A continuous feeder in the glass bottle production process
The design of the continuous feeder solves the problem of material pile caused by excessively fast feeding speed or uneven distribution, achieves uniform melting of molten glass and stable production, and improves the quality of molten glass and production reliability.
Patent Information
- Application Number
- CN202510829256.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-20
- Publication Date
- 2025-09-16
- Estimated Expiration
- 2045-06-20
AI Technical Summary
During the glass melting process, if the feeding speed of the feeder is too fast or the distribution is uneven, the material pile will be formed, which will affect the heat transfer efficiency, cause crusting on the surface of the raw materials, hinder the melting of the lower layer of raw materials, fluctuate the quality of the glass liquid, and even block the feed port, affecting continuous production.
A continuous feeder is used, including a rectangular frame, a storage hopper and an arc-shaped box. A continuous feeding component and an in-place stirring component are set. The precise coordination of feeding and stirring is achieved through the linkage drive component to prevent the formation of material piles. The stirring is started after the stirring component enters the material pile to avoid splashing of the melt.
Effectively prevent raw material accumulation, ensure sufficient heat transfer in the melting pool, improve the stability of glass liquid quality, avoid local furnace temperature fluctuations and increased energy consumption, ensure continuous and stable production, and improve equipment safety and reliability.
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Figure CN120328834B_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of glass bottle raw material melting, in particular to a continuous feeder in a glass bottle production process. Background Art
[0002] During the glass bottle production process, raw materials such as quartz sand, soda ash, and limestone must be melted at high temperatures to form a homogeneous glass liquid to meet the fluidity and purity requirements of subsequent molding processes. Releasing the granular raw materials into the melting equipment allows them to quickly come into contact with the high-temperature flame or heating surface, improving heat transfer efficiency, accelerating raw material melting speed and chemical reaction efficiency, and is fundamental to the high-quality molding of glass bottles.
[0003] In the prior art, during the glass melting process, when the feeder releases the raw materials into the melting pool, if the feeding speed is greater than the melting speed of the raw materials, or the feeding positions are concentrated and unevenly distributed, a pile of materials is easily formed at the inlet of the melting pool. In particular, when the temperature of the melting pool is low, the local melting capacity is insufficient, the glass liquid has poor fluidity, or the raw materials are not preheated, the raw materials cannot be melted in time in the high-temperature zone, resulting in continuous accumulation. The formation of the pile of materials will cause the heat transfer efficiency to decrease, resulting in the formation of a crust on the surface of the raw materials, affecting the melting of the lower layer of raw materials, and may cause the local furnace temperature to drop, the glass liquid quality to fluctuate, and the energy consumption to increase. In severe cases, the feed port may be blocked, affecting continuous production. Summary of the Invention
[0004] The purpose of the present invention is to solve the problem in the prior art that in the glass melting process, when the feeder releases the raw materials into the melting pool, if the feeding speed is greater than the melting speed of the raw materials, or the feeding positions are concentrated and unevenly distributed, it is easy to form a pile of materials at the inlet of the melting pool. The formation of the pile of materials will cause the heat transfer efficiency to decrease, resulting in the formation of a crust on the surface of the raw materials, affecting the melting of the lower layer of raw materials, and may cause the local furnace temperature to drop, the quality of the glass liquid to fluctuate, the energy consumption to increase, and in severe cases, the feed port may be blocked, affecting continuous production. A continuous feeder is proposed for the glass bottle production process.
[0005] In order to achieve the above object, the present invention adopts the following technical solutions:
[0006] A continuous feeder for glass bottle production comprises a rectangular frame, a storage hopper, and an arc-shaped box. The arc-shaped box is fixedly provided at the bottom of the storage hopper, a material dropout chute is provided on the side of the arc-shaped box, a bottom arc plate is fixedly provided at the bottom of the arc-shaped box via a vertical arc plate, and a material storage gap is provided between the bottom of the arc-shaped box and the top of the bottom arc plate.
