Energy-saving large-scale inclined blanket type material feeding machine for substrate glass production

By introducing magnetic separation, cleaning, material distribution, and scraping mechanisms into the inclined carpet feeder, the problems of iron inclusion and agglomeration in glass fragments were solved, thereby improving the quality of glass melting and production efficiency.

CN115849672BActive Publication Date: 2026-03-03JIANGSU JINMING IND ROBOT AUTOMATION
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-12-08
Publication Date
2026-03-03

AI Technical Summary

Technical Problem

Existing inclined carpet glass feeders are prone to the addition of metallic substances when feeding glass fragments, resulting in poor purity. Furthermore, the clumping or agglomerated glass fragments affect the melting effect, and equipment blockage is frequent, impacting production efficiency.

Method used

A large-scale inclined carpet feeding machine for energy-saving substrate glass production was designed, which includes a magnetic separation mechanism, a cleaning mechanism, a dispensing mechanism, a pushing mechanism, and a scraping mechanism. The machine uses a magnet to attract iron sheets, a spiral rod to clean the iron sheets, an electric push rod to control the dispensing, and a scraper to clean up the sticky fragments, thus achieving uniform feeding and precise control of glass fragments.

Benefits of technology

It effectively removes iron fragments from glass shards, ensuring the quality of glass melting, preventing clumping and blockage, and improving production efficiency and product purity.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present application relates to the technical field of inclined blanket type feeding machine, in particular to a large-scale inclined blanket type feeding machine for energy-saving substrate glass production, which comprises a body, a magnetic separation mechanism, a cleaning mechanism, a distributing mechanism, a pushing mechanism and a scraping mechanism, a magnet is arranged on one side of the rotating drum, when the glass fragments fall to the left end of the rotating drum, the iron pieces in the glass fragments will be adsorbed on the outer surface of the rotating drum, the glass fragments fall from the left channel of the first receiving groove, and the iron pieces adsorbed on the outer surface of the rotating drum will rotate to the right side of the first receiving groove, and then fall into the discharge pipe due to the loss of the magnetic force, when the first rotating shaft rotates, the spiral rod rotates to push the iron pieces in the discharge pipe out of the equipment, when the inclined plate slides forward, the first sliding block in the trapezoidal shape pushes the glass fragments accumulated at the furnace mouth forward, and the scraper cleans the glass fragments adhered to the surface of the inclined plate during the sliding process of the inclined plate.
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Description

Technical Field

[0001] This invention relates to the field of inclined blanket feeding machine technology, specifically a large inclined blanket feeding machine for energy-saving substrate glass production. Background Technology

[0002] The inclined carpet glass feeder is a type of inclined glass feeding machine. It is a time-saving mechanical device used in glass factories to feed mixed glass raw materials into the glass melting furnace. The glass feeding machine uses a heat-resistant steel feeding nozzle. The inclined carpet feeder is safe and features smooth material feeding, uniform material layer, good melting quality, energy saving, and no material leakage from the hopper. Its advantages include: the feeding nozzle is made of heat-resistant cast steel (1Cr18Ni9Ti), eliminating the need for a water cooling structure, extending the nozzle's lifespan, reducing maintenance, improving work efficiency, and increasing the unit's economic benefits.

[0003] However, existing inclined glass feeders often introduce metallic substances into the glass fragments during operation. If these metallic substances are not removed, they can lead to poor purity during subsequent glass melting and refining, affecting product quality. Furthermore, prolonged accumulation of glass fragments can cause some to clump together, resulting in incomplete melting, stress concentration after molding, and performance degradation. Existing equipment also leaves some glass fragments at the furnace opening during feeding. These fragments need to be promptly pushed into the furnace to avoid impacting production efficiency. Additionally, prolonged use at the furnace opening can cause melted and sticky glass fragments to adhere to the inclined plate of the feeder. Failure to clean this promptly can obstruct feeding, causing blockages and further reducing production efficiency. Summary of the Invention

[0004] To address the problems in the prior art, this invention provides a large-scale inclined blanket feeding machine for energy-saving substrate glass production.

