Glass laminated glass furnace for producing vacuum laminated glass
By using a bidirectional threaded rod and drive plate structure in the glass laminating furnace, a tight bond and uniform heating between the glass and the EVA film are achieved, solving the problem of uneven heating in the glass laminating furnace and improving the quality of laminated glass.
Patent Information
- Application Number
- CN202520183391.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-06
- Publication Date
- 2026-01-09
- Estimated Expiration
- 2035-02-06
AI Technical Summary
Existing glass laminating furnaces are prone to uneven heating of the glass and EVA film during the heating process, which affects the product quality of laminated glass.
The structure employs a bidirectional threaded rod and drive plate, using a motor to drive a moving plate and pressure rollers to uniformly pressurize and heat the glass. Combined with vacuum treatment, this ensures a tight bond between the glass and the EVA film, and uniform heating is achieved through the cyclical movement of heating lamps.
It effectively prevents glass damage and improves the heating uniformity and product quality of laminated glass.
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Figure CN223778006U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to glass lamination furnace technical field especially relates to a kind of glass lamination furnaces of production vacuum lamination glass. BACKGROUND
[0002] Glass lamination furnace principle is through high-temperature extrusion, new eva film is used to stick two or more pieces of glass together. The lamination glass made has many advantages such as high strength, waterproof, safety explosion-proof.
[0003] But in prior art, the existing glass lamination furnace mostly adopts fixed heating structure to warm glass and EVA film when using, so that glass and EVA film can be unevenly heated, which can cause defects in laminated glass and affect product quality. UTILITY MODEL CONTENT
[0004] The utility model aims at solving the problems in prior art.
[0005] In order to achieve the above-mentioned purpose, the utility model adopts the following technical scheme: a kind of glass lamination furnaces of production vacuum lamination glass, comprising: lamination furnace shell, the four ends of the bottom of the lamination furnace shell are fixedly installed with support leg, one side of the lamination furnace shell inner chamber is fixedly installed with two longitudinal slide rods, the other side of the lamination furnace shell inner chamber is fixedly installed with two transverse slide rods, the two sides in the lamination furnace shell are fixedly installed with two support plates, the side of the lamination furnace shell is provided with sealing groove, the side of the lamination furnace shell is provided with sealing door assembly, the top of the lamination furnace shell is fixedly installed with motor one, the side of the back of the lamination furnace shell is fixedly installed with motor two, the other side of the back of the lamination furnace shell is fixedly installed with vacuum pump, the surface of two longitudinal slide rods is provided with support assembly, the side of the support assembly is provided with heating device.
[0006] As a preferred implementation, the sealing door assembly includes a door, the bottom of the door surface is installed on one side of the lamination furnace shell by a hinge, the top of one side of the door is fixedly installed with a handle, both ends of one side of the door are movably embedded with handle locks, and a sealing frame is fixedly installed around the surface of one side of the lamination furnace shell.
[0007] As a preferred implementation, the output end of the motor one penetrates the top of the lamination furnace shell through a bearing and is installed with a bidirectional threaded rod, and the bottom of the bidirectional threaded rod is installed in the bottom of the lamination furnace shell inner chamber through a bearing.
[0008] As a preferred implementation, the output end of the motor two penetrates the back of the lamination furnace shell through a bearing and is installed with a threaded rod, and one end of the threaded rod is installed in one side of the lamination furnace shell inner chamber through a bearing.
[0009] As a preferred implementation, the pumping end of the vacuum pump penetrates the back of the laminated glass furnace shell and is provided with a connecting pipe.
[0010] As a preferred implementation, the support assembly includes two moving plates, each of which is provided with a trapezoidal sliding groove on one side, a threaded groove is provided through the middle of the surface of each moving plate, and each threaded groove is threadedly sleeved on the surface of the two ends of a threaded rod, two movable grooves are provided through the two sides of the surface of each moving plate, and the four movable grooves are evenly divided into two groups, and each group of movable grooves is movably sleeved on the surface of a longitudinal sliding rod.
