveyor lines A, B, C, E, and F, the glass cutting machine, edge grinding machine, and toughening line can be connected in series to form a complete glass automated production line, greatly improving the production efficiency of the glass and ensuring the production quality.

[0026] (2) During the production process of the glass, the vertical glass aligning machine can temporarily store the glass, achieving the orderly arrangement of the glass and improving the production efficiency. Moreover, when the entire set of glass processing procedures is completed, the glass can be orderly transported into the storage system for a large amount of orderly classified storage without manual transportation, improving the production efficiency. BRIEF DESCRIPTION OF THE DRAWINGS

[0027] Figure 1 is a schematic diagram of the present invention;

[0028] Figure 2 is a schematic diagram of the vertical conveyor table;

[0029] Figure 3 is a schematic diagram of the transmission rod;

[0030] Figure 4 is a schematic diagram of the vertical glass aligning machine;

[0031] Figure 5 is Figure 4 a partial enlarged view of;

[0032] Figure 6 is a schematic diagram of the rotating mechanism;

[0033] In the figure: 1 - glass cutting machine, 2 - conveyor line A, 201 - horizontal transfer table A, 202 - horizontal-vertical conversion table A, 203 - vertical transfer table A, 3 - vertical sheet aligning machine A, 4 - conveyor line B, 401 - vertical transfer table B, 402 - horizontal-vertical conversion table B, 403 - bidirectional transfer table B, 5 - inspection table, 6 - glass edge grinding machine, 7 - conveyor line C, 701 - horizontal-vertical conversion table C, 702 - vertical transfer table C, 8 - vertical sheet aligning machine B, 9 - conveyor line D, 901 - horizontal-vertical conversion table D, 902 - horizontal transfer table DⅠ, 903 - bidirectional transfer table D, 904 - horizontal transfer table DⅡ, 10 - automatic typesetting machine, 11 - conveyor line E, 1101 - bidirectional transfer table E, 1102 - horizontal transfer table E, 12 - toughening line, 13 - conveyor line F, 1301 - horizontal-vertical conversion table F, 1302 - vertical transfer table FⅠ, 1303 - bidirectional transfer table F, 1304 - vertical transfer table FⅡ, 14 - warehousing system, 1401 - first guide rail, 1402 - first automatic trolley, 1403 - first vertical transfer table, 1404 - vertical storage table, 1405 - second guide rail, 1406 - second automatic trolley, 1407 - second vertical transfer table, 15 - base, 16 - bearing block, 17 - lead screw, 18 - third guide rail, 19 - first motor, 20 - sliding seat, 21 - bracket, 22 - guide rod, 23 - silica gel pad, 24 - base plate, 25 - support plate, 26 - support table, 27 - inclined plate, 28 - roller, 29 - guide roller, 30 - first bevel gear, 31 - rotating shaft, 32 - second bevel gear, 33 - third bevel gear, 34 - transmission rod, 35 - fourth bevel gear, 36 - second motor, 37 - stop block, 38 - rotating column, 39 - third motor, 40 - main gear, 41 - auxiliary gear. Detailed implementation mode

[0034] The following will clearly and completely describe the technical solutions in the embodiments of the present invention with reference to the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.

[0035] Please refer to Figure 1 、 Figure 2, an automated glass production line, including a glass cutting machine 1. The glass cutting machine 1 is connected to a vertical glass aligning machine A 3 through a conveyor line A 2. The vertical glass aligning machine A 3 is sequentially connected to an inspection table 5 and a glass edge grinding machine 6 through a conveyor line B 4. The glass edge grinding machine 6 is connected to a vertical glass aligning machine B 8 through a conveyor line C 7. The vertical glass aligning machine B 8 is connected to an automatic layout machine 10 through a conveyor line D 9. The automatic layout machine 10 is connected to a toughening line 12 through a conveyor line E 11. The toughening line 12 is connected to a storage system 14 through a conveyor line F 13; the storage system 14 includes a horizontal first guide rail 1401, a first automatic trolley 1402 slidably connected to the first guide rail, a first vertical transfer table 1403 provided on the first automatic trolley, a plurality of vertical storage tables 1404 provided on one side of the first guide rail, a vertical second guide rail 1405 provided between adjacent vertical storage tables, a second automatic trolley 1406 slidably connected to the second guide rail, and a second vertical transfer table 1407 connected to the second automatic trolley through a rotating mechanism.

[0036] In this embodiment, the conveyor line A 2 includes a horizontal transfer table A 201 provided at the end of the glass cutting machine 1. The end of the horizontal transfer table A 201 is connected to a horizontal-vertical conversion table A 202. The horizontal-vertical conversion table A 202 is connected to the vertical glass aligning machine A 3 through a vertical transfer table A 203. The cut glass is conveyed to the horizontal-vertical conversion table A 202 through the horizontal transfer table A 201. The glass is converted from horizontal to vertical through the horizontal-vertical conversion table A 202, and then the glass is sent to the vertical glass aligning machine A 3 through the vertical transfer table A 203.