[0005] The technical solution adopted by the present invention to solve its technical problem is: a large inclined carpet feeding machine for energy-saving substrate glass production, comprising: a large inclined carpet feeding machine for energy-saving substrate glass production, characterized in that: it includes a body, a magnetic separation mechanism, a cleaning mechanism, a material distribution mechanism, a pushing mechanism, and a scraping mechanism; the body is provided with a magnetic separation mechanism inside; the magnetic separation mechanism is provided with a cleaning mechanism at its lower end; the cleaning mechanism is provided with a material distribution mechanism at its lower end; the material distribution mechanism is provided with a pushing mechanism at its lower end; and the pushing mechanism is provided with a scraping mechanism at one end.

[0006] Preferably, the body includes a frame, with wheels rotatably connected to the sidewalls of the frame, a first fixing plate fixedly connected to the upper end of the frame, a sliding groove fixedly connected to the upper end of the first fixing plate, a first connecting block fixedly connected to the upper end of the frame, and a first receiving groove fixedly connected to the sidewall of the first connecting block.

[0007] Preferably, the body further includes a second receiving groove, and the upper end of the first receiving groove is fixedly connected to the second receiving groove.

[0008] Preferably, the magnetic separation mechanism includes a first motor, the lower end of which is fixedly connected to a first connecting block. A first rotating shaft is fixedly connected to one end of the first motor. A rotating drum is fixedly connected to the side wall of the first rotating shaft. A stop block is fixedly connected to the side wall of the rotating drum. A fixing rod is fixedly connected to the inner side wall of the first receiving trough.

[0009] Preferably, the magnetic separation mechanism further includes a magnet, the magnet is fixedly connected to the side wall of the fixed rod, a bearing is fixedly connected to the side wall of the fixed rod, and the outer side wall of the bearing is fixedly connected to the rotating drum.

[0010] Preferably, the cleaning mechanism includes a first spur gear, a first rotating shaft fixedly connected to the middle of the first spur gear, a second spur gear meshing with one end of the first spur gear, and a second rotating shaft fixedly connected to the middle of the second spur gear.

[0011] Preferably, the cleaning mechanism further includes a screw rod, one end of which is fixedly connected to the second rotating shaft, and a discharge pipe is provided on the outside of the screw rod, the side wall of which is fixedly connected to the first receiving groove.

[0012] Preferably, the material distribution mechanism includes a sliding plate, the lower end of which is slidably connected to a chute, an inclined plate fixedly connected to the upper end of the sliding plate, a partition plate fixedly connected to the upper end of the inclined plate, a fixing block fixedly connected to the upper end of the inclined plate, a second connecting groove provided inside the fixing block, an electric push rod fixedly connected to the inner side wall of the fixing block, a baffle fixedly connected to one end of the electric push rod, and a first sliding block slidably connected to the side wall of the inclined plate.

[0013] Preferably, the pushing mechanism includes a second motor, the lower end of which is fixedly connected to the frame, a third rotating shaft fixedly connected to one end of the second motor, a turntable fixedly connected to one end of the third rotating shaft, a first rotating pin rotatably connected to the side wall of the turntable, a movable rod fixedly connected to the side wall of the first rotating pin, and a second rotating pin fixedly connected to one end of the movable rod.

[0014] Preferably, the scraping mechanism includes a second fixed plate, one end of which is fixedly connected to the frame, and a steel wire rope is fixedly connected to one end of the second fixed plate. A rotating pin is tightly fitted to the side wall of the steel wire rope, one end of which is rotatably connected to a trapezoidal block. A second connecting block is fixedly connected to one end of the steel wire rope, and a scraper is fixedly connected to the side wall of the second connecting block.