[0011] As a preferred implementation, the heating device includes a driving plate, two telescopic rods are fixedly installed on the upper and lower sides of the driving plate, the two telescopic rods are evenly divided into two groups, a sliding table is fixedly installed on one end of each group of telescopic rods, one side of each sliding table is movably embedded in the inside of each trapezoidal sliding groove, an installation plate is fixedly installed on the other side of each sliding table, a support sleeve is fixedly installed on one side of each installation plate, each support sleeve is movably sleeved on the surface of each transverse sliding rod, four installation rods are movably embedded on the surface of each installation plate, the eight installation rods are evenly divided into two groups, a limiting plate is fixedly installed on the opposite side of each group of installation rods, a press roller is installed on the opposite side of each group of installation rods through a mounting seat, a spring is fixedly installed on the opposite side of each mounting seat, each spring is movably sleeved on the surface of each group of installation rods, one end of each spring is fixedly installed on the opposite side of each installation plate, and a heating lamp is fixedly installed on the opposite side of each installation plate.
[0012] Compared with the prior art, the utility model has the advantages and positive effects that:
[0013] 1、The utility model discloses a laminated glass pressurizing and heating, and the glass to be put into the vacuum bag is put on the surface of the support plate of the laminated glass furnace shell, then the vacuum bag suction port is connected with the connecting pipe for vacuum treatment, and then the external controller starts the motor one to drive the two moving plates to move close, so that the press rollers on the upper and lower sides are attached and extruded on the two sides of the vacuum bag, the glass is extruded more closely, and the cooperation of the installation rod and the press roller can prevent the glass from being damaged due to excessive pressure.
[0014] 2、The utility model discloses a glass fixed pressurizing, and the door is closed, and then the motor two is started, and the heating lamp is powered on, the motor two drives the threaded rod to rotate, and the driving plate drives the two installation plates to move back and forth on the surface of the glass, and the glass is heated, which not only heats the two sides of the glass at the same time, but also makes the surface glass heated more evenly through the circular heating of the heating lamp, thereby improving the product quality. BRIEF DESCRIPTION OF DRAWINGS
[0015] Figure 1 The utility model provides a main body schematic drawing of glass lamination furnace of production vacuum lamination glass;
[0016] Figure 2 The utility model provides a side view of glass lamination furnace of production vacuum lamination glass;
[0017] Figure 3 The utility model provides a glass lamination furnace shell internal structure drawing of glass lamination furnace of production vacuum lamination glass;
[0018] Figure 4 The utility model provides a glass lamination furnace shell internal structure drawing of glass lamination furnace of production vacuum lamination glass;
[0019] Figure 5 The utility model provides a heating device structure schematic drawing of glass lamination furnace of production vacuum lamination glass;
[0020] Figure 6 The utility model provides a sealing door subassembly structure schematic drawing of glass lamination furnace of production vacuum lamination glass;
[0021] Figure 7 The utility model provides a sealing groove structure schematic drawing of glass lamination furnace of production vacuum lamination glass.
[0022] Legend:
[0023] 1, glass lamination furnace shell, 101, support leg, 102, longitudinal slide bar, 103, transverse slide bar, 104, support plate, 105, sealing groove, 2, sealing door subassembly, 201, bin door, 202, handle, 203, handle lock, 204, sealing frame, 3, motor one, 301, two -way screw rod, 4, motor two, 401, screw rod, 5, vacuum pump, 501, connecting pipe, 6, support subassembly, 601, moving plate, 602, trapezoidal slide, 603, screw groove, 604, movable groove, 7, heating device, 701, drive plate, 702, telescopic link, 703, slide table, 704, mounting plate, 705, support sleeve, 706, mounting rod, 707, limiting plate, 708, pressurizing roller, 709, spring, 710, heating lamp. DETAILED DESCRIPTION
[0024] With reference to the drawings of the embodiments of the present application, the technical solutions in the embodiments of the present application will be clearly and completely described. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments of the present application, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of the present application.