[0037] In this embodiment, the conveyor line B 4 includes a vertical transfer table B 401, a horizontal-vertical conversion table B 402, and a two-way transfer table B 403 arranged in sequence. The inspection table 5 is provided at the end of the two-way transfer table B 403. The vertical glass aligning machine A is used to collect several glasses, sort the glasses, and send the glasses to the vertical transfer table B 401 one by one in an orderly manner. After conversion through the horizontal-vertical conversion table B 402, the glass is converted from vertical to horizontal, and the direction of the glass is adjusted through the two-way transfer table 403B, and the glass is conveyed to the inspection table 5. After inspection, the glass is sent to the glass edge grinding machine 6 to grind the edges of the glass.

[0038] In this embodiment, the conveyor line C 7 includes a horizontal-vertical conversion table C 701 and a vertical transfer table C 702 connected in sequence. The vertical glass aligning machine B 8 is provided at the end of the vertical transfer table C 702. The glass after edge grinding enters the horizontal-vertical conversion table C 701, the glass is converted from horizontal to vertical, and is sent to the vertical glass aligning machine B 8 through the vertical transfer table C 702. The vertical glass aligning machine B 8 collects and temporarily stores the glass.

[0039] In this embodiment, the conveyor line D9 includes a horizontal-to-vertical conversion table D901, a horizontal conveying table DI902, a two-way conveying table D903, and a horizontal conveying table D2904 connected in sequence, and the automatic typesetting machine 10 is located at the end of the horizontal conveying table DI904. The glass of the vertical sheet sorting machine B8 is converted from vertical to horizontal through the horizontal-to-vertical conversion table D901, and then sent to the automatic typesetting machine 10 through the horizontal conveying table DI902, the two-way conveying table D903, and the horizontal conveying table D2, and the glass is automatically typed so as to enter the tempering line 12 in an orderly manner.

[0040] In this embodiment, the conveying line E11 includes a bidirectional conveying platform E1101 and a horizontal conveying platform E1102, and the tempering line 12 is arranged at the end of the horizontal conveying platform E1102. The glass coming out of the automatic typesetting machine 11 is sent to the tempering line via the bidirectional conveying platform E1101 and the horizontal conveying platform E1102 to be tempered.

[0041] In this embodiment, the conveyor line F13 includes a horizontal-to-vertical conversion table F1301, a vertical conveyor table F1302, a bidirectional conveyor table F1303, and a vertical conveyor table FII1304, which are arranged at the end of the tempering line, and the storage system 14 is arranged at the end of the vertical conveyor table FII1304. The tempered glass is converted from horizontal to vertical by the horizontal-to-vertical conversion table F1301, and then transported to the storage system 14 by the vertical conveyor table FI1302, the bidirectional conveyor table F1303, and the vertical conveyor table FII1304 for storage.

[0042] like Figure 4 , Figure 5 As shown, the vertical film sorting machine A3, the vertical film sorting machine B8, and the vertical storage table 1404 have the same structure, and all include a base 15, a bearing seat 16 connected to both ends of the base, a screw rod 17 rotatably connected to the two bearing seats, a third guide rail 18 provided on both sides of the base, a first motor 19 provided at one end of the base and transmission-connected to the third guide rail, and a slide 20 slidably connected to the third guide rail. The slide 20 is threadedly connected to the first screw rod 17. A bracket 21 is fixed on the slide 20. A plurality of rows of inclined guide rods 22 are connected to the bracket 21. The outer periphery of each guide rod 22 is provided with a silicone pad 23. The first motor 19 is started to drive the screw rod 17 to rotate. During the rotation of the screw rod 17, the slide is driven to move on the third guide rail 18, so that the conveyed glass can be received in sequence. The glass passes between adjacent guide rods 22. The glass is kept upright by the action of the guide rod 22, so that the glass is temporarily stored and sorted.