[0015] Preferably, the scraping mechanism further includes a second sliding block, one end of which is fixedly connected to the second connecting block, a first sleeve is slidably connected to the outside of the second sliding block, a first spring is tightly fitted to the lower end of the second sliding block, the side wall of the first sleeve is fixedly connected to the trapezoidal block, a slider is fixedly connected to the side wall of the trapezoidal block, a second sleeve is slidably connected to the side wall of the slider, the side wall of the second sleeve is fixedly connected to the inclined plate, and a second spring is tightly fitted to one end of the slider.

[0016] The beneficial effects of this invention are:

[0017] The present invention describes a large inclined carpet-type feeding machine for energy-saving substrate glass production. A first motor rotates, which in turn rotates a drum. The rotation of the drum drives a stop block to rotate, breaking up any agglomerated glass fragments. Simultaneously, the rotation of the stop block allows the glass fragments to fall evenly from the first receiving trough. A magnet is installed on one side inside the drum. When a glass fragment falls to the left end of the drum, the iron pieces within the fragment are attracted to the outer surface of the drum. The glass fragment falls from the left side of the first receiving trough, while the iron pieces attracted to the outer surface of the drum fall into the discharge pipe when the drum rotates to the right side of the first receiving trough, where the magnetic attraction disappears.

[0018] The present invention describes a large inclined blanket feeding machine for energy-saving substrate glass production. When the first rotating shaft rotates, it drives the first spur gear to rotate. The rotation of the first spur gear drives the second spur gear to rotate. The rotation of the second spur gear drives the second rotating shaft to rotate. The rotation of the second rotating shaft drives the screw rod to rotate. The rotation of the screw rod pushes the iron sheet inside the discharge pipe out of the equipment.

[0019] The present invention describes a large inclined blanket type feeding machine for energy-saving substrate glass production. An electric push rod drives a baffle to abut against the upper end of a partition plate. The baffle is stepped, so the distance the electric push rod controls the baffle to move to the right can abut against the corresponding small grid, thereby controlling the material distribution. The amount of material needed is precisely controlled by controlling the electric push rod to move the baffle to the right to abut against the corresponding small grid.

[0020] The present invention discloses a large inclined blanket feeding machine for energy-saving substrate glass production. When the inclined plate slides forward, it drives the first trapezoidal sliding block to push the glass fragments accumulated at the furnace opening forward. During the forward sliding of the inclined plate, it drives the scraper to move downward to the lowest point to adhere to the surface of the inclined plate. At this time, the steel wire rope pulls the trapezoidal block to move backward. The trapezoidal block moves backward along the side wall of the inclined plate. During the backward movement of the trapezoidal block, it drives the slider to move to the right. The rightward movement of the slider compresses the second spring. When the trapezoidal block moves backward along the side wall of the inclined plate, the scraper cleans the glass fragments adhering to the surface of the inclined plate. Attached Figure Description

[0021] The present invention will be further described below with reference to the accompanying drawings and embodiments.

[0022] Figure 1 This is a schematic diagram of the overall structure of the present invention;

[0023] Figure 2 for Figure 1 The diagram shows the connection structure between the frame and the wheel.

[0024] Figure 3 for Figure 1 The overall structural cross-sectional view shown;

[0025] Figure 4 for Figure 1 The diagram shows the connection structure between the first motor and the first rotating shaft.

[0026] Figure 5 for Figure 3 The enlarged schematic diagram of part A shown below;

[0027] Figure 6 for Figure 2 The diagram shows the connection structure between the fixing rod and the magnet.

[0028] Figure 7 for Figure 3 The diagram shows the connection structure between the electric actuator and the baffle.

[0029] Figure 8 for Figure 3 The enlarged schematic diagram of section B is shown below;

[0030] Figure 9 for Figure 8 The diagram shows the connection structure between the second connecting block and the scraper.

[0031] Figure 10 for Figure 8 The diagram shows the connection structure between the slider and the second spring.