[0007] A continuous feeding assembly is provided on the top of the bottom arc plate, and the continuous feeding assembly continuously discharges the raw materials on the top of the bottom arc plate from the blanking chute;
[0008] The storage hopper is symmetrically fixed with fixed blocks on its side, and a vertical plate is fixedly provided below the fixed blocks on the storage hopper. An in-place stirring component is provided on the side of the vertical plate, and the in-place stirring component destroys the material pile formed by the material discharged through the discharge chute;
[0009] The side of the fixed block is rotatably connected to a horizontal rod, and a linkage drive component is provided on the horizontal rod. The linkage drive component transmits the power of the continuous feeding component to the in-place stirring component.
[0010] Optionally, the continuous feeding assembly includes a pushing cylinder, a pushing arc plate, and a fixed seat. The fixed seat is rotatably connected to the side of the extension seat, the pushing cylinder is fixedly set on the side of the fixed seat, and the output end of the pushing cylinder is rotatably connected to the middle position of the top of the pushing arc plate. An extension block is fixedly set at the top edge of the pushing arc plate.
[0011] Optionally, the in-place stirring assembly includes a displacement plate, a vertical shaft, a disturbance blade and an in-place driving assembly. The in-place driving assembly controls the disturbance blade so that it can only rotate when it enters the material pile. The vertical plate is provided with a vertical T-slot in the vertical direction. The vertical T-slot is provided with a vertical T-block that slides in the vertical direction. The displacement plate is fixed on the side of the vertical T-block. The top of the displacement plate is symmetrically connected to the vertical shaft for rotation, and the disturbance blade is fixed at the bottom of the vertical shaft.
[0012] Optionally, the positioning drive assembly includes a common gear rod, a driven gear, a left guide plate, and a right guide plate. The left guide plate and the right guide plate are fixedly arranged at the side edge of the vertical plate in sequence. The left guide plate side is provided with a left vertical surface and a left inclined surface in sequence along the vertical direction. The right guide plate side is provided with a right vertical surface and a right inclined surface in sequence along the vertical direction. The driven gear is fixedly set at the top of the vertical shaft.
[0013] Optionally, the displacement plate is provided with a horizontal T-slot in the horizontal direction, a horizontal T-block is movably inserted into the side of the horizontal T-slot, a common gear rod is fixedly provided on the top of the horizontal T-block, and the common gear rod is stably engaged with the two driven gears.
[0014] Optionally, the linkage drive assembly includes a driving gear, a vertical gear rod, and a transmission rod, one end of the transmission rod is fixedly connected to one end of the horizontal rod, and the other end of the transmission rod is fixedly connected to the side of the extension block. A driving gear is fixedly provided in the middle position of the horizontal rod, and the driving gear is stably engaged with the vertical gear rod in the vertical direction, and the bottom of the vertical gear rod is fixedly connected to the top of the displacement plate.
[0015] Optionally, a vertical arc plate is fixedly provided on the side of the bottom arc plate, a reinforcing rod is fixedly provided on the top of the vertical arc plate, and the reinforcing rod is fixedly provided on the side of the arc box.
[0016] Optionally, an adjusting screw is screwed into the side of the rectangular frame, and the other end of the adjusting screw is rotatably connected to the side wall of the storage hopper. The storage hopper is fixed with a horizontal column on the side wall opposite the adjusting screw, and the other end of the horizontal column is movably inserted into the rectangular frame.
[0017] Optionally, a protection box is fixedly provided on the top of the displacement plate, a central groove is provided in the middle of the top of the protection box, the vertical gear rod passes through the central groove, and a horizontal groove is provided on the side of the protection box.
[0018] Optionally, the protection box is fixedly provided with a vertical box on the top of the central groove, a vertical groove is opened on the side of the vertical box along the vertical direction, and the horizontal rod extends from the side of the vertical groove.
[0019] Optionally, extension folding rods are symmetrically fixed at both ends of the common gear rod, and the other end of the extension folding rod is rotatably connected to an auxiliary wheel, the auxiliary wheel contacts the side of the left guide plate or the right guide plate, and the left and right inclined surfaces are parallel to each other.