[0043] like Figure 2 , Figure 3As shown, the structures of the first vertical conveyor table 1403, the second vertical conveyor table 1407, the vertical conveyor table A 203, the vertical conveyor table B 401, the vertical conveyor table C 702, the vertical conveyor table FⅠ 1302, and the vertical conveyor table FⅡ 1304 are the same. Each includes a base 24, a support plate 25 and a support table 26 connected to the base, and an inclined plate 27 connected to the support plate. A number of through holes are formed in the inclined plate 27. Connecting seats are connected to both sides of the through holes on the inner side of the inclined plate. A roller 28 is rotatably connected in each connecting seat. One end of the roller 28 passes through the through hole and extends to the outside of the inclined plate 27. A number of guide rollers 29 are rotatably connected to the support table 26. The inner ends of the guide rollers 29 extend into the support table 26, and the extended ends are connected with first bevel gears 30. A number of rotating shafts 31 are rotatably connected to the top of the base 24. The upper ends of the rotating shafts 31 are connected with second bevel gears 32 meshing with the first bevel gears. The lower ends of the rotating shafts 31 are connected with third bevel gears 33. A transmission rod 34 is rotatably connected in the base 24. A number of fourth bevel gears 35 meshing with the third bevel gears are connected to the transmission rod 34. A second motor 36 is further provided in the base 24. The second motor 36 is drivingly connected to one end of the transmission rod 34. A stop block 37 is connected to the base 24 on one side of the guide roller 29 to prevent the glass from slipping. After the glass enters the inclined plate 27, the lower end of the glass abuts against the guide roller 29. The second motor 36 is started to drive the transmission rod 34 to rotate. The transmission rod 34 drives the rotating shaft 31 to rotate through the action of the fourth bevel gear 35 and the third bevel gear 33. The rotating shaft 31 drives the guide roller 29 to rotate through the action of the second bevel gear 32 and the first bevel gear 30, so as to keep the glass vertically conveyed forward. Moreover, through the action of the roller 28, the glass can be supported, and at the same time, it is beneficial for the glass to be conveyed forward.

[0044] As Figure 6 shown, the rotating mechanism includes a rotating column 38 rotatably connected to the second automatic trolley 1406, a third motor 39 provided on the second automatic trolley, a transmission shaft connected to the third motor through a coupling, a main gear 40 connected to the transmission shaft, and a sub-gear 41 connected to the rotating column. The main gear 40 meshes with the sub-gear 41. The upper end of the rotating column 38 is connected to the second vertical conveyor table 1407. The first automatic trolley 1402 moves horizontally on the first guide rail 1401 to receive the glass conveyed by the vertical conveyor table FⅡ 1304 through the first vertical conveyor table 1403. Then, the first automatic trolley 1402 moves horizontally to reach the front of the corresponding second automatic trolley 1406 and sends the glass to the second vertical conveyor table 1407. Then, the direction of the second vertical conveyor table 1407 is adjusted through the rotating mechanism to send the glass into the vertical storage table 1404, so as to realize the classified storage of the glass.

[0045] Among them, the lying-standing conversion table can be purchased as the lying-standing conversion conveyor table for dimension detection disclosed in the Chinese utility model patent with the authorized publication number of CN220200475U. The automatic typesetting machine can be purchased as a typesetting device for tempered glass production disclosed in the Chinese utility model patent with the authorized publication number of CN215206861U. The horizontal conveyor table adopts a roller conveyor. The two-way conveyor table can reverse the direction during the conversion glass conveying process. The above devices are all prior arts, and the specific structures and working principles thereof will not be described in detail in the present invention.

[0046] It should be noted that the term "comprising", "including" or any other variant thereof is intended to cover a non-exclusive inclusion, such that a process, method, article or device comprising a series of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article or device. Without further limitation, an element defined by the phrase "comprising a..." does not exclude the presence of additional identical elements in the process, method, article or device comprising the element.

[0047] Although the embodiments of the present invention have been shown and described, those of ordinary skill in the art can understand that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. An automated glass production line, characterized in that: The invention comprises a glass cutting machine (1), wherein the glass cutting machine (1) is connected to a vertical sheet sorting machine A (3) via a conveyor line A (2), the vertical sheet sorting machine A (3) is sequentially connected to a testing platform (5) and a glass edge grinding machine (6) via a conveyor line B (4), the glass edge grinding machine (6) is connected to a vertical sheet sorting machine B (8) via a conveyor line C (7), the vertical sheet sorting machine B (8) is connected to an automatic typesetting machine (10) via a conveyor line D (9), the automatic typesetting machine (10) is connected to a tempering line (12) via a conveyor line E (11), the tempering line (12) is connected to a A storage system (14); the storage system (14) comprises a first transverse guide rail (1401), a first automatic trolley (1402) slidably connected to the first guide rail, a first vertical transfer platform (1403) arranged on the first automatic trolley, a plurality of vertical vertical storage platforms (1404) arranged on one side of the first guide rail, a second guide rail (1405) arranged vertically between adjacent vertical storage platforms, a second automatic trolley (1406) slidably connected to the second guide rail, and a second vertical transfer platform (1407) connected to the second automatic trolley via a rotating mechanism.

2. The automated glass production line according to claim 1, characterized in that: The conveyor line A (2) comprises a horizontal conveyor platform A (201) arranged at the end of the glass cutting machine (1), the end of the horizontal conveyor platform A (201) is connected to a horizontal-to-vertical conversion platform A (202), and the horizontal-to-vertical conversion platform A (202) is connected to a vertical sheet sorting machine A (3) via a vertical conveyor platform A (203).