[0032] In the diagram: 1. Body; 11. Frame; 12. Wheel; 13. First fixing plate; 14. Slide groove; 15. First connecting block; 16. First receiving trough; 17. Second receiving trough; 2. Magnetic separation mechanism; 21. First motor; 22. First rotating shaft; 23. Rotating drum; 24. Stop block; 25. Fixing rod; 26. Magnet; 27. Bearing; 3. Cleaning mechanism; 31. First spur gear; 32. Second spur gear; 33. Second rotating shaft; 34. Screw rod; 35. Discharge pipe; 4. Material distribution mechanism; 41. Sliding plate; 42. Inclined plate; 43. Divider plate; 44. 45. Fixed block; 46. Second connecting groove; 47. Electric push rod; 48. Baffle; 59. First sliding block; 60. Pushing mechanism; 51. Second motor; 52. Third rotating shaft; 53. Turntable; 54. First rotating pin; 55. Movable rod; 56. Second rotating pin; 67. Scraping mechanism; 68. Second fixed plate; 69. Steel wire rope; 60. Rotating pin; 610. Second connecting block; 62. Scraper; 63. Second sliding block; 64. First sleeve; 65. First spring; 66. Trapezoidal block; 67. Slider; 68. Second sleeve; 69. Second spring. Detailed Implementation

[0033] To make the technical means, creative features, objectives and effects of this invention easier to understand, the invention will be further described below in conjunction with specific embodiments.

[0034] like Figures 1-10 As shown, the large inclined carpet feeding machine for energy-saving substrate glass production according to the present invention includes a main body 1, a magnetic separation mechanism 2, a cleaning mechanism 3, a material distribution mechanism 4, a pushing mechanism 5, and a scraping mechanism 6. The main body 1 contains the magnetic separation mechanism 2, the cleaning mechanism 3 is located at the lower end of the magnetic separation mechanism 2, the material distribution mechanism 4 is located at the lower end of the cleaning mechanism 3, the pushing mechanism 5 is located at the lower end of the material distribution mechanism 4, and the scraping mechanism 6 is located at one end of the pushing mechanism 5. By providing a magnet 26 on one side inside the rotating drum 23, when glass fragments fall to the left end of the rotating drum 23, the iron pieces in the glass fragments will be attracted to the rotating drum 23. On the outer surface of 3, glass fragments fall from the left channel of the first receiving trough 16, while the iron sheet adsorbed on the outer surface of the rotating drum 23 will fall into the discharge pipe 35 when the rotating drum 23 rotates to the right side of the first receiving trough 16 and the magnetic attraction is lost. When the first rotating shaft 22 rotates, it drives the screw rod 34 to rotate and push the iron sheet inside the discharge pipe 35 out of the equipment. When the inclined plate 42 slides forward, it drives the trapezoidal first sliding block 48 to push the glass fragments accumulated at the furnace mouth forward. During the process of the inclined plate 42 sliding forward, it will drive the scraper 65 to clean the glass fragments adhering to the surface of the inclined plate 42.

[0035] Preferably, the body 1 includes a frame 11, with wheels 12 rotatably connected to the side wall of the frame 11, a first fixing plate 13 fixedly connected to the upper end of the frame 11, a slide groove 14 fixedly connected to the upper end of the first fixing plate 13, a first connecting block 15 fixedly connected to the upper end of the frame 11, a first receiving groove 16 fixedly connected to the side wall of the first connecting block 15, and a second receiving groove 17 fixedly connected to the upper end of the first receiving groove 16; by setting the horizontal slide groove 14, the inclined plate 42 can move horizontally.