[0020] Compared with the prior art, the present invention has the following advantages:
[0021] 1. The main structure of the present invention includes a storage hopper and an arc-shaped box. A bottom arc plate is fixedly provided at the bottom of the arc-shaped box by a vertical arc plate, and a continuous feeding assembly is provided on the top of the bottom arc plate. The continuous feeding assembly continuously feeds the glass raw materials in the storage hopper into the feeding port of the melting equipment, and an in-place stirring assembly is provided on the side of the arc-shaped box. When the continuous feeding assembly forms a material pile at the feeding port, the in-place stirring assembly will destroy the material pile in time, which can effectively prevent the problem of raw material accumulation caused by excessive feeding speed, uneven distribution or insufficient melting conditions, avoid the phenomenon of crusting on the surface of the raw materials, obstruction of melting of the lower layer of raw materials, etc., ensure sufficient heat transfer in the melting pool, uniform melting of raw materials, improve the stability of glass liquid quality, help prevent adverse consequences such as local furnace temperature fluctuations, increased energy consumption and clogging of the feed port, and ensure continuous and stable production.
[0022] 2. The in-place stirring component of the present invention may come into contact with glass raw materials that have not been completely melted or have begun to melt during the process of stirring the material pile, and the molten liquid is easily adhered to the surface. If it continues to rotate during the return process, the molten liquid may be thrown out, causing the molten liquid to splash, contaminating the surrounding structures of the smelting pool, and even causing safety hazards. The present invention provides an in-place driving component with a purely mechanical structure, so that the driving is started only after the stirring component enters the material pile, and the rotation of the stirring component is automatically stopped during the return process, thereby avoiding the problem of molten liquid being thrown due to inertia or malfunction during the return process. This not only improves the cleanliness and safety of the equipment operation, but also extends the service life of the stirring component, effectively improving the overall stability and production reliability of the smelting system.
[0023] 3. The present invention is provided with a linkage drive component between the continuous feeding component and the in-place stirring component. The linkage drive component is a purely mechanical structure. The linkage drive component can transmit the power of the continuous feeding component to the in-place stirring component. When the pusher arc plate in the continuous feeding component starts to return and is ready to take the material, the linkage drive component can control the in-place stirring component to start moving down and gradually enter the material pile. It can achieve precise time coordination between the continuous feeding action and the stirring action, and avoid interference or structural conflict caused by the two being carried out at the same time. Since the pusher arc plate no longer pushes the raw materials during the return stroke, the material pile is in a static state. At this time, the in-place stirring component is controlled to start moving down, which can ensure that it can enter the material pile smoothly and unimpeded for stirring, which helps to improve the stirring efficiency and the pile-breaking effect. At the same time, the use of a purely mechanical linkage structure eliminates the need for additional sensors or electronic control systems, reduces the structural complexity and failure rate, and improves the reliability, synchronization and maintenance convenience of the overall system. BRIEF DESCRIPTION OF THE DRAWINGS
[0024] Figure 1 It is a schematic diagram of the overall structure of the present invention.
[0025] Figure 2 for Figure 1 Another perspective structural diagram.
[0026] Figure 3 for Figure 1 Schematic diagram of the structure for removing the pusher arc plate.
[0027] Figure 4 for Figure 3 Another actual structural diagram of .
[0028] Figure 5 It is a structural diagram of the pusher arc plate and its connecting parts.
[0029] Figure 6 Schematic diagram of the structure of the stirring component in place.
[0030] Figure 7 for Figure 6 Schematic diagram of the structure with the protective box removed.
[0031] Figure 8 Schematic diagram of the structure of the displacement plate and its connecting parts.
[0032] Figure 9 for Figure 8 Schematic diagram of the structure with the protective box removed.
[0033] Figure 10 for Figure 9 Schematic diagram of the structure with the common gear rod removed.
[0034] Figure 11 Schematic diagram of the structure of the common gear rod and its connecting parts.