[0025] Please refer to Figures 1-7 The utility model provides a technical scheme: a glass lamination furnace for producing vacuum laminated glass, comprising: a lamination furnace shell 1, four ends of the bottom of the lamination furnace shell 1 are fixedly installed with supporting legs 101, one side of the inner cavity of the lamination furnace shell 1 is fixedly installed with two longitudinal slide rods 102, the other side of the inner cavity of the lamination furnace shell 1 is fixedly installed with two transverse slide rods 103, both sides of the inside of the lamination furnace shell 1 are fixedly installed with two supporting plates 104, one side of the lamination furnace shell 1 is provided with a sealing groove 105, one side of the lamination furnace shell 1 is provided with a sealing door assembly 2, the top of the lamination furnace shell 1 is fixedly installed with a motor one 3, one side of the back of the lamination furnace shell 1 is fixedly installed with a motor two 4, the other side of the back of the lamination furnace shell 1 is fixedly installed with a vacuum pump 5, the surface of the two longitudinal slide rods 102 is provided with a supporting assembly 6, one side of the supporting assembly 6 is provided with a heating device 7.
[0026] Specifically: the lamination furnace shell 1 cooperates with the sealing door assembly 2 to seal and heat inside, the supporting legs 101 support the bottom of the lamination furnace shell 1, the longitudinal slide rods 102 limit the movement plate 601, the transverse slide rods 103 support and install the supporting sleeve 705, the four supporting plates 104 are installed on both sides of the inside of the lamination furnace shell 1, the surface horizontal line of which is located in the middle of the pressing rollers 708 on the upper and lower sides, and the sealing groove 105 cooperates with the bin door 201 and the sealing frame 204 to strengthen the sealing of the lamination furnace shell 1.
[0027] In one embodiment, the sealing door assembly 2 comprises a bin door 201, the bottom of the surface of the bin door 201 is hingedly installed on one side of the lamination furnace shell 1, a handle 202 is fixedly installed on the top of one side of the bin door 201, handle locks 203 are movably embedded on both ends of one side of the bin door 201, and a sealing frame 204 is fixedly installed around the surface of one side of the lamination furnace shell 1.
[0028] Specifically: the handle 202 facilitates the opening and closing of the bin door 201, the handle locks 203 lock the bin door 201, the bin door 201 is embedded in the sealing groove 105, and the sealing frame 204 is attached to the surface of the lamination furnace shell 1 to strengthen the sealing effect of the bin door 201.
[0029] In one embodiment, the output end of the motor 3 penetrates the top of the laminating furnace shell 1 through a bearing and is installed with a bidirectional threaded rod 301, the bottom of the bidirectional threaded rod 301 is installed in the bottom of the inner cavity of the laminating furnace shell 1 through a bearing.
[0030] Specifically: the surface of the bidirectional threaded rod 301 is provided with reverse threads at both ends, which cooperate with the threaded grooves 603 to support the moving plates 601. When the motor 3 drives the bidirectional threaded rod 301 to rotate, the two moving plates 601 are driven to move in opposite directions in cooperation with the limiting of the longitudinal sliding rods 102.
[0031] In one embodiment, the output end of the motor 2 4 penetrates the back of the laminating furnace shell 1 through a bearing and is installed with a threaded rod 401, one end of the threaded rod 401 is installed in one side of the inner cavity of the laminating furnace shell 1 through a bearing.
[0032] Specifically: the threaded rod 401 supports and installs the driving plate 701. After the motor 2 4 drives the threaded rod 401 to rotate, the driving plate 701 is driven to move reciprocally.
[0033] In one embodiment, the suction end of the vacuum pump 5 penetrates the back of the laminating furnace shell 1 and is installed with a connecting pipe 501.
[0034] Specifically: the vacuum pump 5 is a common device in the prior art, and the suction end thereof is sealed and penetrates the surface of the laminating furnace shell 1 and is connected with the connecting pipe 501.
[0035] In one embodiment, the support assembly 6 includes two moving plates 601, one side of each of the two moving plates 601 is provided with a trapezoidal sliding groove 602, the surface of each of the two moving plates 601 is provided with a threaded groove 603 penetratingly formed in the middle, the two threaded grooves 603 are respectively threadedly sleeved on the surfaces of the two ends of the threaded rod 401, the surfaces of the two moving plates 601 are provided with two movable grooves 604 penetratingly formed on both sides, the four movable grooves 604 are evenly divided into two groups, and the two groups of movable grooves 604 are respectively movably sleeved on the surfaces of the two longitudinal sliding rods 102.