[0036] Preferably, the magnetic separation mechanism 2 includes a first motor 21, the lower end of which is fixedly connected to a first connecting block 15. A first rotating shaft 22 is fixedly connected to one end of the first motor 21. A rotating drum 23 is fixedly connected to the side wall of the first rotating shaft 22. A stop block 24 is fixedly connected to the side wall of the rotating drum 23. A fixing rod 25 is fixedly connected to the inner side wall of the first receiving trough 16. A magnet 26 is fixedly connected to the side wall of the fixing rod 25. A bearing 27 is fixedly connected to the side wall of the fixing rod 25. The outer side wall of the bearing 27 is fixedly connected to the rotating drum 23. The first rotating shaft 22 is driven to rotate by the rotation of the first motor 21. The rotation of the rotating drum 23 causes the rotating drum 23 to rotate, which in turn causes the stop block 24 to rotate. The rotation of the rotating drum 23 and the stop block 24 can break up the clumps of glass fragments. At the same time, the rotation of the stop block 24 can make the glass fragments fall evenly from the first receiving groove 16. Meanwhile, a magnet 26 is provided on one side inside the rotating drum 23. When the glass fragments fall to the left end of the rotating drum 23, the iron pieces in the glass fragments will be attracted to the outer surface of the rotating drum 23. The glass fragments fall from the left channel of the first receiving groove 16, while the iron pieces attracted to the outer surface of the rotating drum 23 will fall out of the discharge pipe 35 when the rotating drum 23 rotates to the right side of the first receiving groove 16 and the attraction of the magnet 26 is gone.

[0037] Preferably, the cleaning mechanism 3 includes a first spur gear 31, with a first rotating shaft 22 fixedly connected to the middle of the first spur gear 31. A second spur gear 32 meshes with one end of the first spur gear 31, and a second rotating shaft 33 is fixedly connected to the middle of the second spur gear 32. A screw rod 34 is fixedly connected to one end of the second rotating shaft 33. A discharge pipe 35 is provided on the outside of the screw rod 34, and the side wall of the discharge pipe 35 is fixedly connected to the first receiving groove 16. When the first rotating shaft 22 rotates, it drives the first spur gear 31 to rotate. The rotation of the first spur gear 31 drives the second spur gear 32 to rotate. The rotation of the second spur gear 32 drives the second rotating shaft 33 to rotate. The rotation of the second rotating shaft 33 drives the screw rod 34 to rotate. The rotation of the screw rod 34 pushes the iron sheet inside the discharge pipe 35 out of the device.

[0038] Preferably, the material dispensing mechanism 4 includes a sliding plate 41, the lower end of which is slidably connected to a chute 14. An inclined plate 42 is fixedly connected to the upper end of the sliding plate 41, a partition plate 43 is fixedly connected to the upper end of the inclined plate 42, and a fixing block 44 is fixedly connected to the upper end of the inclined plate 42. A second connecting groove 45 is provided inside the fixing block 44, and an electric push rod 46 is fixedly connected to the inner side wall of the fixing block 44. A baffle 47 is fixedly connected to one end of the electric push rod 46, and a first sliding block 48 is slidably connected to the side wall of the inclined plate 42. The electric push rod 46 drives the baffle 47 to abut against the upper end of the partition plate 43. The baffle 47 is stepped, so the distance the electric push rod 46 controls the baffle 47 to move to the right can abut against the corresponding small grid, thereby controlling the material dispensing. The amount of material needed is precisely controlled by controlling the electric push rod 46 to move the baffle 47 to the right to abut against the corresponding small grid.

[0039] Preferably, the pushing mechanism 5 includes a second motor 51, the lower end of which is fixedly connected to the frame 11. A third rotating shaft 52 is fixedly connected to one end of the second motor 51, and a turntable 53 is fixedly connected to one end of the third rotating shaft 52. A first rotating pin 54 is rotatably connected to the side wall of the turntable 53, and a movable rod 55 is fixedly connected to the side wall of the first rotating pin 54. A second rotating pin 56 is fixedly connected to one end of the movable rod 55. When the second motor 51 is started, it rotates, causing the third rotating shaft 52 to rotate. The rotation of the third rotating shaft 52 causes the turntable 53 to rotate, which in turn causes the first rotating pin 54 to rotate around the center of the turntable 53. The rotation of the first rotating pin 54 around the center of the turntable 53 causes the movable rod 55 to reciprocate. The movement drives the second rotating pin 56 to reciprocate, which in turn drives the inclined plate 42 to reciprocate. The inclined plate 42 then drives the sliding plate 41 to slide horizontally within the groove 14. When the inclined plate 42 slides backward to its lowest point, the second connecting groove 45 connects with the first receiving groove 16. Glass fragments enter the second connecting groove 45 from the first receiving groove 16. The glass fragments fall into the small compartments formed by the inclined plate 42 and the partition plate 43 within the second connecting groove 45. The glass fragments slide from the small compartments formed by the inclined plate 42 and the partition plate 43 to the furnace opening. When the inclined plate 42 slides forward, it drives the trapezoidal first sliding block 48 to push the glass fragments accumulated at the furnace opening forward. At the same time, when the inclined plate 42 slides forward, the fixing block 44 blocks the first receiving groove 16.