[0035] In the figure: 1, storage hopper; 2, rectangular frame; 3, adjustment screw; 4, reinforcement rod; 5, storage frame; 6, horizontal column; 7, extension seat; 8, fixed seat; 9, vertical arc plate; 10, bottom arc plate; 11, arc box; 110, blanking chute; 12, push cylinder; 13, extension block; 14, transfer rod; 15, push arc plate; 16, fixed block; 17, horizontal rod; 171, driving gear; 18, vertical plate; 181, vertical T-slot; 19, left guide plate; 191, Left vertical surface; 192, left inclined surface; 20, right guide plate; 201, right vertical surface; 202, right inclined surface; 21, displacement plate; 210, vertical T block; 211, horizontal T slot; 22, driven gear; 23, vertical shaft; 231, disturbance blade; 24, vertical box; 241, vertical slot; 25, protection box; 251, horizontal slot; 252, center slot; 26, vertical gear rod; 27, extension folding rod; 271, auxiliary wheel; 28, common gear rod; 281, horizontal T block. DETAILED DESCRIPTION
[0036] The technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all the embodiments.
[0037] In the description of the present invention, it should be understood that the terms "upper", "lower", "front", "back", "left", "right", "top", "bottom", "inside", "outside", etc., indicating directions or positional relationships, are based on the directions or positional relationships shown in the accompanying drawings, and are only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific direction, be constructed and operated in a specific direction, and therefore should not be understood as limiting the present invention.
[0038] Reference Figure 1-11 A continuous feeder in the glass bottle production process includes a rectangular frame 2, a storage hopper 1 and an arc box 11. The arc box 11 is fixedly provided at the bottom of the storage hopper 1, and a material drop chute 110 is opened on the side of the arc box 11. The bottom of the arc box 11 is fixedly provided with a bottom arc plate 10 through a vertical arc plate 9. The side of the bottom arc plate 10 is fixedly provided with a vertical arc plate 9. A reinforcing rod 4 is fixedly provided on the top of the vertical arc plate 9. The reinforcing rod 4 is fixedly provided on the side of the arc box 11. A storage gap is provided between the bottom of the arc box 11 and the top of the bottom arc plate 10.
[0039] A continuous feeding assembly is provided on the top of the bottom arc plate 10, which continuously discharges the raw materials on the top of the bottom arc plate 10 from the blanking chute 110. The continuous feeding assembly includes a pushing cylinder 12, a pushing arc plate 15, and a fixed seat 8. The fixed seat 8 is rotatably connected to the side of the extension seat 7. The pushing cylinder 12 is fixedly set on the side of the fixed seat 8. The output end of the pushing cylinder 12 is rotatably connected to the middle position of the top of the pushing arc plate 15. An extension block 13 is fixedly set at the top edge position of the pushing arc plate 15. The pushing arc plate 15 extends into the material storage gap set between the bottom of the arc box 11 and the top of the bottom arc plate 10, and fills the gap. The bottom of the arc box 11 is set to an arc surface, and the top of the pushing arc plate 15 will fit into the bottom of the arc box 11.
[0040] The pushing arc plate 15 has a certain thickness. When the pushing arc plate 15 leaves the material storage gap set between the bottom of the arc box 11 and the top of the bottom arc plate 10, the material storage gap set between the bottom of the arc box 11 and the top of the bottom arc plate 10 will be filled with glass raw materials of a certain thickness. In addition, a storage frame 5 is fixedly set on the rear side of the arc box 11. When the pushing arc plate 15 moves along the material storage gap, it will cause a certain amount of glass raw materials to leak out, and the storage frame 5 is used to receive the leaked raw materials.