[0036] Specifically: the trapezoidal sliding groove 602 and the sliding table 703 are common combinations in the prior art, which facilitate sliding and limiting.
[0037] In an embodiment, the heating device 7 comprises a driving plate 701, two telescopic rods 702 are fixedly installed on the upper and lower sides of the driving plate 701, the two telescopic rods 702 are evenly divided into two groups, one end of the two groups of telescopic rods 702 is fixedly installed with a sliding table 703, one side of the two sliding tables 703 is movably embedded in the inside of the two trapezoidal sliding grooves 602, the other side of the two sliding tables 703 is fixedly installed with a mounting plate 704, one side of the two mounting plates 704 is fixedly installed with a supporting sleeve 705, the two supporting sleeves 705 are movably sleeved on the surfaces of the two transverse sliding rods 103, the surfaces of the two mounting plates 704 are movably embedded with four mounting rods 706, the eight mounting rods 706 are evenly divided into two groups, the opposite sides of the two groups of mounting rods 706 are fixedly installed with a limiting plate 707, the opposite sides of the two groups of mounting rods 706 are fixedly installed with a pressing roller 708 through a mounting seat, the opposite sides of the two groups of mounting seats are fixedly installed with a spring 709, the two groups of springs 709 are movably sleeved on the surfaces of the two groups of mounting rods 706, one end of the two groups of springs 709 is fixedly installed on the opposite sides of the two mounting plates 704, and the opposite sides of the two mounting plates 704 are fixedly installed with a heating lamp 710.
[0038] Specifically: The telescopic distance of the telescopic rod 702 is enough for the mounting rod 706 on the upper and lower sides to move and extrude on both sides of the glass, the moving plate 601 moves under the drive of the bidirectional screw rod 301, and moves the two mounting plates 704 through the sliding table 703, the pressing roller 708 extrudes on both sides of the glass with the movement of the two moving plates 601, after extruding the glass, the mounting rod 706 will move in the mounting plate 704, and the pressing roller 708 will extrude the limiting plate 707 for buffering, the mounting plate 704 moves with the driving plate 701 under the drive of the screw rod 401, so as to drive the heating lamp 710 to move and heat circularly on both sides of the glass, the four pressing rollers 708 on the lower side are located at the middle position of the four pressing rollers 708 on the upper side, and when moving on the surface of the glass, they will not be blocked by the supporting plate 104.
[0039] Working principle: when using the device to pressurize and heat laminated glass, first rotate the handle lock 203 to open the door 201, then put the glass to be put into the vacuum bag into the support plate 104 surface inside the laminated glass furnace shell body 1, then connect the vacuum bag exhaust port with the connecting pipe 501 and start the vacuum pump 5 to vacuum the vacuum bag, then start the motor one 3 through the external controller, the motor one 3 drives the bidirectional screw rod 301 to rotate, thereby driving the two moving plates 601 to move close, so that the upper and lower two sides of the pressing roller 708 are extruded on the two sides of the vacuum bag, so that the glass is extruded more closely, and through the cooperation of the mounting rod 706 and the pressing roller 708, the damage of the glass caused by excessive pressure can be prevented; after fixing and pressing the glass, close the door 201, then start the motor two 4 and supply power to the heating lamp 710, the motor two 4 drives the screw rod 401 to rotate, and drives the two mounting plates 704 to move back and forth on the surface of the glass through the driving plate 701, so as to heat, which not only heats the two sides of the glass at the same time, but also makes the surface glass heated more evenly with the circulating movement of the heating lamp 710, so as to improve the product quality.
[0040] The above is only a preferred embodiment of the present application, and is not intended to limit the present application in other forms. Any skilled person in the art can modify or change the above disclosed technical content to equivalent embodiments applied to other fields, but any simple modification, equivalent change and modification of the above embodiments without departing from the technical scheme of the present application, according to the technical essence of the present application, still belongs to the protection scope of the present application.