[0040] Preferably, the scraping mechanism 6 includes a second fixed plate 61, one end of which is fixedly connected to the frame 11, and a steel wire rope 62 is fixedly connected to one end of the second fixed plate 61. A rotating pin 63 is tightly fitted to the side wall of the steel wire rope 62, and one end of the rotating pin 63 is rotatably connected to a trapezoidal block 69. A second connecting block 64 is fixedly connected to one end of the steel wire rope 62, and a scraper 65 is fixedly connected to the side wall of the second connecting block 64. A second sliding block 66 is fixedly connected to one end of the second connecting block 64, and a first sleeve 67 is slidably connected to the outside of the second sliding block 66. A first spring 68 is tightly fitted to the lower end of the second sliding block 66. The side wall of the first sleeve 67 is fixedly connected to the trapezoidal block 69, and a slider 610 is fixedly connected to the side wall of the trapezoidal block 69. A second sleeve 611 is slidably connected to the side wall of the slider 610, and the side wall of the second sleeve 611 is fixedly connected to the inclined plate 42. A first spring 68 is tightly fitted to one end of the slider 610. Two springs 612; When the feeding machine is used for a long time at the furnace opening, glass fragments will melt and stick to the front end of the inclined plate 42. If it is not cleaned in time, it will affect the feeding. During the forward sliding of the inclined plate 42, the wire rope 62 will pull the second connecting block 64 to move downward. The downward movement of the second connecting block 64 will drive the scraper 65 to move downward. During the downward movement of the connecting block 64, it will drive the second sliding block 66 to move downward. The downward movement of the second sliding block 66 will compress the spring 68. When the scraper 65 moves downward to the lowest point and sticks to the surface of the inclined plate 42, the wire rope 62 will pull the trapezoidal block 69 to move backward. The trapezoidal block 69 moves backward along the side wall of the inclined plate 42. During the backward movement of the trapezoidal block 69, it will drive the slider 610 to move to the right. The rightward movement of the slider 610 will compress the second spring 612. When the trapezoidal block 69 moves backward along the side wall of the inclined plate 42, the scraper 65 will clean the glass fragments stuck to the surface of the inclined plate 42.