[0041] A fixed block 16 is symmetrically fixed on the side of the storage hopper 1, and a vertical plate 18 is fixedly provided below the fixed block 16 of the storage hopper 1. An in-place stirring assembly is provided on the side of the vertical plate 18. The in-place stirring assembly includes a displacement plate 21, a vertical shaft 23, a disturbance leaf 231 and an in-place driving assembly. The in-place driving assembly controls the disturbance leaf 231 and the disturbance leaf 231 can only rotate when it enters the material pile. A vertical T-slot 181 is opened in the vertical direction of the vertical plate 18. A vertical T-block 210 is slidingly provided in the vertical direction of the vertical T-slot 181. A displacement plate 21 is fixed on the side of the vertical T-block 210. At this time, the displacement plate 21 can stably move in the vertical direction along the vertical plate 18.
[0042] The top of the displacement plate 21 is symmetrically connected to the vertical shaft 23, and a disturbance blade 231 is fixedly provided at the bottom of the vertical shaft 23. The in-place driving assembly includes a common gear rod 28, a driven gear 22, a left guide plate 19, and a right guide plate 20. The left guide plate 19 and the right guide plate 20 are fixedly provided at the edge of the side of the vertical plate 18 in sequence. The side of the left guide plate 19 is sequentially provided with a left vertical surface 191 and a left inclined surface 192 in the vertical direction. The side of the right guide plate 20 is sequentially provided with a right vertical surface 201 and a right inclined surface 202 in the vertical direction. The driven gear 22 is fixedly provided at the top of the vertical shaft 23. The in-place stirring assembly destroys the material pile formed by the material discharged through the chute 110.
[0043] A horizontal T-slot 211 is provided in the horizontal direction of the displacement plate 21, and a horizontal T-block 281 is movably inserted into the side of the horizontal T-slot 211. A common gear rod 28 is fixedly provided on the top of the horizontal T-block 281. Therefore, when the displacement plate 21 is displaced in the vertical direction, due to the setting of the horizontal T-block 281, the common gear rod 28 will move laterally along with the displacement plate 21. The common gear rod 28 is stably engaged with the two driven gears 22. Extension folding rods 27 are symmetrically fixed at both ends of the common gear rod 28. The other end of the extension folding rod 27 is rotatably connected to an auxiliary wheel 271. The auxiliary wheel 271 contacts the side of the left guide plate 19 or the right guide plate 20, and the left inclined surface 192 and the right inclined surface 202 are parallel to each other.
[0044] The side of the fixed block 16 is rotatably connected to the horizontal rod 17, and a linkage drive assembly is provided on the horizontal rod 17. The linkage drive assembly transmits the power of the continuous feeding assembly to the in-place stirring assembly. The linkage drive assembly includes a driving gear 171, a vertical gear rod 26, and a transmission rod 14. One end of the transmission rod 14 is fixedly connected to one end of the horizontal rod 17, and the other end of the transmission rod 14 is fixedly connected to the side of the extension block 13. A driving gear 171 is fixedly provided in the middle position of the horizontal rod 17. The driving gear 171 is stably engaged with the vertical gear rod 26 in the vertical direction, and the bottom of the vertical gear rod 26 is fixedly connected to the top of the displacement plate 21. Therefore, when the driving gear 171 rotates, it will drive the displacement plate 21 to move in the vertical direction through the vertical gear rod 26.
[0045] An adjusting screw 3 is screwed into the side of the rectangular frame 2, and the other end of the adjusting screw 3 is rotatably connected to the side wall of the storage hopper 1. A horizontal column 6 is fixedly provided on the side wall of the storage hopper 1 opposite to the adjusting screw 3. The other end of the horizontal column 6 is movably inserted into the rectangular frame 2. The rectangular frame 2 serves as the base for the entire feeder to be installed on the frame. A rocker is also provided at the end of the adjusting screw 3. The user can drive the storage hopper 1 to move a certain distance in the horizontal direction by rotating the adjusting screw 3, thereby driving the entire device away from the feeding port of the smelting equipment, which is convenient for maintenance of the feeding port of the smelting equipment.