3. The automated glass production line according to claim 2, characterized in that: The conveyor line B (4) comprises a vertical conveying platform B (401), a horizontal-to-vertical conversion platform B (402) and a bidirectional conveying platform B (403) which are arranged in sequence, and the inspection platform (5) is arranged at the end of the bidirectional conveying platform B (403).

4. The automated glass production line according to claim 3, characterized in that: The conveyor line C (7) includes a horizontal-to-vertical conversion table C (701) and a vertical conveying table C (702) connected in sequence, and a vertical sheet sorting machine B (8) is arranged at the end of the vertical conveying table C (702).

5. The automated glass production line according to claim 4, characterized in that: The conveyor line D (9) includes a horizontal-to-vertical conversion table D (901), a horizontal conveying table DI (902), a bidirectional conveying table D (903), and a horizontal conveying table D2 (904) which are connected in sequence, and the automatic typesetting machine (10) is located at the end of the horizontal conveying table DI (904).

6. The automated glass production line according to claim 5, characterized in that: The conveying line E (11) includes a bidirectional conveying platform E (1101) and a horizontal conveying platform E (1102) which are arranged in sequence, and the tempering line (12) is arranged at the end of the horizontal conveying platform E (1102).

7. The automated glass production line according to claim 6, characterized in that: The conveyor line F (13) includes a horizontal-to-vertical conversion platform F (1301) arranged at the end of the tempering line, a vertical conveying platform FⅠ (1302), a bidirectional conveying platform F (1303), and a vertical conveying platform FⅡ (1304), and the storage system (14) is arranged at the end of the vertical conveying platform FⅡ (1304).

8. The automated glass production line according to claim 7, characterized in that: The vertical sheet sorting machine A (3), the vertical sheet sorting machine B (8), and the vertical storage table (1404) have the same structure, and all include a base (15), a bearing seat (16) connected to the two ends of the base, a screw rod (17) rotatably connected to the two bearing seats, a third guide rail (18) arranged on both sides of the base, a first motor (19) arranged at one end of the base and transmission-connected to the third guide rail, and a slide seat (20) slidably connected to the third guide rail, the slide seat (20) is threadedly connected to the first screw rod (17), a bracket (21) is fixed to the slide seat (20), and a plurality of rows of inclined guide rods (22) are connected to the bracket (21), and a silicone pad (23) is provided on the outer sleeve of each guide rod (22).

9. The automated glass production line according to claim 8, characterized in that: The first vertical conveying platform (1403), the second vertical conveying platform (1407), the vertical conveying platform A (203), the vertical conveying platform B (401), the vertical conveying platform C (702), the vertical conveying platform FⅠ (1302), and the vertical conveying platform FⅡ (1304) have the same structure, and all include a base (24), a support plate (25) and a support platform (26) connected to the base, and an inclined plate (27) connected to the support plate, wherein a plurality of through holes are provided on the inclined plate (27), and connecting seats are connected to the inner side of the inclined plate at both sides of the through holes, and a roller (28) is rotatably connected in each connecting seat, and one end of the roller (28) passes through the through hole and extends to the outer side of the inclined plate (27), and a plurality of guide rollers (28) are rotatably connected to the support platform (26). 9), the inner end of the guide roller (29) extends into the support platform (26), and the extended end is connected to a first bevel gear (30), the top of the base (24) is rotatably connected to a plurality of rotating shafts (31), the upper end of the rotating shaft (31) is connected to a second bevel gear (32) meshing with the first bevel gear, the lower end of the rotating shaft (31) is connected to a third bevel gear (33), a transmission rod (34) is rotatably connected in the base (24), and a plurality of fourth bevel gears (35) meshing with the third bevel gear are connected to the transmission rod (34), a second motor (36) is further provided in the base (24), the second motor (36) is transmission-connected to one end of the transmission rod (34), and a stopper (37) is connected to one side of the guide roller (29) on the base (24).

10. The automated glass production line according to claim 9, characterized in that: The rotating mechanism includes a rotating column (38) rotatably connected to the second automatic trolley (1406), a third motor (39) arranged on the second automatic trolley, a transmission shaft connected to the third motor through a coupling, a main gear (40) connected to the transmission shaft, and a sub-gear (41) connected to the rotating column. The main gear (40) is meshed with the sub-gear (41), and the upper end of the rotating column (38) is connected to the second vertical conveying platform (1407).

Citation Information

Patent Citations

  • A typesetting device for tempered glass production

    CN215206861U

  • Horizontal-vertical conversion conveying table suitable for size detection

    CN220200475U