[0041] In use, glass fragments are first poured into the second receiving trough 17. Then, the first motor 21 is started, rotating the first shaft 22, which in turn rotates the drum 23. The drum 23 then rotates the stop block 24, breaking up any clumps of glass fragments. Simultaneously, the stop block 24's rotation allows the glass fragments to fall evenly from the first receiving trough 16. A magnet 26 is located on one side inside the drum 23. When a glass fragment falls to the left end of the drum 23, the iron pieces within it are attracted to the outer surface of the drum 23. The glass fragment then falls through the left channel of the first receiving trough 16, while the iron pieces attracted to the outer surface of the drum 23 rotate with the drum 23. When the right side of the first receiving trough 16 is no longer attracted by the magnet 26, the material will fall into the discharge pipe 35. When the first rotating shaft 22 rotates, it drives the first spur gear 31 to rotate, which in turn drives the second spur gear 32 to rotate. The second spur gear 32 then drives the second rotating shaft 33 to rotate, which in turn drives the screw rod 34 to rotate. The rotating screw rod 34 pushes the iron sheet inside the discharge pipe 35 out of the equipment. The electric push rod 46 drives the baffle 47 to abut against the upper end of the partition plate 43. The baffle 47 is stepped, so the distance the electric push rod 46 controls the baffle 47 to move to the right can abut against the corresponding small grid, thus controlling the material distribution. The number of grids of material needed is controlled by the electric push rod 46 to move the baffle 47 to the right to abut against the corresponding small grid. The system precisely controls the amount of material fed in. The second motor 51 is activated, rotating the third shaft 52. The third shaft 52 rotates the turntable 53, which in turn rotates the first rotating pin 54 around the center of the turntable 53. This rotation of the first rotating pin 54 causes the movable rod 55 to reciprocate, which in turn causes the second rotating pin 56 to reciprocate. The second rotating pin 56 then reciprocates, causing the inclined plate 42 to reciprocate. This reciprocating motion of the inclined plate 42 causes the sliding plate 41 to slide horizontally within the chute 14. When the inclined plate 42 slides to its lowest point, the second connecting groove 45 connects with the first receiving groove 16, allowing glass fragments to enter the second connecting groove from the first receiving groove 16. Inside the second connecting groove 45, glass fragments fall into the various small compartments formed by the inclined plate 42 and the partition plate 43. The glass fragments slide from these compartments to the furnace opening. As the inclined plate 42 slides forward, it drives the trapezoidal first sliding block 48 forward, pushing the accumulated glass fragments at the furnace opening. Simultaneously, as the inclined plate 42 slides forward, the fixing block 44 blocks the first receiving groove 16. If the feeding machine is used at the furnace opening for an extended period, melted and sticky glass fragments may appear at the front end of the inclined plate 42. If not cleaned promptly, this will affect the feeding process. During the forward sliding of the inclined plate 42, the wire rope 62 pulls the second connecting block 64 downwards, which in turn drives the scraper 65 downwards.As the connecting block 64 moves downward, it drives the second sliding block 66 downward. The downward movement of the second sliding block 66 compresses the spring 68. When the scraper 65 moves downward to its lowest point and contacts the surface of the inclined plate 42, the wire rope 62 pulls the trapezoidal block 69 backward. The trapezoidal block 69 moves backward along the side wall of the inclined plate 42. During this backward movement, the trapezoidal block 69 drives the slider 610 to the right. The rightward movement of the slider 610 compresses the second spring 612. As the trapezoidal block 69 moves backward along the side wall of the inclined plate 42, the scraper 65 cleans the glass fragments adhering to the surface of the inclined plate 42.

[0042] The foregoing has shown and described the basic principles, main features, and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of the invention. Various changes and modifications can be made to the invention without departing from its spirit and scope, and all such changes and modifications fall within the scope of protection claimed by the present invention. The scope of protection of the present invention is defined by the appended claims and their equivalents.