[0046] A protection box 25 is fixedly provided on the top of the displacement plate 21. A center groove 252 is provided in the middle of the top of the protection box 25. The vertical gear rod 26 extends from the center groove 252. A horizontal groove 251 is provided on the side of the protection box 25. A vertical box 24 is fixedly provided on the top of the center groove 252 of the protection box 25. A vertical groove 241 is provided on the side of the vertical box 24 along the vertical direction. The horizontal rod 17 extends from the side of the vertical groove 241. The protection box 25 and the vertical box 24 are both for protecting the driving gear 171, the vertical gear rod 26, the driven gear 22, and the common gear rod 28. The horizontal groove 251 is for avoiding the lateral movement of the extended folding rod 27, and the vertical groove 241 is for avoiding the vertical displacement action of the horizontal rod 17.
[0047] It should be added that since the positions of the feeding ports of the entire feeding equipment and the melting equipment are fixed and the fluidity of the glass raw materials is relatively stable, the height of the material pile formed at the feeding port of the dissolving equipment is relatively stable. Therefore, the vertical heights of the left vertical surface 191 and the right vertical surface 201 can be determined according to the actual material pile height.
[0048] The specific implementation steps and principles of the present invention are as follows:
[0049] When the push cylinder 12 is ready to retract, the push arc plate 15 gradually moves to the outside of the gap between the bottom arc plate 10 and the arc box 11. The gap between the bottom arc plate 10 and the arc box 11 is restored to contain a certain amount of glass raw material particles. During this process, the push arc plate 15 drives the horizontal rod 17 to rotate through the transmission rod 14, and drives the displacement plate 21 to move downward in the vertical direction through the horizontal rod 17, the driving gear 171, and the vertical gear rod 26.
[0050] At this time, the auxiliary wheel 271 moves from the left vertical surface 191 of the left guide plate 19 to the left inclined surface 192. When the auxiliary wheel 271 moves along the left vertical surface 191, the disturbance leaves 231 of the two vertical shafts 23 will not rotate. When the disturbance leaves 231 begin to contact the material pile, the auxiliary wheel 271 begins to move from the left vertical surface 191 to the left inclined surface 192. At this time, the common gear rod 28 will be forced to move laterally, and the common gear rod 28 drives the two driven gears 22 to rotate, thereby driving the disturbance leaves 231 at the bottom of the two vertical shafts 23 to rotate, destroying the material pile.
[0051] When the pushing cylinder 12 extends again, it will drive the pushing arc plate 15 to discharge a certain amount of glass raw material particles in the gap between the bottom arc plate 10 and the arc box 11 from the blanking chute 110. During this period, the pushing arc plate 15 will drive the horizontal rod 17 to rotate through the transmission rod 14, and drive the displacement plate 21 to move up in the vertical direction through the horizontal rod 17, the driving gear 171, and the vertical gear rod 26. All components on the displacement plate 21 are reset, and the auxiliary wheel 271 moves from the left inclined surface 192 to the left vertical surface 191. At this time, the common gear rod 28 will not drive the two driven gears 22 to rotate, and the two disturbance leaves 231 remain stationary.
[0052] The above description is only a preferred specific embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any technician familiar with the technical field, within the technical scope disclosed by the present invention, who makes equivalent replacements or changes based on the technical solution and inventive concept of the present invention, should be covered by the scope of protection of the present invention.