Claims
1. A glass lamination furnace for producing vacuum laminated glass, characterized by, Include: The laminated furnace shell (1), the four ends of the bottom of the laminated furnace shell (1) are fixedly installed with support legs (101), two longitudinal slide rods (102) are fixedly installed on one side of the inner cavity of the laminated furnace shell (1), two transverse slide rods (103) are fixedly installed on the other side of the inner cavity of the laminated furnace shell (1), two support plates (104) are fixedly installed on both sides of the inside of the laminated furnace shell (1), a sealing groove (105) is formed on one side of the laminated furnace shell (1), a sealing door assembly (2) is arranged on one side of the laminated furnace shell (1), a motor one (3) is fixedly installed on the top of the laminated furnace shell (1), a motor two (4) is fixedly installed on one side of the back of the laminated furnace shell (1), a vacuum pump (5) is fixedly installed on the other side of the back of the laminated furnace shell (1), support assemblies (6) are arranged on the surfaces of the two longitudinal slide rods (102), and heating devices (7) are arranged on one side of the support assemblies (6).
2. The glass lamination furnace for producing vacuum laminated glass according to claim 1, characterized in that: The sealing door assembly (2) comprises a warehouse door (201), the bottom of the surface of the warehouse door (201) is hingedly installed on one side of the laminated furnace shell (1), a handle (202) is fixedly installed on the top of one side of the warehouse door (201), handle locks (203) are movably embedded on both ends of one side of the warehouse door (201), and a sealing frame (204) is fixedly installed on the surface of one side of the laminated furnace shell (1).
3. The glass lamination furnace for producing vacuum laminated glass according to claim 1, characterized in that: The output end of the motor one (3) penetrates the top of the laminated furnace shell (1) through a bearing and is installed with a bidirectional threaded rod (301), and the bottom of the bidirectional threaded rod (301) is installed in the bottom of the inner cavity of the laminated furnace shell (1) through a bearing.
4. The glass lamination furnace for producing vacuum laminated glass according to claim 1, characterized in that: The output end of the motor two (4) penetrates the back of the laminated furnace shell (1) through a bearing and is installed with a threaded rod (401), and one end of the threaded rod (401) is installed on one side of the inner cavity of the laminated furnace shell (1) through a bearing.
5. The glass lamination furnace for producing vacuum laminated glass according to claim 1, characterized in that: The air suction end of the vacuum pump (5) penetrates the back of the laminated furnace shell (1) and is installed with a connecting pipe (501).
6. The glass lamination furnace for producing vacuum laminated glass according to claim 1, characterized in that: The support assembly (6) comprises two moving plates (601), trapezoidal slide grooves (602) are formed on one side of the two moving plates (601), threaded grooves (603) are formed in the surfaces of the two moving plates (601), the two threaded grooves (603) are respectively threadedly sleeved on the surfaces of the two ends of the threaded rod (401), movable grooves (604) are formed in the surfaces of the two moving plates (601), four movable grooves (604) are evenly divided into two groups, and the two groups of movable grooves (604) are movably sleeved on the surfaces of the two longitudinal slide rods (102).
7. The glass lamination furnace for producing vacuum laminated glass according to claim 1, characterized in that: The heating device (7) includes a drive plate (701), two telescopic rods (702) are fixedly installed on the upper and lower sides of the drive plate (701), the two telescopic rods (702) are evenly divided into two groups, one end of the telescopic rods (702) in the two groups is fixedly installed with a sliding table (703), one side of the two sliding tables (703) is movably embedded in the two trapezoidal sliding grooves (602) respectively, the other side of the two sliding tables (703) is fixedly installed with a mounting plate (704), one side of the two mounting plates (704) is fixedly installed with a supporting sleeve (705), the two supporting sleeves (705) are movably sleeved on the surfaces of two transverse sliding rods (103) respectively, the surfaces of the two mounting plates (704) are movably embedded with four mounting rods (706), the eight mounting rods (706) are evenly divided into two groups, the opposite sides of the mounting rods (706) in the two groups are fixedly installed with a limiting plate (707), the opposite sides of the mounting rods (706) in the two groups are fixedly installed with a pressing roller (708) through a mounting seat, the opposite sides of the two mounting seats are fixedly installed with a spring (709), the surfaces of the two groups of mounting rods (706) are movably sleeved with the two groups of springs (709) respectively, one end of the two groups of springs (709) is fixedly installed on the opposite sides of the two mounting plates (704) respectively, and the opposite sides of the two mounting plates (704) are fixedly installed with a heating lamp (710).