Claims

1. A large scale slanted blanket material feeder for energy efficient production of a substrate glass, characterized by: The utility model relates to a magnetic separation device, including the main part (1), magnetic selection mechanism (2), cleaning mechanism (3), split mechanism (4), push mechanism (5), scrape material mechanism (6), the main part (1) inside is equipped with magnetic selection mechanism (2), the lower extreme of magnetic selection mechanism (2) is equipped with cleaning mechanism (3), the lower extreme of cleaning mechanism (3) is equipped with split mechanism (4), the lower extreme of split mechanism (4) is equipped with push mechanism (5), and push mechanism (5) one end is equipped with scrape material mechanism (6), The main part (1) includes frame (11), the lateral wall rotation is connected with wheel (12) of frame (11), the upper end fixedly connected with first fixed plate (13) of frame (11), the upper end fixedly connected with sliding slot (14) of first fixed plate (13), the upper end fixedly connected with first connecting block (15) of frame (11), the lateral wall fixedly connected with first material receiving groove (16) of first connecting block (15), split mechanism (4) includes sliding plate (41), and the lower end of sliding plate (41) is slidably connected with sliding slot (14), and the upper end fixedly connected with inclined material plate (42) of sliding plate (41), and the upper end fixedly connected with partition plate (43) of inclined material plate (42), and the upper end fixedly connected with fixed block (44) of inclined material plate (42), and the inside of fixed block (44) is equipped with second connecting groove (45), and the lateral wall fixedly connected with electric push rod (46) of fixed block (44) inside, and the one end fixedly connected with baffle (47) of electric push rod (46), and the lateral wall slidably connected with first sliding block (48) of inclined material plate (42), The push mechanism (5) includes second motor (51), and the lower end of second motor (51) is fixedly connected with frame (11), and one end of second motor (51) is fixedly connected with third rotating shaft (52), and one end of third rotating shaft (52) is fixedly connected with rotating disc (53), and the lateral wall of rotating disc (53) is rotatably connected with first rotating pin (54), and the lateral wall of first rotating pin (54) is fixedly connected with movable rod (55), and one end of movable rod (55) is fixedly connected with second rotating pin (56); The scrape material mechanism (6) includes second fixed plate (61), and one end of second fixed plate (61) is fixedly connected with frame (11), and one end of second fixed plate (61) is fixedly connected with steel wire rope (62), and the lateral wall of steel wire rope (62) is closely attached with rotating pin (63), and one end of rotating pin (63) is rotatably connected with trapezoidal block (69), and one end of steel wire rope (62) is fixedly connected with second connecting block (64), and the lateral wall of second connecting block (64) is fixedly connected with scraper (65), The scraping mechanism (6) further includes a second sliding block (66), one end of the second connecting block (64) is fixedly connected with the second sliding block (66), the second sliding block (66) is externally and slidably connected with a first sleeve (67), the lower end of the second sliding block (66) is tightly attached with a first spring (68), the side wall of the first sleeve (67) is fixedly connected with a trapezoidal block (69), the side wall of the trapezoidal block (69) is fixedly connected with a sliding block (610), the side wall of the sliding block (610) is slidably connected with a second sleeve (611), the side wall of the second sleeve (611) is fixedly connected with the inclined material plate (42), one end of the sliding block (610) is tightly attached with a second spring (612); The magnetic separation mechanism (2) includes a first motor (21), the lower end of the first motor (21) is fixedly connected with the first connecting block (15), one end of the first motor (21) is fixedly connected with a first rotating shaft (22), the side wall of the first rotating shaft (22) is fixedly connected with a rotating drum (23), the side wall of the rotating drum (23) is fixedly connected with a stop block (24), the inner side wall of the first material receiving groove (16) is fixedly connected with a fixed rod (25); The magnetic separation mechanism (2) further includes a magnet (26), the side wall of the fixed rod (25) is fixedly connected with the magnet (26), the side wall of the fixed rod (25) is fixedly connected with a bearing (27), the outer side wall of the bearing (27) is fixedly connected with the rotating drum (23); The cleaning mechanism (3) includes a first spur gear (31), the middle of the first spur gear (31) is fixedly connected with the first rotating shaft (22), one end of the first spur gear (31) is engaged with a second spur gear (32), the middle of the second spur gear (32) is fixedly connected with a second rotating shaft (33).

2. A large scale inclined blanket material feeder for energy efficient production of glass substrates according to claim 1, characterized in that: The body (1) further includes a second material receiving groove (17), the upper end of the first material receiving groove (16) is fixedly connected with the second material receiving groove (17).

3. A large scale slanted blanket material feeder for energy efficient glass substrate production according to claim 2, characterized in that: The cleaning mechanism (3) further includes a screw rod (34), one end of the second rotating shaft (33) is fixedly connected with the screw rod (34), the outer portion of the screw rod (34) is provided with a discharge pipe (35), the side wall of the discharge pipe (35) is fixedly connected with the first material receiving groove (16).

Citation Information

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