Claims
1. A continuous feeder for glass bottle production, comprising a rectangular frame, a storage hopper and an arc-shaped box, characterized in that: The bottom of the storage hopper is fixed with an arc box, the side of the arc box is provided with a material drop chute, the bottom of the arc box is fixed with a bottom arc plate through a vertical arc plate, and a material storage gap is provided between the bottom of the arc box and the top of the bottom arc plate; A continuous feeding assembly is provided on the top of the bottom arc plate, and the continuous feeding assembly continuously discharges the raw materials on the top of the bottom arc plate from the blanking chute; The storage hopper is symmetrically fixed with a fixed block on the side, and the storage hopper is fixedly provided with a vertical plate below the fixed block. An in-place stirring assembly is provided on the side of the vertical plate. The in-place stirring assembly includes a displacement plate, a vertical shaft, a disturbance leaf and an in-place driving assembly. The in-place driving assembly controls the disturbance leaf so that it can only rotate when the disturbance leaf enters the material pile. The vertical plate is provided with a vertical T-slot in the vertical direction, and a vertical T-block is provided for sliding along the vertical direction. A displacement plate is fixed on the side of the vertical T-block, and the top of the displacement plate is symmetrically connected to the vertical shaft for rotation. A disturbance leaf is fixed on the bottom of the vertical shaft. The in-place driving assembly It includes a common gear rod, a driven gear, a left guide plate, and a right guide plate. The left guide plate and the right guide plate are fixedly provided at the edge positions of the side surfaces of the vertical plate in sequence. The side surface of the left guide plate is provided with a left vertical surface and a left oblique surface in sequence along the vertical direction. The side surface of the right guide plate is provided with a right vertical surface and a right oblique surface in sequence along the vertical direction. The driven gear is fixedly provided on the top of the vertical shaft. The displacement plate is provided with a horizontal T-slot in the horizontal direction. A horizontal T-block is movably inserted into the side surface of the horizontal T-slot. A common gear rod is fixedly provided on the top of the horizontal T-block. The common gear rod is stably meshed with the two driven gears. The stirring assembly in place will destroy the pile formed by the material discharged through the blanking chute. The side of the fixed block is rotatably connected to a horizontal rod, and a linkage drive component is provided on the horizontal rod. The linkage drive component transmits the power of the continuous feeding component to the in-place stirring component.
2. A continuous feeder for glass bottle production according to claim 1, characterized in that: The continuous feeding assembly includes a pushing cylinder, a pushing arc plate, and a fixed seat. The fixed seat is rotatably connected to the side of the extension seat. The pushing cylinder is fixedly set on the side of the fixed seat. The output end of the pushing cylinder is rotatably connected to the middle position of the top of the pushing arc plate. An extension block is fixedly set at the top edge of the pushing arc plate.
3. The continuous feeder for glass bottle production according to claim 1, characterized in that: The linkage drive assembly includes a driving gear, a vertical gear rod, and a transmission rod. One end of the transmission rod is fixedly connected to one end of the horizontal rod, and the other end of the transmission rod is fixedly connected to the side of the extension block. A driving gear is fixedly provided in the middle position of the horizontal rod. The driving gear is stably engaged with the vertical gear rod in the vertical direction, and the bottom of the vertical gear rod is fixedly connected to the top of the displacement plate.
4. The continuous feeder for glass bottle production according to claim 1, characterized in that: A vertical arc plate is fixedly provided on the side of the bottom arc plate, a reinforcing rod is fixedly provided on the top of the vertical arc plate, and the reinforcing rod is fixedly provided on the side of the arc box.
5. The continuous feeder in the glass bottle production process according to claim 1, characterized in that: An adjusting screw is screwed into the side of the rectangular frame, and the other end of the adjusting screw is rotatably connected to the side wall of the storage hopper. A horizontal column is fixedly provided on the side wall of the storage hopper opposite to the adjusting screw, and the other end of the horizontal column is movably inserted into the rectangular frame.
6. The continuous feeder for glass bottle production according to claim 3, characterized in that: A protection box is fixedly provided on the top of the displacement plate. A central groove is provided at the middle position of the top of the protection box. The vertical gear rod passes through the central groove. A horizontal groove is provided on the side of the protection box.
7. A continuous feeder for glass bottle production according to claim 6, characterized in that: The protection box is fixedly provided with a vertical box on the top of the central groove, a vertical groove is opened on the side surface of the vertical box along the vertical direction, and the horizontal rod extends from the side surface of the vertical groove.
8. The continuous feeder for glass bottle production according to claim 1, characterized in that: Extension folding rods are symmetrically fixed at both ends of the common gear rod, and the other end of the extension folding rod is rotatably connected to an auxiliary wheel. The auxiliary wheel contacts the side surface of the left guide plate or the right guide plate, and the left and right inclined surfaces are parallel to each other.
Citation Information
Patent Citations
Feeding apparatus for glass melting furnaces
US4854959A